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Abdul Rehman, S. A.

Publications and source records attributed to Abdul Rehman, S. A..

2 recordsLinked to original sources

Discovery and characterization of non-canonical E2 conjugating enzymes

E2 conjugating enzymes (E2s) play a central role in the enzymatic cascade that leads to the attachment of ubiquitin to a substrate. This process, termed ubiquitylation is fundamental for maintaining cellular homeostasis and impacts almost all cellular process. By interacting with multiple E3 ligases, E2s direct the ubiquitylation landscape within the cell. Since its discovery, ubiquitylation has been regarded as a post-translational modification that specifically targets lysine side chains (canonical ubiquitylation). We used MALDI-TOF Mass Spectrometry to discover and characterize a family of E2s that are instead able to conjugate ubiquitin to serine and/or threonine. We employed protein modelling and prediction tools to identify the catalytic determinants that these E2s use to interact with ubiquitin as well as their substrates. Our results join a stream of recent literature that challenges the definition of ubiquitylation as an exquisitely lysine-specific modification and provide crucial insights into the missing E2 element responsible for non-canonical ubiquitylation. TeaserE2 conjugating enzymes (E2s) play a fundamental role in the attachment of ubiquitin to its substrate. Most E2s can form an isopeptide bond between the ubiquitin C- terminus and a lysine present on the substrate. We identified a family of E2s, UBE2Q1 and UBE2Q2, able to target amino acids other than lysine. Currently nothing is known about their mechanism of action and what substrates they are targeting, even though genetic ablation of UBE2Q1 produce substantial infertility in mice. Here we answer the question about what the key residues beneath their peculiar activity are. We discovered that UBE2Q1 target the lysine-free cytoplasmic domain of the Golgi resident protein Beta-1,4-galactosyltransferase 1, providing an interesting precedent for the role of non-canonical ubiquitylation in eukaryotic cells.

biochemistry↗

Mechanism of activation and regulation of Deubiquitinase activity in MINDY1 and MINDY2

Of the eight distinct polyubiquitin chains that can be assembled, K48-linked ubiquitin is the most well-understood linkage and modification of proteins with K48 chains targets the modified protein for degradation. By removing ubiquitin from substrates or trimming ubiquitin chains, deubiquitinases (DUBs) can modulate the outcome of ubiquitylation. MINDY1 and MINDY2 are members of the MINDY family of DUBs that have exquisite specificity for cleaving K48-linked polyubiquitin. Being recently discovered DUBs, we have a poor understanding of their catalytic mechanism. By analysing crystal structures of MINDY1 alone and in complex with monoubiquitin or K48-linked ubiquitin chains, we here reveal how substrate interaction relieves autoinhibition and activates the DUB. Further, our analyses reveal a non-canonical catalytic triad composed of Cys-His-Thr and explain how these DUBs sense both ubiquitin chain length and linkage type to trim K48-linked ubiquitin chains. Our findings highlight the multiple layers of regulation modulating DUB activity in MINDY1 and MINDY2. SynopsisO_LIStructure of MINDY1 in complex with K48-linked diUb reveals how K48-linked polyUb is recognized and cleaved C_LIO_LIThe Cys loop mediates autoinhibition of the DUB and substrate binding at the S1 and S1 sites relieves autoinhibition and activates the enzyme for catalysis C_LIO_LIMINDY1 uses a non-canonical catalytic triad composed of Cys-His-Thr C_LIO_LIMINDY1 has five ubiquitin binding sites within its catalytic domain and switches from exo to endo cleavage in a ubiquitin chain length-dependent manner C_LI

biochemistry↗