经典中枢神经系统神经递质GABA、甘氨酸和谷氨酸在肾脏中的一种新的功能作用:肾血管系统的强效和拮抗调节因子。

IF 3.7 2区 医学 Q1 PHYSIOLOGY American Journal of Physiology-renal Physiology Pub Date : 2023-07-01 Epub Date: 2023-04-27 DOI:10.1152/ajprenal.00425.2021
Scott S Wildman, Kadeshia Dunn, Justin P Van Beusecum, Edward W Inscho, Stephen Kelley, Rebecca J Lilley, Anthony K Cook, Kirsti D Taylor, Claire M Peppiatt-Wildman
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引用次数: 0

摘要

先前已经描述了肾GABA/谷氨酸系统的存在;然而,它在肾脏中的功能意义尚不明确。我们假设,鉴于其在肾脏中的广泛存在,GABA/谷氨酸系统的激活将引发肾微血管的血管活性反应。这里的功能数据首次表明,肾脏中内源性GABA和谷氨酸受体的激活显著改变了微血管直径,对影响肾脏血流具有重要意义。肾皮质和髓质微循环床中的肾血流量通过不同的信号通路进行调节。GABA和谷氨酸介导的对肾毛细血管的作用与中枢神经系统毛细血管调节的核心作用惊人地相似,也就是说,将肾组织暴露于生理浓度的GABA、谷氨酸和甘氨酸会导致收缩细胞、周细胞和平滑肌细胞调节肾微血管直径的方式发生改变。由于肾血流量失调与慢性肾脏疾病有关,肾GABA/谷氨酸系统的改变,可能通过处方药,可能会对长期肾功能产生重大影响。这里的新功能数据为肾脏GABA/谷氨酸系统的血管活性活性提供了新的见解。这些数据表明,肾脏中内源性GABA和谷氨酸受体的激活显著改变了微血管直径。此外,研究结果表明,这些抗癫痫药物与非甾体抗炎药一样对肾脏具有潜在的挑战性。
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A novel functional role for the classic CNS neurotransmitters, GABA, glycine, and glutamate, in the kidney: potent and opposing regulators of the renal vasculature.

The presence of a renal GABA/glutamate system has previously been described; however, its functional significance in the kidney remains undefined. We hypothesized, given its extensive presence in the kidney, that activation of this GABA/glutamate system would elicit a vasoactive response from the renal microvessels. The functional data here demonstrate, for the first time, that activation of endogenous GABA and glutamate receptors in the kidney significantly alters microvessel diameter with important implications for influencing renal blood flow. Renal blood flow is regulated in both the renal cortical and medullary microcirculatory beds via diverse signaling pathways. GABA- and glutamate-mediated effects on renal capillaries are strikingly similar to those central to the regulation of central nervous system capillaries, that is, exposing renal tissue to physiological concentrations of GABA, glutamate, and glycine led to alterations in the way that contractile cells, pericytes, and smooth muscle cells, regulate microvessel diameter in the kidney. Since dysregulated renal blood flow is linked to chronic renal disease, alterations in the renal GABA/glutamate system, possibly through prescription drugs, could significantly impact long-term kidney function.NEW & NOTEWORTHY Functional data here offer novel insight into the vasoactive activity of the renal GABA/glutamate system. These data show that activation of endogenous GABA and glutamate receptors in the kidney significantly alters microvessel diameter. Furthermore, the results show that these antiepileptic drugs are as potentially challenging to the kidney as nonsteroidal anti-inflammatory drugs.

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来源期刊
CiteScore
8.40
自引率
7.10%
发文量
154
审稿时长
2-4 weeks
期刊介绍: The American Journal of Physiology - Renal Physiology publishes original manuscripts on timely topics in both basic science and clinical research. Published articles address a broad range of subjects relating to the kidney and urinary tract, and may involve human or animal models, individual cell types, and isolated membrane systems. Also covered are the pathophysiological basis of renal disease processes, regulation of body fluids, and clinical research that provides mechanistic insights. Studies of renal function may be conducted using a wide range of approaches, such as biochemistry, immunology, genetics, mathematical modeling, molecular biology, as well as physiological and clinical methodologies.
期刊最新文献
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