Degradation of Short Lived Regulatory Protein in Yeast

项目来源

美国卫生和人类服务部基金(HHS)

项目主持人

BARSKI, OLEG

项目受资助机构

YALE UNIVERSITY

立项年度

2018

立项时间

未公开

项目编号

5R37GM046904-28

研究期限

未知 / 未知

项目级别

国家级

受资助金额

355622.00美元

学科

Genetics;Neurodegenerative

学科代码

未公开

基金类别

Non-SBIR/STTR RPGs

关键词

未公开

参与者

HOCHSTRASSER, MARK W

参与机构

NATIONAL INSTITUTE OF GENERAL MEDICAL SCIENCES

项目标书摘要:Eukaryotes have a highly conserved enzymatic system for the ligation of ubiquitin (Ub) to proteins, and often these proteins are then targeted for degradation by the proteasome. Substrates, include naturally short-lived regulatory factors and aberrant protein quality control (PQG) substrates. Many human disorders, including neurodegenerative diseases such as Alzheimer?s and Parkinson?s disease, diabetes, cystic fibrosis, and certain cancers, are associated with abnormalities in Lib-dependent proteolysis. The Ub-proteasome system presents promising drug targets for treating-these diseases. In this renewal, the PI proposes to extend studies On Ub-dependent proteolysis, focusing on endplasmic reticulum (ER)-associated degradation (ERAD) and basic features of membrane and nuclear protein ubiquitylation and degradation. The proposed research will focus on the yeast Saccharomyces cerevisiae because of its experimental advantages and the fact that the Ub system in general, and the ERAD machinery in particular, is highly conserved Recent work has Identified a yeast Ub-ligase (E3) complex embedded in the ER and nuclear envelope membranes that is capable of recognizing a wide array of regulatory and PQC substrates. This unusual complex includes a large integral membrane E3 called Doa10 and two Ub-conjugating enzymes (E2s), Ubc6 and Ubc7. Doa10 Is the prototype for a broadly conserved class of viral and eukaryotic Ub ligases. It was discovered from an analysis of a soluble nuclear substrate, the Mata2 transcription factor, but it also has membrane substrates. A second E3, Sxl5/Slx8, important for MATa2 degradation was also recently discovered. The overall goal of the proposal is to determine key mechanistic features of protein ubiquitylation by the ER-membrane E3 ligases DoalO and Hrd1. We also hope to advance our currently very poor understanding of how membrane extraction of ER membrane substrates occurs in conjunction with theseE3s. For the soluble substrate MAT ? 2, both its Doa10-dependent and Slx5/Slx8-dependent ubiquitylation will be explored. We expect to continue to gain important insights into fundamental aspects of Ub-proteasome system mechanism and function, including features unique to the PQC of membrane proteins at the ER.

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  • 1.The Toxin-Antidote Model of Cytoplasmic Incompatibility: Genetics and Evolutionary Implications

    • 关键词:
    • RESTRICTION-MODIFICATION SYSTEMS; DROSOPHILA-MELANOGASTER; BACTERIALENDOSYMBIONTS; PROPHAGE WO; WOLBACHIA; DYNAMICS; SIMULANS;MICROORGANISMS; CHROMOSOME; INFECTION

    Wolbachia bacteria inhabit the cells of about half of all arthropod species, an unparalleled success stemming in large part from selfish invasive strategies. Cytoplasmic incompatibility (CI), whereby the symbiont makes itself essential to embryo viability, is the most common of these and constitutes a promising weapon against vector-borne diseases. After decades of theoretical and experimental struggle, major recent advances have been made toward a molecular understanding of this phenomenon. As pieces of the puzzle come together, from yeast and Drosophila fly transgenesis to CI diversity patterns in natural mosquito populations, it becomes clearer than ever that the CI induction and rescue stem from a toxin-antidote (TA) system. Further, the tight association of the CI genes with prophages provides clues to the possible evolutionary origin of this phenomenon and the levels of selection at play.

    ...
  • 2.Ubiquitin-dependent protein degradation at the endoplasmic reticulum and nuclear envelope

    • 关键词:
    • Protein degradation; ER-associated degradation; Proteasome; Ubiquitin;Retrotranslocation; Endoplasmic reticulum;SIGNAL PEPTIDE PEPTIDASE; HMG-COA REDUCTASE; STEROL-INDUCED DEGRADATION;ER-ASSOCIATED DEGRADATION; N-TERMINAL ACETYLATION; QUALITY-CONTROL;UNFOLDED PROTEIN; MEMBRANE-PROTEIN; O-MANNOSYLATION; LIGASE DOA10

    Numerous nascent proteins undergo folding and maturation within the luminal and membrane compartments of the endoplasmic reticulum (ER). Despite the presence of various factors in the ER that promote protein folding, many proteins fail to properly fold and assemble and are subsequently degraded. Regulatory proteins in the ER also undergo degradation in a way that is responsive to stimuli or the changing needs of the cell. As in most cellular compartments, the ubiquitin-proteasome system (UPS) is responsible for the majority of the degradation at the ER-in a process termed ER-associated degradation (ERAD). Autophagic processes utilizing ubiquitin-like protein-conjugating systems also play roles in protein degradation at the ER. The ER is continuous with the nuclear envelope (NE), which consists of the outer nuclear membrane (ONM) and inner nuclear membrane (INM). While ERAD is known also to occur at the NE, only some of the ERAD ubiquitin-ligation pathways function at the INM. Protein degradation machineries in the ER/NE target a wide variety of substrates in multiple cellular compartments, including the cytoplasm, nucleoplasm, ER lumen, ER membrane, and the NE. Here, we review the protein degradation machineries of the ER and NE and the underlying mechanisms dictating recognition and processing of substrates by these machineries.

    ...
  • 3.The DUB blade goes snicker-snack: Novel ubiquitin cleavage by a Legionella effector protein

    • 关键词:
    • ENZYMES

    Recently, a Legionella pneumophila effector protein was shown to have an unprecedented ATP-independent ubiquitin ligase activity that couples phosphoribosylated ubiquitin (PRUb) to serine residues of host proteins. A new study published in Cell Research by Qiu et al. reveals that another Legionella effector protein, SidJ, catalyzes deubiquitination of PR-Ub by cleavage of the substrate-linked phosphodiester bond.

    ...
  • 4.Proteasome Structure and Assembly

    • 关键词:
    • proteasome; ubiquitin proteasome system; proteasome assembly; proteindegradation;YEAST 26S PROTEASOME; REVEALS FUNCTIONAL ASYMMETRIES; MAMMALIAN 20SPROTEASOMES; TRANSCRIPTION FACTOR NRF1; 19S REGULATORY PARTICLE;UBIQUITIN-LIKE PROTEIN; AAA PLUS UNFOLDASE; BETA-TYPE SUBUNITS;CRYSTAL-STRUCTURE; CORE PARTICLE

    The eukaryotic 26S proteasome is a large multisubunit complex that degrades the majority of proteins in the cell under normal conditions. The 26S proteasome can be divided into two subcomplexes: the 19S regulatory particle and the 20S core particle. Most substrates are first covalently modified by ubiquitin, which then directs them to the proteasome. The function of the regulatory particle is to recognize, unfold, deubiquitylate, and translocate substrates into the core particle, which contains the proteolytic sites of the proteasome. Given the abundance and subunit complexity of the proteasome, the assembly of this similar to 2.5 MDa complex must be carefully orchestrated to ensure its correct formation. In recent years, significant progress has been made in the understanding of proteasome assembly, structure, and function. Technical advances in cryo-electron microscopy have resulted in a series of atomic cryo-electron microscopy structures of both human and yeast 26S proteasomes. These structures have illuminated new intricacies and dynamics of the proteasome. In this review, we focus on the mechanisms of proteasome assembly, particularly in light of recent structural information. (C) 2017 Elsevier Ltd. All rights reserved.

    ...
  • 5.The DUB blade goes snicker-snack: Novel ubiquitin cleavage by a Legionella effector protein

    • 关键词:
    • ENZYMES

    Recently, a Legionella pneumophila effector protein was shown to have an unprecedented ATP-independent ubiquitin ligase activity that couples phosphoribosylated ubiquitin (PRUb) to serine residues of host proteins. A new study published in Cell Research by Qiu et al. reveals that another Legionella effector protein, SidJ, catalyzes deubiquitination of PR-Ub by cleavage of the substrate-linked phosphodiester bond.

    ...
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