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Riechmann, C.

Publications and source records attributed to Riechmann, C..

2 recordsLinked to original sources

Structural basis for antagonism of the ubiquitin ligase BIRC6 by SMAC

Apoptosis, a form of genetically programmed cell death, can be triggered by either internal or external signals ultimately activating caspases, a family of proteases1. Certain members of the inhibitors of apoptosis (IAP) family are sentinel proteins preventing untimely cell death by inhibiting caspases. IAPs are in turn regulated by antagonists including second mitochondria-derived activator of caspase (SMAC). Baculoviral IAP repeat-containing protein 6 (BIRC6), a giant IAP, possesses dual E2/E3 ubiquitin ligase activity and is implicated in apoptosis via caspase inhibition2-7. How this is achieved remains unknown. Here we show BIRC6 directly restricts activated caspase-3, and ubiquitinates activated caspases-3, -7 and -9 working exclusively with the non-canonical E1, UBA6. Importantly, we show SMAC supresses both mechanisms. Cryo-electron microscopy (cryo-EM) structures of BIRC6 alone and in complex with SMAC reveal BIRC6 exists as an anti-parallel dimer with a substrate-binding module juxtaposed to the catalytic domain at each end, and we identify multiple highly conserved unannotated domains important for architecture and function. Through our structural, biochemical and biophysical findings, we discover SMAC engages BIRC6 at multiple sites resulting in a sub-nanomolar affinity enabling SMAC to competitively displace caspases, thus antagonising BIRC6-mediated caspase inhibition.

biochemistry↗

Computational Analysis of Dynamic Allostery and Control in the three SARS-CoV-2 non-structural proteins

Severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2), which caused the COVID-19 pandemic, has no vaccine or antiviral drugs available to the public, at the time of writing. The virus non-structural proteins are promising drug targets because of their vital role in the viral cycle. A significant body of work has been focused on finding inhibitors which covalently and competitively bind the active site of the non-structural proteins, but little has been done to address regions other than the active site, i.e. for non-competitive inhibition. Here we extend previous work on the SARS-CoV-2 Mpro (nsp5) to three other SARS-CoV-2 proteins: host shutoff factor (nsp1), papain-like protease (nsp3, also known as PLpro) and RNA-dependent RNA-polymerase (nsp12, also known as RdRp) in complex with nsp7 and nsp8 cofactors. Using open-source software (DDPT) to construct Elastic Network Models (ENM) of the chosen proteins we analyse their fluctuation dynamics and thermodynamics, as well as using this protein family to study convergence and robustness of the ENM. Exhaustive 2-point mutational scans of the ENM and their effect on fluctuation free energies suggest several new candidate regions, distant from the active site, for control of the proteins function, which may assist the drug development based on the current small molecule binding screens. The results also provide new insights, including non-additive effects of double-mutation or inhibition, into the active biophysical research field of protein fluctuation allostery and its underpinning dynamical structure.

biophysics↗