Lipscombe Diane, Pan Jennifer Qian, Gray Annette C
Department of Neuroscience, Brown University, Providence, RI 02912, USA.
Mol Neurobiol. 2002 Aug;26(1):21-44. doi: 10.1385/MN:26:1:021.
Alternative splicing is a critical mechanism used extensively in the mammalian nervous system to increase the level of diversity that can be achieved by a set of genes. This review focuses on recent studies of voltage-gated calcium (Ca) channel Ca(v)alpha1 subunit splice isoforms in neurons. Voltage-gated Ca channels couple changes in neuronal activity to rapid changes in intracellular Ca levels that in turn regulate an astounding range of cellular processes. Only ten genes have been identified that encode Ca(v)alpha1 subunits, an insufficient number to account for the level of functional diversity among voltage-gated Ca channels. The consequences of regulated alternative splicing among the genes that comprise voltage-gated Ca channels permits specialization of channel function, optimizing Ca signaling in different regions of the brain and in different cellular compartments. Although the full extent of alternative splicing is not yet known for any of the major subtypes of voltage-gated Ca channels, it is already clear that it adds a rich layer of structural and functional diversity".
可变剪接是一种在哺乳动物神经系统中广泛使用的关键机制,用于增加一组基因所能实现的多样性水平。本综述重点关注神经元中电压门控钙(Ca)通道Ca(v)α1亚基剪接异构体的最新研究。电压门控钙通道将神经元活动的变化与细胞内钙水平的快速变化联系起来,进而调节一系列惊人的细胞过程。目前仅鉴定出10个编码Ca(v)α1亚基的基因,数量不足以解释电压门控钙通道之间的功能多样性水平。构成电压门控钙通道的基因中受调控的可变剪接的结果允许通道功能特化,优化大脑不同区域和不同细胞区室中的钙信号传导。尽管对于电压门控钙通道的任何主要亚型,可变剪接的全部范围尚不清楚,但很明显它增加了丰富的结构和功能多样性层面。