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Bmp5;Bmp7双突变小鼠的早期胚胎致死性表明60A亚组内存在功能冗余。

Early embryonic lethality in Bmp5;Bmp7 double mutant mice suggests functional redundancy within the 60A subgroup.

作者信息

Solloway M J, Robertson E J

机构信息

Department of Molecular and Cellular Biology, Harvard University, Cambridge, MA 02138, USA.

出版信息

Development. 1999 Apr;126(8):1753-68. doi: 10.1242/dev.126.8.1753.

Abstract

Members of the BMP family of signaling molecules display a high conservation of structure and function, and multiple BMPs are often coexpressed in a variety of tissues during development. Moreover, distinct BMP ligands are capable of activating common pathways. Here we describe the coexpression of two members of the 60A subfamily of BMPs, Bmp5 and Bmp7, at a number of different sites in the embryo from gastrulation onwards. Previous studies demonstrate that loss of either Bmp5 or Bmp7 has negligible effects on development, suggesting these molecules functionally compensate for each other at early stages of embryonic development. Here we show this is indeed the case. Thus we find that Bmp5;Bmp7 double mutants die at 10.5 dpc and display striking defects primarily affecting the tissues where these factors are coexpressed. The present analysis also uncovers novel roles for BMP signaling during the development of the allantois, heart, branchial arches, somites and forebrain. Bmp5 and Bmp7 do not appear to be involved in establishing pattern in these tissues, but are instead necessary for the proliferation and maintenance of specific cell populations. These findings are discussed with respect to potential mechanisms underlying cooperative signaling by multiple members of the TGF-beta superfamily.

摘要

信号分子BMP家族的成员在结构和功能上具有高度保守性,并且在发育过程中多种BMP常常在多种组织中共同表达。此外,不同的BMP配体能够激活共同的信号通路。在此我们描述了BMP 60A亚家族的两个成员Bmp5和Bmp7从原肠胚形成开始在胚胎的多个不同部位共同表达。先前的研究表明,Bmp5或Bmp7的缺失对发育的影响可忽略不计,这表明这些分子在胚胎发育早期在功能上相互补偿。在此我们证明确实如此。因此我们发现Bmp5;Bmp7双突变体在胚胎第10.5天死亡,并表现出明显的缺陷,主要影响这些因子共同表达的组织。本分析还揭示了BMP信号通路在尿囊、心脏、鳃弓、体节和前脑发育过程中的新作用。Bmp5和Bmp7似乎不参与这些组织中模式的建立,而是特定细胞群体增殖和维持所必需的。针对TGF-β超家族多个成员协同信号传导的潜在机制对这些发现进行了讨论。

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