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New insights into the pathogenicity of TMEM165 variants using structural modeling based on AlphaFold 2 predictions

Authors :
Legrand, Dominique
Herbaut, Mélissandre
Durin, Zoé
Brysbaert, Guillaume
Bardor, Muriel
Lensink, Marc
Foulquier, François
Unité de Glycobiologie Structurale et Fonctionnelle - UMR 8576 (UGSF)
Université de Lille-Centre National de la Recherche Scientifique (CNRS)
Laboratoire de Glycobiologie et Matrice Extracellulaire Végétale (Glyco-MEV)
Université de Rouen Normandie (UNIROUEN)
Normandie Université (NU)-Normandie Université (NU)
Source :
Computational and Structural Biotechnology Journal, Computational and Structural Biotechnology Journal, 2023, 21, pp.3424-3436. ⟨10.1016/j.csbj.2023.06.015⟩
Publication Year :
2023
Publisher :
HAL CCSD, 2023.

Abstract

International audience; TMEM165 is a Golgi protein playing a crucial role in Mn 2+ transport, and whose mutations in patients are known to cause Congenital Disorders of Glycosylation. Some of those mutations affect the highly-conserved consensus motifs E-φ-G-D-[KR]-[TS] characterizing the CaCA2/UPF0016 family, presumably important for the transport of Mn 2+ which is essential for the function of many Golgi glycosylation enzymes. Others, like the G > R 304 mutation, are far away from these motifs in the sequence. Until recently, the classical membrane protein topology prediction methods were unable to provide a clear picture of the organization of TMEM165 inside the cell membrane, or to explain in a convincing manner the impact of patient and experimentally-generated mutations on the transporter function of TMEM165. In this study, AlphaFold 2 was used to build a TMEM165 model that was then refined by molecular dynamics simulation with membrane lipids and water. This model provides a realistic picture of the 3D protein scaffold formed from a twofold repeat of three transmembrane helices/domains where the consensus motifs face each other to form a putative acidic cation-binding site at the cytosolic side of the protein. It sheds new light on the impact of mutations on the transporter function of TMEM165, found in patients and studied experimentally in vitro, formerly and within this study. More particularly and very interestingly, this model explains the impact of the G > R 304 mutation on TMEM165's function. These findings provide great confidence in the predicted TMEM165 model whose structural features are discussed in the study and compared to other structural and functional TMEM165 homologs from the CaCA2/UPF0016 family and the LysE superfamily.

Details

Language :
English
ISSN :
20010370
Database :
OpenAIRE
Journal :
Computational and Structural Biotechnology Journal, Computational and Structural Biotechnology Journal, 2023, 21, pp.3424-3436. ⟨10.1016/j.csbj.2023.06.015⟩
Accession number :
edsair.od......4254..b5d6649e240c463b2aba0b09251409b7