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Rigobello, L.

Publications and source records attributed to Rigobello, L..

2 recordsLinked to original sources

Computational screening and automatic filtering for the discovery of novel inhibitors of TMPRSS2, a type II transmembrane serine protease

Transmembrane Serine Protease 2 (TMPRSS2) is a membrane protein of the type II serine protease family of enzymes implied in epithelial homeostasis. It is involved in several diseases, notably prostate cancer and SARS-CoV-2 infections. Over the years, only a few tested TMPRSS2 inhibitors showed consistent results. This prompted us to select it as target of structure-based virtual screening, to search for novel inhibitors among a library of 475,770 small molecules. Two sets of TMPRSS2 structures were selected, one taken from molecular dynamics simulations, the other from recently solved X-ray crystallographic structures. We designed a workflow to filter docking results in a reproducible way, allowing for a faster and more reliable selection. The program uses four metrics: the pose consistency of the ligand, docking score, number of interactions with key protein residues, and cluster analysis. This led to the selection and visual inspection of two sets of 500 compounds, which yielded 10 reasonable hit candidates.

bioinformatics↗

A computational study to assess the pathogenicity of single or combinations of missense variants on respiratory Complex I

Variants found in the respiratory complex I (CI) subunit genes encoded by mitochondrial DNA can cause severe genetic diseases. However, it is difficult to establish a priori whether a single or a combination of CI variants may impact oxidative phosphorylation. Here we propose a computational approach based on coarse-grained molecular dynamics simulations. One of the primary CI variants (m.14484T>C/MT-ND6) associated with the Leber hereditary optic neuropathy was used as a test case. This variant was investigated alone or in combination with two additional rare CI variants whose role remains uncertain. We found that the primary variant stiffens CI dynamics in the crucial E-channel region and that one of the other variants, located in the vicinity of the primary one, further worsens the stiffening. This approach may be extended to other variants candidate to exert a pathogenic impact on CI function, or to investigate the interaction of multiple variants. TeaserMolecular dynamics is able to predict the functional impact of variants hitting respiratory complex I mitochondrial genes.

biophysics↗