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Master's Dissertation
DOI
https://doi.org/10.11606/D.46.2012.tde-09052013-105201
Document
Author
Full name
Germano Alves Paiva
E-mail
Institute/School/College
Knowledge Area
Date of Defense
Published
São Paulo, 2012
Supervisor
Committee
Oliveira, Carla Columbano de (President)
Barros, Mário Henrique de
Marana, Sandro Roberto
Title in Portuguese
Estudo do papel de Rrp43p na montagem e estabilização do complexo do exossomo em Saccharomyces cerevisiae
Keywords in Portuguese
Exossomo
RNA
Rrp43p
Saccharomyces cerevisiae
Abstract in Portuguese
O exossomo é um complexo constituído por até 11 subunidades (Rrp4p, Rrp6p, Rrp40p, Rrp41p, Rrp42p, Rrp43p, Rrp44p, Rrp45p, Rrp46p, Csl4p, Mtr3p) que possui atividade exorribonucleolítica 3`→5` e está envolvido no processamento e degradação de vários tipos de RNAs na célula eucariótica. O complexo tem sido estudado em diversos organismos, como leveduras, insetos, plantas, humanos e também em várias espécies de archaea. Apesar da conservação da estrutura do exossomo ao longo da evolução e de oito subunidades do exossomo eucariótico apresentarem domínios de RNase, apenas duas proteínas, Rrp6p e Rrp44p têm atividade catalítica. A despeito da importância do exossomo para a célula, ainda não está claro o papel de cada subunidade na atividade do complexo. Neste trabalho foram utilizados mutantes da subunidade Rrp43p a fim de avaliar como mutações pontuais nesta subunidade afetam a montagem e estabilização do complexo do exossomo de Saccharomyces cerevisiae. Ensaios de purificação do exossomo com TAP-Rrp43p revelaram que os mutantes co-purificam Mtr3p e Rrp44p menos eficientemente. Além disso, os mutantes também apresentam atividade exorribonucleolítica 3`→5` reduzida, indicando que o defeito na montagem do complexo pode afetar a sua atividade enzimática.
Title in English
The role of Rrp43p on assembly and stabilization of Saccharomyces cerevisiae exosome complex
Keywords in English
Exosome
RNA
Rrp43p
Saccharomyces cerevisiae
Abstract in English
The exosome is a protein complex comprised of up to eleven subunits (Rrp4p, Rrp6p, Rrp40p, Rrp41p, Rrp42p, Rrp43p, Rrp44p, Rrp45p, Rrp46p, Csl4p and Mtr3p) that has 3`→5` exoribonucleolytic activity and is involved in degradation and processing pathways of several kinds of RNA in eukaryotes. This complex has also been identified in several organisms, such as yeast, insects, plants, humans and also many species of archaea. Despite the overall structure conservation of the complex throughout evolution and eight of the eukaryotic exosome subunits displaying RNase domains, only two proteins, Rrp6p and Rrp44p have catalytic activity. Although the exosome has been shown to be involved in many different aspects of RNA metabolism, the role that each subunit plays in the activity of the complex has not yet been determined. In this work we used of TAP-purified exosome complexes to study the effect of Rrp43p mutations on the assembly and stabilization of the complex in Saccharomyces cerevisiae. Co-immunoprecipitation assays revealed that Rrp43p mutants co-purify Mtr3p and Rrp44p subunits less efficiently. Besides, Rrp43p mutants also present decreased activity, indicating that an assembly defect may affect its enzymatic activity
 
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Publishing Date
2013-07-12
 
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