Processing of Capped Intron-Containing Pre-mRNA (Homo sapiens)

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11, 13, 14, 22, 25...1, 27, 34, 43, 91...62, 1023, 8, 24, 9510, 9762, 102635, 48, 895, 32, 37, 48, 665, 43, 70, 871, 43, 60, 83, 98...6, 7, 58, 6151, 69295, 18, 70, 92, 107112, 11538, 883515, 17, 21, 28, 41...11, 13, 14, 22, 36...5, 23, 31, 48, 11142, 11226, 43, 71, 78, 10962, 10220, 6939, 1034445, 9412, 5013, 14, 22, 40, 51...nucleoplasmcytosolPOLR2L POLR2D POLR2J SNRPA PABPN1 SRSF3 Mature intronless transcript derived Histone mRNA DDX5 POLR2A SNRPC NUP93 DHX38 POLR2G NXF1 CCAR1 XAB2 SRRM1 YBX1 FYTTD1 NCBP1 RNPS1 DDX42 EIF4A3 THOC7 SRSF1 BUD31SYMPK RANBP2 PPIL4 RBM5 NCBP1 AQR POLR2E GTF2F1 NCBP1 POLR2I CF I - 72 kDa subunit LUZP4 HNRNPA0 CF I - 68 kDa subunit POLR2A MAGOHB SNRPD2 LSM3 NUP153 RNPS1 SRSF9 SUGP1 U1 snRNA U2AF2 POLR2H NUP98-3 SRRM1 NUP54 ZMAT5 HNRNPH2 THOC1 U11 snRNA MAGOHB SNRPG POLR2K Spliceosomal ActiveC (B*) ComplexHNRNPCcapped, methylated pre-mRNA DHX15 U1 snRNA AAAS NUP98-3 U2AF1 HNRNPU SNRPA1 WBP11 NXF1 2xMe-SNRPD3 CSTF1 EFTUD2 POLR2A p-S5-POLR2A SARNP POLR2H WDR33 DHX9 POLR2I SNW1 NCBP1 GPKOWBUD31 THOC5 U2AF1L4 DHX15 ZC3H11A HNRNPH1 POLR2D PCF11 NXF1SNRNP200 SF3B5 SF3B6 CD2BP2 GTF2F2 WDR33 ZCRB1 SNRPA1 SF3B4 PRPF19 PTBP1 SF3A2 THOC6 WDR33 NUP37 CSTF2 RNPS1 GTF2F2 FIP1L1 CD2BP2 PRCC RAE1 SRSF1 POLR2I UPF3B SF3B3 NXF1 PPIL6 SRSF2 POLR2J SNRPD2 DHX15 PCBP2 PAPOLA Me2-R108,R112-SNRPB Nucleoplasmic matureintronless derivedmRNA:TAP:Aly/RefcomplexCDC5L PPIL4 SF3B1 SNRNP25 NCBP1 CSTF3 NHP2L1 CSTF3 NUP43 CPSFYBX1 POLR2F U5 snRNA CWC15 NHP2L1 ISY1 NCBP2 U12 snRNA POLR2J U2AF2 CPSF4 NUP133 CPSF4 CCAR1 SNRPF DDX46 POLR2H POLR2A SF3B1 CPSF1 SUGP1 MAGOH HNRNPM SNW1 DDX5 RBM22 HNRNPL RBM5 NUP62 ALYREF SF3B1 HNRNPF U2AF2 SEH1L-2 Spliceosomal AComplexCPSF1 2xMe-SNRPD3 PQBP1 hSLU7CPSF1 NCBP1 HNRNPUL1 NUP35 POLR2B SNRPE CWC25 POLR2D SF3B4 NUP214 NUP155 lariat containing 5'-end cleaved mRNA SRSF6 SNRPF SYMPK LUZP4 SRSF7 POLR2G PPIL6 CASC3 GPKOW NUP62 SARNP HNRNPUL1 SUGP1 CLP1 SF3B2 SNRPE U1 snRNA DHX38 THOC7 NXF1 LSM2 FIP1L1 Me2-R108,R112-SNRPB RNPS1 SNRNP35 PPIL3 WBP11 POLR2C SNRPE SNRNP27 POLR2E SF3B5 PUF60 DDX46 DDX23 CCAR1 CPSF7 RBM8A SNRPB2 SF1 SNRPF SRSF6 PPIL3 SNRPF SMNDC1 POLR2A NCBP2 NUDT21 ZC3H11A PCBP1 SRSF7 NCBP2 THOC7 NUP98-4 CASC3 SRSF11 EFTUD2 POLR2C LSM5 HNRNPDEIF4A3 SRSF2 SRSF7 p-S5-POLR2A LUZP4 PPIL6 DHX38 CPSF1 HNRNPA3EIF4A3 POLR2D PLRG1 EFTUD2 CRNKL1 U2AF1L4 NUP155 NUP93 U2AF1L4 LSM3 NUP214 NCBP1 MAGOHB POLR2D SNRPD2 EIF4A3 DDX5 SF3APQBP1 RAE1 2xMe-SNRPD3 WDR33 SRSF1 2xMe-SNRPD1 POLR2F HNRNPL SNRPE PRPF6 SRSF4 NCBP1 SNRPD2 YBX1 LSM2 ZMAT5 CSTF2T PRPF4 POLR2C SRSF1 TXNL4A THOC6 U2AF2 HNRNPA2B1 DDX42 YBX1 U6 snRNA NHP2L1 POLR2I CPSF4 SRSF5 DDX42 CPSF2 POLR2K SF3B3 SF3B5 PLRG1 NUP37 SF3B3 DDX23 WDR33 SNRNP40 SRRM1 NCBP1 SF3B2 CPSF4 POLR2G PAPOLA CWC25 2xMe-SNRPD1 ELAVL2 PHF5A LSM2 POLR2G DDX46 SNRPD2 CLP1 WBP11 DDX39B SRSF3 POLR2G SRSF6 NUP98-4 HNRNPC DDX5 SNRPA THOC7 SRSF1 NUP133 SNRNP48 UPF3B SRRM1 POLR2A POM121 THOC6 SRRM1 PPIE PPWD1 NXF1 EIF4A3 THOC1 HSPA8 CSTF2T HNRNPL POLR2F GTF2F1 DDX42 POM121 PLRG1 SpliceosomalIntermediate C(Bact) ComplexU2AF1L4 CRNKL1 DDX39A 2xMe-SNRPD1 GTF2F1 SF3A1 HNRNPH1 CDC40 NCBP2 POLR2F Nuclear Pore Complex(NPC)Me2-R108,R112-SNRPB hSLU7 SNRPD2 FIP1L1 SRSF11 RBM17 RNPS1 NCBP2 SNRNP70 SRSF4 ALYREF U2 snRNA SNRPF U2SURP NHP2L1 U12 snRNA PPWD1PRPF6 SRSF2 SF3B4 CDC40 CTNNBL1 NUP98-5 NUP107 CDC40 POLR2J PUF60 SNRNP200 SNW1 PHF5A CASC3 CSTF2 SF3B1 SNRPA1 POLR2D HNRNPR HSPA8 U2AF1L4 SNRPG SYMPK CTNNBL1 hTra2 ISY1 HNRNPR LSM4 NUDT21 SYF2 NUP62 SRSF3 PPIL6 PRPF40A CPSF1 NUP98-4 HNRNPA0 SRSF5 SART1 CHTOPDHX9 CPSF7 CF I - 68 kDa subunit NUP43 FYTTD1 SRRM2 NUP85 MAGOHB SF3A3 SNRNP40 NUDT21 TPR HNRNPM PRPF8 SRSF9 SNRNP40 SF3A2 NCBP2 NUP85 NUP214 PTBP1 POLR2I PHF5A Me2-R108,R112-SNRPN SRSF1 PRPF40AHNRNPH2THOC5 POLR2B PABPN1POLR2C U2SURP PRPF19 PABPN1AAAS PRPF4 CSTF1 Spliceosomal EComplexDNAJC8 POLR2E POLR2G SNRPE intron-containingcomplexMAGOH POLR2L POLR2J POLR2H SF3B2 SF3A1 ELAVL2 PCBP1 EFTUD2 CPSF7 DDX46 POLR2E SYMPK WBP4NCBP2 NCBP1 CPSF3 POLR2G 2xMe-SNRPD3 U5 snRNA PTBP1SRSF3THO complexPUF60 SNRPE METTL3 U2AF1 CF ISRSF6 HNRNPL YBX1 PABPN1 POLR2J ATAC B ComplexPCF11 GTF2F1 DHX16 PCBP2 THOC3 U5 snRNA capped, methylated pre-mRNA NUP155 PRPF6 SRSF3 POLR2I POLR2F DNAJC8HSPA8 CPSF3 SF3B3 CSTF2 PCBP1 POLR2G NUP93 GTF2F1 HNRNPFSNRPF SF3B1 NXF2 HNRNPA2B1U2 snRNA ZRSR2 DDX42 capped, methylated pre-mRNA FUS SNRPG WDR33 HSPA8 NUP98-5 HNRNPA3 Nup45 U2AF1 HNRNPA0 PCF11 DHX16 PRPF8 U2SURP DDX42 CF IICF I - 72 kDa subunit NXF1POLR2F SNW1SRRM2 capped pre-mRNA SRSF2 POLR2C HNRNPF Mature intronlesstranscript derivedHistonemRNA:SLBP:eIF4EComplexSF3B3 SRSF6RBM8A POLDIP3 CDC40SNRPA SRRM1 SRSF5 CD2BP2 SKIV2L2 SNRPE 2xMe-SNRPD3 ATP PRPF6 SF3B2 U2 snRNA SUGP1 HNRNPA0 BUD31 SF3B3 SF3B2 U5 snRNPRBM8A ALYREF SRSF5 capped, methylated pre-mRNA PRCC U2AF1 CTNNBL1 SF3B6 NUP88 NUPL1-2 SRSF1 HNRNPU HNRNPA3 YBX1 CHERP POLR2K CHTOPSRSF4Me2-R108,R112-SNRPB CWC25 CRNKL1 RNPS1 POLR2F CLP1 GTF2F1 U1 snRNPELAVL1 SF3B4 Me2-R108,R112-SNRPB 2xMe-SNRPD1 POLR2B capped, methylated pre-mRNA NHP2L1 SRSF3 NHP2L1 SNRPB2 PPIL3 LUZP4 UPF3B NUP85 U6 ATAC snRNA ALYREF PRPF19 CSTF1 U2 snRNA U4 snRNA HNRNPC NUP210 Me2-R108,R112-SNRPB YBX1 POLR2D GTF2F1 PCF11 PCF11 NXF1 2xMe-SNRPD3 ALYREF SRSF6 2xMe-SNRPD1 SNRPG NUP133 THOC7 EFTUD2 POLR2G THOC3 BUD31 WDR33 DDX23 2xMe-SNRPD1 HNRNPK RBMX 2xMe-SNRPD3 ALYREF PCF11 NDC1 UPF3BHNRNPR Mature SLBPindependent HistonemRNA:eIF4E complexCap Binding Complex(CBC)SRSF1 SMNDC1 HNRNPF ZC3H11A mRNA(N6-adenosine)-methyltransferase3' end cleaved,ligated exoncontaining complexPOLR2C hSLU7 2xMe-SNRPD1 NCBP2 U2AF1L4 SNRNP40 SRRM2 HNRNPC RBM17 CWC15 SF3B4 SYMPK PRPF3 DHX9 POLR2E SYMPK THOC5 NUDT21 CSTF2T DHX9 SUGP1 Mature intronless derived mRNA THOC6 Me2-R108,R112-SNRPB SF3B6 SNRPA1 FYTTD1 SRSF5 Nuclear Pore Complex(NPC)POLR2A DHX15 CF I - 68 kDa subunit SF3A3 CPSF4 SF3B5 Magoh-Y14 complexTHOC2 SNRPE ATAC C ComplexTHOC3 POLR2F CPSF7 RBM8A RANBP2 NUP205 NCBP1 U6 ATAC snRNPCSTF3 NCBP2 NHP2L1 SNRPB2 RNPS1 SRSF6 SRSF6 SRSF4 SNRNP200 DDX46 THOC2 MAGOH NUP35 NUP205 CF I - 68 kDa subunit SNRNP200 MAGOHB NUP214 GTF2F2 RNPS1 U5 snRNA POLR2K SNRPF hTra2 PRCC POLR2C Mature intronless transcript derived mRNA FIP1L1 SNRPD2 ALYREF SNRPC RBM5 HNRNPU UPF3B U6 snRNA THOC6 HNRNPA0 SNRPG capped, methylated pre-mRNA 2xMe-SNRPD3 SRSF11 NUP37 DNAJC8 CSTF2T capped, methylated pre-mRNA PTBP1 SRSF6 CWC15 POLR2B NXF1 CF I - 72 kDa subunit CSTF2 RBM17 POLR2I Mature IntronlessTranscript DerivedmRNA:eIF4E ComplexPOLR2I SNRNP200 CF I - 72 kDa subunit SNRPE POLR2K THOC2 PABPN1 XAB2CSTF3 HNRNPD GTF2F2 PLRG1 RNPC3 U6 ATAC snRNA SMNDC1 HSPA8 NXF1 U2AF1L4 SNRPD2 NUDT21 FIP1L1 2xMe-SNRPD1 ALYREFCSTF2 CF I - 72 kDa subunit SRSF2 SF3B2 SNRPF CCAR1 NCBP2 POLDIP3 NCBP1 NUP160 SRRTSF3B5 NUP98-4 SNRNP48 SARNPSRSF1 LSM2 LSM7 hTra2 SNRPF Nuclear Pore Complex(NPC)NXF2 NCBP2 ZC3H11ASNRNP200 HNRNPF RBM5 SRSF3 HNRNPU TXNL4A SNRPE SRSF2 Cleavage andPolyadenylationComplexALYREF, FYTTD1,LUZP4PHF5A U2 snRNA LSM8 WBP11 CPSF4 NCBP1 RBMX NCBP2 RBM8A CDC40 CWC22 PLRG1 PDCD7 SRSF7SRRM1 EIF4E SF3B2 SNW1 SNRPC SF3B5 SNRPF U2AF2 NXF1,2:NXT1THOC1 TRA2B WDR33 SYF2CSTF3 NUDT21 THOC2 SNRPF 2xMe-SNRPD3 SNRNP48 SNRPD2 Me2-R108,R112-SNRPB PLRG1 NXF1,2:NXT1::polyadenylated, capped mRNA:CBC:EJC:TREX:SRSF proteinsDHX9 POLR2C CCAR1 HNRNPA0CSTF1 DHX38 HNRNPU POLR2B POLR2E CSTF1 CHERP THO complexSNRPB2 CSTF2 SF1TXNL4A DDX46 GTF2F2 NCBP1 RBMX HNRNPH1 TXNL4A NUP98-5 NUP210 SRSF2 PRPF6 CPSF3 WDR33 PCBP1 SNRPG RNPC3 HNRNPA2B1 SRSF1 NUP160 2xMe-SNRPD1 RBMXTPR PCF11 SNRNP48 CASC3 U11 snRNA RBM22 ATPSRSF6 BCAS2 SRRM2 HNRNPH1BUD31 HNRNPUL1 CPSF1 SNRPG U2AF1L4 2xMe-SNRPD1 NCBP1 NDC1 SF3B1 NUP98-4 NXT1 SNRPD2 DHX15 PTBP1 ELAVL2 ELAVL1 POLR2K HNRNPH2 SNRPG NUPL1-2 THOC1 HNRNPR HNRNPM SRSF3 LSM6 SNRPE TPR MAGOH NCBP1 SRSF11 SNRPG SF3B2 CSTF2T CSTF2 PPILPCBP2 CPSF2 PABPN1 SRRT DDX23 YBX1 ALYREF POLR2D NUDT21 U2AF1L4 ZC3H11A2xMe-SNRPD3 FIP1L1 PRPF19 U2AF1L4 SRRT U2SURP POLR2C POLR2E HNRNPH2 NUP98-3 U6 snRNA PRPF6 SRSF11 PCF11 SRSF9 Me2-R108,R112-SNRPB PRCC CDC5L NHP2L1 GTF2F2 U4 snRNA POLR2J SNRNP40 SRSF7 PPIL1 SEH1L-2 ZCRB1 RAE1 SNRPB2 SRSF9 NUP107 Mature intronlessderivedmRNA:TAP:Aly/RefcomplexSMNDC1 POM121C 2xMe-SNRPD3 BUD31 NXF2 2xMe-SNRPD1 SRSF2 GPKOW CSTF3 U2AF2 POLR2L PHF5A SNRNP25 NCBP2 TRA2BPPIL4 SRSF4 CHERP Me2-R108,R112-SNRPN DDX46 GTF2F2 THOC5 SNRPE RBM5 POLR2D SNRNP25 GTF2F2 Me2-R108,R112-SNRPB HNRNPC SRSF9 POLR2I BCAS2 CPSF7 POLR2F POLR2I DDX23 SF3A2 FYTTD1 PPIH XAB2 METTL14 Me2-R108,R112-SNRPN 2xMe-SNRPD1 CCAR1PPWD1 HNRNPA3 EFTUD2 GTF2F1 POLR2L SRSF5 SRSF6 SEH1L-2 2xMe-SNRPD1 EIF4A3 AQR FUS CDC5L HNRNPD HNRNPA1 NUP205 HNRNPUexcised intron ALYREF U2AF2 CWC25 HNRNPRNUP35 capped, methylatedpre-mRNA:CBCComplexSNRPE RANBP2 SNRNP27 SF3A1 NUPL1-2 PRPF38ASNRPD2 RBM22 SRSF9 U2SURP 2xMe-SNRPD1 SF3B3 DDX39B SRSF7 SRRT DDX42 NUP88 HNRNPUL1 CPSF3 LSM4 NCBP2 PCBP2SUGP1 HNRNPA1 SARNP HNRNPH1 PRPF6 ALYREF ALYREF HNRNPR WDR33 DDX39A NUDT21 RAE1 SRSF6 CF I - 72 kDa subunit Me2-R108,R112-SNRPB SNRNP35 HNRNPH1 ELAVL1 U2 snRNA NUP37 SMNDC1 LSM2 CWC27EIF4E ISY1 SRRM1 CstFHNRNPA2B1 POLR2L SRRM1 ATP RNPS1 PRPF8 SLBP U5 snRNA PUF60 U4 snRNA SRSF11 Me2-R108,R112-SNRPB YBX1CPSF2 POLR2B CWC22 SF3B4 SNRPD2 SNRNP200 POLR2A PHF5A NHP2L1 PPIL4 PRPF6 CPSF1 FIP1L1 SF3B4 U2AF1 SNRNP40 SplicedmRNA:CBC:EJC:TREXNUP50 SNRPG POLR2D NUP37 SNRPG CTNNBL1 CPSF3 NUP93 DNAJC8 RANBP2 HNRNPK U2 snRNPSNRNP200 SNRPA1 HNRNPK SNRPF FUS CDC5L NXF1SF3B1 SNRPD2 RBMX ISY1 NCBP2 CTNNBL1 U2AF1,U2AF1L4LSM6 AQR EFTUD2 HNRNPU SLBP SNRPA mRNA:CBC:EJC:POLDIP3SF3B3 SNRNP40 pre-EJC:SpliceosomalC:pre-mRNP:CBCU12 snRNA PRPF19 EIF4A3 PDCD7 EFTUD2 MAGOHB SRSF5 HNRNPD RNPS1 NUP35 FUS PCBP1 SRSF4 RBM22 2xMe-SNRPD1 HNRNPK SNRNP25 RNPC3 HNRNPA3 CDC5L SUGP1 SMNDC1 Me2-R108,R112-SNRPN CF I - 68 kDa subunit ELAVL1 SRSF9Spliceosomal activeC complex withlariat containing,5'-end cleavedpre-mRNP:CBCcomplexSNRNP200 LSM7 POLR2J SF3B4 NCBP2 BCAS2 CWC22 NCBP1 SF3B2 CDC5L U1 snRNA POLR2E HNRNPA0 capped, methylated pre-mRNA NCBP2 SF3B2 Mature intronless transcript derived mRNA HNRNPA3 RBM8A SRSF6 SF3B1 PUF60 2xMe-SNRPD1 DHX38NUP62 NCBP1 NUPL2 U2AF1L4 AAAS U6 snRNA mRNA with spliced exons GTF2F1 HNRNPF SRSF5 GTF2F2 RBM5 ZCRB1 BUD31 FUSWTAP POLR2C WBP11 MAGOHB HNRNPH2 SF3B1 SRSF4 NUP98-3 POLR2E SF3A3 Mature Intronless transcript derived Histone mRNA polyadenylated,cappedmRNA:CBC:EJC:TREX:SRSF proteinsRNPC3 PABPN1 UPF3B CPSF3 SNRPG 2xMe-SNRPD3 XAB2 PCF11 POLR2A CD2BP2 POLR2L NCBP2 PRPF19 2xMe-SNRPD3 CPSF2 THOC1 SRSF4 U12 snRNA PRPF19 NUP50 TXNL4A HNRNPH1 HNRNPL ZRSR2 SEH1L-2 SNRPD2 NCBP2 HSPA8 SNRPA1 SRSF1 2xMe-SNRPD3 PPIL4 SRSF1 BCAS2 DDX23 CF I - 68 kDa subunit PTBP1 POLR2D PPIH SF3A3 GPKOW Mature Intronless transcript derived Histone mRNA POLR2G SNRPF ZRSR2 TXNL4A GTF2F2 PRP19-CDC5L complexSNRPE SRSF10SRSF9 SF3B3 SRSF7 RBMX SRRM1 CPSF7 LSM8 CSTF2T DHX9CF I - 68 kDa subunit CLP1 POLR2L SF3B5 ALYREF NXT1 POM121 SF3B3 PTBP1 POLR2K PPIL6 SRSF7 POLR2L SNRPG HNRNPA2B1 SLBP HNRNPR POLR2A POLR2E DDX39A SRSF7 SRSF2 2xMe-SNRPD3 SNRNP27PAPOLA POLR2K ATP POLR2G FIP1L1 ALYREF HNRNPK ZC3H11A SNRPA1 EFTUD2 CSTF2T HNRNPH2 SF3A3 SYMPK RBM8A DDX5 U2 snRNA HNRNPH2 XAB2 PAPOLA NUP188 capped, methylatedpre-mRNP:CBCcomplexSRRT SRRM1 PRPF6 PCBP2 DDX42 mRNA with spliced exons PPIL3 POLR2H POLR2K SNRPB2 PAPOLARNPS1 PQBP1 SRRM1 NCBP1SF3B4 SF3B1 CPSF4 SF3B6 PUF60 CSTF3 SF3B6 RBM5 POLR2E POM121C CWC27 RNPC3 PAPOLA Nup45 PPIE GPKOW LSM5 POLR2J NUPL1-2 HNRNPR DDX42 GTF2F1 PHF5A PDCD7 RBM17 SNRPD2 POLR2F Me2-R108,R112-SNRPB RBMX SRRM1 PPIL1 ADP RBM17 SNRPD2 NUP107 NUP43 CLP1 POLR2G CPSF1 NUP205 PQBP1 SNRPB2 U6 ATAC snRNA U5 snRNA POLR2J PRPF8 U2AF2 SF3B3 SYF2 PPIL6 DHX15 U2AF1 DHX38 hSLU7SF3B6 U2AF2 LSM3 NUPL2 YBX1 NCBP2 NUP205 CPSF4 HNRNPU PPIH SF3B5 CPSF1 HNRNPA2B1 PPIL4 PRPF8 HNRNPA3 CSTF3 Spliceosomal BComplexSYMPK CLP1 SRRM1 SNRPG SNRPF CHERP PABPN1 SRSF2 HNRNPU ALYREF SRSF6 EIF4EDDX39B:ADPHNRNPF RBMX CWC15 POLR2L NXF1,2:NXT1POLDIP3 POLR2L Me2-R108,R112-SNRPB DHX38 capped, methylated pre-mRNA HNRNPH2 POLR2B POLR2E U2AF2DHX15 NUP107 NCBP2 CPSF1 PDCD7 RBM22 HNRNPH2 SYMPK NCBP1 POLR2C CWC15 CWC22 RNPS1 MAGOH ALYREF POLR2C NUP54 POLR2B 2xMe-SNRPD3 MAGOHB CPSF7 SNRNP35 3'-polyadenylated, capped pre-mRNA DNAJC8 SEH1L-2 DDX42 Nup45 SNRPF ZRSR2 CPSF7 SNRPD2 SRSF1 GPKOW CDC5L POLDIP3SNRPG SF3B4 NXF1 HNRNPA3 CSTF1 DHX38 PPIL1 POLR2G SART1 SNRPD2 NUP43 PQBP1 SF3B5 Me2-R108,R112-SNRPN LSM2 POLR2J HNRNPA3 Mature intronless transcript derived Histone mRNA NUP155 CPSF2 PAPOLA POLR2F ALYREFBCAS2 SF3A2 DNAJC8 DHX16MAGOH CHERP DHX9 FUS POM121C POLR2G SRSF5SNRPF NCBP2U2AF1 p-S5-POLR2A U2AF1 THOC3 TXNL4A LSM2 XAB2 POLR2B SF3B6 SRSF3 CDC40 CDC5L PTBP1 NUP85 ZMAT5 POLR2D NUP54 GTF2F2 GLE1POLR2H DDX39B U11 snRNA UPF3B SRSF11 AQRSRSF5 DHX9 U2AF2 CstFNPC:NXF1,2:NXT1:EJC:CBC:mRNASNRPA1 HNRNPM SYMPK U2SURP CLP1 POLDIP3 NUP153 PRPF6 POLR2H TXNL4A NDC1 POLR2B SRSF1THOC5 2xMe-SNRPD1 SF3A1 NUP133 HNRNPA0 SLBP DDX39B SRSF9 CCAR1 WBP4 TFIP11 SNRNP200 THOC1 SUGP1 PPIE BCAS2 SMNDC1 HNRNPUL1 NPC:NXF1:NXT1:EJC:CBC:mRNAGCFC2 AQR CF I - 72 kDa subunit CDC40 U5 snRNA THOC3 SF3B4 CSTF3 U2AF1L4 NUP210 MAGOHB NUP35 EIF4A3 SRSF1 ELAVL1POLR2A CPSF3 U2AF1 CASC3 U4atac snRNA HNRNPD PRCCPOLR2H CPSF3 DDX23 SRSF9 GTF2F1 SF3A2 PCBP2 SNRPF NUP153 EIF4A3 PRPF6 U2AF1 NUPL2 SNRPF THOC5 NUP210 POLR2F POLR2D POLR2I SRSF5 SRSF11 DDX39A,BCDC40 CPSF7 CWC15 CRNKL1NUP188 HNRNPM CASC3 HNRNPC hSLU7 U5 snRNA DDX46 SF3B2 BCAS2 DHX16 SF3B1 POLR2K HNRNPA2B1 RBM8A PRPF8 HNRNPF EIF4A3 NCBP1 CF I - 72 kDa subunit HNRNPA0 DHX38 MAGOH U12 snRNA CPSF3 ISY1 NUP160 SNRPD2 WBP4 CDC40 NUP98-5 2xMe-SNRPD3 POLR2K THOC2 POLR2H RBM5 LSM6 NHP2L1 POLR2B SRSF9 NHP2L1 ALYREF CD2BP2 PRPF6 RBM8A 3'-end cleaved mRNA with spliced exons CPSF1 SNRNP70 PPIL1 NXF2 DDX42 YBX1 U6 ATAC snRNA GTF2F2 RBM8A SNRNP40 EIF4A3SF3B1 HNRNPD HNRNPA1 ZCRB1 DDX23 2xMe-SNRPD1 POLR2B GTF2F1 SRSF6 U12 snRNPYBX1 HNRNPA2B1 NUP155 CPSF2 SNRPD2 FUS CLP1 PCBP12xMe-SNRPD1 DDX23 CHERP NDC1 HNRNPK SNRNP40 U2AF1L4 NUP153 CSTF1 2xMe-SNRPD3 NCBP1 CHTOP ZCRB1 ALYREF FYTTD1 SF3B4 DHX38 ELAVL2NUP160 ATAC C Complex withlariat containing5'-end cleaved mRNAPOLDIP3 HNRNPK POLR2J PUF60 TXNL4A U2 snRNA DHX9 TXNL4A SRRT RBM22 PRPF3 NCBP2 SRSF6 CPSF2 THOC3 GTF2F2 SNRPE NUP93 PQBP1 PLRG1 NXT1 CD2BP2 HNRNPUL1 SNRNP35 FIP1L1 POLR2D PPIE LSM2 POLR2E POLR2K SRRM2 SRSF5 DDX23 DDX39A SF3B3 POLR2J POLR2B HNRNPA1 Nup45 HNRNPA1 GTF2F2 Mature intronlessderived mRNAcomplexSNRPE CWC22 CSTF1 PPIL4 3'-polyadenylated, capped pre-mRNA SNRPC Mature Intronless transcript derived Histone mRNA ELAVL2 CLP1 SNRNP40 HNRNPD SNRPF CSTF2T SRSF2 SRSF9 hSLU7 NUP54 PRPF3 CPSFPOLR2H TXNL4A hTra2 LSM7 POLR2L SNRPD2 SNRPG CPSF2 PAPOLA DHX16 PUF60 SRRT SRSF11 NUP188 LUZP4 U4 ATAC:U5:U6 ATACComplexDHX38 SNRPG mRNA with spliced exons SRSF6 NCBP2 HNRNPUL1 lariat containing 5'-end cleaved mRNA AQR CWC27ISY1 U11 snRNA POLR2H SRSF11 NUP188 CPSF4 NDC1 ZMAT5 SRSF2 SRRM1 SARNP capped, methylated pre-mRNA ELAVL1 HNRNPA1 ELAVL2 PRPF8 U4:U5:U6 tri-snRNPcomplexSNRPG POLR2K MAGOH Me2-R108,R112-SNRPB GTF2F1 Me2-R108,R112-SNRPN SF3A3 PHF5A PCBP1 SNRPD2 U5 snRNA HNRNPL POLR2L LSM5 UPF3B PLRG1 U4atac snRNA CTNNBL1 Mature intronless derived mRNA POLR2K CCAR1 SNRNP70 SNW1 NUP85 U2AF1 SF3B1 CSTF2 Me2-R108,R112-SNRPB PPIL3 NXT1 CHTOP PABPN1 CF I - 68 kDa subunit SNRPE MAGOH USP39 YBX1 POLR2L PRPF8 CF IISRRM1:SRRM2CD2BP2EFTUD2 NXF1 FYTTD1 SRSF1 RNPS1 USP39SF3B6 LSM4 SNRPF DDX23 SNRPG THOC7 RBM17 CWC25NUP98-5 SNRNP70 POLR2I POLR2J POLR2C SRSF11PTBP1 2xMe-SNRPD1 POLR2L Me2-R108,R112-SNRPB Me2-R108,R112-SNRPB ZRSR2CSTF2T U11 snRNPNUP54 SF3A3 WBP11 POLR2C EIF4A3 SNRNP200 SRSF4 SNRPE AAAS DNAJC8 POM121C HNRNPC DDX39A CPSF2 AQR PQBP1 USP39 SRSF2RBM22CASC3 Mature Intronless transcript derived Histone mRNA DDX42 Mature intronlesstranscript derivedHistonepre-mRNA:CBCcomplexHNRNPU TPR DDX5 RANBP2 DNAJC8 SRSF7 SRSF4 2xMe-SNRPD3 POLR2H PPIL1 U2AF1 TPR POLR2A HSPA8 NUP88 NHP2L1 HNRNPA1 LSM2 capped, methylated pre-mRNA U6 snRNA RAE1 PPIENHP2L1 SNRPE SF3A2 POLR2F POLR2I POLR2I SRSF7 CWC22 NUPL2 SNRPE CSTF1 CWC15 THOC6 U2AF2 2xMe-SNRPD1 THOC2 SF3A3 U5 snRNA ATPPRPF19 U6 snRNA POLR2E SRSF3 PTBP1 LSM2 PCBP2 SRSF7 EFTUD2 POLR2B CF I - 72 kDa subunit SRSF7 NUP98-3 HNRNPA2B1 SRSF2 PPIL1 HNRNPM POLR2H PAPOLA ALYREF YBX1 CSTF2 FIP1L1 HNRNPD SNRNP25 SNRPG SF3A1 PPIL6 SRSF3 XAB2 Mature IntronlessTranscript DerivedHistonemRNA:TAP:Aly/RefComplexSNRPB2 HNRNPM POLR2F POLDIP3 DDX5 MatureintronlesstranscriptderivedHistonemRNA:SLBP:TAP:Aly/Ref complexMe2-R108,R112-SNRPB U2AF2 PRPF31 CTNNBL1 CHTOP NUP88 ALYREF MAGOH SNRPF CHTOP Spliced mRNPCDC40 U6 ATAC snRNA SF3B5 NCBP1 U2AF1 POLDIP3 FIP1L1 U4atac snRNA NUP88 SNRPE RNPS1 POLR2L WDR33 NXF2 RNApolymeraseII(phosphorylated):TFIIF complexSRSF7 NUP214 CF ICHERP Me2-R108,R112-SNRPN SRSF7 SYMPK NXF1Ceruloplasmin mRNA ALYREF POLR2I Nup45 Mature IntronlessTranscript DerivedHistonemRNA:TAP:Aly/RefcomplexPOLR2L SRSF1 EFTUD2 PRPF8 CRNKL1 POLR2C POLR2G SF3B2 U6 snRNA SF3BMe2-R108,R112-SNRPB SNRPG NUDT21 post exon ligationcomplexSRSF7 POLR2F ALYREF, FYTTD1,LUZP4SRSF3 FUS CHERP NUP43 SF3B6 SF3B5 EIF4A3 PRPF31 WBP11 PPIL3 PRPF8 SF3B5 SYMPK SRSF9 Ceruloplasmin mRNA ATAC A ComplexMatureintronlesstranscriptderivedHistonemRNA:SLBP:TAP:Aly/Ref complexSRSF4 SNRNP40 PPIL3 DDX5HNRNPD CPSF7 RBM17 ZMAT5 SART1ISY1GTF2F1 SNRNP35 CLP1 HNRNPC CCAR1 CPSFCRNKL1 U2SURP SUGP1HNRNPUL1 SNRPG SRSF2 SF3A1 Mature intronless transcript derived Histone mRNA Me2-R108,R112-SNRPB SF3B6 U5 snRNA POLR2G TXNL4A CF I - 72 kDa subunit Me2-R108,R112-SNRPN BCAS2 AAAS SNRNP40 CPSF2 POLR2E MatureIntronlesstranscriptderivedHistonemRNA:SLBP:CBP80:CBP20PCBP1 SRRM2 mRNA 3'-end cleavagefactorPOLR2D CPSF2 POLR2H PRPF40A FUS DDX42 POLR2I DHX15 POLR2K LSM2 ALYREF UPF3B PABPN1 Me2-R108,R112-SNRPB CPSF4 PAPOLAPPIE HNRNPMWDR33 SRRM2 GTF2F1 CF I - 68 kDa subunit ELAVL2 NCBP1 NUP160 SRSF11 POLR2K POLR2C TRA2B POLR2F CD2BP2 U4 ATAC snRNPNCBP1 MAGOHB GTF2F2 NUP50 CPSF2 PRPF8 PRPF31 PRPF38A capped, methylated pre-mRNA PCBP2 NXF1 SMNDC1 U4 snRNPCASC3 SNW1 POLR2E CPSF3 NCBP2 PRCC SRSF5 PQBP1 PCBP1 POM121 HNRNPH1 POLR2H SARNP2xMe-SNRPD3 POLR2B CPSF3 SNRNP48 NXT1 PiHNRNPA2B1 CWC22PCBP2 SRRM1 EIF4ECRNKL1 SRSF2 ALYREF ALYREF EIF4E SF3B5 2xMe-SNRPD1 NUP188 CPSF1 POLR2H HNRNPH1 HNRNPLRBMX NUP107 HNRNPR SF3B3 HNRNPC GTF2F2 U11 snRNA RBM17 PRPF8 SF3B6 SF3A2 LSM2 LUZP4 SRSF7 NUDT21 SF3B6 CWC15 RNPS1 SRRT RBM5HNRNPL CASC3SF3A2 LSM8 POLR2J SRRM2 NUP210 p-S5-POLR2A SF3A1 HNRNPA1 PPIE POLR2D NUPL2 SNRNP200 UPF3B SNRPE ELAVL1 HNRNPF HNRNPA1NUP62 cappedpre-mRNA:CBC:RNAPol II(phosphorylated)complexNUPL1-2 2xMe-SNRPD3 POLR2J SRSF6 POM121C DDX23 DHX16 CPSF3 PCF11 NUP50 DDX39B U5 snRNA NUP50 CF I - 68 kDa subunit CDC40 CTNNBL1 POM121 PPIL1 RNPS1NUP133 CPSF4 SF3B2 Mature intronless transcript derived Histone mRNA HNRNPL NCBP1 2xMe-SNRPD3 NCBP1 HSPA8 LSM2-8 complexPDCD7 DHX38 NCBP1 SRSF7 FIP1L1 WBP11 POLR2B SRSF2 HNRNPKZRSR2 HNRNPK CDC40 GTF2F1 LSM2 SNRPF CPSF4 PRPF4 SRSF2 U2SURP SF3A1 SRSF3 PRCC NCBP2 HNRNPUL13'-polyadenylated, capped pre-mRNA NCBP2 SRSF1 SF3B6 SF3B4 NUP153 SRSF4 UPF3B ALYREFhSLU7 CD2BP2 HNRNPM NCBP2 101113911321, 46113101113101449, 73, 8110121, 46911349, 73, 8111311349, 73, 819798, 24, 9519289210111365, 10810, 9752, 7665, 10866, 96551131138411310130, 56, 77, 9070, 925, 48, 891131011138041630, 56, 77, 9047113372, 31, 33, 9210911365, 108979652, 7611310111384949365, 1089754, 6411389113411365, 10854, 6465, 10811330, 56, 77, 90411316


Description

Co-transcriptional pre-mRNA splicing is not obligatory. Pre-mRNA splicing begins co-transcriptionally and often continues post-transcriptionally. Human genes contain an average of nine introns per gene, which cannot serve as splicing substrates until both 5' and 3' ends of each intron are synthesized. Thus the time that it takes for pol II to synthesize each intron defines a minimal time and distance along the gene in which splicing factors can be recruited. The time that it takes for pol II to reach the end of the gene defines the maximal time in which splicing could occur co-transcriptionally. Thus, the kinetics of transcription can affect the kinetics of splicing.Any covalent change in a primary (nascent) mRNA transcript is mRNA Processing. For successful gene expression, the primary mRNA transcript needs to be converted to a mature mRNA prior to its translation into polypeptide. Eucaryotic mRNAs undergo a series of complex processing reactions; these begin on nascent transcripts as soon as a few ribonucleotides have been synthesized during transcription by RNA Polymerase II, through the export of the mature mRNA to the cytoplasm, and culminate with mRNA turnover in the cytoplasm. View original pathway at:Reactome.

Comments

Reactome-Converter 
Pathway is converted from Reactome ID: 72203
Reactome-version 
Reactome version: 66
Reactome Author 
Reactome Author: Carmichael, Gordon G, Hammarskjold, Marie-Louise, Hastings, Michelle L, Krainer, Adrian R, Marzluff, William F, Wahle, Elmar, Zhang, Z

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Bibliography

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  56. Meinel DM, Burkert-Kautzsch C, Kieser A, O'Duibhir E, Siebert M, Mayer A, Cramer P, Söding J, Holstege FC, Sträßer K.; ''Recruitment of TREX to the transcription machinery by its direct binding to the phospho-CTD of RNA polymerase II.''; PubMed Europe PMC Scholia
  57. Lin-Moshier Y, Sebastian PJ, Higgins L, Sampson ND, Hewitt JE, Marchant JS.; ''Re-evaluation of the role of calcium homeostasis endoplasmic reticulum protein (CHERP) in cellular calcium signaling.''; PubMed Europe PMC Scholia
  58. Viphakone N, Cumberbatch MG, Livingstone MJ, Heath PR, Dickman MJ, Catto JW, Wilson SA.; ''Luzp4 defines a new mRNA export pathway in cancer cells.''; PubMed Europe PMC Scholia
  59. Valadkhan S, Mohammadi A, Wachtel C, Manley JL.; ''Protein-free spliceosomal snRNAs catalyze a reaction that resembles the first step of splicing.''; PubMed Europe PMC Scholia
  60. Neubauer G, King A, Rappsilber J, Calvio C, Watson M, Ajuh P, Sleeman J, Lamond A, Mann M.; ''Mass spectrometry and EST-database searching allows characterization of the multi-protein spliceosome complex.''; PubMed Europe PMC Scholia
  61. Kang Y, Cullen BR.; ''The human Tap protein is a nuclear mRNA export factor that contains novel RNA-binding and nucleocytoplasmic transport sequences.''; PubMed Europe PMC Scholia
  62. Madan V, Kanojia D, Li J, Okamoto R, Sato-Otsubo A, Kohlmann A, Sanada M, Grossmann V, Sundaresan J, Shiraishi Y, Miyano S, Thol F, Ganser A, Yang H, Haferlach T, Ogawa S, Koeffler HP.; ''Aberrant splicing of U12-type introns is the hallmark of ZRSR2 mutant myelodysplastic syndrome.''; PubMed Europe PMC Scholia
  63. Folco EG, Lee CS, Dufu K, Yamazaki T, Reed R.; ''The proteins PDIP3 and ZC11A associate with the human TREX complex in an ATP-dependent manner and function in mRNA export.''; PubMed Europe PMC Scholia
  64. Hautbergue GM, Hung ML, Golovanov AP, Lian LY, Wilson SA.; ''Mutually exclusive interactions drive handover of mRNA from export adaptors to TAP.''; PubMed Europe PMC Scholia
  65. Hastings ML, Krainer AR.; ''Functions of SR proteins in the U12-dependent AT-AC pre-mRNA splicing pathway.''; PubMed Europe PMC Scholia
  66. Golovanov AP, Hautbergue GM, Tintaru AM, Lian LY, Wilson SA.; ''The solution structure of REF2-I reveals interdomain interactions and regions involved in binding mRNA export factors and RNA.''; PubMed Europe PMC Scholia
  67. Deckert J, Hartmuth K, Boehringer D, Behzadnia N, Will CL, Kastner B, Stark H, Urlaub H, Lührmann R.; ''Protein composition and electron microscopy structure of affinity-purified human spliceosomal B complexes isolated under physiological conditions.''; PubMed Europe PMC Scholia
  68. Yoshimoto R, Kataoka N, Okawa K, Ohno M.; ''Isolation and characterization of post-splicing lariat-intron complexes.''; PubMed Europe PMC Scholia
  69. Box JA, Bunch JT, Tang W, Baumann P.; ''Spliceosomal cleavage generates the 3' end of telomerase RNA.''; PubMed Europe PMC Scholia
  70. Johnson SA, Kim H, Erickson B, Bentley DL.; ''The export factor Yra1 modulates mRNA 3' end processing.''; PubMed Europe PMC Scholia
  71. Bachi A, Braun IC, Rodrigues JP, Panté N, Ribbeck K, von Kobbe C, Kutay U, Wilm M, Görlich D, Carmo-Fonseca M, Izaurralde E.; ''The C-terminal domain of TAP interacts with the nuclear pore complex and promotes export of specific CTE-bearing RNA substrates.''; PubMed Europe PMC Scholia
  72. Strässer K, Masuda S, Mason P, Pfannstiel J, Oppizzi M, Rodriguez-Navarro S, Rondón AG, Aguilera A, Struhl K, Reed R, Hurt E.; ''TREX is a conserved complex coupling transcription with messenger RNA export.''; PubMed Europe PMC Scholia
  73. Chang CT, Hautbergue GM, Walsh MJ, Viphakone N, van Dijk TB, Philipsen S, Wilson SA.; ''Chtop is a component of the dynamic TREX mRNA export complex.''; PubMed Europe PMC Scholia
  74. Fontoura BM, Blobel G, Matunis MJ.; ''A conserved biogenesis pathway for nucleoporins: proteolytic processing of a 186-kilodalton precursor generates Nup98 and the novel nucleoporin, Nup96.''; PubMed Europe PMC Scholia
  75. Jurica MS, Licklider LJ, Gygi SR, Grigorieff N, Moore MJ.; ''Purification and characterization of native spliceosomes suitable for three-dimensional structural analysis.''; PubMed Europe PMC Scholia
  76. Crisci A, Raleff F, Bagdiul I, Raabe M, Urlaub H, Rain JC, Krämer A.; ''Mammalian splicing factor SF1 interacts with SURP domains of U2 snRNP-associated proteins.''; PubMed Europe PMC Scholia
  77. Shi Y, Di Giammartino DC, Taylor D, Sarkeshik A, Rice WJ, Yates JR, Frank J, Manley JL.; ''Molecular architecture of the human pre-mRNA 3' processing complex.''; PubMed Europe PMC Scholia
  78. Takagaki Y, Manley JL.; ''Complex protein interactions within the human polyadenylation machinery identify a novel component.''; PubMed Europe PMC Scholia
  79. Kreivi JP, Lamond AI.; ''RNA splicing: unexpected spliceosome diversity.''; PubMed Europe PMC Scholia
  80. Katahira J.; ''Nuclear export of messenger RNA.''; PubMed Europe PMC Scholia
  81. Rougemaille M, Dieppois G, Kisseleva-Romanova E, Gudipati RK, Lemoine S, Blugeon C, Boulay J, Jensen TH, Stutz F, Devaux F, Libri D.; ''THO/Sub2p functions to coordinate 3'-end processing with gene-nuclear pore association.''; PubMed Europe PMC Scholia
  82. Luna R, Rondón AG, Aguilera A.; ''New clues to understand the role of THO and other functionally related factors in mRNP biogenesis.''; PubMed Europe PMC Scholia
  83. Zaric B, Chami M, Rémigy H, Engel A, Ballmer-Hofer K, Winkler FK, Kambach C.; ''Reconstitution of two recombinant LSm protein complexes reveals aspects of their architecture, assembly, and function.''; PubMed Europe PMC Scholia
  84. Zhao J, Hyman L, Moore C.; ''Formation of mRNA 3' ends in eukaryotes: mechanism, regulation, and interrelationships with other steps in mRNA synthesis.''; PubMed Europe PMC Scholia
  85. Lejeune F, Ishigaki Y, Li X, Maquat LE.; ''The exon junction complex is detected on CBP80-bound but not eIF4E-bound mRNA in mammalian cells: dynamics of mRNP remodeling.''; PubMed Europe PMC Scholia
  86. Degot S, Le Hir H, Alpy F, Kedinger V, Stoll I, Wendling C, Seraphin B, Rio MC, Tomasetto C.; ''Association of the breast cancer protein MLN51 with the exon junction complex via its speckle localizer and RNA binding module.''; PubMed Europe PMC Scholia
  87. Daguenet E, Baguet A, Degot S, Schmidt U, Alpy F, Wendling C, Spiegelhalter C, Kessler P, Rio MC, Le Hir H, Bertrand E, Tomasetto C.; ''Perispeckles are major assembly sites for the exon junction core complex.''; PubMed Europe PMC Scholia
  88. Braun IC, Herold A, Rode M, Conti E, Izaurralde E.; ''Overexpression of TAP/p15 heterodimers bypasses nuclear retention and stimulates nuclear mRNA export.''; PubMed Europe PMC Scholia
  89. Masuda S, Das R, Cheng H, Hurt E, Dorman N, Reed R.; ''Recruitment of the human TREX complex to mRNA during splicing.''; PubMed Europe PMC Scholia
  90. Harris ME, Böhni R, Schneiderman MH, Ramamurthy L, Schümperli D, Marzluff WF.; ''Regulation of histone mRNA in the unperturbed cell cycle: evidence suggesting control at two posttranscriptional steps.''; PubMed Europe PMC Scholia
  91. Hautbergue GM, Hung ML, Walsh MJ, Snijders AP, Chang CT, Jones R, Ponting CP, Dickman MJ, Wilson SA.; ''UIF, a New mRNA export adaptor that works together with REF/ALY, requires FACT for recruitment to mRNA.''; PubMed Europe PMC Scholia
  92. Guzik BW, Levesque L, Prasad S, Bor YC, Black BE, Paschal BM, Rekosh D, Hammarskjöld ML.; ''NXT1 (p15) is a crucial cellular cofactor in TAP-dependent export of intron-containing RNA in mammalian cells.''; PubMed Europe PMC Scholia
  93. von Moeller H, Lerner R, Ricciardi A, Basquin C, Marzluff WF, Conti E.; ''Structural and biochemical studies of SLIP1-SLBP identify DBP5 and eIF3g as SLIP1-binding proteins.''; PubMed Europe PMC Scholia
  94. Dreyfuss G, Matunis MJ, Piñol-Roma S, Burd CG.; ''hnRNP proteins and the biogenesis of mRNA.''; PubMed Europe PMC Scholia
  95. Rondón AG, Jimeno S, García-Rubio M, Aguilera A.; ''Molecular evidence that the eukaryotic THO/TREX complex is required for efficient transcription elongation.''; PubMed Europe PMC Scholia
  96. Steckelberg AL, Boehm V, Gromadzka AM, Gehring NH.; ''CWC22 connects pre-mRNA splicing and exon junction complex assembly.''; PubMed Europe PMC Scholia
  97. Gencheva M, Kato M, Newo AN, Lin RJ.; ''Contribution of DEAH-box protein DHX16 in human pre-mRNA splicing.''; PubMed Europe PMC Scholia
  98. Dufu K, Livingstone MJ, Seebacher J, Gygi SP, Wilson SA, Reed R.; ''ATP is required for interactions between UAP56 and two conserved mRNA export proteins, Aly and CIP29, to assemble the TREX complex.''; PubMed Europe PMC Scholia
  99. Lin DH, Stuwe T, Schilbach S, Rundlet EJ, Perriches T, Mobbs G, Fan Y, Thierbach K, Huber FM, Collins LN, Davenport AM, Jeon YE, Hoelz A.; ''Architecture of the symmetric core of the nuclear pore.''; PubMed Europe PMC Scholia
  100. Hartmuth K, Urlaub H, Vornlocher HP, Will CL, Gentzel M, Wilm M, Lührmann R.; ''Protein composition of human prespliceosomes isolated by a tobramycin affinity-selection method.''; PubMed Europe PMC Scholia
  101. Grzybowska EA.; ''Human intronless genes: functional groups, associated diseases, evolution, and mRNA processing in absence of splicing.''; PubMed Europe PMC Scholia
  102. Yao C, Choi EA, Weng L, Xie X, Wan J, Xing Y, Moresco JJ, Tu PG, Yates JR, Shi Y.; ''Overlapping and distinct functions of CstF64 and CstF64τ in mammalian mRNA 3' processing.''; PubMed Europe PMC Scholia
  103. Reichert VL, Le Hir H, Jurica MS, Moore MJ.; ''5' exon interactions within the human spliceosome establish a framework for exon junction complex structure and assembly.''; PubMed Europe PMC Scholia
  104. Katahira J, Strässer K, Podtelejnikov A, Mann M, Jung JU, Hurt E.; ''The Mex67p-mediated nuclear mRNA export pathway is conserved from yeast to human.''; PubMed Europe PMC Scholia
  105. Kaufmann I, Martin G, Friedlein A, Langen H, Keller W.; ''Human Fip1 is a subunit of CPSF that binds to U-rich RNA elements and stimulates poly(A) polymerase.''; PubMed Europe PMC Scholia
  106. Wente SR, Rout MP.; ''The nuclear pore complex and nuclear transport.''; PubMed Europe PMC Scholia
  107. Viphakone N, Hautbergue GM, Walsh M, Chang CT, Holland A, Folco EG, Reed R, Wilson SA.; ''TREX exposes the RNA-binding domain of Nxf1 to enable mRNA export.''; PubMed Europe PMC Scholia
  108. Will CL, Schneider C, Hossbach M, Urlaub H, Rauhut R, Elbashir S, Tuschl T, Lührmann R.; ''The human 18S U11/U12 snRNP contains a set of novel proteins not found in the U2-dependent spliceosome.''; PubMed Europe PMC Scholia
  109. Kosinski J, Mosalaganti S, von Appen A, Teimer R, DiGuilio AL, Wan W, Bui KH, Hagen WJ, Briggs JA, Glavy JS, Hurt E, Beck M.; ''Molecular architecture of the inner ring scaffold of the human nuclear pore complex.''; PubMed Europe PMC Scholia
  110. Behzadnia N, Golas MM, Hartmuth K, Sander B, Kastner B, Deckert J, Dube P, Will CL, Urlaub H, Stark H, Lührmann R.; ''Composition and three-dimensional EM structure of double affinity-purified, human prespliceosomal A complexes.''; PubMed Europe PMC Scholia
  111. Herold A, Suyama M, Rodrigues JP, Braun IC, Kutay U, Carmo-Fonseca M, Bork P, Izaurralde E.; ''TAP (NXF1) belongs to a multigene family of putative RNA export factors with a conserved modular architecture.''; PubMed Europe PMC Scholia
  112. Taniguchi I, Ohno M.; ''ATP-dependent recruitment of export factor Aly/REF onto intronless mRNAs by RNA helicase UAP56.''; PubMed Europe PMC Scholia
  113. Kota KP, Wagner SR, Huerta E, Underwood JM, Nickerson JA.; ''Binding of ATP to UAP56 is necessary for mRNA export.''; PubMed Europe PMC Scholia
  114. Padgett RA, Konarska MM, Grabowski PJ, Hardy SF, Sharp PA.; ''Lariat RNA's as intermediates and products in the splicing of messenger RNA precursors.''; PubMed Europe PMC Scholia
  115. Shen H, Zheng X, Luecke S, Green MR.; ''The U2AF35-related protein Urp contacts the 3' splice site to promote U12-type intron splicing and the second step of U2-type intron splicing.''; PubMed Europe PMC Scholia
  116. Wahle E, Rüegsegger U.; ''3'-End processing of pre-mRNA in eukaryotes.''; PubMed Europe PMC Scholia
  117. Grüter P, Tabernero C, von Kobbe C, Schmitt C, Saavedra C, Bachi A, Wilm M, Felber BK, Izaurralde E.; ''TAP, the human homolog of Mex67p, mediates CTE-dependent RNA export from the nucleus.''; PubMed Europe PMC Scholia
  118. Bessonov S, Anokhina M, Will CL, Urlaub H, Lührmann R.; ''Isolation of an active step I spliceosome and composition of its RNP core.''; PubMed Europe PMC Scholia
  119. Singh J, Sikand K, Conrad H, Will CL, Komar AA, Shukla GC.; ''U6atac snRNA stem-loop interacts with U12 p65 RNA binding protein and is functionally interchangeable with the U12 apical stem-loop III.''; PubMed Europe PMC Scholia

History

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CompareRevisionActionTimeUserComment
115088view17:03, 25 January 2021ReactomeTeamReactome version 75
113530view12:00, 2 November 2020ReactomeTeamReactome version 74
112728view16:13, 9 October 2020ReactomeTeamReactome version 73
101644view11:51, 1 November 2018ReactomeTeamreactome version 66
101180view21:38, 31 October 2018ReactomeTeamreactome version 65
100706view20:10, 31 October 2018ReactomeTeamreactome version 64
100256view16:56, 31 October 2018ReactomeTeamreactome version 63
99809view15:20, 31 October 2018ReactomeTeamreactome version 62 (2nd attempt)
93917view13:44, 16 August 2017ReactomeTeamreactome version 61
93494view11:25, 9 August 2017ReactomeTeamreactome version 61
88115view10:05, 26 July 2016RyanmillerOntology Term : 'regulatory pathway' added !
86590view09:21, 11 July 2016ReactomeTeamreactome version 56
83367view11:01, 18 November 2015ReactomeTeamVersion54
81532view13:04, 21 August 2015ReactomeTeamVersion53
77003view08:29, 17 July 2014ReactomeTeamFixed remaining interactions
76708view12:07, 16 July 2014ReactomeTeamFixed remaining interactions
76034view10:09, 11 June 2014ReactomeTeamRe-fixing comment source
75743view11:23, 10 June 2014ReactomeTeamReactome 48 Update
75093view14:04, 8 May 2014AnweshaFixing comment source for displaying WikiPathways description
74829view10:05, 30 April 2014ReactomeTeamReactome46
74740view08:49, 30 April 2014ReactomeTeamReactome46
42105view21:57, 4 March 2011MaintBotAutomatic update
39915view05:56, 21 January 2011MaintBotNew pathway

External references

DataNodes

View all...
NameTypeDatabase referenceComment
2xMe-SNRPD1 ProteinP62314 (Uniprot-TrEMBL)
2xMe-SNRPD3 ProteinP62318 (Uniprot-TrEMBL)
3' end cleaved,

ligated exon

containing complex
ComplexR-HSA-72177 (Reactome)
3'-end cleaved mRNA with spliced exons R-ALL-71998 (Reactome)
3'-polyadenylated, capped pre-mRNA R-ALL-72184 (Reactome)
AAAS ProteinQ9NRG9 (Uniprot-TrEMBL)
ADP MetaboliteCHEBI:16761 (ChEBI)
ALYREF ProteinQ86V81 (Uniprot-TrEMBL)
ALYREF, FYTTD1, LUZP4ComplexR-HSA-8852182 (Reactome)
ALYREFProteinQ86V81 (Uniprot-TrEMBL)
AQR ProteinO60306 (Uniprot-TrEMBL)
AQRProteinO60306 (Uniprot-TrEMBL)
ATAC A ComplexComplexR-HSA-77463 (Reactome)
ATAC B ComplexComplexR-HSA-77470 (Reactome)
ATAC C Complex with

lariat containing

5'-end cleaved mRNA
ComplexR-HSA-77475 (Reactome)
ATAC C ComplexComplexR-HSA-77473 (Reactome)
ATP MetaboliteCHEBI:15422 (ChEBI)
ATPMetaboliteCHEBI:15422 (ChEBI)
BCAS2 ProteinO75934 (Uniprot-TrEMBL)
BUD31 ProteinP41223 (Uniprot-TrEMBL)
BUD31ProteinP41223 (Uniprot-TrEMBL)
CASC3 ProteinO15234 (Uniprot-TrEMBL)
CASC3ProteinO15234 (Uniprot-TrEMBL)
CCAR1 ProteinQ8IX12 (Uniprot-TrEMBL)
CCAR1ProteinQ8IX12 (Uniprot-TrEMBL)
CD2BP2 ProteinO95400 (Uniprot-TrEMBL)
CD2BP2ProteinO95400 (Uniprot-TrEMBL)
CDC40 ProteinO60508 (Uniprot-TrEMBL)
CDC40ProteinO60508 (Uniprot-TrEMBL)
CDC5L ProteinQ99459 (Uniprot-TrEMBL)
CF I - 68 kDa subunit R-HSA-72013 (Reactome)
CF I - 72 kDa subunit R-HSA-72014 (Reactome)
CF IIComplexR-HSA-72020 (Reactome)
CF IComplexR-HSA-72015 (Reactome)
CHERP ProteinQ8IWX8 (Uniprot-TrEMBL)
CHTOP ProteinQ9Y3Y2 (Uniprot-TrEMBL)
CHTOPProteinQ9Y3Y2 (Uniprot-TrEMBL)
CLP1 ProteinQ92989 (Uniprot-TrEMBL)
CPSF1 ProteinQ10570 (Uniprot-TrEMBL)
CPSF2 ProteinQ9P2I0 (Uniprot-TrEMBL)
CPSF3 ProteinQ9UKF6 (Uniprot-TrEMBL)
CPSF4 ProteinO95639 (Uniprot-TrEMBL)
CPSF7 ProteinQ8N684 (Uniprot-TrEMBL)
CPSFComplexR-HSA-71995 (Reactome)
CRNKL1 ProteinQ9BZJ0 (Uniprot-TrEMBL)
CRNKL1ProteinQ9BZJ0 (Uniprot-TrEMBL)
CSTF1 ProteinQ05048 (Uniprot-TrEMBL)
CSTF2 ProteinP33240 (Uniprot-TrEMBL)
CSTF2T ProteinQ9H0L4 (Uniprot-TrEMBL)
CSTF3 ProteinQ12996 (Uniprot-TrEMBL)
CTNNBL1 ProteinQ8WYA6 (Uniprot-TrEMBL)
CWC15 ProteinQ9P013 (Uniprot-TrEMBL)
CWC22 ProteinQ9HCG8 (Uniprot-TrEMBL)
CWC22ProteinQ9HCG8 (Uniprot-TrEMBL)
CWC25 ProteinQ9NXE8 (Uniprot-TrEMBL)
CWC25ProteinQ9NXE8 (Uniprot-TrEMBL)
CWC27 ProteinQ6UX04 (Uniprot-TrEMBL)
CWC27ProteinQ6UX04 (Uniprot-TrEMBL)
Cap Binding Complex (CBC)ComplexR-HSA-77088 (Reactome)
Ceruloplasmin mRNA ProteinM13699 (EMBL)
Cleavage and

Polyadenylation

Complex
ComplexR-HSA-72021 (Reactome)
CstFComplexR-HSA-72006 (Reactome)
DDX23 ProteinQ9BUQ8 (Uniprot-TrEMBL)
DDX39A ProteinO00148 (Uniprot-TrEMBL)
DDX39A,BComplexR-HSA-8852231 (Reactome)
DDX39B ProteinQ13838 (Uniprot-TrEMBL)
DDX39B:ADPComplexR-HSA-8849115 (Reactome)
DDX42 ProteinQ86XP3 (Uniprot-TrEMBL)
DDX46 ProteinQ7L014 (Uniprot-TrEMBL)
DDX5 ProteinP17844 (Uniprot-TrEMBL)
DDX5ProteinP17844 (Uniprot-TrEMBL)
DHX15 ProteinO43143 (Uniprot-TrEMBL)
DHX16 ProteinO60231 (Uniprot-TrEMBL)
DHX16ProteinO60231 (Uniprot-TrEMBL)
DHX38 ProteinQ92620 (Uniprot-TrEMBL)
DHX38ProteinQ92620 (Uniprot-TrEMBL)
DHX9 ProteinQ08211 (Uniprot-TrEMBL)
DHX9ProteinQ08211 (Uniprot-TrEMBL)
DNAJC8 ProteinO75937 (Uniprot-TrEMBL)
DNAJC8ProteinO75937 (Uniprot-TrEMBL)
EFTUD2 ProteinQ15029 (Uniprot-TrEMBL)
EIF4A3 ProteinP38919 (Uniprot-TrEMBL)
EIF4A3ProteinP38919 (Uniprot-TrEMBL)
EIF4E ProteinP06730 (Uniprot-TrEMBL)
EIF4EProteinP06730 (Uniprot-TrEMBL)
ELAVL1 ProteinQ15717 (Uniprot-TrEMBL)
ELAVL1ProteinQ15717 (Uniprot-TrEMBL)
ELAVL2 ProteinQ12926 (Uniprot-TrEMBL)
ELAVL2ProteinQ12926 (Uniprot-TrEMBL)
FIP1L1 ProteinQ6UN15 (Uniprot-TrEMBL)
FUS ProteinP35637 (Uniprot-TrEMBL)
FUSProteinP35637 (Uniprot-TrEMBL)
FYTTD1 ProteinQ96QD9 (Uniprot-TrEMBL)
GCFC2 ProteinP16383 (Uniprot-TrEMBL)
GLE1ProteinQ53GS7 (Uniprot-TrEMBL)
GPKOW ProteinQ92917 (Uniprot-TrEMBL)
GPKOWProteinQ92917 (Uniprot-TrEMBL)
GTF2F1 ProteinP35269 (Uniprot-TrEMBL)
GTF2F2 ProteinP13984 (Uniprot-TrEMBL)
HNRNPA0 ProteinQ13151 (Uniprot-TrEMBL)
HNRNPA0ProteinQ13151 (Uniprot-TrEMBL)
HNRNPA1 ProteinP09651 (Uniprot-TrEMBL)
HNRNPA1ProteinP09651 (Uniprot-TrEMBL)
HNRNPA2B1 ProteinP22626 (Uniprot-TrEMBL)
HNRNPA2B1ProteinP22626 (Uniprot-TrEMBL)
HNRNPA3 ProteinP51991 (Uniprot-TrEMBL)
HNRNPA3ProteinP51991 (Uniprot-TrEMBL)
HNRNPC ProteinP07910 (Uniprot-TrEMBL)
HNRNPCProteinP07910 (Uniprot-TrEMBL)
HNRNPD ProteinQ14103 (Uniprot-TrEMBL)
HNRNPDProteinQ14103 (Uniprot-TrEMBL)
HNRNPF ProteinP52597 (Uniprot-TrEMBL)
HNRNPFProteinP52597 (Uniprot-TrEMBL)
HNRNPH1 ProteinP31943 (Uniprot-TrEMBL)
HNRNPH1ProteinP31943 (Uniprot-TrEMBL)
HNRNPH2 ProteinP55795 (Uniprot-TrEMBL)
HNRNPH2ProteinP55795 (Uniprot-TrEMBL)
HNRNPK ProteinP61978 (Uniprot-TrEMBL)
HNRNPKProteinP61978 (Uniprot-TrEMBL)
HNRNPL ProteinP14866 (Uniprot-TrEMBL)
HNRNPLProteinP14866 (Uniprot-TrEMBL)
HNRNPM ProteinP52272 (Uniprot-TrEMBL)
HNRNPMProteinP52272 (Uniprot-TrEMBL)
HNRNPR ProteinO43390 (Uniprot-TrEMBL)
HNRNPRProteinO43390 (Uniprot-TrEMBL)
HNRNPU ProteinQ00839 (Uniprot-TrEMBL)
HNRNPUL1 ProteinQ9BUJ2 (Uniprot-TrEMBL)
HNRNPUL1ProteinQ9BUJ2 (Uniprot-TrEMBL)
HNRNPUProteinQ00839 (Uniprot-TrEMBL)
HSPA8 ProteinP11142 (Uniprot-TrEMBL)
ISY1 ProteinQ9ULR0 (Uniprot-TrEMBL)
ISY1ProteinQ9ULR0 (Uniprot-TrEMBL)
LSM2 ProteinQ9Y333 (Uniprot-TrEMBL)
LSM2-8 complexComplexR-HSA-6806791 (Reactome)
LSM3 ProteinP62310 (Uniprot-TrEMBL)
LSM4 ProteinQ9Y4Z0 (Uniprot-TrEMBL)
LSM5 ProteinQ9Y4Y9 (Uniprot-TrEMBL)
LSM6 ProteinP62312 (Uniprot-TrEMBL)
LSM7 ProteinQ9UK45 (Uniprot-TrEMBL)
LSM8 ProteinO95777 (Uniprot-TrEMBL)
LUZP4 ProteinQ9P127 (Uniprot-TrEMBL)
MAGOH ProteinP61326 (Uniprot-TrEMBL)
MAGOHB ProteinQ96A72 (Uniprot-TrEMBL)
METTL14 ProteinQ9HCE5 (Uniprot-TrEMBL)
METTL3 ProteinQ86U44 (Uniprot-TrEMBL)
Magoh-Y14 complexComplexR-HSA-156657 (Reactome)
Mature

Intronless transcript derived Histone

mRNA:SLBP:CBP80:CBP20
ComplexR-HSA-111682 (Reactome)
Mature

intronless transcript derived Histone

mRNA:SLBP:TAP:Aly/Ref complex
ComplexR-HSA-159045 (Reactome)
Mature

intronless transcript derived Histone

mRNA:SLBP:TAP:Aly/Ref complex
ComplexR-HSA-159047 (Reactome)
Mature Intronless

Transcript Derived Histone mRNA:TAP:Aly/Ref

Complex
ComplexR-HSA-158480 (Reactome)
Mature Intronless

Transcript Derived Histone mRNA:TAP:Aly/Ref

complex
ComplexR-HSA-158479 (Reactome)
Mature Intronless

Transcript Derived

mRNA:eIF4E Complex
ComplexR-HSA-113818 (Reactome)
Mature Intronless transcript derived Histone mRNA R-ALL-111676 (Reactome)
Mature SLBP

independent Histone

mRNA:eIF4E complex
ComplexR-HSA-158501 (Reactome)
Mature intronless

derived mRNA:TAP:Aly/Ref

complex
ComplexR-HSA-158442 (Reactome)
Mature intronless

derived mRNA

complex
ComplexR-HSA-112167 (Reactome)
Mature intronless

transcript derived Histone mRNA:SLBP:eIF4E

Complex
ComplexR-HSA-141614 (Reactome)
Mature intronless

transcript derived Histone pre-mRNA:CBC

complex
ComplexR-HSA-156959 (Reactome)
Mature intronless derived mRNA R-ALL-158443 (Reactome) A mature mRNA that has been 3' cleaved, subsequently polyadenylated, and a m7G 5' cap. This product was derived from an intronless transcript.
Mature intronless transcript derived Histone mRNA R-ALL-113820 (Reactome)
Mature intronless transcript derived mRNA R-ALL-158444 (Reactome) A mature mRNA that has been 3' cleaved, subsequently polyadenylated, and a m7G 5' cap. This product was derived from an intronless transcript.
Me2-R108,R112-SNRPB ProteinP14678 (Uniprot-TrEMBL)
Me2-R108,R112-SNRPN ProteinP63162 (Uniprot-TrEMBL)
NCBP1 ProteinQ09161 (Uniprot-TrEMBL)
NCBP1ProteinQ09161 (Uniprot-TrEMBL)
NCBP2 ProteinP52298 (Uniprot-TrEMBL)
NCBP2ProteinP52298 (Uniprot-TrEMBL)
NDC1 ProteinQ9BTX1 (Uniprot-TrEMBL)
NHP2L1 ProteinP55769 (Uniprot-TrEMBL)
NPC:NXF1,2:NXT1:EJC:CBC:mRNAComplexR-HSA-113815 (Reactome)
NPC:NXF1:NXT1:EJC:CBC:mRNAComplexR-HSA-159259 (Reactome)
NUDT21 ProteinO43809 (Uniprot-TrEMBL)
NUP107 ProteinP57740 (Uniprot-TrEMBL)
NUP133 ProteinQ8WUM0 (Uniprot-TrEMBL)
NUP153 ProteinP49790 (Uniprot-TrEMBL)
NUP155 ProteinO75694 (Uniprot-TrEMBL)
NUP160 ProteinQ12769 (Uniprot-TrEMBL)
NUP188 ProteinQ5SRE5 (Uniprot-TrEMBL)
NUP205 ProteinQ92621 (Uniprot-TrEMBL)
NUP210 ProteinQ8TEM1 (Uniprot-TrEMBL)
NUP214 ProteinP35658 (Uniprot-TrEMBL)
NUP35 ProteinQ8NFH5 (Uniprot-TrEMBL)
NUP37 ProteinQ8NFH4 (Uniprot-TrEMBL)
NUP43 ProteinQ8NFH3 (Uniprot-TrEMBL)
NUP50 ProteinQ9UKX7 (Uniprot-TrEMBL)
NUP54 ProteinQ7Z3B4 (Uniprot-TrEMBL)
NUP62 ProteinP37198 (Uniprot-TrEMBL)
NUP85 ProteinQ9BW27 (Uniprot-TrEMBL)
NUP88 ProteinQ99567 (Uniprot-TrEMBL)
NUP93 ProteinQ8N1F7 (Uniprot-TrEMBL)
NUP98-3 ProteinP52948-3 (Uniprot-TrEMBL)
NUP98-4 ProteinP52948-4 (Uniprot-TrEMBL)
NUP98-5 ProteinP52948-5 (Uniprot-TrEMBL)
NUPL1-2 ProteinQ9BVL2-1 (Uniprot-TrEMBL)
NUPL2 ProteinO15504 (Uniprot-TrEMBL)
NXF1 ProteinQ9UBU9 (Uniprot-TrEMBL)
NXF1,2:NXT1::polyadenylated, capped mRNA:CBC:EJC:TREX:SRSF proteinsComplexR-HSA-159100 (Reactome)
NXF1,2:NXT1ComplexR-HSA-8849118 (Reactome)
NXF1,2:NXT1ComplexR-HSA-8849140 (Reactome)
NXF1ProteinQ9UBU9 (Uniprot-TrEMBL)
NXF2 ProteinQ9GZY0 (Uniprot-TrEMBL)
NXT1 ProteinQ9UKK6 (Uniprot-TrEMBL)
Nuclear Pore Complex (NPC)ComplexR-HSA-157689 (Reactome)
Nucleoplasmic mature

intronless derived mRNA:TAP:Aly/Ref

complex
ComplexR-HSA-158446 (Reactome)
Nup45 ProteinQ9BVL2-2 (Uniprot-TrEMBL)
PABPN1 ProteinQ86U42 (Uniprot-TrEMBL)
PABPN1ProteinQ86U42 (Uniprot-TrEMBL)
PAPOLA ProteinP51003 (Uniprot-TrEMBL)
PAPOLAProteinP51003 (Uniprot-TrEMBL)
PCBP1 ProteinQ15365 (Uniprot-TrEMBL)
PCBP1ProteinQ15365 (Uniprot-TrEMBL)
PCBP2 ProteinQ15366 (Uniprot-TrEMBL)
PCBP2ProteinQ15366 (Uniprot-TrEMBL)
PCF11 ProteinO94913 (Uniprot-TrEMBL)
PDCD7 ProteinQ8N8D1 (Uniprot-TrEMBL)
PHF5A ProteinQ7RTV0 (Uniprot-TrEMBL)
PLRG1 ProteinO43660 (Uniprot-TrEMBL)
POLDIP3 ProteinQ9BY77 (Uniprot-TrEMBL)
POLDIP3ProteinQ9BY77 (Uniprot-TrEMBL)
POLR2A ProteinP24928 (Uniprot-TrEMBL)
POLR2B ProteinP30876 (Uniprot-TrEMBL)
POLR2C ProteinP19387 (Uniprot-TrEMBL)
POLR2D ProteinO15514 (Uniprot-TrEMBL)
POLR2E ProteinP19388 (Uniprot-TrEMBL)
POLR2F ProteinP61218 (Uniprot-TrEMBL)
POLR2G ProteinP62487 (Uniprot-TrEMBL)
POLR2H ProteinP52434 (Uniprot-TrEMBL)
POLR2I ProteinP36954 (Uniprot-TrEMBL)
POLR2J ProteinP52435 (Uniprot-TrEMBL)
POLR2K ProteinP53803 (Uniprot-TrEMBL)
POLR2L ProteinP62875 (Uniprot-TrEMBL)
POM121 ProteinQ96HA1 (Uniprot-TrEMBL)
POM121C ProteinA8CG34 (Uniprot-TrEMBL)
PPIE ProteinQ9UNP9 (Uniprot-TrEMBL)
PPIEProteinQ9UNP9 (Uniprot-TrEMBL)
PPIH ProteinO43447 (Uniprot-TrEMBL)
PPIL1 ProteinQ9Y3C6 (Uniprot-TrEMBL)
PPIL3 ProteinQ9H2H8 (Uniprot-TrEMBL)
PPIL4 ProteinQ8WUA2 (Uniprot-TrEMBL)
PPIL6 ProteinQ8IXY8 (Uniprot-TrEMBL)
PPILComplexR-HSA-8952109 (Reactome)
PPWD1 ProteinQ96BP3 (Uniprot-TrEMBL)
PPWD1ProteinQ96BP3 (Uniprot-TrEMBL)
PQBP1 ProteinO60828 (Uniprot-TrEMBL)
PRCC ProteinQ92733 (Uniprot-TrEMBL)
PRCCProteinQ92733 (Uniprot-TrEMBL)
PRP19-CDC5L complexComplexR-HSA-5420896 (Reactome)
PRPF19 ProteinQ9UMS4 (Uniprot-TrEMBL)
PRPF3 ProteinO43395 (Uniprot-TrEMBL)
PRPF31 ProteinQ8WWY3 (Uniprot-TrEMBL)
PRPF38A ProteinQ8NAV1 (Uniprot-TrEMBL)
PRPF38AProteinQ8NAV1 (Uniprot-TrEMBL)
PRPF4 ProteinO43172 (Uniprot-TrEMBL)
PRPF40A ProteinO75400 (Uniprot-TrEMBL)
PRPF40AProteinO75400 (Uniprot-TrEMBL)
PRPF6 ProteinO94906 (Uniprot-TrEMBL)
PRPF8 ProteinQ6P2Q9 (Uniprot-TrEMBL)
PTBP1 ProteinP26599 (Uniprot-TrEMBL)
PTBP1ProteinP26599 (Uniprot-TrEMBL)
PUF60 ProteinQ9UHX1 (Uniprot-TrEMBL)
PiMetaboliteCHEBI:18367 (ChEBI)
RAE1 ProteinP78406 (Uniprot-TrEMBL)
RANBP2 ProteinP49792 (Uniprot-TrEMBL)
RBM17 ProteinQ96I25 (Uniprot-TrEMBL)
RBM22 ProteinQ9NW64 (Uniprot-TrEMBL)
RBM22ProteinQ9NW64 (Uniprot-TrEMBL)
RBM5 ProteinP52756 (Uniprot-TrEMBL)
RBM5ProteinP52756 (Uniprot-TrEMBL)
RBM8A ProteinQ9Y5S9 (Uniprot-TrEMBL)
RBMX ProteinP38159 (Uniprot-TrEMBL)
RBMXProteinP38159 (Uniprot-TrEMBL)
RNA

polymerase II

(phosphorylated):TFIIF complex
ComplexR-HSA-113404 (Reactome)
RNPC3 ProteinQ96LT9 (Uniprot-TrEMBL)
RNPS1 ProteinQ15287 (Uniprot-TrEMBL)
RNPS1ProteinQ15287 (Uniprot-TrEMBL)
SARNP ProteinP82979 (Uniprot-TrEMBL)
SARNPProteinP82979 (Uniprot-TrEMBL)
SART1 ProteinO43290 (Uniprot-TrEMBL)
SART1ProteinO43290 (Uniprot-TrEMBL)
SEH1L-2 ProteinQ96EE3-2 (Uniprot-TrEMBL)
SF1 ProteinQ15637 (Uniprot-TrEMBL)
SF1ProteinQ15637 (Uniprot-TrEMBL)
SF3A1 ProteinQ15459 (Uniprot-TrEMBL)
SF3A2 ProteinQ15428 (Uniprot-TrEMBL)
SF3A3 ProteinQ12874 (Uniprot-TrEMBL)
SF3AComplexR-HSA-71967 (Reactome)
SF3B1 ProteinO75533 (Uniprot-TrEMBL)
SF3B2 ProteinQ13435 (Uniprot-TrEMBL)
SF3B3 ProteinQ15393 (Uniprot-TrEMBL)
SF3B4 ProteinQ15427 (Uniprot-TrEMBL)
SF3B5 ProteinQ9BWJ5 (Uniprot-TrEMBL)
SF3B6 ProteinQ9Y3B4 (Uniprot-TrEMBL)
SF3BComplexR-HSA-71976 (Reactome)
SKIV2L2 ProteinP42285 (Uniprot-TrEMBL)
SLBP ProteinQ14493 (Uniprot-TrEMBL)
SMNDC1 ProteinO75940 (Uniprot-TrEMBL)
SNRNP200 ProteinO75643 (Uniprot-TrEMBL)
SNRNP25 ProteinQ9BV90 (Uniprot-TrEMBL)
SNRNP27 ProteinQ8WVK2 (Uniprot-TrEMBL)
SNRNP27ProteinQ8WVK2 (Uniprot-TrEMBL)
SNRNP35 ProteinQ16560 (Uniprot-TrEMBL)
SNRNP40 ProteinQ96DI7 (Uniprot-TrEMBL)
SNRNP48 ProteinQ6IEG0 (Uniprot-TrEMBL)
SNRNP70 ProteinP08621 (Uniprot-TrEMBL)
SNRPA ProteinP09012 (Uniprot-TrEMBL)
SNRPA1 ProteinP09661 (Uniprot-TrEMBL)
SNRPB2 ProteinP08579 (Uniprot-TrEMBL)
SNRPC ProteinP09234 (Uniprot-TrEMBL)
SNRPD2 ProteinP62316 (Uniprot-TrEMBL)
SNRPE ProteinP62304 (Uniprot-TrEMBL)
SNRPF ProteinP62306 (Uniprot-TrEMBL)
SNRPG ProteinP62308 (Uniprot-TrEMBL)
SNW1 ProteinQ13573 (Uniprot-TrEMBL)
SNW1ProteinQ13573 (Uniprot-TrEMBL)
SRRM1 ProteinQ8IYB3 (Uniprot-TrEMBL)
SRRM1:SRRM2ComplexR-HSA-8865911 (Reactome)
SRRM2 ProteinQ9UQ35 (Uniprot-TrEMBL)
SRRT ProteinQ9BXP5 (Uniprot-TrEMBL)
SRRTProteinQ9BXP5 (Uniprot-TrEMBL)
SRSF1 ProteinQ07955 (Uniprot-TrEMBL)
SRSF10ProteinO75494 (Uniprot-TrEMBL)
SRSF11 ProteinQ05519 (Uniprot-TrEMBL)
SRSF11ProteinQ05519 (Uniprot-TrEMBL)
SRSF1ProteinQ07955 (Uniprot-TrEMBL)
SRSF2 ProteinQ01130 (Uniprot-TrEMBL)
SRSF2ProteinQ01130 (Uniprot-TrEMBL)
SRSF3 ProteinP84103 (Uniprot-TrEMBL)
SRSF3ProteinP84103 (Uniprot-TrEMBL)
SRSF4 ProteinQ08170 (Uniprot-TrEMBL)
SRSF4ProteinQ08170 (Uniprot-TrEMBL)
SRSF5 ProteinQ13243 (Uniprot-TrEMBL)
SRSF5ProteinQ13243 (Uniprot-TrEMBL)
SRSF6 ProteinQ13247 (Uniprot-TrEMBL)
SRSF6ProteinQ13247 (Uniprot-TrEMBL)
SRSF7 ProteinQ16629 (Uniprot-TrEMBL)
SRSF7ProteinQ16629 (Uniprot-TrEMBL)
SRSF9 ProteinQ13242 (Uniprot-TrEMBL)
SRSF9ProteinQ13242 (Uniprot-TrEMBL)
SUGP1 ProteinQ8IWZ8 (Uniprot-TrEMBL)
SUGP1ProteinQ8IWZ8 (Uniprot-TrEMBL)
SYF2 ProteinO95926 (Uniprot-TrEMBL)
SYF2ProteinO95926 (Uniprot-TrEMBL)
SYMPK ProteinQ92797 (Uniprot-TrEMBL)
Spliced mRNA:CBC:EJC:TREXComplexR-HSA-8850671 (Reactome)
Spliced mRNPComplexR-HSA-72157 (Reactome)
Spliceosomal

Intermediate C

(Bact) Complex
ComplexR-HSA-72074 (Reactome)
Spliceosomal A ComplexComplexR-HSA-72068 (Reactome)
Spliceosomal Active C (B*) ComplexComplexR-HSA-72022 (Reactome)
Spliceosomal B ComplexComplexR-HSA-72069 (Reactome)
Spliceosomal E ComplexComplexR-HSA-72057 (Reactome)
Spliceosomal active

C complex with lariat containing, 5'-end cleaved pre-mRNP:CBC

complex
ComplexR-HSA-77505 (Reactome)
TFIP11 ProteinQ9UBB9 (Uniprot-TrEMBL)
THO complexComplexR-HSA-8849128 (Reactome)
THOC1 ProteinQ96FV9 (Uniprot-TrEMBL)
THOC2 ProteinQ8NI27 (Uniprot-TrEMBL)
THOC3 ProteinQ96J01 (Uniprot-TrEMBL)
THOC5 ProteinQ13769 (Uniprot-TrEMBL)
THOC6 ProteinQ86W42 (Uniprot-TrEMBL)
THOC7 ProteinQ6I9Y2 (Uniprot-TrEMBL)
TPR ProteinP12270 (Uniprot-TrEMBL)
TRA2B ProteinP62995 (Uniprot-TrEMBL)
TRA2BProteinP62995 (Uniprot-TrEMBL)
TXNL4A ProteinP83876 (Uniprot-TrEMBL)
U1 snRNA ProteinV00590 (EMBL)
U1 snRNPComplexR-HSA-71917 (Reactome) The U1 snRNP is a particle consisting of the U1 snRNA and Sm core plus unique snRNP polypeptides. The U1-specific polypeptides are 70K, A, and C. The Sm core polypeptides are B, B', D1, D2, D3, E, F, G. The Sm core is a heteroheptamer in the shape of a donut, containing either B or B', which are almost identical to each other.
U11 snRNA ProteinENST00000387069 (Ensembl)
U11 snRNPComplexR-HSA-77462 (Reactome)
U12 snRNA ProteinENST00000362512 (Ensembl)
U12 snRNPComplexR-HSA-77472 (Reactome)
U2 snRNA ProteinX59360 (EMBL)
U2 snRNPComplexR-HSA-71980 (Reactome)
U2AF1 ProteinQ01081 (Uniprot-TrEMBL)
U2AF1,U2AF1L4ComplexR-HSA-8865886 (Reactome)
U2AF1L4 ProteinQ8WU68 (Uniprot-TrEMBL)
U2AF2 ProteinP26368 (Uniprot-TrEMBL)
U2AF2ProteinP26368 (Uniprot-TrEMBL)
U2SURP ProteinO15042 (Uniprot-TrEMBL)
U4 ATAC snRNPComplexR-HSA-77465 (Reactome)
U4 ATAC:U5:U6 ATAC ComplexComplexR-HSA-77469 (Reactome)
U4 snRNA ProteinX59361 (EMBL)
U4 snRNPComplexR-HSA-71891 (Reactome)
U4:U5:U6 tri-snRNP complexComplexR-HSA-77506 (Reactome)
U4atac snRNA ProteinENST00000580972 (Ensembl)
U5 snRNA ProteinX04293 (EMBL)
U5 snRNPComplexR-HSA-71981 (Reactome)
U6 ATAC snRNA R-ALL-77466 (Reactome)
U6 ATAC snRNPComplexR-HSA-77467 (Reactome)
U6 snRNA ProteinX59362 (EMBL)
UPF3B ProteinQ9BZI7 (Uniprot-TrEMBL)
UPF3BProteinQ9BZI7 (Uniprot-TrEMBL)
USP39 ProteinQ53GS9 (Uniprot-TrEMBL)
USP39ProteinQ53GS9 (Uniprot-TrEMBL)
WBP11 ProteinQ9Y2W2 (Uniprot-TrEMBL)
WBP4 ProteinO75554 (Uniprot-TrEMBL)
WBP4ProteinO75554 (Uniprot-TrEMBL)
WDR33 ProteinQ9C0J8 (Uniprot-TrEMBL)
WTAP ProteinQ15007 (Uniprot-TrEMBL)
XAB2 ProteinQ9HCS7 (Uniprot-TrEMBL)
XAB2ProteinQ9HCS7 (Uniprot-TrEMBL)
YBX1 ProteinP67809 (Uniprot-TrEMBL)
YBX1ProteinP67809 (Uniprot-TrEMBL)
ZC3H11A ProteinO75152 (Uniprot-TrEMBL)
ZC3H11AProteinO75152 (Uniprot-TrEMBL)
ZCRB1 ProteinQ8TBF4 (Uniprot-TrEMBL)
ZMAT5 ProteinQ9UDW3 (Uniprot-TrEMBL)
ZRSR2 ProteinQ15696 (Uniprot-TrEMBL)
ZRSR2ProteinQ15696 (Uniprot-TrEMBL)
capped

pre-mRNA:CBC:RNA Pol II (phosphorylated)

complex
ComplexR-HSA-77089 (Reactome)
capped pre-mRNA R-ALL-72085 (Reactome)
capped, methylated

pre-mRNA:CBC

Complex
ComplexR-HSA-71954 (Reactome)
capped, methylated

pre-mRNP:CBC

complex
ComplexR-HSA-71955 (Reactome)
capped, methylated pre-mRNA R-ALL-77507 (Reactome)
excised intron R-ALL-72158 (Reactome)
hSLU7 ProteinO95391 (Uniprot-TrEMBL)
hSLU7ProteinO95391 (Uniprot-TrEMBL)
hTra2 R-HSA-72063 (Reactome)
intron-containing complexComplexR-HSA-72159 (Reactome)
lariat containing 5'-end cleaved mRNA R-ALL-156756 (Reactome)
mRNA (N6-adenosine)-methyltransferaseComplexR-HSA-72093 (Reactome)
mRNA 3'-end cleavage factorComplexR-HSA-72075 (Reactome)
mRNA with spliced exons R-ALL-72156 (Reactome)
mRNA:CBC:EJC:POLDIP3ComplexR-HSA-159329 (Reactome)
p-S5-POLR2A ProteinP24928 (Uniprot-TrEMBL)
polyadenylated,

capped

mRNA:CBC:EJC:TREX:SRSF proteins
ComplexR-HSA-156769 (Reactome)
post exon ligation complexComplexR-HSA-156556 (Reactome)
pre-EJC:Spliceosomal C:pre-mRNP:CBCComplexR-HSA-156656 (Reactome)

Annotated Interactions

View all...
SourceTargetTypeDatabase referenceComment
3' end cleaved,

ligated exon

containing complex
ArrowR-HSA-72180 (Reactome)
3' end cleaved,

ligated exon

containing complex
R-HSA-72185 (Reactome)
ALYREF, FYTTD1, LUZP4ArrowR-HSA-75096 (Reactome)
ALYREF, FYTTD1, LUZP4R-HSA-8849157 (Reactome)
ALYREFArrowR-HSA-158447 (Reactome)
ALYREFArrowR-HSA-158484 (Reactome)
ALYREFArrowR-HSA-159050 (Reactome)
ALYREFR-HSA-111439 (Reactome)
ALYREFR-HSA-72107 (Reactome)
ALYREFR-HSA-77587 (Reactome)
ALYREFR-HSA-77594 (Reactome)
AQRR-HSA-72127 (Reactome)
ATAC A ComplexArrowR-HSA-75080 (Reactome)
ATAC A ComplexR-HSA-75081 (Reactome)
ATAC B ComplexArrowR-HSA-75081 (Reactome)
ATAC B ComplexR-HSA-75079 (Reactome)
ATAC C Complex with

lariat containing

5'-end cleaved mRNA
ArrowR-HSA-75082 (Reactome)
ATAC C Complex with

lariat containing

5'-end cleaved mRNA
R-HSA-75083 (Reactome)
ATAC C ComplexArrowR-HSA-75079 (Reactome)
ATAC C ComplexR-HSA-75082 (Reactome)
ATPR-HSA-72185 (Reactome)
ATPR-HSA-8849157 (Reactome)
BUD31R-HSA-72127 (Reactome)
CASC3R-HSA-72160 (Reactome)
CCAR1R-HSA-72107 (Reactome)
CD2BP2R-HSA-72107 (Reactome)
CDC40ArrowR-HSA-75096 (Reactome)
CDC40R-HSA-72124 (Reactome)
CF IArrowR-HSA-72180 (Reactome)
CF IIArrowR-HSA-72180 (Reactome)
CF IIR-HSA-72231 (Reactome)
CF IR-HSA-72231 (Reactome)
CHTOPArrowR-HSA-75096 (Reactome)
CHTOPR-HSA-8849157 (Reactome)
CPSFArrowR-HSA-72185 (Reactome)
CPSFArrowR-HSA-77594 (Reactome)
CPSFR-HSA-72231 (Reactome)
CRNKL1R-HSA-72127 (Reactome)
CWC22R-HSA-72124 (Reactome)
CWC25R-HSA-72130 (Reactome)
CWC27ArrowR-HSA-72139 (Reactome)
CWC27R-HSA-72130 (Reactome)
Cap Binding Complex (CBC)ArrowR-HSA-111439 (Reactome)
Cap Binding Complex (CBC)ArrowR-HSA-77594 (Reactome)
Cleavage and

Polyadenylation

Complex
ArrowR-HSA-72231 (Reactome)
Cleavage and

Polyadenylation

Complex
R-HSA-72130 (Reactome)
CstFArrowR-HSA-72180 (Reactome)
CstFR-HSA-72231 (Reactome)
DDX39A,BR-HSA-8849157 (Reactome)
DDX39B:ADPArrowR-HSA-159101 (Reactome)
DDX5R-HSA-72107 (Reactome)
DHX16R-HSA-72130 (Reactome)
DHX38ArrowR-HSA-75096 (Reactome)
DHX38R-HSA-72124 (Reactome)
DHX9R-HSA-72107 (Reactome)
DNAJC8R-HSA-72124 (Reactome)
EIF4A3R-HSA-72130 (Reactome)
EIF4ER-HSA-158447 (Reactome)
EIF4ER-HSA-158484 (Reactome)
EIF4ER-HSA-159050 (Reactome)
ELAVL1R-HSA-72124 (Reactome)
ELAVL2R-HSA-72124 (Reactome)
FUSR-HSA-72107 (Reactome)
GLE1ArrowR-HSA-75097 (Reactome)
GPKOWR-HSA-72130 (Reactome)
HNRNPA0ArrowR-HSA-72160 (Reactome)
HNRNPA0R-HSA-72103 (Reactome)
HNRNPA1ArrowR-HSA-72160 (Reactome)
HNRNPA1R-HSA-72103 (Reactome)
HNRNPA2B1R-HSA-72103 (Reactome)
HNRNPA3ArrowR-HSA-72160 (Reactome)
HNRNPA3R-HSA-72103 (Reactome)
HNRNPCArrowR-HSA-72160 (Reactome)
HNRNPCR-HSA-72103 (Reactome)
HNRNPDArrowR-HSA-72160 (Reactome)
HNRNPDR-HSA-72103 (Reactome)
HNRNPFArrowR-HSA-72160 (Reactome)
HNRNPFR-HSA-72103 (Reactome)
HNRNPH1ArrowR-HSA-72160 (Reactome)
HNRNPH1R-HSA-72103 (Reactome)
HNRNPH2ArrowR-HSA-72160 (Reactome)
HNRNPH2R-HSA-72103 (Reactome)
HNRNPKArrowR-HSA-72160 (Reactome)
HNRNPKR-HSA-72103 (Reactome)
HNRNPLArrowR-HSA-72160 (Reactome)
HNRNPLR-HSA-72103 (Reactome)
HNRNPMArrowR-HSA-72160 (Reactome)
HNRNPMR-HSA-72103 (Reactome)
HNRNPRArrowR-HSA-72160 (Reactome)
HNRNPRR-HSA-72103 (Reactome)
HNRNPUL1R-HSA-72107 (Reactome)
HNRNPUR-HSA-72103 (Reactome)
ISY1R-HSA-72127 (Reactome)
LSM2-8 complexArrowR-HSA-72130 (Reactome)
Magoh-Y14 complexR-HSA-156661 (Reactome)
Mature

Intronless transcript derived Histone

mRNA:SLBP:CBP80:CBP20
R-HSA-77587 (Reactome)
Mature

intronless transcript derived Histone

mRNA:SLBP:TAP:Aly/Ref complex
ArrowR-HSA-159046 (Reactome)
Mature

intronless transcript derived Histone

mRNA:SLBP:TAP:Aly/Ref complex
ArrowR-HSA-77587 (Reactome)
Mature

intronless transcript derived Histone

mRNA:SLBP:TAP:Aly/Ref complex
R-HSA-159046 (Reactome)
Mature

intronless transcript derived Histone

mRNA:SLBP:TAP:Aly/Ref complex
R-HSA-159050 (Reactome)
Mature Intronless

Transcript Derived Histone mRNA:TAP:Aly/Ref

Complex
ArrowR-HSA-158481 (Reactome)
Mature Intronless

Transcript Derived Histone mRNA:TAP:Aly/Ref

Complex
R-HSA-158484 (Reactome)
Mature Intronless

Transcript Derived Histone mRNA:TAP:Aly/Ref

complex
ArrowR-HSA-111439 (Reactome)
Mature Intronless

Transcript Derived Histone mRNA:TAP:Aly/Ref

complex
R-HSA-158481 (Reactome)
Mature Intronless

Transcript Derived

mRNA:eIF4E Complex
ArrowR-HSA-158447 (Reactome)
Mature SLBP

independent Histone

mRNA:eIF4E complex
ArrowR-HSA-158484 (Reactome)
Mature intronless

derived mRNA:TAP:Aly/Ref

complex
ArrowR-HSA-158441 (Reactome)
Mature intronless

derived mRNA:TAP:Aly/Ref

complex
R-HSA-158447 (Reactome)
Mature intronless

derived mRNA

complex
R-HSA-77594 (Reactome)
Mature intronless

transcript derived Histone mRNA:SLBP:eIF4E

Complex
ArrowR-HSA-159050 (Reactome)
Mature intronless

transcript derived Histone pre-mRNA:CBC

complex
R-HSA-111439 (Reactome)
NCBP1ArrowR-HSA-77587 (Reactome)
NCBP2ArrowR-HSA-77587 (Reactome)
NPC:NXF1,2:NXT1:EJC:CBC:mRNAArrowR-HSA-75096 (Reactome)
NPC:NXF1,2:NXT1:EJC:CBC:mRNAR-HSA-75097 (Reactome)
NPC:NXF1:NXT1:EJC:CBC:mRNAArrowR-HSA-75097 (Reactome)
NPC:NXF1:NXT1:EJC:CBC:mRNAR-HSA-75098 (Reactome)
NXF1,2:NXT1::polyadenylated, capped mRNA:CBC:EJC:TREX:SRSF proteinsArrowR-HSA-159101 (Reactome)
NXF1,2:NXT1::polyadenylated, capped mRNA:CBC:EJC:TREX:SRSF proteinsR-HSA-75096 (Reactome)
NXF1,2:NXT1ArrowR-HSA-75098 (Reactome)
NXF1,2:NXT1R-HSA-159101 (Reactome)
NXF1ArrowR-HSA-158447 (Reactome)
NXF1ArrowR-HSA-158484 (Reactome)
NXF1ArrowR-HSA-159050 (Reactome)
NXF1R-HSA-111439 (Reactome)
NXF1R-HSA-77587 (Reactome)
NXF1R-HSA-77594 (Reactome)
Nuclear Pore Complex (NPC)ArrowR-HSA-111439 (Reactome)
Nuclear Pore Complex (NPC)ArrowR-HSA-158441 (Reactome)
Nuclear Pore Complex (NPC)ArrowR-HSA-158447 (Reactome)
Nuclear Pore Complex (NPC)ArrowR-HSA-158481 (Reactome)
Nuclear Pore Complex (NPC)ArrowR-HSA-158484 (Reactome)
Nuclear Pore Complex (NPC)ArrowR-HSA-159046 (Reactome)
Nuclear Pore Complex (NPC)ArrowR-HSA-159050 (Reactome)
Nuclear Pore Complex (NPC)ArrowR-HSA-75096 (Reactome)
Nuclear Pore Complex (NPC)ArrowR-HSA-75097 (Reactome)
Nuclear Pore Complex (NPC)ArrowR-HSA-75098 (Reactome)
Nuclear Pore Complex (NPC)ArrowR-HSA-77587 (Reactome)
Nuclear Pore Complex (NPC)ArrowR-HSA-77594 (Reactome)
Nuclear Pore Complex (NPC)R-HSA-75096 (Reactome)
Nuclear Pore Complex (NPC)mim-catalysisR-HSA-75097 (Reactome)
Nucleoplasmic mature

intronless derived mRNA:TAP:Aly/Ref

complex
ArrowR-HSA-77594 (Reactome)
Nucleoplasmic mature

intronless derived mRNA:TAP:Aly/Ref

complex
R-HSA-158441 (Reactome)
PABPN1ArrowR-HSA-72185 (Reactome)
PABPN1R-HSA-72231 (Reactome)
PAPOLAArrowR-HSA-72185 (Reactome)
PAPOLAR-HSA-72231 (Reactome)
PAPOLAmim-catalysisR-HSA-72185 (Reactome)
PCBP1ArrowR-HSA-72160 (Reactome)
PCBP1R-HSA-72103 (Reactome)
PCBP2ArrowR-HSA-72160 (Reactome)
PCBP2R-HSA-72103 (Reactome)
POLDIP3R-HSA-8849157 (Reactome)
PPIER-HSA-72127 (Reactome)
PPILR-HSA-72127 (Reactome)
PPWD1R-HSA-72143 (Reactome)
PRCCR-HSA-72127 (Reactome)
PRP19-CDC5L complexR-HSA-72124 (Reactome)
PRPF38AArrowR-HSA-72130 (Reactome)
PRPF38AR-HSA-72127 (Reactome)
PRPF40AArrowR-HSA-72127 (Reactome)
PRPF40AR-HSA-72107 (Reactome)
PTBP1R-HSA-72103 (Reactome)
PiArrowR-HSA-159101 (Reactome)
R-HSA-111439 (Reactome) Histone mRNAs are exported by a mechanism that requires TAP, the key factor requires for transport of polyadenylated mRNAs. How TAP is recruited to the histone mRNAs is not known, but it is clear that transport can occur in the absence of either the stemloop or of SLBP. The mature transcript docks at the NPC, in the course of transport CBC will be lost from the mRNA cap, and remain in the nucleous.
R-HSA-156661 (Reactome) At the beginning of this reaction, 1 molecule of 'Magoh-Y14 complex', and 1 molecule of 'Spliceosomal active C complex with lariat containing, 5'-end cleaved pre-mRNP:CBC complex' are present. At the end of this reaction, 1 molecule of 'Exon Junction Complex' is present.

This reaction takes place in the 'nucleoplasm'.

R-HSA-158441 (Reactome) The nucleoplasmic 3' polyadenylated, capped intronless mRNA and TAP are transported through the NPC to the cyotplasmic side of the pore.
R-HSA-158447 (Reactome) The cytoplasmic 3' polyadenylated, capped intronless mRNA and TAP are released from the NPC into the cytosol. Cytosolic TAP will be recycled to the nucleous, while the 3' polyadenylated, capped intronless mRNA is bound by eIF4E and destined for translation (Carmody and Wente 2009, Wente and Rout 2010, Hetten and Kehlenbach 2007).
R-HSA-158481 (Reactome) The mature SLBP independent intronless histone mRNA is transported through the nucler pore to the cytoplasmic side (von Moeller et al.2013). This is a black box event since there is not physical evidence about how exactly occurs this transport.
R-HSA-158484 (Reactome) At some point eIF4E binds the mature mRNA. While TAP and Aly/Ref are released and will be reycled back to the nucleoplasm (Hung et al.2010, Lindtner et al. 2002).
R-HSA-159046 (Reactome) Once the transport complex is fully assembled the mature mRNA can be translocated from the nucleoplasm to the cytoplasm. The assembled complex starts at the nucleoplasmic basket, travels through the pore, and ends it journey at the cytoplasmic face of the nuclear pore complex.
R-HSA-159050 (Reactome) At some point eIF4E binds the mature mRNA. While TAP and Aly/Ref are released and will be reycled back to the nucleoplasm (Hung et al.2010, Lindtner et al. 2002).
R-HSA-159101 (Reactome) The mRNA is transferred from ALYREF of the TREX complex to NXF1 (TAP) of the NXF1:NXT1 export complex (Hautbergue et al. 2008). Interaction between the TREX complex and NXF1 exposes the arginine-rich RNA-binding domain of NXF1 (Viphakone et al. 2012). Methylation of arginine residues on ALYREF also appears to be necessary for dissociation of mRNA from ALYREF during the transfer (Hung et al. 2010). The interaction between ALYREF and NXF1 occurs in the vicinity of nuclear speckles (Teng and Wilson 2013). DDX39B (UAP56) binds (Kota et al. 2008) and hydrolyzes ATP (Taniguchi and Ohno 2008). UAP56 is believed to hydrolyze ATP and UAP56:ADP is believed to dissociate at some point during the transfer of the mRNA to NXF1 (Taniguchi and Ohno 2008, Chang et al. 2013).
R-HSA-72095 (Reactome) In addition to the methylation of the 5'-cap, there is methylation of internal nucleotides in the mRNA. This methylation can occur in translated and untranslated regions. One to three methyl groups have been seen per mRNA molecule, but methylation is non-stoichiometric. The most frequent methylation observed is at the N6 position of adenosine. The function of mRNA internal methylation, if any, is unknown.
R-HSA-72103 (Reactome) After the nascent pre-mRNA undergoes the initial capping and methylation reactions, it gets associated with numerous factors, including the various heterogeneous nuclear ribonucleoproteins (hnRNPS), the nuclear Cap-Binding Complex, and many splicing factors that make the pre-mRNA a substrate for splicing, 3'-end processing, and in some cases editing.
R-HSA-72107 (Reactome) Pre-mRNA transcripts become rapidly associated with many RNA-binding proteins, including hnRNP proteins, cap-binding proteins, SR proteins, etc; in the test tube this binding does not require splice sites or ATP. The E complex, or early complex, is the first detectable functional intermediate in spliceosome assembly in vitro. It is an ATP-independent complex. When a functional 5' splice site is present, it is bound by the U1 snRNP. The splicing factor U2AF (65 and 35 kDa subunits) binds to the polypyrimidine tract (Y)n and the AG dinucleotide at the 3' splice site, respectively. SF1/mBBP binds to the branch site. Binding of many of these factors is cooperative; e.g., SR proteins and U2AF apparently interact with each other, facilitating their binding to the pre-mRNA. In the presence of ATP, the E complex is converted to the first ATP-dependent spliceosomal complex, namely the A complex.
R-HSA-72124 (Reactome) The A complex is the first ATP-dependent complex in spliceosome assembly. U2AF recruits the U2 snRNP to bind to the branch site in the E complex in an ATP-dependent fashion, to form the A complex. The U2 snRNA base-pairs with the branch site, causing the branch-site adenosine to bulge out, which later positions it for nucleophilic attack at the 5' splice site. The A complex serves as a substrate for formation of the B complex.
R-HSA-72127 (Reactome) The formation of the B complex is ATP-dependent, and both the 5' and 3' splice sites are essential for B complex assembly. The U4 and U6 snRNPS are extensively base-paired, and this U4:U6 complex associates with the U5 snRNP to form a tri-snRNP particle. This tri-snRNP particle then binds to the spliceosomal A complex, to form the spliceosomal B complex.
R-HSA-72130 (Reactome) The intermediate spliceosomal C complex (also called the Bact or B(act) complex) is a very short-lived intermediate; the splicing intermediates are rapidly converted to splicing products. Also, the spliced products are released very rapidly, and no complex containing both the splicing products has been isolated. Conversion of the spliceosomal B complex to the spliceosomal C complex requires ATP. The extensive base-pairing between the U4 and U6 snRNAs is disrupted during the formation of the C complex, which is thought to require helicase-type activity associated with the DEAD box factors. The U4 snRNP and U1 snRNP dissociate from the complex and the LSM2-6 complex of the U6 snRNP is lost, apparently allowing the U6 snRNA to then base-pair with the U2 snRNA and the 5' end of the splice site on the mRNA (Bessonov et al. 2010).
R-HSA-72139 (Reactome) The active C complex is formed due to a conformational change in the intermediate C complex. After formation of the active C complex, the splicing reactions occur very rapidly.
R-HSA-72143 (Reactome) In the first catalytic step of mRNA splicing, the 2' OH group of the bulged A at the branch site performs a nucleophilic attack on the 5' splice site phosphodiester bond, resulting in cleavage of the bond between the 5' exon and the 5' end of the intron, and formation of a new bond between the 5' end of the intron and the branch site A. This results in a lariat-shaped intermediate, with the intron still attached to the 3' exon. The branch site A has a 2'-5' phosphodiester bond with the G at the beginning of the intron, in addition to the usual 5'-3' and 3'-5'phosphodiester bonds.
R-HSA-72160 (Reactome) The second step of the splicing reaction results in cleavage of the transcript at the 3'splice site, and results in ligation of the two exons and excision of the intron.
R-HSA-72180 (Reactome) Endonucleolytic cleavage separates the pre-mRNA into an upstream fragment destined to become the mature mRNA, and a downstream fragment that is rapidly degraded. Cleavage depends on two signals in the RNA, a highly conserved hexanucleotide, AAUAAA, 10 to 30 nucleotides upstream of the cleavage site, and a poorly conserved GU- or U-rich downstream element. Additional sequences, often upstream of AAUAAA, can enhance the efficiency of the reaction. Cleavage occurs most often after a CA dinucleotide. A single gene can have more than one 3' processing site.

Cleavage is preceded by the assembly of a large processing complex, the composition of which is poorly defined. ATP, but not its hydrolysis, is required for assembly. Cleavage at the 3'-end of mRNAs depends on a number of protein factors. CPSF, a heterotetramer, binds specifically to the AAUAAA sequence. The heterotrimer CstF binds the downstream element. CF I, which appears to be composed of two subunits, one of several related larger polypeptides and a common smaller one, also binds RNA, but with unknown specificity. RNA recognition by these proteins is cooperative. Cleavage also requires CF II, composed of at least two subunits, and poly(A) polymerase, the enzyme synthesizing the poly(A) tail in the second step of the reaction. The polypeptide catalyzing the hydrolysis of the phosphodiester bond remains to be identified.

Cleavage produces a 3'-OH on the upstream fragment and a 5'-phosphate on the downstream fragment. At some unknown point after cleavage, the downstream RNA fragment, CstF, CF I and CF II are thought to be released, whereas CPSF and poly(A) polymerase remain to carry out polyadenylation.

R-HSA-72185 (Reactome) The upstream fragment generated by 3' cleavage of the pre-mRNA receives a poly(A) tail of approximately 250 AMP residues in a reaction depending on the AAUAAA sequence 10 to 30 nucleotides upstream of the 3' end. Polyadenylation is carried out by three proteins: Poly(A) polymerase carries the catalytic activity. The enzyme has no specificity for any particular RNA sequence, and it also has a very low affinity for the RNA.

Under physiological conditions, the activity of poly(A) polymerase thus depends on two auxiliary factors, both of which bind to specific RNA sequences and recruit the enzyme by a direct contact. One of these proteins is the heterotetrameric CPSF, which binds the AAUAAA sequence and is also essential for 3' cleavage. The second is the nuclear poly(A) binding protein (PABPN1), which binds the growing poly(A) tails once this has reached a length of about ten nucleotides. Stimulation of poly(A) polymerase by both proteins is synergistic and results in processive elongation of the RNA, i.e. the polymerase adds AMP residues without dissociating from the RNA. The processive reaction is terminated when the tail has reached a length of about 250 nucleotides.

R-HSA-72231 (Reactome) The cleavage and polyadenylation complex includes proteins that recognize the polyA addition signal of the nascent mRNA as well as the endonulcease that cleaves the RNA and other RNA binding elements (Charlesworth et al. 2013).
R-HSA-75079 (Reactome) At the beginning of this reaction, 1 molecule of 'ATAC B Complex' is present. At the end of this reaction, 1 molecule of 'U4 ATAC snRNP', and 1 molecule of 'ATAC C Complex' are present.

This reaction takes place in the 'nucleus' (Pikielny et al.1989, Kreivi et al. 1996).

R-HSA-75080 (Reactome) U12-type AT-AC introns are distinguished from the major U2-type introns by the consensus sequences of their highly conserved splicing signals. U12 introns have the 5' ss consensus sequence (G/A)TATCCTTT, the branchpoint sequence TTTCCTTAACT and the 3' ss (C/T)AG. Initial recognition of AT-AC introns involves interaction of U12 snRNP with the branch-point sequence and U11 with the 5' ss. Unlike the major splicing pathway, U11 and U12 are in a complex and interact with the pre-mRNA simultaneously, binding in an ATP-dependent manner as a di-snRNP complex and likely bridging the 5' ss and 3' ss region.

Twenty proteins have been identified in the U11/U12 di-snRNP complex including the snRNP Sm proteins B’, B, D3, D2, D1, E, F, and G which are identical to the major splicing pathway Sm proteins. A U2 snRNP core protein complex, SF3b is also found in the U11/U12 di-snRNP, including p14, a protein that interacts with the branchpoint adenosine.

SR proteins are required for formation of A complex in AT-AC splicing. The same SR proteins involved in splicing of the major introns are also active in splicing of AT-AC introns, though, as in the major pathway, there is substrate specificity.

R-HSA-75081 (Reactome) The U4atac/U6atac enters the spliceosome and U6atac snRNA forms base pairing interactions with the 5' ss and also forms base pairing interactions with U12 and U4atac is partially displaced. U5 snRNP, the only snRNP common to both the major and minor splicing pathways, also joins the spliceosome to form the B complex and interacts with nucleotides within the 3' end of the exon flanking the 5' ss (Singh et al.2016, Wu and Krainer 1999).
R-HSA-75082 (Reactome) At the beginning of this reaction, 1 molecule of 'ATAC C Complex' is present. At the end of this reaction, 1 molecule of 'ATAC C Complex with lariat containing 5'-end cleaved mRNA' is present.

This reaction takes place in the 'nucleus' (Valadkhan and Manley 2001, Valadkhan et al. 2007).

R-HSA-75083 (Reactome) At the beginning of this reaction, 1 molecule of 'ATAC C Complex with lariat containing 5'-end cleaved mRNA' is present. At the end of this reaction, 1 molecule of 'U6 ATAC snRNP', 1 molecule of 'post exon ligation complex', 1 molecule of 'U12 snRNP', 1 molecule of 'U11 snRNP', and 1 molecule of 'U5 snRNP' are present.

This reaction takes place in the 'nucleus'.

R-HSA-75096 (Reactome) At the beginning of this reaction, 1 molecule of 'TAP:3'-polyadenylated, capped mRNA complex' is present. At the end of this reaction, 1 molecule of 'SRp55', 1 molecule of 'U2AF 65 kDa subunit', 1 molecule of 'SR9 / SRp30', 1 molecule of 'hTra2', 1 molecule of 'hPrp16', 1 molecule of 'SR 11/ p54', 1 molecule of 'hPrp22', 1 molecule of 'SRp40', 1 molecule of 'hPrp17', 1 molecule of 'SF2/ASF/SFRS1', 1 molecule of 'hSLU7', 1 molecule of 'Export Receptor bound mature mRNA Complex', 1 molecule of 'U2AF 35 kDa subunit', 1 molecule of 'SR2 / SC35', 1 molecule of 'hPrp43', 1 molecule of 'SRp20', 1 molecule of 'SR7/ 9G8 protein', 1 molecule of 'hPrp18', and 1 molecule of 'SR4 / SRp75' are present.

This reaction takes place in the 'nucleoplasm'.

R-HSA-75097 (Reactome) In this reaction, 1 molecule of 'Export Receptor bound mature mRNA Complex' is translocated from nucleoplasm to cytosol.

This reaction takes place in the 'nuclear envelope'.

R-HSA-75098 (Reactome) At the beginning of this reaction, 1 molecule of and 1 molecule of 'Export Receptor bound mature mRNA Complex' are present. At the end of this reaction, 1 molecule of 'THOC4(Aly/Ref)', 1 molecule of 'Mature mRNP Complex', 1 molecule of 'SRm160', and 1 molecule of 'TAP' are present.

This reaction takes place in the 'cytoplasm'.

R-HSA-77587 (Reactome) Histone mRNAs are exported by a mechanism that requires TAP, the key factor requires for transport of polyadenylated mRNAs. How TAP is recruited to the histone mRNAs is not known, but it is clear that transport can occur in the absence of either the stemloop or of SLBP. The stemloop and SLBP enhance the rate of transport of histone mRNAs in Xenopus oocytes, but are not essential for transport
R-HSA-77594 (Reactome) The polyadenylated, capped transcript and TAP dock at the nucleoplasmic side of the NPC. The Cap Binding Complex (CBC) and CPSF complexes are released back into the nucleoplasm (Zhou et al. 2000).
R-HSA-8849157 (Reactome) The THO subcomplex of the TREX complex initially interacts with the serine-2,5 phosphorylated C-terminal domain of RNA polymerase II (Strasser et al. 2002, Inferred from yeast in Meinel et al. 2013) then with CBP80 of the cap binding complex (Cheng et al. 2006, Dufu et al. 2010, Chi et al. 2013). A TREX complex binds spliced mRNA near the cap during transcription (Cheng et al. 2006). Recruitment is dependent on splicing of the mRNA (Masuda et al. 2005). THO/TREX is required for efficient mRNP biogenesis and export (reviewed in Luna et al 2012). In yeast, components of the THO/TREX complex also affect transcription and 3' processing of mRNA, (Rondon et al. 2003, Rougemaille et al. 2008, Johnson et al. 2011, reviewed in Katahira 2015), however the human TREX complex does not appear to affect transcription (Masuda et al. 2005). The AREX complex, which contains DDX39A (UHR49) rather than DDX39B (UAP56) appears to perform the same function as TREX in mRNA export, but acts on a different subset of mRNAs (Yamazaki et al. 2010).
RBM22R-HSA-72127 (Reactome)
RBM5R-HSA-72107 (Reactome)
RBMXArrowR-HSA-72160 (Reactome)
RBMXR-HSA-72103 (Reactome)
RNA

polymerase II

(phosphorylated):TFIIF complex
ArrowR-HSA-72160 (Reactome)
RNPS1R-HSA-72107 (Reactome)
SARNPArrowR-HSA-75096 (Reactome)
SARNPR-HSA-8849157 (Reactome)
SART1ArrowR-HSA-72130 (Reactome)
SF1ArrowR-HSA-72124 (Reactome)
SF1R-HSA-72107 (Reactome)
SF3AArrowR-HSA-72160 (Reactome)
SF3BArrowR-HSA-72160 (Reactome)
SNRNP27ArrowR-HSA-72130 (Reactome)
SNW1R-HSA-72127 (Reactome)
SRRM1:SRRM2R-HSA-72107 (Reactome)
SRRTR-HSA-72107 (Reactome)
SRSF10TBarR-HSA-72107 (Reactome)
SRSF11ArrowR-HSA-75096 (Reactome)
SRSF11R-HSA-72124 (Reactome)
SRSF1ArrowR-HSA-75096 (Reactome)
SRSF1R-HSA-72107 (Reactome)
SRSF1R-HSA-75080 (Reactome)
SRSF2ArrowR-HSA-75096 (Reactome)
SRSF2R-HSA-72107 (Reactome)
SRSF2R-HSA-75080 (Reactome)
SRSF3ArrowR-HSA-75096 (Reactome)
SRSF3R-HSA-72107 (Reactome)
SRSF4ArrowR-HSA-75096 (Reactome)
SRSF4R-HSA-72124 (Reactome)
SRSF5ArrowR-HSA-75096 (Reactome)
SRSF5R-HSA-72107 (Reactome)
SRSF6ArrowR-HSA-75096 (Reactome)
SRSF6R-HSA-72107 (Reactome)
SRSF6R-HSA-75080 (Reactome)
SRSF7ArrowR-HSA-75096 (Reactome)
SRSF7R-HSA-72107 (Reactome)
SRSF7R-HSA-75080 (Reactome)
SRSF9ArrowR-HSA-75096 (Reactome)
SRSF9R-HSA-72107 (Reactome)
SUGP1R-HSA-72107 (Reactome)
SYF2R-HSA-72143 (Reactome)
Spliced mRNA:CBC:EJC:TREXArrowR-HSA-8849157 (Reactome)
Spliced mRNA:CBC:EJC:TREXR-HSA-72180 (Reactome)
Spliced mRNPArrowR-HSA-72160 (Reactome)
Spliced mRNPR-HSA-8849157 (Reactome)
Spliceosomal

Intermediate C

(Bact) Complex
ArrowR-HSA-72130 (Reactome)
Spliceosomal

Intermediate C

(Bact) Complex
R-HSA-72139 (Reactome)
Spliceosomal

Intermediate C

(Bact) Complex
mim-catalysisR-HSA-72139 (Reactome)
Spliceosomal A ComplexArrowR-HSA-72124 (Reactome)
Spliceosomal A ComplexR-HSA-72127 (Reactome)
Spliceosomal Active C (B*) ComplexArrowR-HSA-72139 (Reactome)
Spliceosomal Active C (B*) ComplexR-HSA-72143 (Reactome)
Spliceosomal B ComplexArrowR-HSA-72127 (Reactome)
Spliceosomal B ComplexR-HSA-72130 (Reactome)
Spliceosomal E ComplexArrowR-HSA-72107 (Reactome)
Spliceosomal E ComplexR-HSA-72124 (Reactome)
Spliceosomal active

C complex with lariat containing, 5'-end cleaved pre-mRNP:CBC

complex
ArrowR-HSA-72143 (Reactome)
Spliceosomal active

C complex with lariat containing, 5'-end cleaved pre-mRNP:CBC

complex
R-HSA-156661 (Reactome)
THO complexArrowR-HSA-75096 (Reactome)
THO complexR-HSA-8849157 (Reactome)
TRA2BR-HSA-72143 (Reactome)
U1 snRNPArrowR-HSA-72130 (Reactome)
U1 snRNPR-HSA-72107 (Reactome)
U11 snRNPArrowR-HSA-75083 (Reactome)
U11 snRNPR-HSA-75080 (Reactome)
U12 snRNPArrowR-HSA-75083 (Reactome)
U12 snRNPR-HSA-75080 (Reactome)
U2 snRNPR-HSA-72124 (Reactome)
U2AF1,U2AF1L4ArrowR-HSA-75096 (Reactome)
U2AF1,U2AF1L4R-HSA-72107 (Reactome)
U2AF2ArrowR-HSA-75096 (Reactome)
U2AF2R-HSA-72107 (Reactome)
U4 ATAC snRNPArrowR-HSA-75079 (Reactome)
U4 ATAC:U5:U6 ATAC ComplexR-HSA-75081 (Reactome)
U4 snRNPArrowR-HSA-72130 (Reactome)
U4:U5:U6 tri-snRNP complexR-HSA-72127 (Reactome)
U5 snRNPArrowR-HSA-75083 (Reactome)
U6 ATAC snRNPArrowR-HSA-75083 (Reactome)
UPF3BR-HSA-72143 (Reactome)
USP39ArrowR-HSA-72130 (Reactome)
WBP4ArrowR-HSA-72130 (Reactome)
WBP4R-HSA-72124 (Reactome)
XAB2R-HSA-72127 (Reactome)
YBX1R-HSA-72107 (Reactome)
ZC3H11AArrowR-HSA-75096 (Reactome)
ZC3H11AR-HSA-8849157 (Reactome)
ZRSR2R-HSA-75080 (Reactome)
capped

pre-mRNA:CBC:RNA Pol II (phosphorylated)

complex
R-HSA-72095 (Reactome)
capped, methylated

pre-mRNA:CBC

Complex
ArrowR-HSA-72095 (Reactome)
capped, methylated

pre-mRNA:CBC

Complex
R-HSA-72103 (Reactome)
capped, methylated

pre-mRNA:CBC

Complex
R-HSA-75080 (Reactome)
capped, methylated

pre-mRNP:CBC

complex
ArrowR-HSA-72103 (Reactome)
capped, methylated

pre-mRNP:CBC

complex
R-HSA-72107 (Reactome)
hSLU7ArrowR-HSA-75096 (Reactome)
hSLU7R-HSA-72160 (Reactome)
intron-containing complexArrowR-HSA-72160 (Reactome)
mRNA (N6-adenosine)-methyltransferasemim-catalysisR-HSA-72095 (Reactome)
mRNA 3'-end cleavage factormim-catalysisR-HSA-72180 (Reactome)
mRNA:CBC:EJC:POLDIP3ArrowR-HSA-75098 (Reactome)
polyadenylated,

capped

mRNA:CBC:EJC:TREX:SRSF proteins
ArrowR-HSA-72185 (Reactome)
polyadenylated,

capped

mRNA:CBC:EJC:TREX:SRSF proteins
R-HSA-159101 (Reactome)
polyadenylated,

capped

mRNA:CBC:EJC:TREX:SRSF proteins
mim-catalysisR-HSA-159101 (Reactome)
post exon ligation complexArrowR-HSA-75083 (Reactome)
pre-EJC:Spliceosomal C:pre-mRNP:CBCArrowR-HSA-156661 (Reactome)
pre-EJC:Spliceosomal C:pre-mRNP:CBCR-HSA-72160 (Reactome)
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