用于加速衰老研究和抗衰老药物筛选的短端粒斑马鱼模型的建立

IF 8 1区 医学 Q1 CELL BIOLOGY
Aging Cell Pub Date : 2025-02-08 DOI:10.1111/acel.70007
David Hernández-Silva, María D López-Abellán, Francisco J Martínez-Navarro, Jesús García-Castillo, María L Cayuela, Francisca Alcaraz-Pérez
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引用次数: 0

摘要

预期寿命的延长与年龄相关疾病的风险增加有关,这是一项重大的公共卫生挑战。动物模型在衰老研究中发挥着至关重要的作用,使疾病的研究能够在生物体水平上进行,并促进药物的开发和再利用。在这些模型中,斑马鱼因其独特的特性而成为一种优秀的体内系统。然而,斑马鱼的寿命是研究的一个限制,因为它往往需要太长时间才能在合理的时间范围内获得结果。为了解决这个问题,我们开发了一个短端粒斑马鱼系(ST2),在幼虫阶段具有早衰表型。虽然没有tert缺乏的G2幼虫那么极端,但ST2幼虫表现出端粒酶表达和活性降低,以及端粒缩短。它们也表现出细胞衰老、细胞凋亡和过早死亡的增加。为了证明这一概念,我们评估了两种化合物的抗衰老作用:白藜芦醇(一种多酚)和纳维托克(一种抗衰老剂)。我们的研究结果证实了白藜芦醇的抗衰老特性,它可以改善端粒的维持。然而,navitoclax不会减弱ST2表型。利用斑马鱼幼虫模型,这种早衰系统提供了一个有价值的平台,通过药物筛选,使用端粒长度或存活率作为读数,在体内测试恢复活力的分子。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Development of a Short Telomere Zebrafish Model for Accelerated Aging Research and Antiaging Drug Screening.

Increased life expectancy is associated with a higher risk of age-related diseases, which represent a major public health challenge. Animal models play a crucial role in aging research, enabling the study of diseases at the organism level and facilitating drug development and repurposing. Among these models, zebrafish stands out as an excellent in vivo system due to its unique characteristics. However, the longevity of zebrafish is a limitation for research, as it often takes too long to obtain results within a reasonable timeframe. To address this, we have developed a short telomere zebrafish line (ST2) with a premature aging phenotype during the larval stage. Although less extreme than the tert-deficient G2 larvae, ST2 larvae exhibit reduced telomerase expression and activity, along with shortened telomeres. they also exhibit increased cellular senescence, apoptosis, and premature death. As a proof of concept, we evaluated the antiaging effects of two compounds: resveratrol (a polyphenol) and navitoclax (a senolytic). Our results confirm the antiaging properties of resveratrol, which improves telomere maintenance. However, navitoclax does not attenuate the ST2 phenotype. Taking advantage of the zebrafish larval model, this premature aging system provides a valuable platform for in vivo testing of rejuvenating molecules through drug screening, using telomere length or survival as a readout.

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来源期刊
Aging Cell
Aging Cell Biochemistry, Genetics and Molecular Biology-Cell Biology
自引率
2.60%
发文量
212
期刊介绍: Aging Cell is an Open Access journal that focuses on the core aspects of the biology of aging, encompassing the entire spectrum of geroscience. The journal's content is dedicated to publishing research that uncovers the mechanisms behind the aging process and explores the connections between aging and various age-related diseases. This journal aims to provide a comprehensive understanding of the biological underpinnings of aging and its implications for human health. The journal is widely recognized and its content is abstracted and indexed by numerous databases and services, which facilitates its accessibility and impact in the scientific community. These include: Academic Search (EBSCO Publishing) Academic Search Alumni Edition (EBSCO Publishing) Academic Search Premier (EBSCO Publishing) Biological Science Database (ProQuest) CAS: Chemical Abstracts Service (ACS) Embase (Elsevier) InfoTrac (GALE Cengage) Ingenta Select ISI Alerting Services Journal Citation Reports/Science Edition (Clarivate Analytics) MEDLINE/PubMed (NLM) Natural Science Collection (ProQuest) PubMed Dietary Supplement Subset (NLM) Science Citation Index Expanded (Clarivate Analytics) SciTech Premium Collection (ProQuest) Web of Science (Clarivate Analytics) Being indexed in these databases ensures that the research published in Aging Cell is discoverable by researchers, clinicians, and other professionals interested in the field of aging and its associated health issues. This broad coverage helps to disseminate the journal's findings and contributes to the advancement of knowledge in geroscience.
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