A1 Refereed original research article in a scientific journal

Non-syndromic Mitral Valve Dysplasia Mutation Changes the Force Resilience and Interaction of Human Filamin A.




AuthorsTatu J.K. Haataja, Rafael C. Bernardi, Simon,Lecointe, Romain Capoulade, Jean Merot, Ulla Pentikäinen

Publication year2019

JournalStructure

Journal name in sourceStructure (London, England : 1993)

Journal acronymStructure

Volume27

Issue1

First page 102

Last page112.e4

Number of pages15

ISSN0969-2126

DOIhttps://doi.org/10.1016/j.str.2018.09.007


Abstract
Filamin A (FLNa), expressed in endocardial endothelia during fetal valve morphogenesis, is key in cardiac development. Missense mutations in FLNa cause non-syndromic mitral valve dysplasia (FLNA-MVD). Here, we aimed to reveal the currently unknown underlying molecular mechanism behind FLNA-MVD caused by the FLNa P637Q mutation. The solved crystal structure of the FLNa3-5 P637Q revealed that this mutation causes only minor structural changes close to mutation site. These changes were observed to significantly affect FLNa's ability to transmit cellular force and to interact with its binding partner. The performed steered molecular dynamics simulations showed that significantly lower forces are needed to split domains 4 and 5 in FLNA-MVD than with wild-type FLNa. The P637Q mutation was also observed to interfere with FLNa's interactions with the protein tyrosine phosphatase PTPN12. Our results provide a crucial step toward understanding the molecular bases behind FLNA-MVD, which is critical for the development of drug-based therapeutics.



Last updated on 2024-26-11 at 18:11