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The search for evolutionary developmental origins of aging in zebrafish: a novel intersection of developmental and senescence biology in the zebrafish model system.

机译:寻找斑马鱼衰老的进化发展起源:斑马鱼模型系统中发育与衰老生物学的新交集。

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Senescence may be considered the antithesis of early development, but yet there may be factors and mechanisms in common between these two phenomena during the process of aging. We investigated whether any relationship exists between the regulatory mechanisms that function in early development and in senescence using the zebrafish (Danio rerio), a small freshwater fish and a useful model animal for genetic studies. We conducted experiments to isolate zebrafish mutants expressing an apparent senescence phenotype during embryogenesis (embryonic senescence). Some of the genes we thereby identified had already been associated with cellular senescence and chronological aging in other organisms, but many had not yet been linked to these processes. Complete loss-of-function of developmentally essential genes induce embryonic (or larval) lethality, whereas it seems like their partial loss-of-function (i.e., decrease-of-function by heterozygote or hypomorphic mutations) still remains sufficient to go through the early developmental process because of its adaptive plasticity or rather heterozygote advantage. However, in some cases, such partial loss-of-function of genes compromise normal homeostasis due to haploinsufficiency later in adult life having many environmental stress challenges. By contrast, any heterozygote-advantageous genes might gain a certain benefit(s) (much more fitness) by such partial loss-of-function later in life. Physiological senescence may evolutionarily arise from both genetic and epigenetic drifts as well as from losing adaptive developmental plasticity in face of stress signals from the external environment that interacts with functions of multiple genes rather than effects of only a single gene mutation or defect. Previously uncharacterized developmental genes may thus mediate the aging process and play a pivotal role in senescence. Moreover, unexpected senescence-related genes might also be involved in the early developmental process and regulation. We wish to ascertain whether we can identify such genes promptly in a comprehensive manner. The ease of manipulation using the zebrafish system allows us to conduct an exhaustive exploration of novel genes and small molecular compounds that can be linked to the senescence phenotype and thereby facilitates searching for the evolutionary and developmental origins of aging in vertebrates.
机译:衰老可能被认为是早期发育的对立面,但在衰老过程中这两种现象之间可能存在共同的因素和机制。我们调查了斑马鱼(淡水鱼),一条淡水小鱼和一种有用的遗传学模型动物之间,在早期发育和衰老中起作用的调控机制之间是否存在任何关系。我们进行了实验,以分离出在胚胎发生过程中表现出明显衰老表型的斑马鱼突变体(胚胎衰老)。我们由此鉴定出的某些基因已经与其他生物中的细胞衰老和按时间顺序排列的衰老相关,但许多尚未与这些过程相关。发育必需基因的完全功能丧失会导致胚胎(或幼虫)致死性,而它们的部分功能丧失(即杂合子或亚型突变导致的功能丧失)似乎仍然足够通过由于其适应性可塑性或杂合子优势,可以在早期发育过程中发挥作用。然而,在某些情况下,由于成年后的单倍剂量不足,基因的这种部分功能丧失会损害正常的体内平衡,从而带来许多环境压力挑战。相比之下,任何杂合子优势基因可能会在以后的生活中因这种部分功能丧失而获得一定的益处(更适合)。生理衰老可能在进化上由遗传和表观遗传漂移引起,也可能由于面对来自与多个基因功能相互作用的外部环境的压力信号而失去的适应性发育可塑性,而不仅仅是单个基因突变或缺陷的影响。以前未鉴定的发育基因因此可以介导衰老过程,并在衰老中起关键作用。此外,意外的衰老相关基因也可能参与早期的发育过程和调控。我们希望确定我们是否可以迅速全面地鉴定此类基因。使用斑马鱼系统易于操作,使我们能够详尽探索与衰老表型有关的新基因和小分子化合物,从而有助于寻找脊椎动物衰老的进化和发育起源。

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