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Exploring the conformational dynamics and thermodynamics of EGFR S768I and G719X + S768I mutations in non-small cell lung cancer: An in silico approaches

Non-small cell lung cancer (NSCLC) is often driven by mutations in the epidermal growth factor receptor (EGFR) gene. However, rare mutations such as G719X and S768I lack standard anti-EGFR targeted therapies. Understanding the structural differences between wild-type EGFR and these rare mutants is c...

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Autores principales: Wang, Jun-Ling, Liu, Ming-Sheng, Fu, Yu-Dong, Kan, Qiang-Bo, Li, Chun-Yan, Ma, Rong, Fang, Zhe-Wei, Liu, Hong-Xia, Li, Meng-Xian, Lv, Jia-Ling, Sang, Peng, Zhang, Chao, Li, Hong-Wei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: De Gruyter 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10685407/
https://www.ncbi.nlm.nih.gov/pubmed/38035047
http://dx.doi.org/10.1515/biol-2022-0768
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author Wang, Jun-Ling
Liu, Ming-Sheng
Fu, Yu-Dong
Kan, Qiang-Bo
Li, Chun-Yan
Ma, Rong
Fang, Zhe-Wei
Liu, Hong-Xia
Li, Meng-Xian
Lv, Jia-Ling
Sang, Peng
Zhang, Chao
Li, Hong-Wei
author_facet Wang, Jun-Ling
Liu, Ming-Sheng
Fu, Yu-Dong
Kan, Qiang-Bo
Li, Chun-Yan
Ma, Rong
Fang, Zhe-Wei
Liu, Hong-Xia
Li, Meng-Xian
Lv, Jia-Ling
Sang, Peng
Zhang, Chao
Li, Hong-Wei
author_sort Wang, Jun-Ling
collection PubMed
description Non-small cell lung cancer (NSCLC) is often driven by mutations in the epidermal growth factor receptor (EGFR) gene. However, rare mutations such as G719X and S768I lack standard anti-EGFR targeted therapies. Understanding the structural differences between wild-type EGFR and these rare mutants is crucial for developing EGFR-targeted drugs. We performed a systematic analysis using molecular dynamics simulations, essential dynamics (ED), molecular mechanics Poisson–Boltzmann surface area, and free energy calculation methods to compare the kinetic properties, molecular motion, and free energy distribution between wild-type EGFR and the rare mutants’ structures G719X-EGFR, S768I-EGFR, and G719X + S768I-EGFR. Our results showed that S768I-EGFR and G719X + S768I-EGFR have higher global and local conformational flexibility and lower thermal and global structural stability than WT-EGFR. ED analysis revealed different molecular motion patterns between S768I-EGFR, G719X + S768I-EGFR, and WT-EGFR. The A-loop and αC-helix, crucial structural elements related to the active state, showed a tendency toward active state development, providing a molecular mechanism explanation for NSCLC caused by EGFR S768I and EGFR G719C + S768I mutations. The present study may be helpful in the development of new EGFR-targeted drugs based on the structure of rare mutations. Our findings may aid in developing new targeted treatments for patients with EGFR S768I and EGFR G719X + S768I mutations.
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spelling pubmed-106854072023-11-30 Exploring the conformational dynamics and thermodynamics of EGFR S768I and G719X + S768I mutations in non-small cell lung cancer: An in silico approaches Wang, Jun-Ling Liu, Ming-Sheng Fu, Yu-Dong Kan, Qiang-Bo Li, Chun-Yan Ma, Rong Fang, Zhe-Wei Liu, Hong-Xia Li, Meng-Xian Lv, Jia-Ling Sang, Peng Zhang, Chao Li, Hong-Wei Open Life Sci Research Article Non-small cell lung cancer (NSCLC) is often driven by mutations in the epidermal growth factor receptor (EGFR) gene. However, rare mutations such as G719X and S768I lack standard anti-EGFR targeted therapies. Understanding the structural differences between wild-type EGFR and these rare mutants is crucial for developing EGFR-targeted drugs. We performed a systematic analysis using molecular dynamics simulations, essential dynamics (ED), molecular mechanics Poisson–Boltzmann surface area, and free energy calculation methods to compare the kinetic properties, molecular motion, and free energy distribution between wild-type EGFR and the rare mutants’ structures G719X-EGFR, S768I-EGFR, and G719X + S768I-EGFR. Our results showed that S768I-EGFR and G719X + S768I-EGFR have higher global and local conformational flexibility and lower thermal and global structural stability than WT-EGFR. ED analysis revealed different molecular motion patterns between S768I-EGFR, G719X + S768I-EGFR, and WT-EGFR. The A-loop and αC-helix, crucial structural elements related to the active state, showed a tendency toward active state development, providing a molecular mechanism explanation for NSCLC caused by EGFR S768I and EGFR G719C + S768I mutations. The present study may be helpful in the development of new EGFR-targeted drugs based on the structure of rare mutations. Our findings may aid in developing new targeted treatments for patients with EGFR S768I and EGFR G719X + S768I mutations. De Gruyter 2023-11-27 /pmc/articles/PMC10685407/ /pubmed/38035047 http://dx.doi.org/10.1515/biol-2022-0768 Text en © 2023 the author(s), published by De Gruyter https://creativecommons.org/licenses/by/4.0/This work is licensed under the Creative Commons Attribution 4.0 International License.
spellingShingle Research Article
Wang, Jun-Ling
Liu, Ming-Sheng
Fu, Yu-Dong
Kan, Qiang-Bo
Li, Chun-Yan
Ma, Rong
Fang, Zhe-Wei
Liu, Hong-Xia
Li, Meng-Xian
Lv, Jia-Ling
Sang, Peng
Zhang, Chao
Li, Hong-Wei
Exploring the conformational dynamics and thermodynamics of EGFR S768I and G719X + S768I mutations in non-small cell lung cancer: An in silico approaches
title Exploring the conformational dynamics and thermodynamics of EGFR S768I and G719X + S768I mutations in non-small cell lung cancer: An in silico approaches
title_full Exploring the conformational dynamics and thermodynamics of EGFR S768I and G719X + S768I mutations in non-small cell lung cancer: An in silico approaches
title_fullStr Exploring the conformational dynamics and thermodynamics of EGFR S768I and G719X + S768I mutations in non-small cell lung cancer: An in silico approaches
title_full_unstemmed Exploring the conformational dynamics and thermodynamics of EGFR S768I and G719X + S768I mutations in non-small cell lung cancer: An in silico approaches
title_short Exploring the conformational dynamics and thermodynamics of EGFR S768I and G719X + S768I mutations in non-small cell lung cancer: An in silico approaches
title_sort exploring the conformational dynamics and thermodynamics of egfr s768i and g719x + s768i mutations in non-small cell lung cancer: an in silico approaches
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10685407/
https://www.ncbi.nlm.nih.gov/pubmed/38035047
http://dx.doi.org/10.1515/biol-2022-0768
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