Protein-protein interactions (PPIs) play a key role in defining protein functions in biological systems. Aberrant PPIs can have drastic impacts on basic cellular processes, and thus lead to various human diseases. PPI interfaces have recently become a new paradigm for therapeutics. Therefore, mapping PPIs and their interaction interfaces in living cells is not only fundamental to understanding protein function and regulation but also vital to identifying potential targets for better therapeutics. Previously we have developed an integrated approach termed QTAX to effectively capture and identify static and dynamic protein interactions in order to provide a more authentic snapshot of protein interaction networks as they exist in living cells. To advance the study of in vivo PPIs beyond interaction identities, we have successfully developed an in vivo cross-linking mass spectrometry (XL-MS) platform based on a novel membrane permeable, enrichable and MS-cleavable cross-linker, i.e. Azide-A-DSBSO, and multistage tandem mass spectrometry (MSn). This strategy has been successfully applied to map PPIs at the proteome scale and the protein complex level. This technological advancement signifies a leap forward in studying in vivo PPIs and offers an essential framework for us to further develop novel technologies towards the ultimate goal of defining in vivo dynamics of protein complexes at the systems level. The 26S proteasome is the protein complex responsible for ubiquitin/ATP dependent protein degradation. Dysregulation of proteasomal degradation has been implicated in many diseases. Up to now, the high-resolution structure of the 26S proteasome remains unresolved and its regulation is poorly defined. Therefore, detailed structural analysis of the human 26S proteasome complex will be critical to uncover molecular details underlying its function and regulation. To this end, we propose 1) to develop the next generation of multifunctional cross-linkers for defining PPIs of protein complexes in living cells, 2) to develop a quantitative XL-MS strategy for charting in vivo dynamics of the human 26S proteasome upon H2O2-induced oxidative stress, 3) to dissect the interaction dynamics of the human 26S proteasome and its associated deubiquitinases. The proposed experiments will not only result in an exciting technological advancement in proteomics research, but also help address important yet unresolved biological questions associated with proteasomal biology and its relevance to human diseases.

Public Health Relevance

Protein-protein interactions are fundamental to defining protein function and regulation in biological systems. Development of novel XL-MS technologies for comprehensive characterization of in vivo interaction and structural dynamics of the human 26S proteasome will enable the elucidation of molecular mechanisms underlying the proteasomal degradation and the identification of potential molecular targets for improved therapeutics targeting components.

Agency
National Institute of Health (NIH)
Institute
National Institute of General Medical Sciences (NIGMS)
Type
Research Project (R01)
Project #
5R01GM074830-13
Application #
9531372
Study Section
Enabling Bioanalytical and Imaging Technologies Study Section (EBIT)
Program Officer
Wu, Mary Ann
Project Start
2005-08-01
Project End
2019-07-31
Budget Start
2018-08-01
Budget End
2019-07-31
Support Year
13
Fiscal Year
2018
Total Cost
Indirect Cost
Name
University of California Irvine
Department
Physiology
Type
Schools of Medicine
DUNS #
046705849
City
Irvine
State
CA
Country
United States
Zip Code
92617
Yu, Clinton; Huang, Lan (2018) Cross-Linking Mass Spectrometry: An Emerging Technology for Interactomics and Structural Biology. Anal Chem 90:144-165
Gutierrez, Craig B; Block, Sarah A; Yu, Clinton et al. (2018) Development of a Novel Sulfoxide-Containing MS-Cleavable Homobifunctional Cysteine-Reactive Cross-Linker for Studying Protein-Protein Interactions. Anal Chem 90:7600-7607
Alkafeef, Selma S; Yu, Clinton; Huang, Lan et al. (2018) Wor1 establishes opaque cell fate through inhibition of the general co-repressor Tup1 in Candida albicans. PLoS Genet 14:e1007176
Sement, François M; Suematsu, Takuma; Zhang, Liye et al. (2018) Transcription initiation defines kinetoplast RNA boundaries. Proc Natl Acad Sci U S A 115:E10323-E10332
Gu, Zhu Chao; Wu, Edwin; Sailer, Carolin et al. (2017) Ubiquitin orchestrates proteasome dynamics between proliferation and quiescence in yeast. Mol Biol Cell 28:2479-2491
Zhang, Liye; Sement, Francois M; Suematsu, Takuma et al. (2017) PPR polyadenylation factor defines mitochondrial mRNA identity and stability in trypanosomes. EMBO J 36:2435-2454
Wang, Xiaorong; Chemmama, Ilan E; Yu, Clinton et al. (2017) The proteasome-interacting Ecm29 protein disassembles the 26S proteasome in response to oxidative stress. J Biol Chem 292:16310-16320
Wang, Xiaorong; Cimermancic, Peter; Yu, Clinton et al. (2017) Molecular Details Underlying Dynamic Structures and Regulation of the Human 26S Proteasome. Mol Cell Proteomics 16:840-854
Kim, Jin-Kwang; Liu, Jinqiang; Hu, Xichan et al. (2017) Structural Basis for Shelterin Bridge Assembly. Mol Cell 68:698-714.e5
Scott, Harry; Kim, Jin-Kwang; Yu, Clinton et al. (2017) Spatial Organization and Molecular Interactions of the Schizosaccharomyces pombe Ccq1-Tpz1-Poz1 Shelterin Complex. J Mol Biol 429:2863-2872

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