Miller Sean J, Darji Rayyan Y, Walaieh Sami, Lewis Jhemerial A, Logan Robert
Department of Ophthalmology and Visual Science, Yale University School of Medicine, New Haven, CT, United States.
Department of Biology, Eastern Nazarene College, Quincy, MA, United States.
Front Neurol. 2023 Sep 28;14:1271941. doi: 10.3389/fneur.2023.1271941. eCollection 2023.
is a valuable model organism for a wide range of biological exploration. The well-known advantages of include its relatively simple biology, the ease with which it is genetically modified, the relatively low financial and time costs associated with their short gestation and life cycles, and the large number of offspring they produce per generation. has facilitated the discovery of many significant insights into the pathology of Parkinson's disease (PD) and has served as an excellent preclinical model of PD-related therapeutic discovery. In this review, we provide an overview of the major models of PD, each of which provide unique insights into PD-relevant pathology and therapeutic targets. These models are discussed in the context of their past, current, and future potential use for studying the utility of secondary metabolites as therapeutic agents in PD. Over the last decade, senolytics have garnered an exponential interest in their ability to mitigate a broad spectrum of diseases, including PD. Therefore, an emphasis is placed on the senolytic and senomorphic properties of secondary metabolites. It is expected that will continue to be critical in the effort to understand and improve treatment of PD, including their involvement in translational studies focused on secondary metabolites.
是广泛生物探索中一种有价值的模式生物。其众所周知的优势包括相对简单的生物学特性、易于进行基因改造、由于其较短的妊娠期和生命周期而具有相对较低的财务和时间成本,以及每代产生大量后代。它促进了对帕金森病(PD)病理学的许多重要见解的发现,并已成为PD相关治疗发现的优秀临床前模型。在本综述中,我们概述了主要的PD模型,每个模型都为与PD相关的病理学和治疗靶点提供了独特的见解。这些模型将在其过去、当前和未来用于研究次生代谢物作为PD治疗剂的效用的背景下进行讨论。在过去十年中,衰老细胞裂解剂因其减轻包括PD在内的广泛疾病的能力而获得了指数级的关注。因此,重点放在次生代谢物的衰老细胞裂解和衰老细胞形态调节特性上。预计在理解和改善PD治疗的努力中,包括它们参与专注于次生代谢物的转化研究,将继续发挥关键作用。