ECEL1 novel mutation in arthrogryposis type 5D: A molecular dynamic simulation study

Author:

Ahangari Najmeh12,Gholampour‐Faroji Nazanin3,Doosti Mohammad2,Ghayour Mobarhan Majid4ORCID,Shahrokhzadeh Sima2,Karimiani Ehsan Ghayoor256,Hasani‐sabzevar Bahareh7,Torbati Paria Najarzadeh2ORCID,Haddad‐Mashadrizeh Aliakbar8

Affiliation:

1. Innovative Medical Research Center, Faculty of Medicine, Mashhad Medical Science Islamic Azad University Mashhad Iran

2. Department of Medical Genetics Next Generation Genetic Polyclinic Mashhad Iran

3. Biotechnology Department Iranian Research Organization for Science and Technology (IROST) Tehran Iran

4. Metabolic Syndrome Research Center, School of Medicine Mashhad University of Medical Sciences Mashhad Iran

5. Molecular and Clinical Sciences Institute St. George's University of London, Cranmer Terrace London UK

6. Department of Molecular Genetics Next Generation Genetic Polyclinic Mashhad Iran

7. Advanced computational center Khayyam Innovation Ecosystem Mashhad Iran

8. Industrial Biotechnology Research Group, Institute of Biotechnology Ferdowsi University of Mashhad Mashhad Iran

Abstract

AbstractBackgroundECEL1 has been presented as a causal gene of an autosomal recessive form distal arthrogryposis (DA) which affects the distal joints. The present study focused on bioinformatic analysis of a novel mutation in ECEL1, c.535A>G (p. Lys179Glu), which was reported in a family with 2 affected boys and fetus through prenatal diagnosis.MethodsWhole‐exome sequencing data analyzed followed by molecular dynamic (MD) simulation of native ECEL1 protein and mutant structures using GROMACS software. One variant c.535A>G, p. Lys179Glu (homozygous) on gene ECEL1 has been detected in proband which was validated in all family members through Sanger sequencing.ResultsWe demonstrated remarkable constructional differences by MD simulation between wild‐type and novel mutant of ECEL1 gene. The reason for the lack of the Zn ion binding in mutation in the ECEL1 protein has been identified by average atomic distance and SMD analysis among the wild‐type and mutant.ConclusionOverall, in this study, we present knowledge of the effect of the studied variant on the ECEL1 protein leading to neurodegenerative disorder in humans. This work may hopefully be supplementary to classical molecular dynamics to dissolve the mutational effects of cofactor‐dependent protein.

Publisher

Wiley

Subject

Genetics (clinical),Genetics,Molecular Biology

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