Brain amino acid sensing for organismal amino acid homeostasis.

IF 3.6 3区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Open Biology Pub Date : 2025-08-01 Epub Date: 2025-08-06 DOI:10.1098/rsob.250092
Anthony H Tsang, Liubou Samson, Clemence Blouet
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引用次数: 0

Abstract

Amino acids are essential for normal physiological functions, and disruptions in their circulating concentrations are implicated in the pathophysiology of various diseases. Therefore, understanding the mechanisms that regulate circulating amino acid levels in normal physiology is of critical importance. Evidence indicates that in healthy mammals, post-absorptive circulating levels of essential amino acids are maintained within a range that varies little from day to day or following bidirectional changes in dietary protein intake. This suggests the presence of homeostatic control mechanisms. Here, we propose a conceptual framework for the homeostatic regulation of essential amino acid availability, emphasizing the role of the brain in generating feedback controls to restore baseline levels acutely after a meal and during chronic changes in dietary protein intake. We review current evidence supporting brain amino acid sensing as a component of this regulatory system, integrating peripheral and central signals to modulate dietary protein intake and peripheral amino acid metabolism. We highlight major knowledge gaps regarding the specific neural circuits, molecular mechanisms and physiological outcomes of brain amino acid sensing. Future inquiry using the proposed framework and addressing these gaps will significantly enhance our understanding of the pathways involved in the maintenance of circulating amino acid availability and the regulation of lean mass in health, disease states or in response to therapeutic strategies for metabolic diseases.

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脑氨基酸感知对机体氨基酸稳态的影响。
氨基酸是正常生理功能所必需的,其循环浓度的中断与各种疾病的病理生理有关。因此,了解正常生理中调节循环氨基酸水平的机制是至关重要的。有证据表明,在健康哺乳动物中,必需氨基酸的吸收后循环水平维持在每天变化不大的范围内,或在饮食蛋白质摄入量发生双向变化后。这表明存在稳态控制机制。在这里,我们提出了一个必需氨基酸可用性稳态调节的概念框架,强调大脑在产生反馈控制以在餐后和饮食蛋白质摄入量慢性变化期间迅速恢复基线水平方面的作用。我们回顾了目前支持脑氨基酸感知作为该调节系统组成部分的证据,整合外周和中枢信号来调节膳食蛋白质摄入和外周氨基酸代谢。我们强调了关于大脑氨基酸感知的特定神经回路、分子机制和生理结果的主要知识空白。使用所提出的框架和解决这些差距的未来调查将显著增强我们对参与维持循环氨基酸可用性和调节健康,疾病状态或代谢疾病治疗策略的瘦质量的途径的理解。
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来源期刊
Open Biology
Open Biology BIOCHEMISTRY & MOLECULAR BIOLOGY-
CiteScore
10.00
自引率
1.70%
发文量
136
审稿时长
6-12 weeks
期刊介绍: Open Biology is an online journal that welcomes original, high impact research in cell and developmental biology, molecular and structural biology, biochemistry, neuroscience, immunology, microbiology and genetics.
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