组织工程中的分子动力学模拟。

IF 2.2 4区 工程技术 Q3 PHARMACOLOGY & PHARMACY
Bioimpacts Pub Date : 2024-08-03 eCollection Date: 2025-01-01 DOI:10.34172/bi.30160
Ali Rahmani, Rahim Jafari, Samad Nadri
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引用次数: 0

摘要

在组织工程中,细胞、材料支架和刺激三者之间的相互作用是决定细胞命运和新组织形成的关键因素。通过各种方法了解这些成分的特征及其相互作用可以显著提高设计的组织工程系统的效率。分子动力学(MD)模拟等计算机方法使用数学计算来研究分子性质,并且可以克服实验室方法在提供足够的分子水平信息方面的局限性。方法:对分子动力学模拟技术的研究进展进行了综述。结果:综述了分子动力学模拟在研究底物形成机理及其优化中的应用。它强调了MD模拟在预测生物分子结合强度、了解底物特性对生物活性的影响以及影响细胞附着和增殖的因素方面的作用。尽管研究有限,但MD模拟被认为是鉴定细胞增殖理想底物的可靠工具。这篇综述还涉及了MD模拟对细胞分化研究的贡献,强调了它们在设计用于所需细胞命运的工程化细胞外基质中的作用。结论:分子动力学模拟作为一种非实验室工具,在提供有关细胞分子组分行为以及细胞及其组分与周围环境相互作用的基本和实用信息方面具有许多能力。利用这些信息以及从实验室工具获得的其他信息,可以通过开发更合适和有效的方法最终导致组织工程的进步。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Molecular dynamics simulation in tissue engineering.

Introduction: In tissue engineering, the interaction among three primary elements, namely cells, material scaffolds, and stimuli, plays a pivotal role in determining the fate of cells and the formation of new tissue. Understanding the characteristics of these components and their interplay through various methodologies can significantly enhance the efficiency of the designed tissue engineering system. In silico methods, such as molecular dynamics (MD) simulation, use mathematical calculations to investigate molecular properties and can overcome the limitations of laboratory methods in delivering adequate molecular-level information.

Methods: The studies that used molecular dynamics simulation, either alone or in combination with other techniques, have been reviewed in this paper.

Results: The review explores the use of molecular dynamics simulations in studying substrate formation mechanism and its optimization. It highlights MD simulations' role in predicting biomolecule binding strength, understanding substrate properties' impact on biological activity, and factors influencing cell attachment and proliferation. Despite limited studies, MD simulations are considered a reliable tool for identifying ideal substrates for cell proliferation. The review also touches on MD simulations' contribution to cell differentiation studies, emphasizing their role in designing engineered extracellular matrix for desired cell fates.

Conclusion: Molecular dynamics simulation as a non-laboratory tool has many capabilities in providing basic and practical information about the behavior of the molecular components of the cell as well as the interaction of the cell and its components with the surrounding environment. Using this information along with other information obtained from laboratory tools can ultimately lead to the advancement of tissue engineering through the development of more appropriate and efficient methods.

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来源期刊
Bioimpacts
Bioimpacts Pharmacology, Toxicology and Pharmaceutics-Pharmaceutical Science
CiteScore
4.80
自引率
7.70%
发文量
36
审稿时长
5 weeks
期刊介绍: BioImpacts (BI) is a peer-reviewed multidisciplinary international journal, covering original research articles, reviews, commentaries, hypotheses, methodologies, and visions/reflections dealing with all aspects of biological and biomedical researches at molecular, cellular, functional and translational dimensions.
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