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利用转基因小鼠模型揭示Ca2+缓冲蛋白在可兴奋细胞中的功能。

The use of transgenic mouse models to reveal the functions of Ca2+ buffer proteins in excitable cells.

作者信息

Schwaller Beat

机构信息

Unit of Anatomy, Department of Medicine, University of Fribourg, Fribourg, Switzerland.

出版信息

Biochim Biophys Acta. 2012 Aug;1820(8):1294-303. doi: 10.1016/j.bbagen.2011.11.008. Epub 2011 Nov 27.

Abstract

BACKGROUND

Cytosolic Ca2+ buffers are members of the large family of Ca2+-binding proteins and are essential components of the Ca2+ signaling toolkit implicated in the precise regulation of intracellular Ca2+ signals. Their physiological role in excitable cells has been investigated in vivo by analyzing the phenotype of mice either lacking one of the Ca2+ buffers or mice with ectopic expression.

SCOPE OF REVIEW

In this review, results obtained with knockout mice for the three most prominent Ca2+ buffers, parvalbumin, calbindin-D28k and calretinin are summarized.

MAJOR CONCLUSIONS

The absence of Ca2+ buffers in specific neuron subpopulations, and for parvalbumin additionally in fast-twitch muscles, leads to Ca2+ buffer-specific changes in intracellular Ca2+ signals. This affects the excitation-contraction cycle in parvalbumin-deficient muscles, and in Ca2+ buffer-deficient neurons, properties associated with synaptic transmission (e.g. short-term modulation), excitability and network oscillations are altered. These findings have not only resulted in a better understanding of the physiological function of Ca2+ buffers, but have revealed that the absence of Ca2+ signaling toolkit components leads to protein-and neuron-specific adaptive/homeostatic changes that also include changes in neuron morphology (e.g. altered spine morphology, changes in mitochondria content) and network properties.

GENERAL SIGNIFICANCE

The complex phenotype of Ca2+ buffer knockout mice arises from the direct effect of these proteins on Ca2+ signaling and moreover from the homeostatic mechanisms induced in these mice. For a better mechanistic understanding of neurological diseases linked to disturbed/altered Ca2+ signaling, a global view on Ca2+ signaling is expected to lead to new avenues for specific therapies. This article is part of a Special Issue entitled Biochemical, biophysical and genetic approaches to intracellular calcium signaling.

摘要

背景

胞质钙缓冲蛋白是一大类钙结合蛋白家族的成员,是钙信号转导工具包的重要组成部分,参与细胞内钙信号的精确调控。通过分析缺乏一种钙缓冲蛋白的小鼠或异位表达的小鼠的表型,已在体内研究了它们在可兴奋细胞中的生理作用。

综述范围

在本综述中,总结了针对三种最突出的钙缓冲蛋白——小白蛋白、钙结合蛋白-D28k和钙视网膜蛋白的基因敲除小鼠所获得的结果。

主要结论

特定神经元亚群中缺乏钙缓冲蛋白,对于小白蛋白而言,快速收缩肌肉中也缺乏,这会导致细胞内钙信号发生钙缓冲蛋白特异性变化。这会影响小白蛋白缺乏的肌肉中的兴奋-收缩周期,在缺乏钙缓冲蛋白的神经元中,与突触传递相关的特性(如短期调节)、兴奋性和网络振荡都会改变。这些发现不仅有助于更好地理解钙缓冲蛋白的生理功能,还揭示了缺乏钙信号转导工具包成分会导致蛋白质和神经元特异性的适应性/稳态变化,其中还包括神经元形态的变化(如棘突形态改变、线粒体含量变化)和网络特性。

普遍意义

钙缓冲蛋白基因敲除小鼠的复杂表型不仅源于这些蛋白质对钙信号的直接影响,还源于这些小鼠中诱导的稳态机制。为了更好地从机制上理解与钙信号紊乱/改变相关的神经疾病,对钙信号的全局观点有望为特定治疗带来新途径。本文是名为“细胞内钙信号转导的生化、生物物理和遗传方法”的特刊的一部分。

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