杜兴氏和贝克氏肌肉萎缩症:细胞机制、图像分析和计算模型:综述。

IF 2.4 4区 生物学 Q4 CELL BIOLOGY
Cytoskeleton Pub Date : 2024-01-15 DOI:10.1002/cm.21826
J. F. Escobar-Huertas, Juan Jairo Vaca-González, Johana María Guevara, Angelica M. Ramirez-Martinez, Olfa Trabelsi, D. A. Garzón-Alvarado
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引用次数: 0

摘要

肌肉是能够将势能转化为动能的主要组织。这一过程是将化学能转化为机械能,从而加强运动和所有日常活动。然而,肌肉组织会受到一些与基因改变有关的病变的影响,从而影响蛋白质的表达。由于肌肉是一个高度组织化的结构,其中大多数信号通路和蛋白质都相互关联,因此病变可能会重叠。杜兴氏肌肉萎缩症(DMD)是引发肌肉变性和坏死的最严重肌肉病变之一。目前已开发出多种数学模型来预测肌肉对不同情况和病理的反应。本综述旨在从细胞行为和分子紊乱的角度描述 DMD 和贝克型肌营养不良症,并概述为了解肌肉行为而实施的计算模型,以改进再生疗法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Duchenne and Becker muscular dystrophy: Cellular mechanisms, image analysis, and computational models: A review

Duchenne and Becker muscular dystrophy: Cellular mechanisms, image analysis, and computational models: A review

The muscle is the principal tissue that is capable to transform potential energy into kinetic energy. This process is due to the transformation of chemical energy into mechanical energy to enhance the movements and all the daily activities. However, muscular tissues can be affected by some pathologies associated with genetic alterations that affect the expression of proteins. As the muscle is a highly organized structure in which most of the signaling pathways and proteins are related to one another, pathologies may overlap. Duchenne muscular dystrophy (DMD) is one of the most severe muscle pathologies triggering degeneration and muscle necrosis. Several mathematical models have been developed to predict muscle response to different scenarios and pathologies. The aim of this review is to describe DMD and Becker muscular dystrophy in terms of cellular behavior and molecular disorders and to present an overview of the computational models implemented to understand muscle behavior with the aim of improving regenerative therapy.

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来源期刊
Cytoskeleton
Cytoskeleton CELL BIOLOGY-
CiteScore
5.50
自引率
3.40%
发文量
24
审稿时长
6-12 weeks
期刊介绍: Cytoskeleton focuses on all aspects of cytoskeletal research in healthy and diseased states, spanning genetic and cell biological observations, biochemical, biophysical and structural studies, mathematical modeling and theory. This includes, but is certainly not limited to, classic polymer systems of eukaryotic cells and their structural sites of attachment on membranes and organelles, as well as the bacterial cytoskeleton, the nucleoskeleton, and uncoventional polymer systems with structural/organizational roles. Cytoskeleton is published in 12 issues annually, and special issues will be dedicated to especially-active or newly-emerging areas of cytoskeletal research.
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