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研究发育中鸟类的呼吸节律产生:利用经典的体外脑干-脊髓制备方法开创一种新的实验模型。

Studying respiratory rhythm generation in a developing bird: Hatching a new experimental model using the classic in vitro brainstem-spinal cord preparation.

作者信息

Vincen-Brown Michael A, Whitesitt Kaitlyn C, Quick Forrest G, Pilarski Jason Q

机构信息

Department of Biological Sciences, Idaho State University, Pocatello, ID, 83 209, USA.

Department of Biological Sciences, Idaho State University, Pocatello, ID, 83 209, USA; Department of Dental Sciences, Idaho State University, Pocatello, ID, 83 209 USA.

出版信息

Respir Physiol Neurobiol. 2016 Apr;224:62-70. doi: 10.1016/j.resp.2015.08.007. Epub 2015 Aug 24.

Abstract

It has been more than thirty years since the in vitro brainstem-spinal cord preparation was first presented as a method to study automatic breathing behaviors in the neonatal rat. This straightforward preparation has led to an incredible burst of information about the location and coordination of several spontaneously active microcircuits that form the ventrolateral respiratory network of the brainstem. Despite these advances, our knowledge of the mechanisms that regulate central breathing behaviors is still incomplete. Investigations into the nature of spontaneous breathing rhythmicity have almost exclusively focused on mammals, and there is a need for comparative experimental models to evaluate several unresolved issues from a different perspective. With this in mind, we sought to develop a new avian in vitro model with the long term goal to better understand questions associated with the ontogeny of respiratory rhythm generation, neuroplasticity, and whether multiple, independent oscillators drive the major phases of breathing. The fact that birds develop in ovo provides unparalleled access to central neuronal networks throughout the prenatal period - from embryo to hatchling - that are free from confounding interactions with mother. Previous studies using in vitro avian models have been strictly limited to the early embryonic period. Consequently, the details and even the presence of brainstem derived breathing-related rhythmogenesis in birds have never been described. In the present study, we used the altricial zebra finch (Taeniopygia guttata) and show robust spontaneous motor outflow through cranial motor nerve IX, which is first detectable on embryonic day four and continues through prenatal and early postnatal development without interruption. We also show that brainstem oscillations change dramatically over the course of prenatal development, sometimes within hours, which suggests rapid maturational modifications in growth and connectivity. We propose that this experimental preparation will be useful for a variety of studies aimed at testing the biophysical and synaptic properties of neurons that participate in the unique spatiotemporal patterns of avian breathing behaviors, especially in the context of early development.

摘要

自首次提出体外脑干 - 脊髓制备方法用于研究新生大鼠的自主呼吸行为以来,已经过去了三十多年。这种简单的制备方法带来了关于构成脑干腹外侧呼吸网络的几个自发活动微电路的位置和协调的大量信息。尽管取得了这些进展,但我们对调节中枢呼吸行为机制的了解仍然不完整。对自发呼吸节律性本质的研究几乎完全集中在哺乳动物上,因此需要比较实验模型从不同角度评估一些未解决的问题。考虑到这一点,我们试图开发一种新的鸟类体外模型,其长期目标是更好地理解与呼吸节律产生的个体发生、神经可塑性以及多个独立振荡器是否驱动呼吸主要阶段相关的问题。鸟类在卵内发育这一事实使得在整个产前阶段——从胚胎到幼雏——都能无与伦比地接触到中枢神经元网络,而不会受到与母体混杂相互作用的干扰。以前使用体外鸟类模型的研究严格限于胚胎早期。因此,鸟类脑干衍生的与呼吸相关的节律发生的细节甚至是否存在从未被描述过。在本研究中,我们使用了晚成鸟斑胸草雀(Taeniopygia guttata),并显示通过颅神经IX有强劲的自发运动输出,这种输出在胚胎第4天首次可检测到,并在产前和产后早期发育过程中持续不间断。我们还表明脑干振荡在产前发育过程中会发生巨大变化,有时在数小时内就会变化,这表明在生长和连接性方面有快速的成熟变化。我们认为这种实验制备方法将有助于进行各种旨在测试参与鸟类呼吸行为独特时空模式的神经元的生物物理和突触特性的研究,特别是在早期发育的背景下。

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Embryological staging of the Zebra Finch, Taeniopygia guttata.斑胸草雀(Taeniopygia guttata)的胚胎学分期。
J Morphol. 2013 Oct;274(10):1090-110. doi: 10.1002/jmor.20165. Epub 2013 Jun 27.
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