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The SUMO system controls nucleolar partitioning of a novel mammalian ribosome biogenesis complex.


ABSTRACT: Ribosome biogenesis is a tightly controlled pathway that requires an intricate spatial and temporal interplay of protein networks. Most structural rRNA components are generated in the nucleolus and assembled into pre-ribosomal particles, which are transferred for further maturation to the nucleoplasm and cytoplasm. In metazoa, few regulatory components for these processes have been characterized. Previous work revealed a critical role for the SUMO-specific protease SENP3 in the nucleolar steps of ribosome biogenesis. We biochemically purified a SENP3-associated complex comprising PELP1, TEX10 and WDR18, and demonstrate that this complex is involved in maturation and nucleolar release of the large ribosomal subunit. We identified PELP1 and the PELP1-associated factor LAS1L as SENP3-sensitive targets of SUMO, and provide evidence that balanced SUMO conjugation/deconjugation determines the nucleolar partitioning of this complex. This defines the PELP1-TEX10-WDR18 complex as a regulator of ribosome biogenesis and suggests that its SUMO-controlled distribution coordinates the rate of ribosome formation. These findings contribute to the basic understanding of mammalian ribosome biogenesis and shed new light on the role of SUMO in this process.

SUBMITTER: Finkbeiner E 

PROVIDER: S-EPMC3061037 | biostudies-literature | 2011 Mar

REPOSITORIES: biostudies-literature

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A new ultrasound instrument for in vivo microimaging of mice.

Foster F S FS   Zhang M Y MY   Zhou Y Q YQ   Liu G G   Mehi J J   Cherin E E   Harasiewicz K A KA   Starkoski B G BG   Zan L L   Knapik D A DA   Adamson S L SL  

Ultrasound in medicine & biology 20020901 9


We report here on the design and evaluation of the first high-frequency ultrasound (US) imaging system specifically designed for microimaging of the mouse. High-frequency US or US biomicroscopy (UBM) has the advantage of low cost, rapid imaging speed, portability and high resolution. In combination with the ability to provide functional information on blood flow, UBM provides a powerful method for the investigation of development and disease models. The new UBM imaging system is demonstrated for  ...[more]