<HashMap><database>biostudies-literature</database><scores/><additional><submitter>Zamudio JR</submitter><funding>NIAID NIH HHS</funding><funding>NIGMS NIH HHS</funding><pagination>1202-11</pagination><full_dataset_link>https://www.ebi.ac.uk/biostudies/studies/S-EPMC2643836</full_dataset_link><repository>biostudies-literature</repository><omics_type>Unknown</omics_type><volume>29(5)</volume><pubmed_abstract>Kinetoplastid flagellates attach a 39-nucleotide spliced leader (SL) upstream of protein-coding regions in polycistronic RNA precursors through trans splicing. SL modifications include cap 2'-O-ribose methylation of the first four nucleotides and pseudouridine (psi) formation at uracil 28. In Trypanosoma brucei, TbMTr1 performs 2'-O-ribose methylation of the first transcribed nucleotide, or cap 1. We report the characterization of an SL RNA processing complex with TbMTr1 and the SLA1 H/ACA small nucleolar ribonucleoprotein (snoRNP) particle that guides SL psi(28) formation. TbMTr1 is in a high-molecular-weight complex containing the four conserved core proteins of H/ACA snoRNPs, a kinetoplastid-specific protein designated methyltransferase-associated protein (TbMTAP), and the SLA1 snoRNA. TbMTAP-null lines are viable but have decreased SL RNA processing efficiency in cap methylation, 3'-end maturation, and psi(28) formation. TbMTAP is required for association between TbMTr1 and the SLA1 snoRNP but does not affect U1 small nuclear RNA methylation. A complex methylation profile in the mRNA population of TbMTAP-null lines indicates an additional effect on cap 4 methylations. The TbMTr1 complex specializes the SLA1 H/ACA snoRNP for efficient processing of multiple modifications on the SL RNA substrate.</pubmed_abstract><journal>Molecular and cellular biology</journal><pubmed_title>Trypanosoma brucei spliced leader RNA maturation by the cap 1 2'-O-ribose methyltransferase and SLA1 H/ACA snoRNA pseudouridine synthase complex.</pubmed_title><pmcid>PMC2643836</pmcid><funding_grant_id>R01 AI056034</funding_grant_id><funding_grant_id>GM07104</funding_grant_id><funding_grant_id>AI056034</funding_grant_id><funding_grant_id>T32 GM007104</funding_grant_id><pubmed_authors>Zamudio JR</pubmed_authors><pubmed_authors>Sturm NR</pubmed_authors><pubmed_authors>Campbell DA</pubmed_authors><pubmed_authors>Chattopadhyay A</pubmed_authors><pubmed_authors>Wohlschlegel JA</pubmed_authors><pubmed_authors>Mittra B</pubmed_authors></additional><is_claimable>false</is_claimable><name>Trypanosoma brucei spliced leader RNA maturation by the cap 1 2'-O-ribose methyltransferase and SLA1 H/ACA snoRNA pseudouridine synthase complex.</name><description>Kinetoplastid flagellates attach a 39-nucleotide spliced leader (SL) upstream of protein-coding regions in polycistronic RNA precursors through trans splicing. SL modifications include cap 2'-O-ribose methylation of the first four nucleotides and pseudouridine (psi) formation at uracil 28. In Trypanosoma brucei, TbMTr1 performs 2'-O-ribose methylation of the first transcribed nucleotide, or cap 1. We report the characterization of an SL RNA processing complex with TbMTr1 and the SLA1 H/ACA small nucleolar ribonucleoprotein (snoRNP) particle that guides SL psi(28) formation. TbMTr1 is in a high-molecular-weight complex containing the four conserved core proteins of H/ACA snoRNPs, a kinetoplastid-specific protein designated methyltransferase-associated protein (TbMTAP), and the SLA1 snoRNA. TbMTAP-null lines are viable but have decreased SL RNA processing efficiency in cap methylation, 3'-end maturation, and psi(28) formation. TbMTAP is required for association between TbMTr1 and the SLA1 snoRNP but does not affect U1 small nuclear RNA methylation. A complex methylation profile in the mRNA population of TbMTAP-null lines indicates an additional effect on cap 4 methylations. The TbMTr1 complex specializes the SLA1 H/ACA snoRNP for efficient processing of multiple modifications on the SL RNA substrate.</description><dates><release>2009-01-01T00:00:00Z</release><publication>2009 Mar</publication><modification>2024-11-06T08:52:27.299Z</modification><creation>2019-03-27T00:20:46Z</creation></dates><accession>S-EPMC2643836</accession><cross_references><pubmed>19103757</pubmed><doi>10.1128/MCB.01496-08</doi><doi>10.1128/mcb.01496-08</doi></cross_references></HashMap>