Cellular basis of learning and memory in the carotid body.

IF 4.7 Q2 MATERIALS SCIENCE, BIOMATERIALS ACS Applied Bio Materials Pub Date : 2022-08-15 eCollection Date: 2022-01-01 DOI:10.3389/fnsyn.2022.902319
Olivia M S Gold, Emma N Bardsley, Anna P Ponnampalam, Audrys G Pauza, Julian F R Paton
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Abstract

The carotid body is the primary peripheral chemoreceptor in the body, and critical for respiration and cardiovascular adjustments during hypoxia. Yet considerable evidence now implicates the carotid body as a multimodal sensor, mediating the chemoreflexes of a wide range of physiological responses, including pH, temperature, and acidosis as well as hormonal, glucose and immune regulation. How does the carotid body detect and initiate appropriate physiological responses for these diverse stimuli? The answer to this may lie in the structure of the carotid body itself. We suggest that at an organ-level the carotid body is comparable to a miniature brain with compartmentalized discrete regions of clustered glomus cells defined by their neurotransmitter expression and receptor profiles, and with connectivity to defined reflex arcs that play a key role in initiating distinct physiological responses, similar in many ways to a switchboard that connects specific inputs to selective outputs. Similarly, within the central nervous system, specific physiological outcomes are co-ordinated, through signaling via distinct neuronal connectivity. As with the brain, we propose that highly organized cellular connectivity is critical for mediating co-ordinated outputs from the carotid body to a given stimulus. Moreover, it appears that the rudimentary components for synaptic plasticity, and learning and memory are conserved in the carotid body including the presence of glutamate and GABAergic systems, where evidence pinpoints that pathophysiology of common diseases of the carotid body may be linked to deviations in these processes. Several decades of research have contributed to our understanding of the central nervous system in health and disease, and we discuss that understanding the key processes involved in neuronal dysfunction and synaptic activity may be translated to the carotid body, offering new insights and avenues for therapeutic innovation.

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颈动脉体学习和记忆的细胞基础
颈动脉体是人体最主要的外周化学感受器,对缺氧时的呼吸和心血管调节至关重要。然而,现在有大量证据表明,颈动脉体是一个多模式传感器,可介导多种生理反应的化学反射,包括 pH 值、温度、酸中毒以及激素、葡萄糖和免疫调节。颈动脉体如何检测这些不同的刺激并启动适当的生理反应?答案可能在于颈动脉体本身的结构。我们认为,在器官层面上,颈动脉体相当于一个微型大脑,其神经递质表达和受体特征决定了神经胶质细胞聚集的分区离散区域,并与确定的反射弧相连接,这些反射弧在启动不同的生理反应中发挥着关键作用,在许多方面类似于将特定输入连接到选择性输出的配电盘。同样,在中枢神经系统中,特定的生理结果也是通过不同的神经元连接信号来协调的。与大脑一样,我们认为高度组织化的细胞连接对于协调颈动脉体对特定刺激的输出至关重要。此外,颈动脉体似乎保留了突触可塑性、学习和记忆的基本组成部分,包括谷氨酸和 GABA 能系统,有证据表明颈动脉体常见疾病的病理生理学可能与这些过程的偏差有关。数十年的研究促进了我们对健康和疾病中中枢神经系统的了解,我们讨论的是,了解神经元功能障碍和突触活动所涉及的关键过程可能会转化到颈动脉体,为治疗创新提供新的见解和途径。
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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
期刊介绍: ACS Applied Bio Materials is an interdisciplinary journal publishing original research covering all aspects of biomaterials and biointerfaces including and beyond the traditional biosensing, biomedical and therapeutic applications. The journal is devoted to reports of new and original experimental and theoretical research of an applied nature that integrates knowledge in the areas of materials, engineering, physics, bioscience, and chemistry into important bio applications. The journal is specifically interested in work that addresses the relationship between structure and function and assesses the stability and degradation of materials under relevant environmental and biological conditions.
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