Mechanism and site of action of big dynorphin on ASIC1a

酸敏离子通道 强啡肽 化学 神经肽 离子通道 氨基酸 结合位点 神经传递 作用机理 神经科学 生物化学 细胞生物学 生物物理学 生物 阿片肽 受体 类阿片 体外
作者
Christian B. Borg,Nina Braun,Stephanie A. Heusser,Yasmin Bay,Daniel Weis,Iacopo Galleano,Camilla Lund,Weihua Tian,Linda M. Haugaard‐Kedström,Eric Bennett,Timothy Lynagh,Kristian Strømgaard,Jacob Andersen,Stephan A. Pless
出处
期刊:Proceedings of the National Academy of Sciences of the United States of America [Proceedings of the National Academy of Sciences]
卷期号:117 (13): 7447-7454 被引量:40
标识
DOI:10.1073/pnas.1919323117
摘要

Acid-sensing ion channels (ASICs) are proton-gated cation channels that contribute to neurotransmission, as well as initiation of pain and neuronal death following ischemic stroke. As such, there is a great interest in understanding the in vivo regulation of ASICs, especially by endogenous neuropeptides that potently modulate ASICs. The most potent endogenous ASIC modulator known to date is the opioid neuropeptide big dynorphin (BigDyn). BigDyn is up-regulated in chronic pain and increases ASIC-mediated neuronal death during acidosis. Understanding the mechanism and site of action of BigDyn on ASICs could thus enable the rational design of compounds potentially useful in the treatment of pain and ischemic stroke. To this end, we employ a combination of electrophysiology, voltage-clamp fluorometry, synthetic BigDyn analogs, and noncanonical amino acid-mediated photocrosslinking. We demonstrate that BigDyn binding results in an ASIC1a closed resting conformation that is distinct from open and desensitized states induced by protons. Using alanine-substituted BigDyn analogs, we find that the BigDyn modulation of ASIC1a is primarily mediated through electrostatic interactions of basic amino acids in the BigDyn N terminus. Furthermore, neutralizing acidic amino acids in the ASIC1a extracellular domain reduces BigDyn effects, suggesting a binding site at the acidic pocket. This is confirmed by photocrosslinking using the noncanonical amino acid azidophenylalanine. Overall, our data define the mechanism of how BigDyn modulates ASIC1a, identify the acidic pocket as the binding site for BigDyn, and thus highlight this cavity as an important site for the development of ASIC-targeting therapeutics.

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