Identification of hypothermia-inducing neurons in the preoptic area and activation of them by isoflurane anesthesia and central injection of adenosine.

IF 3.2 4区 医学 Q2 PHYSIOLOGY Journal of Physiological Sciences Pub Date : 2024-01-01 Epub Date: 2025-01-02 DOI:10.1186/s12576-024-00927-2
Erika Uchino, Ikue Kusumoto-Yoshida, Hideki Kashiwadani, Yuichi Kanmura, Akira Matsunaga, Tomoyuki Kuwaki
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Abstract

Hibernation and torpor are not passive responses caused by external temperature drops and fasting but are active brain functions that lower body temperature. A population of neurons in the preoptic area was recently identified as such active torpor-regulating neurons. We hypothesized that the other hypothermia-inducing maneuvers would also activate these neurons. To test our hypothesis, we first refined the previous observations, examined the brain regions explicitly activated during the falling phase of body temperature using c-Fos expression, and confirmed the preoptic area. Next, we observed long-lasting hypothermia by reactivating torpor-tagged Gq-expressing neurons using the activity tagging and DREADD systems. Finally, we found that about 40-60% of torpor-tagged neurons were activated by succeeding isoflurane anesthesia and by icv administration of an adenosine A1 agonist. Isoflurane-induced and central adenosine-induced hypothermia is, at least in part, an active process mediated by the torpor-regulating neurons in the preoptic area. GRAPHICAL ABSTRACT.

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异氟醚麻醉和中央注射腺苷对视前区低温诱导神经元的激活作用。
冬眠和昏睡不是由于外界温度下降和禁食引起的被动反应,而是大脑主动降低体温的功能。在视前区的一群神经元最近被确定为这种活跃的睡眠调节神经元。我们假设其他诱导体温过低的动作也会激活这些神经元。为了验证我们的假设,我们首先完善了之前的观察结果,使用c-Fos表达检查了在体温下降阶段明确激活的大脑区域,并确认了视前区。接下来,我们通过使用活动标记和DREADD系统重新激活睡眠标记的表达gq的神经元,观察了持久的低温。最后,我们发现大约40-60%的休眠标记神经元通过异氟醚麻醉和静脉注射腺苷A1激动剂被激活。异氟醚诱导和中央腺苷诱导的低温至少在一定程度上是由视前区睡眠调节神经元介导的一个活跃过程。图形抽象。
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来源期刊
CiteScore
4.40
自引率
4.30%
发文量
27
审稿时长
6-12 weeks
期刊介绍: The Journal of Physiological Sciences publishes peer-reviewed original papers, reviews, short communications, technical notes, and letters to the editor, based on the principles and theories of modern physiology and addressed to the international scientific community. All fields of physiology are covered, encompassing molecular, cellular and systems physiology. The emphasis is on human and vertebrate physiology, but comparative papers are also considered. The process of obtaining results must be ethically sound. Fields covered: Adaptation and environment Autonomic nervous function Biophysics Cell sensors and signaling Central nervous system and brain sciences Endocrinology and metabolism Excitable membranes and neural cell physiology Exercise physiology Gastrointestinal and kidney physiology Heart and circulatory physiology Molecular and cellular physiology Muscle physiology Physiome/systems biology Respiration physiology Senses.
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