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膜鸟苷酸环化酶,一种多模式转导机器:历史、现状与未来方向。

Membrane guanylate cyclase, a multimodal transduction machine: history, present, and future directions.

作者信息

Sharma Rameshwar K, Duda Teresa

机构信息

Research Divisions of Biochemistry and Molecular Biology, The Unit of Regulatory and Molecular Biology, Salus University Elkins Park, PA, USA.

出版信息

Front Mol Neurosci. 2014 Jul 2;7:56. doi: 10.3389/fnmol.2014.00056. eCollection 2014.

Abstract

A sequel to these authors' earlier comprehensive reviews which covered the field of mammalian membrane guanylate cyclase (MGC) from its origin to the year 2010, this article contains 13 sections. The first is historical and covers MGC from the year 1963-1987, summarizing its colorful developmental stages from its passionate pursuit to its consolidation. The second deals with the establishment of its biochemical identity. MGC becomes the transducer of a hormonal signal and founder of the peptide hormone receptor family, and creates the notion that hormone signal transduction is its sole physiological function. The third defines its expansion. The discovery of ROS-GC subfamily is made and it links ROS-GC with the physiology of phototransduction. Sections ROS-GC, a Ca(2+)-Modulated Two Component Transduction System to Migration Patterns and Translations of the GCAP Signals Into Production of Cyclic GMP are Different cover its biochemistry and physiology. The noteworthy events are that augmented by GCAPs, ROS-GC proves to be a transducer of the free Ca(2+) signals generated within neurons; ROS-GC becomes a two-component transduction system and establishes itself as a source of cyclic GMP, the second messenger of phototransduction. Section ROS-GC1 Gene Linked Retinal Dystrophies demonstrates how this knowledge begins to be translated into the diagnosis and providing the molecular definition of retinal dystrophies. Section Controlled By Low and High Levels of [Ca(2+)]i, ROS-GC1 is a Bimodal Transduction Switch discusses a striking property of ROS-GC where it becomes a "[Ca(2+)]i bimodal switch" and transcends its signaling role in other neural processes. In this course, discovery of the first CD-GCAP (Ca(2+)-dependent guanylate cyclase activator), the S100B protein, is made. It extends the role of the ROS-GC transduction system beyond the phototransduction to the signaling processes in the synapse region between photoreceptor and cone ON-bipolar cells; in section Ca(2+)-Modulated Neurocalcin δ ROS-GC1 Transduction System Exists in the Inner Plexiform Layer (IPL) of the Retinal Neurons, discovery of another CD-GCAP, NCδ, is made and its linkage with signaling of the inner plexiform layer neurons is established. Section ROS-GC Linkage With Other Than Vision-Linked Neurons discusses linkage of the ROS-GC transduction system with other sensory transduction processes: Pineal gland, Olfaction and Gustation. In the next, section Evolution of a General Ca(2+)-Interlocked ROS-GC Signal Transduction Concept in Sensory and Sensory-Linked Neurons, a theoretical concept is proposed where "Ca(2+)-interlocked ROS-GC signal transduction" machinery becomes a common signaling component of the sensory and sensory-linked neurons. Closure to the review is brought by the conclusion and future directions.

摘要

本文是这些作者早期全面综述的续篇,早期综述涵盖了哺乳动物膜鸟苷酸环化酶(MGC)领域从起源到2010年的内容,本文包含13个部分。第一部分是历史性的,涵盖了1963年至1987年的MGC,总结了其从热烈追寻到巩固的丰富多彩的发展阶段。第二部分论述了其生化特性的确立。MGC成为激素信号的转导器和肽激素受体家族的奠基人,并产生了激素信号转导是其唯一生理功能的观念。第三部分定义了其扩展。ROS - GC亚家族被发现,并将ROS - GC与光转导生理学联系起来。“ROS - GC,一种Ca(2 +)调节的双组分转导系统到迁移模式以及GCAP信号向环鸟苷酸产生的转化不同”部分涵盖了其生物化学和生理学。值得注意的事件是,在GCAPs的增强作用下,ROS - GC被证明是神经元内产生的游离Ca(2 +)信号的转导器;ROS - GC成为双组分转导系统,并确立为环鸟苷酸的来源,环鸟苷酸是光转导的第二信使。“ROS - GC1基因相关的视网膜营养不良”部分展示了这些知识如何开始被应用于视网膜营养不良的诊断并提供其分子定义。“受[Ca(2 +)]i的低水平和高水平控制,ROS - GC1是一种双峰转导开关”部分讨论了ROS - GC的一个显著特性,即它成为一个“[Ca(2 +)]i双峰开关”,并超越了其在其他神经过程中的信号传导作用。在此过程中,发现了第一个CD - GCAP(Ca(2 +)依赖性鸟苷酸环化酶激活剂),即S100B蛋白。它将ROS - GC转导系统的作用从光转导扩展到光感受器和视锥ON - 双极细胞之间突触区域的信号传导过程;在“视网膜神经元内网状层(IPL)中存在Ca(2 +)调节的神经钙蛋白δ - ROS - GC1转导系统”部分,发现了另一个CD - GCAP,即NCδ,并建立了它与内网状层神经元信号传导的联系。“ROS - GC与非视觉相关神经元的联系”部分讨论了ROS - GC转导系统与其他感觉转导过程的联系:松果体、嗅觉和味觉。在下一部分“感觉和感觉相关神经元中通用的Ca(2 +)连锁ROS - GC信号转导概念的演变”中,提出了一个理论概念,即“Ca(2 +)连锁ROS - GC信号转导”机制成为感觉和感觉相关神经元的共同信号成分。综述以结论和未来方向收尾。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/64b4/4079103/3940fbd64ec1/fnmol-07-00056-g0001.jpg

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