Lopez-Ortiz Aída Oryza, Eyo Ukpong B
Center for Brain Immunology and Glia, University of Virginia School of Medicine, Charlottesville, Virginia, USA.
Department of Neuroscience, University of Virginia School of Medicine, Charlottesville, Virginia, USA.
J Neurochem. 2024 Oct;168(10):3599-3614. doi: 10.1111/jnc.16006. Epub 2023 Nov 20.
Glia have emerged as important architects of central nervous system (CNS) development and maintenance. While traditionally glial contributions to CNS development and maintenance have been studied independently, there is growing evidence that either suggests or documents that glia may act in coordinated manners to effect developmental patterning and homeostatic functions in the CNS. In this review, we focus on astrocytes, the most abundant glia in the CNS, and microglia, the earliest glia to colonize the CNS highlighting research that documents either suggestive or established coordinated actions by these glial cells in various CNS processes including cell and/or debris clearance, neuronal survival and morphogenesis, synaptic maturation, and circuit function, angio-/vasculogenesis, myelination, and neurotransmission. Some molecular mechanisms underlying these processes that have been identified are also described. Throughout, we categorize the available evidence as either suggestive or established interactions between microglia and astrocytes in the regulation of the respective process and raise possible avenues for further research. We conclude indicating that a better understanding of coordinated astrocyte-microglial interactions in the developing and mature brain holds promise for developing effective therapies for brain pathologies where these processes are perturbed.
神经胶质细胞已成为中枢神经系统(CNS)发育和维持的重要构建者。传统上,神经胶质细胞对中枢神经系统发育和维持的作用是独立研究的,但越来越多的证据表明,神经胶质细胞可能以协调的方式发挥作用,影响中枢神经系统的发育模式和稳态功能。在这篇综述中,我们聚焦于星形胶质细胞(中枢神经系统中最丰富的神经胶质细胞)和小胶质细胞(最早定殖于中枢神经系统的神经胶质细胞),重点介绍那些记录了这些神经胶质细胞在各种中枢神经系统过程中协同作用的研究,这些过程包括细胞和/或碎片清除、神经元存活和形态发生、突触成熟、回路功能、血管生成、髓鞘形成以及神经传递。还描述了已确定的这些过程背后的一些分子机制。在整个综述过程中,我们将现有证据归类为小胶质细胞和星形胶质细胞在各自过程调节中的可能相互作用或已确定的相互作用,并提出进一步研究的可能途径。我们得出结论,表明更好地理解发育中和成熟大脑中星形胶质细胞与小胶质细胞的协同相互作用,有望为开发针对这些过程受到干扰的脑部疾病的有效疗法带来希望。