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用于研究心血管生物学的遗传工具。

Genetic Tools to Study Cardiovascular Biology.

作者信息

Garcia-Gonzalez Irene, Mühleder Severin, Fernández-Chacón Macarena, Benedito Rui

机构信息

Molecular Genetics of Angiogenesis Group, Centro Nacional de Investigaciones Cardiovasculares (CNIC), Madrid, Spain.

出版信息

Front Physiol. 2020 Sep 24;11:1084. doi: 10.3389/fphys.2020.01084. eCollection 2020.

Abstract

Progress in biomedical science is tightly associated with the improvement of methods and genetic tools to manipulate and analyze gene function in mice, the most widely used model organism in biomedical research. The joint effort of numerous individual laboratories and consortiums has contributed to the creation of a large genetic resource that enables scientists to image cells, probe signaling pathways activities, or modify a gene function in any desired cell type or time point, à la carte. However, as these tools significantly increase in number and become more sophisticated, it is more difficult to keep track of each tool's possibilities and understand their advantages and disadvantages. Knowing the best currently available genetic technology to answer a particular biological question is key to reach a higher standard in biomedical research. In this review, we list and discuss the main advantages and disadvantages of available mammalian genetic technology to analyze cardiovascular cell biology at higher cellular and molecular resolution. We start with the most simple and classical genetic approaches and end with the most advanced technology available to fluorescently label cells, conditionally target their genes, image their clonal expansion, and decode their lineages.

摘要

生物医学科学的进步与操纵和分析小鼠基因功能的方法及遗传工具的改进紧密相关,小鼠是生物医学研究中使用最广泛的模式生物。众多独立实验室和联盟的共同努力促成了一个庞大的遗传资源的创建,使科学家能够对细胞进行成像、探测信号通路活性,或在任何所需的细胞类型或时间点按需修改基因功能。然而,随着这些工具的数量大幅增加且变得更加复杂,跟踪每种工具的可能性并了解其优缺点变得更加困难。了解当前可用的最佳遗传技术以回答特定的生物学问题是在生物医学研究中达到更高标准的关键。在这篇综述中,我们列出并讨论了现有哺乳动物遗传技术在更高细胞和分子分辨率下分析心血管细胞生物学的主要优缺点。我们从最简单和经典的遗传方法开始,以可用于荧光标记细胞、有条件地靶向其基因、对其克隆扩增进行成像并解码其谱系的最先进技术结束。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6901/7541935/8d62f696b162/fphys-11-01084-g001.jpg

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