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Motta, M.

Publications and source records attributed to Motta, M..

2 recordsLinked to original sources

Carbohydrate-active enzymes of giant viruses: Molecular and biochemical characterization of glycosyl hydrolases from algae-infecting chloroviruses

Microbial hydrolases are considered to be promising enzymes for pathogen control. Bacterial and viral chitinases of the glycosyl hydrolase (GH) 18 family are important biological macromolecules with antifungal and anti-insect activity. Chloroviruses, nucleocytoplasmic large DNA viruses (NCLDVs) that infect unicellular green algae have a considerable number of genes involved in carbohydrate metabolism, including the chitinase GH18 family. In this study, we investigated the abundance and diversity of chitinases in chlorovirus genomes using a combination of silico and in vitro strategies, and characterized these enzymes at a molecular and biochemical level. Different enzymatic profiles were observed in Chlorovirus subgenera revealing the different viral machinery related to host species. We performed a comprehensive biochemical characterization of three heterologous expressed GH18 domains, which revealed their endo and exochitinase activity and thermostability. Crystallographic analysis of the GH18 domain by X-ray diffraction yielded a structure at 1.0 [A] resolution, representing the highest-resolution structure reported to date for a giant viral protein and showing lower predominancy of residue coevolution compared GH18 chitinases from other organisms. Additionally, our binding site characterization predicted high conservation in betachloroviruses and gammachloroviruses, and less so in alphachloroviruses. Lastly, these enzymes did not inhibit fungal growth of medical and agricultural importance species in vitro but exhibited high inhibitory activity against different algae at nanogram/mL range. Together, our experimental and computational data show that evolutionary events may contribute to maintaining viral chitinases enzymatic activity and specificity. These findings highlight the potential of virus-derived enzymes as promising new biotechnological tools for microbial control against different algal strains.

microbiology↗

Activation of Wnt/β-catenin signalling by mutually exclusive FBXW11 and CTNNB1 hotspot mutations drives salivary gland basal cell adenoma

Wnt signalling must be just right to promote tumour growth. Basal cell adenoma (BCA) and basal cell adenocarcinoma (BCAC) of the salivary gland are rare tumours that can be difficult to distinguish from each other and other salivary gland tumour subtypes. Due to their rarity, the genetic profiles of BCA and BCAC have not been extensively explored. Using whole-exome and transcriptome sequencing of BCA and BCAC cohorts, we identify a novel recurrent FBXW11 missense mutation (p.F517S) in BCA, that was mutually exclusive with the previously reported CTNNB1 p.I35T gain-of-function (GoF) mutation. These driver events collectively accounted for 94% of BCAs. In vitro, mutant FBXW11 had a dominant negative affect, characterised by defective binding to {beta}-catenin and the accumulation of {beta}-catenin in cells. This was consistent with the nuclear expression of {beta}-catenin observed in BCA cases harbouring the FBXW11 p.F517S mutation and activation of the Wnt/{beta}-catenin pathway. The genomic profiles of BCAC were distinct from BCA, with hotspot DICER1 and HRAS mutations and putative driver mutations affecting PI3K/AKT and NF-{kappa}B signalling pathway genes. A single BCAC, which may represent a malignant transformation of BCA, harboured the recurrent FBXW11 mutation. These findings have important implications for the diagnosis and treatment of BCA and BCAC, which, despite histopathologic overlap, may be unrelated entities.

cancer biology↗