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Cysteine Pathogenic Variants of PMM2 Are Sensitive to Environmental Stress with Loss of Structural Stability

Congenital disorders of glycosylation (CDG) are severe metabolic disorders caused by an imbalance in the glycosylation pathway. Phosphomannomutase2 (PMM2-CDG), the most prevalent CDG, is mainly due to the disorder of PMM2. Pathogenic variants in cysteine have been found in various diseases, and cyst...

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Autores principales: Yu, Fan, Lin, Li, Sun, Jingmiao, Pan, Jicheng, Liao, Yixin, Pan, Yunfan, Bai, Guannan, Ma, Liangjian, Mao, Jianhua, Hu, Lidan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Hindawi 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9891822/
https://www.ncbi.nlm.nih.gov/pubmed/36743691
http://dx.doi.org/10.1155/2023/5964723
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author Yu, Fan
Lin, Li
Sun, Jingmiao
Pan, Jicheng
Liao, Yixin
Pan, Yunfan
Bai, Guannan
Ma, Liangjian
Mao, Jianhua
Hu, Lidan
author_facet Yu, Fan
Lin, Li
Sun, Jingmiao
Pan, Jicheng
Liao, Yixin
Pan, Yunfan
Bai, Guannan
Ma, Liangjian
Mao, Jianhua
Hu, Lidan
author_sort Yu, Fan
collection PubMed
description Congenital disorders of glycosylation (CDG) are severe metabolic disorders caused by an imbalance in the glycosylation pathway. Phosphomannomutase2 (PMM2-CDG), the most prevalent CDG, is mainly due to the disorder of PMM2. Pathogenic variants in cysteine have been found in various diseases, and cysteine residues have a potential as therapeutic targets. PMM2 harbor six cysteines; the variants Cys9Tyr (C9Y) and Cys241Ser (C241S) of PMM2 have been identified to associate with CDG, but the underlying molecular mechanisms remain uncharacterized. Here, we purified PMM2 wild type (WT), C9Y, and C241S to investigate their structural characteristics and biophysical properties by spectroscopic experiments under physiological temperature and environmental stress. Notably, the variants led to drastic changes in the protein properties and were prone to aggregate at physiological temperature. Meanwhile, PMM2 was sensitive to oxidative stress, and the cysteine pathogenic variants led to obvious aggregate formation and a higher cellular apoptosis ratio under oxidative stress. Molecular dynamic simulations indicated that the pathogenic variants changed the core domain of homomeric PMM2 and subunit binding free energy. Moreover, we tested the potential drug targeting PMM2-celastrol in cell level and explained the result by molecular docking simulation. In this study, we delineated the pathological mechanism of the cysteine substitution in PMM2, which addressed the vital role of cysteine in PMM2 and provided novel insights into prevention and treatment strategies for PMM2-CDG.
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spelling pubmed-98918222023-02-02 Cysteine Pathogenic Variants of PMM2 Are Sensitive to Environmental Stress with Loss of Structural Stability Yu, Fan Lin, Li Sun, Jingmiao Pan, Jicheng Liao, Yixin Pan, Yunfan Bai, Guannan Ma, Liangjian Mao, Jianhua Hu, Lidan Oxid Med Cell Longev Research Article Congenital disorders of glycosylation (CDG) are severe metabolic disorders caused by an imbalance in the glycosylation pathway. Phosphomannomutase2 (PMM2-CDG), the most prevalent CDG, is mainly due to the disorder of PMM2. Pathogenic variants in cysteine have been found in various diseases, and cysteine residues have a potential as therapeutic targets. PMM2 harbor six cysteines; the variants Cys9Tyr (C9Y) and Cys241Ser (C241S) of PMM2 have been identified to associate with CDG, but the underlying molecular mechanisms remain uncharacterized. Here, we purified PMM2 wild type (WT), C9Y, and C241S to investigate their structural characteristics and biophysical properties by spectroscopic experiments under physiological temperature and environmental stress. Notably, the variants led to drastic changes in the protein properties and were prone to aggregate at physiological temperature. Meanwhile, PMM2 was sensitive to oxidative stress, and the cysteine pathogenic variants led to obvious aggregate formation and a higher cellular apoptosis ratio under oxidative stress. Molecular dynamic simulations indicated that the pathogenic variants changed the core domain of homomeric PMM2 and subunit binding free energy. Moreover, we tested the potential drug targeting PMM2-celastrol in cell level and explained the result by molecular docking simulation. In this study, we delineated the pathological mechanism of the cysteine substitution in PMM2, which addressed the vital role of cysteine in PMM2 and provided novel insights into prevention and treatment strategies for PMM2-CDG. Hindawi 2023-01-25 /pmc/articles/PMC9891822/ /pubmed/36743691 http://dx.doi.org/10.1155/2023/5964723 Text en Copyright © 2023 Fan Yu et al. https://creativecommons.org/licenses/by/4.0/This is an open access article distributed under the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Yu, Fan
Lin, Li
Sun, Jingmiao
Pan, Jicheng
Liao, Yixin
Pan, Yunfan
Bai, Guannan
Ma, Liangjian
Mao, Jianhua
Hu, Lidan
Cysteine Pathogenic Variants of PMM2 Are Sensitive to Environmental Stress with Loss of Structural Stability
title Cysteine Pathogenic Variants of PMM2 Are Sensitive to Environmental Stress with Loss of Structural Stability
title_full Cysteine Pathogenic Variants of PMM2 Are Sensitive to Environmental Stress with Loss of Structural Stability
title_fullStr Cysteine Pathogenic Variants of PMM2 Are Sensitive to Environmental Stress with Loss of Structural Stability
title_full_unstemmed Cysteine Pathogenic Variants of PMM2 Are Sensitive to Environmental Stress with Loss of Structural Stability
title_short Cysteine Pathogenic Variants of PMM2 Are Sensitive to Environmental Stress with Loss of Structural Stability
title_sort cysteine pathogenic variants of pmm2 are sensitive to environmental stress with loss of structural stability
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9891822/
https://www.ncbi.nlm.nih.gov/pubmed/36743691
http://dx.doi.org/10.1155/2023/5964723
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