Division of Biological Sciences, Section of Cell and Developmental Biology, University of California San Diego, La Jolla, CA, USA.
Division of Biological Sciences, Section of Cell and Developmental Biology, University of California San Diego, La Jolla, CA, USA.
Curr Opin Genet Dev. 2021 Aug;69:42-47. doi: 10.1016/j.gde.2021.02.005. Epub 2021 Feb 26.
Naturalists leading up to the early 20th century were captivated by the diversity of limb form and function and described its development in a variety of species. The advent of discoveries in genetics followed by molecular biology led to focused efforts in few 'model' species, namely mouse and chicken, to understand conserved mechanisms of limb axis specification and development of the musculoskeletal system. 'Non-traditional' species largely fell by the wayside until their recent resurgence into the spotlight with advances in next-generation sequencing technologies (NGS). In this review, we focus on how the use of NGS has provided insights into the development, loss, and diversification of amniote limbs. Coupled with advances in chromatin interrogation techniques and functional tests in vivo, NGS is opening possibilities to understand the genetic mechanisms that govern the remarkable radiation of vertebrate limb form and function.
直到 20 世纪初,自然主义者都被肢体形态和功能的多样性所吸引,并描述了其在各种物种中的发展。遗传学发现和分子生物学的出现,促使人们集中精力在少数几个“模式”物种(即老鼠和鸡)上,以了解肢体轴特化和骨骼肌肉系统发育的保守机制。“非传统”物种在很大程度上被忽视了,直到最近随着下一代测序技术(NGS)的发展,它们重新成为焦点。在这篇综述中,我们重点介绍了 NGS 的使用如何为研究羊膜动物肢体的发育、丧失和多样化提供了新的思路。结合染色质探测技术的进步和体内功能测试,NGS 为理解控制脊椎动物肢体形态和功能惊人辐射的遗传机制提供了可能。