Acquired Piezo2 Channelopathy is One Principal Gateway to Pathophysiology.

IF 3.3 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Balázs Sonkodi
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引用次数: 0

Abstract

The Piezo2 transmembrane proteins were identified by Ardem Patapoutian and his team. They also found that Piezo2 is the principal mechanosensory ion channel responsible for proprioception. Even before the Nobel Prize was awarded to him, it was proposed that these Piezo2 channels could sustain acquired microdamage at the proprioceptive somatosensory terminals under allostatic stress. Moreover, the principality of Piezo2 is suggested to extend beyond its physiological function, highlighting its relevance in the context of microdamage as well. Hence, acquired Piezo2 channelopathy is proposed to constitute one principal gateway to pathophysiology underpinned by proton affinity, energy metabolism and a proprioceptive pathway switch. The differentiating incomparable hallmark of Piezo2 is theorized to be a low-frequency semiconductor Schottky barrier diode-like feature that provides proton handling for quantum tunnelling and ultrafast long-range signalling to the hippocampus. Accordingly, even the proposed acquired Piezo2 channelopathy is also enigmatic by causing the impairment of this Piezo2-initiated ultrafast proton-based long-range signalling and proper synchronization to the hippocampus. The revealing of this protonic word and the ultrafast long-range signalling within the nervous system and its microdamage brings an entirely new perspective in medicine with the interpretation of the quad-phasic non-contact injury model. This is why this Piezo2 microdamage has been coined as the primary damage or the root cause of ageing. Paired-associative electromagnetic stimulation appears to be a promising treatment method and heart rate variability detection could be used for diagnosing autonomic nervous system disbalance as one symptom of this proposed Piezo2 channelopathy.

获得性Piezo2通道病变是病理生理学的一个主要途径。
Piezo2跨膜蛋白是由Ardem Patapoutian和他的团队鉴定出来的。他们还发现Piezo2是负责本体感觉的主要机械感觉离子通道。甚至在诺贝尔奖授予他之前,就有人提出这些Piezo2通道可以在适应应力下维持本体感觉体感觉终端的获得性微损伤。此外,Piezo2的原理被建议超越其生理功能,突出其在微损伤背景下的相关性。因此,获得性Piezo2通道病变被认为是由质子亲和、能量代谢和本体感觉通路开关支持的病理生理学的一个主要途径。从理论上讲,Piezo2的独特之处在于它是一种低频半导体肖特基势垒二极管,为量子隧穿和向海马体发送超高速远程信号提供质子处理。因此,即使是提出的获得性Piezo2通道病变也是难以理解的,因为它会导致这种由Piezo2启动的超快质子远程信号和海马的适当同步受损。这一质子词的揭示和神经系统内的超快远程信号及其微损伤的揭示,通过对四相非接触损伤模型的解释,为医学提供了一个全新的视角。这就是为什么这种Piezo2微损伤被认为是主要损伤或老化的根本原因。配对联合电磁刺激似乎是一种很有前途的治疗方法,心率变异性检测可用于诊断自主神经系统失衡,作为这种提出的Piezo2通道病的一个症状。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
3.50
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0.00%
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