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Enzymatic Logic of Ubiquitin Chain Assembly. | LitMetric

Enzymatic Logic of Ubiquitin Chain Assembly.

Front Physiol

Department of Chemistry, University of Massachusetts, Amherst, MA, United States.

Published: July 2019

AI Article Synopsis

  • - Protein ubiquitination plays a crucial role in various biochemical pathways within eukaryotic cells, and the type of ubiquitin modification affects the fate of the ubiquitinated proteins.
  • - Recent research has focused on the ways ubiquitin chains are formed, comparing two main models: one where ubiquitin is added one at a time and another where a pre-formed chain is attached to a substrate.
  • - Understanding how these chains are assembled is important for biomedical applications since irregularities in this process can lead to diseases; there's also growing interest in creating drugs that target specific proteins for degradation through controlled ubiquitination.

Article Abstract

Protein ubiquitination impacts virtually every biochemical pathway in eukaryotic cells. The fate of a ubiquitinated protein is largely dictated by the type of ubiquitin modification with which it is decorated, including a large variety of polymeric chains. As a result, there have been intense efforts over the last two decades to dissect the molecular details underlying the synthesis of ubiquitin chains by ubiquitin-conjugating (E2) enzymes and ubiquitin ligases (E3s). In this review, we highlight these advances. We discuss the evidence in support of the alternative models of transferring one ubiquitin at a time to a growing substrate-linked chain (sequential addition model) versus transferring a pre-assembled ubiquitin chain (en bloc model) to a substrate. Against this backdrop, we outline emerging principles of chain assembly: multisite interactions, distinct mechanisms of chain initiation and elongation, optimal positioning of ubiquitin molecules that are ultimately conjugated to each other, and substrate-assisted catalysis. Understanding the enzymatic logic of ubiquitin chain assembly has important biomedical implications, as the misregulation of many E2s and E3s and associated perturbations in ubiquitin chain formation contribute to human disease. The resurgent interest in bifunctional small molecules targeting pathogenic proteins to specific E3s for polyubiquitination and subsequent degradation provides an additional incentive to define the mechanisms responsible for efficient and specific chain synthesis and harness them for therapeutic benefit.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC6624479PMC
http://dx.doi.org/10.3389/fphys.2019.00835DOI Listing

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