发条胚胎:调节发育速率的机制。

IF 8.7 1区 生物学 Q1 GENETICS & HEREDITY
Margarete Diaz-Cuadros, Olivier Pourquié
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引用次数: 0

摘要

有机体的发育需要在时间和空间上重复地展开一系列有序的离散步骤(细胞命运的决定、迁移、组织折叠等)。在这里,我们回顾了赋予发育步骤时间特异性的机制,包括分子钟和计时器。个体的时间机制必须相互协调,以维持整体的发展顺序。然而,表型的新颖性也可以通过进化过程中时间模式的改变而产生。物种间发育时间的差异主要表现为两种类型的时间模式差异:异时性,即在保持单个步骤的相对持续时间的同时,整体发育序列加快或减慢;异时性,即特定发育步骤的持续时间相对于其他步骤发生改变。最近,利用干细胞体外模拟哺乳动物发育的新进展使异时性和异时性的机制研究得以复兴。在这两种情况下,剪接、翻译、蛋白质降解和代谢等基本细胞功能速率的差异似乎是发育时间差异的基础。在未来的几年里,这些研究应该确定驱动物种之间发育时间差异的遗传差异。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The Clockwork Embryo: Mechanisms Regulating Developmental Rate.

Organismal development requires the reproducible unfolding of an ordered sequence of discrete steps (cell fate determination, migration, tissue folding, etc.) in both time and space. Here, we review the mechanisms that grant temporal specificity to developmental steps, including molecular clocks and timers. Individual timing mechanisms must be coordinated with each other to maintain the overall developmental sequence. However, phenotypic novelties can also arise through the modification of temporal patterns over the course of evolution. Two main types of variation in temporal patterning characterize interspecies differences in developmental time: allochrony, where the overall developmental sequence is either accelerated or slowed down while maintaining the relative duration of individual steps, and heterochrony, where the duration of specific developmental steps is altered relative to the rest. New advances in in vitro modeling of mammalian development using stem cells have recently enabled the revival of mechanistic studies of allochrony and heterochrony. In both cases, differences in the rate of basic cellular functions such as splicing, translation, protein degradation, and metabolism seem to underlie differences in developmental time. In the coming years, these studies should identify the genetic differences that drive divergence in developmental time between species.

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来源期刊
Annual review of genetics
Annual review of genetics 生物-遗传学
CiteScore
18.30
自引率
0.90%
发文量
17
期刊介绍: The Annual Review of Genetics, published since 1967, comprehensively covers significant advancements in genetics. It encompasses various areas such as biochemical, behavioral, cell, and developmental genetics, evolutionary and population genetics, chromosome structure and transmission, gene function and expression, mutation and repair, genomics, immunogenetics, and other topics related to the genetics of viruses, bacteria, fungi, plants, animals, and humans.
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