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库普弗小泡中的有序混乱:异质结构如何实现一致的左右模式形成。

Organized chaos in Kupffer's vesicle: how a heterogeneous structure achieves consistent left-right patterning.

作者信息

Smith D J, Montenegro-Johnson T D, Lopes S S

机构信息

a School of Mathematics ; University of Birmingham ; Birmingham , UK.

出版信息

Bioarchitecture. 2014;4(3):119-25. doi: 10.4161/19490992.2014.956593.

Abstract

Successful establishment of left-right asymmetry is crucial to healthy vertebrate development. In many species this process is initiated in a ciliated, enclosed cavity, for example Kupffer's vesicle (KV) in zebrafish. The microarchitecture of KV is more complex than that present in the left-right organizer of many other species. While swirling flow in KV is recognized as essential for left-right patterning, its generation, nature and conversion to asymmetric gene expression are only beginning to be fully understood. We recently [Sampaio, P et al. Dev Cell 29:716-728] combined imaging, genetics and fluid dynamics simulation to characterize normal and perturbed ciliary activity, and their correlation to asymmetric charon expression and embryonic organ fate. Randomness in cilia number and length have major implications for robust flow generation; even a modest change in mean cilia length has a major effect on flow speed to due to nonlinear scaling arising from fluid mechanics. Wildtype, and mutant embryos with normal liver laterality, exhibit stronger flow on the left prior to asymmetric inhibition of charon. Our discovery of immotile cilia, taken with data on morphant embryos with very few cilia, further support the role of mechanosensing in initiating and/or enhancing flow conversion into gene expression.

摘要

成功建立左右不对称对于脊椎动物的健康发育至关重要。在许多物种中,这个过程在一个有纤毛的封闭腔室中启动,例如斑马鱼的 Kupffer 囊泡(KV)。KV 的微观结构比许多其他物种的左右组织者更为复杂。虽然 KV 中的漩涡流被认为是左右模式形成所必需的,但其产生、性质以及向不对称基因表达的转化才刚刚开始被充分理解。我们最近 [桑帕约,P 等人。《发育细胞》29:716 - 728] 结合成像、遗传学和流体动力学模拟来表征正常和受干扰的纤毛活动,以及它们与不对称的卡戎表达和胚胎器官命运的相关性。纤毛数量和长度的随机性对稳健的流产生有重大影响;由于流体力学产生的非线性缩放,即使平均纤毛长度有适度变化也会对流速产生重大影响。野生型以及肝脏左右侧正常的突变胚胎在卡戎不对称抑制之前,左侧表现出更强的流动。我们对不动纤毛的发现,结合关于纤毛极少的形态发生胚胎的数据,进一步支持了机械传感在启动和/或增强流转化为基因表达中的作用。

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