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构建神经肌肉接头:用于研究突触发生和神经退行性变的体外模型

Toward Building the Neuromuscular Junction: In Vitro Models To Study Synaptogenesis and Neurodegeneration.

作者信息

Natarajan Anupama, Sethumadhavan Anjali, Krishnan Uma Maheswari

机构信息

Centre for Nanotechnology & Advanced Biomaterials (CeNTAB), School of Chemical & Biotechnology, and School of Arts, Science & Humanities, SASTRA Deemed University, Thanjavur 613 401, India.

出版信息

ACS Omega. 2019 Jul 31;4(7):12969-12977. doi: 10.1021/acsomega.9b00973.

Abstract

The neuromuscular junction (NMJ) is a unique, specialized chemical synapse that plays a crucial role in transmitting and amplifying information from spinal motor neurons to skeletal muscles. NMJ complexity ensures closely intertwined interactions between numerous synaptic vesicles, signaling molecules, ion channels, motor neurons, glia, and muscle fibers, making it difficult to dissect the underlying mechanisms and factors affecting neurodegeneration and muscle loss. Muscle fiber or motor neuron cell death followed by rapid axonal degeneration due to injury or disease has a debilitating effect on movement and behavior, which adversely affects the quality of life. It thus becomes imperative to study the synapse and intercellular signaling processes that regulate plasticity at the NMJ and elucidate mechanisms and pathways at the cellular level. Studies using in vitro 2D cell cultures have allowed us to gain a fundamental understanding of how the NMJ functions. However, they do not provide information on the intricate signaling networks that exist between NMJs and the biological environment. The advent of 3D cell cultures and microfluidic lab-on-a-chip technologies has opened whole new avenues to explore the NMJ. In this perspective, we look at the challenges involved in building a functional NMJ and the progress made in generating models for studying the NMJ, highlighting the current and future applications of these models.

摘要

神经肌肉接头(NMJ)是一种独特的、专门的化学突触,在将信息从脊髓运动神经元传递并放大至骨骼肌的过程中发挥着关键作用。NMJ的复杂性确保了众多突触小泡、信号分子、离子通道、运动神经元、神经胶质和肌纤维之间紧密交织的相互作用,使得剖析影响神经退行性变和肌肉损失的潜在机制及因素变得困难。由于损伤或疾病导致肌纤维或运动神经元细胞死亡,继而快速发生轴突退变,这会对运动和行为产生削弱性影响,进而对生活质量产生不利影响。因此,研究调节NMJ可塑性的突触和细胞间信号传导过程,并阐明细胞水平的机制和途径就变得势在必行。使用体外二维细胞培养的研究使我们对NMJ的功能有了基本的了解。然而,它们并未提供有关NMJ与生物环境之间存在的复杂信号网络的信息。三维细胞培养和微流控芯片实验室技术的出现为探索NMJ开辟了全新的途径。从这个角度出发,我们审视构建功能性NMJ所涉及的挑战以及在生成用于研究NMJ的模型方面所取得的进展,突出这些模型的当前及未来应用。

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