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胚胎心脏环化对改变的机械负荷的形态发生适应性

Morphogenetic adaptation of the looping embryonic heart to altered mechanical loads.

作者信息

Nerurkar Nandan L, Ramasubramanian Ashok, Taber Larry A

机构信息

Department of Biomedical Engineering, Washington University, St. Louis, Missouri 63130, USA.

出版信息

Dev Dyn. 2006 Jul;235(7):1822-9. doi: 10.1002/dvdy.20813.

Abstract

The biophysical mechanisms that drive and regulate cardiac looping are not well understood, but mechanical forces likely play a central role. Previous studies have shown that cardiac torsion, which defines left-right directionality, is caused largely by forces exerted on the heart tube by a membrane called the splanchnopleure (SPL). Here we show that, when the SPL is removed from the embryonic chick heart, torsion is initially suppressed. Several hours later, however, normal torsion is restored. This delayed torsion coincides with increased myocardial stiffness, especially on the right side of the heart. Exposure to the myosin inhibitor Y-27632 suppressed both responses, suggesting that the delayed torsion is caused by an abnormal cytoskeletal contraction. This hypothesis is supported further by computational modeling. These results suggest that the looping embryonic heart has the ability to adapt to changes in the mechanical environment, which may play a regulatory role during morphogenesis.

摘要

驱动和调节心脏环化的生物物理机制尚未完全明确,但机械力可能起着核心作用。先前的研究表明,决定左右方向性的心脏扭转主要是由一种称为脏壁层(SPL)的膜施加在心脏管上的力引起的。在此我们表明,当从胚胎鸡心脏移除SPL时,扭转最初会受到抑制。然而,数小时后,正常扭转得以恢复。这种延迟的扭转与心肌僵硬度增加相吻合,尤其是在心脏右侧。暴露于肌球蛋白抑制剂Y-27632会抑制这两种反应,表明延迟扭转是由异常的细胞骨架收缩引起的。这一假设得到了计算模型的进一步支持。这些结果表明,正在环化的胚胎心脏具有适应机械环境变化的能力,这可能在形态发生过程中发挥调节作用。

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