A novel homozygous FAM92A gene (CIBAR1) variant further confirms its association with non‐syndromic postaxial polydactyly type A9 (PAPA9)

Author:

Umair Muhammad1,Ahmed Zaheer2,Shaker Bilal3,Bilal Muhammad4,Al Abdulrahman Abdulkareem1,Khan Hammal25,Jawad Khan Muhammad2,Alfadhel Majid16

Affiliation:

1. Medical Genomics Research Department, King Abdullah International Medical Research Center (KAIMRC), King Saud Bin Abdulaziz University for Health Sciences Ministry of National Guard Health Affairs (MNGH) Riyadh Saudi Arabia

2. Department of Biosciences COMSATS Institute of Information Technology Islamabad Pakistan

3. Global AI Drug Discovery Center, College of Pharmacy and Graduate School of Pharmaceutical Sciences Ewha Womans University Seoul Korea

4. Department of Pathology and Laboratory Medicine Aga Khan University Karachi Pakistan

5. Department of Biochemistry, Faculty of Biological Sciences Quaid‐i‐Azam University Islamabad Pakistan

6. Genetics and Precision Medicine Department (GPM) King Abdullah Specialized Children's Hospital Riyadh Saudi Arabia

Abstract

AbstractPolydactyly is a very common digit anomaly, having extra digits in hands and/or toes. Non‐syndromic polydactyly in both autosomal dominant and autosomal recessive forms are caused by disease‐causing variants in several genes, including GLI1, GLI3, ZNF141, FAM92A, IQCE, KIAA0825, MIPOL1, STKLD1, PITX1, and DACH1. Whole exome sequencing (WES) followed by bi‐directional Sanger sequencing was performed for the single affected individual (II‐1) of the family to reveal the disease causative variant/gene. 3D protein modeling and structural molecular docking was performed to determine the effect of the identified mutation on the overall protein structure. WES revealed a novel biallelic missense variant (c.472G>C; p.Ala158Pro) in exon 6 of the FAM92A gene. The identified variant segregated perfectly with the disease phenotype using Sanger sequencing. Furthermore, Insilco analysis revealed that the variant significantly changes the protein secondary structure, and substantially impact the stability of FAM92A. We report the second FAM92A disease‐causing mutation associated with recessive non‐syndromic postaxial polydactyly. The data further confirms the contribution of FAM92A in limb development and patterning.

Funder

King Abdullah International Medical Research Center

Publisher

Wiley

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