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Autosomal recessive variants c.953A>C and c.97-1G>C in NSUN2 causing intellectual disability: a molecular dynamics simulation study of loss-of-function mechanisms

INTRODUCTION: Intellectual disability (ID) is a clinically and genetically heterogeneous disorder. It drastically affects the learning capabilities of patients and eventually reduces their IQ level below 70. METHODS: The current genetic study ascertained two consanguineous Pakistani families sufferi...

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Autores principales: Muhammad, Nazif, Hussain, Syeda Iqra, Rehman, Zia Ur, Khan, Sher Alam, Jan, Samin, Khan, Niamatullah, Muzammal, Muhammad, Abbasi, Sumra Wajid, Kakar, Naseebullah, Khan, Muzammil Ahmad, Mirza, Muhammad Usman, Muhammad, Noor, Khan, Saadullah, Wasif, Naveed
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10249782/
https://www.ncbi.nlm.nih.gov/pubmed/37305761
http://dx.doi.org/10.3389/fneur.2023.1168307
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author Muhammad, Nazif
Hussain, Syeda Iqra
Rehman, Zia Ur
Khan, Sher Alam
Jan, Samin
Khan, Niamatullah
Muzammal, Muhammad
Abbasi, Sumra Wajid
Kakar, Naseebullah
Rehman, Zia Ur
Khan, Muzammil Ahmad
Mirza, Muhammad Usman
Muhammad, Noor
Khan, Saadullah
Wasif, Naveed
author_facet Muhammad, Nazif
Hussain, Syeda Iqra
Rehman, Zia Ur
Khan, Sher Alam
Jan, Samin
Khan, Niamatullah
Muzammal, Muhammad
Abbasi, Sumra Wajid
Kakar, Naseebullah
Rehman, Zia Ur
Khan, Muzammil Ahmad
Mirza, Muhammad Usman
Muhammad, Noor
Khan, Saadullah
Wasif, Naveed
author_sort Muhammad, Nazif
collection PubMed
description INTRODUCTION: Intellectual disability (ID) is a clinically and genetically heterogeneous disorder. It drastically affects the learning capabilities of patients and eventually reduces their IQ level below 70. METHODS: The current genetic study ascertained two consanguineous Pakistani families suffering from autosomal recessive intellectual developmental disorder-5 (MRT5). We have used exome sequencing followed by Sanger sequencing to identify the disease-causing variants. RESULTS AND DISCUSSION: Genetic analysis using whole exome sequencing in these families identified two novel mutations in the NSUN2 (NM_017755.5). Family-A segregated a novel missense variant c.953A>C; p.Tyr318Ser in exon-9 of the NSUN2. The variant substituted an amino acid Tyr318, highly conserved among different animal species and located in the functional domain of NSUN2 known as “SAM-dependent methyltransferase RsmB/NOP2-type”. Whereas in family B, we identified a novel splice site variant c.97-1G>C that affects the splice acceptor site of NSUN2. The identified splice variant (c.97-1G>C) was predicted to result in the skipping of exon-2, which would lead to a frameshift followed by a premature stop codon (p. His86Profs(*)16). Furthermore, it could result in the termination of translation and synthesis of dysfunctional protein, most likely leading to nonsense-mediated decay. The dynamic consequences of NSUN2 missense variant was further explored together with wildtype through molecular dynamic simulations, which uncovered the disruption of NSUN2 function due to a gain in structural flexibility. The present molecular genetic study further extends the mutational spectrum of NSUN2 to be involved in ID and its genetic heterogeneity in the Pakistani population.
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spelling pubmed-102497822023-06-09 Autosomal recessive variants c.953A>C and c.97-1G>C in NSUN2 causing intellectual disability: a molecular dynamics simulation study of loss-of-function mechanisms Muhammad, Nazif Hussain, Syeda Iqra Rehman, Zia Ur Khan, Sher Alam Jan, Samin Khan, Niamatullah Muzammal, Muhammad Abbasi, Sumra Wajid Kakar, Naseebullah Rehman, Zia Ur Khan, Muzammil Ahmad Mirza, Muhammad Usman Muhammad, Noor Khan, Saadullah Wasif, Naveed Front Neurol Neurology INTRODUCTION: Intellectual disability (ID) is a clinically and genetically heterogeneous disorder. It drastically affects the learning capabilities of patients and eventually reduces their IQ level below 70. METHODS: The current genetic study ascertained two consanguineous Pakistani families suffering from autosomal recessive intellectual developmental disorder-5 (MRT5). We have used exome sequencing followed by Sanger sequencing to identify the disease-causing variants. RESULTS AND DISCUSSION: Genetic analysis using whole exome sequencing in these families identified two novel mutations in the NSUN2 (NM_017755.5). Family-A segregated a novel missense variant c.953A>C; p.Tyr318Ser in exon-9 of the NSUN2. The variant substituted an amino acid Tyr318, highly conserved among different animal species and located in the functional domain of NSUN2 known as “SAM-dependent methyltransferase RsmB/NOP2-type”. Whereas in family B, we identified a novel splice site variant c.97-1G>C that affects the splice acceptor site of NSUN2. The identified splice variant (c.97-1G>C) was predicted to result in the skipping of exon-2, which would lead to a frameshift followed by a premature stop codon (p. His86Profs(*)16). Furthermore, it could result in the termination of translation and synthesis of dysfunctional protein, most likely leading to nonsense-mediated decay. The dynamic consequences of NSUN2 missense variant was further explored together with wildtype through molecular dynamic simulations, which uncovered the disruption of NSUN2 function due to a gain in structural flexibility. The present molecular genetic study further extends the mutational spectrum of NSUN2 to be involved in ID and its genetic heterogeneity in the Pakistani population. Frontiers Media S.A. 2023-05-25 /pmc/articles/PMC10249782/ /pubmed/37305761 http://dx.doi.org/10.3389/fneur.2023.1168307 Text en Copyright © 2023 Muhammad, Hussain, Rehman, Khan, Jan, Khan, Muzammal, Abbasi, Kakar, Rehman, Khan, Mirza, Muhammad, Khan and Wasif. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Neurology
Muhammad, Nazif
Hussain, Syeda Iqra
Rehman, Zia Ur
Khan, Sher Alam
Jan, Samin
Khan, Niamatullah
Muzammal, Muhammad
Abbasi, Sumra Wajid
Kakar, Naseebullah
Rehman, Zia Ur
Khan, Muzammil Ahmad
Mirza, Muhammad Usman
Muhammad, Noor
Khan, Saadullah
Wasif, Naveed
Autosomal recessive variants c.953A>C and c.97-1G>C in NSUN2 causing intellectual disability: a molecular dynamics simulation study of loss-of-function mechanisms
title Autosomal recessive variants c.953A>C and c.97-1G>C in NSUN2 causing intellectual disability: a molecular dynamics simulation study of loss-of-function mechanisms
title_full Autosomal recessive variants c.953A>C and c.97-1G>C in NSUN2 causing intellectual disability: a molecular dynamics simulation study of loss-of-function mechanisms
title_fullStr Autosomal recessive variants c.953A>C and c.97-1G>C in NSUN2 causing intellectual disability: a molecular dynamics simulation study of loss-of-function mechanisms
title_full_unstemmed Autosomal recessive variants c.953A>C and c.97-1G>C in NSUN2 causing intellectual disability: a molecular dynamics simulation study of loss-of-function mechanisms
title_short Autosomal recessive variants c.953A>C and c.97-1G>C in NSUN2 causing intellectual disability: a molecular dynamics simulation study of loss-of-function mechanisms
title_sort autosomal recessive variants c.953a>c and c.97-1g>c in nsun2 causing intellectual disability: a molecular dynamics simulation study of loss-of-function mechanisms
topic Neurology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10249782/
https://www.ncbi.nlm.nih.gov/pubmed/37305761
http://dx.doi.org/10.3389/fneur.2023.1168307
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