Functional Regrowth of Norepinephrine Axons in the Adult Mouse Brain Following Injury.

IF 2.7 3区 医学 Q3 NEUROSCIENCES
eNeuro Pub Date : 2025-01-10 Print Date: 2025-01-01 DOI:10.1523/ENEURO.0418-24.2024
Patrick Cooke, David J Linden
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引用次数: 0

Abstract

It is widely believed that axons in the central nervous system of adult mammals do not regrow following injury. This failure is thought, at least in part, to underlie the limited recovery of function following injury to the brain or spinal cord. Some studies of fixed tissue have suggested that, counter to dogma, norepinephrine (NE) axons regrow following brain injury. Here, we have used in vivo two-photon microscopy in layer 1 of the primary somatosensory cortex in transgenic mice harboring a fluorophore selectively expressed in NE neurons. This protocol allowed us to explore the dynamic nature of NE axons following injury with the selective NE axon toxin N-(2-chloroethyl)-N-ethyl-2-bromobenzylamine (DSP4). Following DSP4, NE axons were massively depleted and then slowly and partially recovered their density over a period of weeks. This regrowth was dominated by new axons entering the imaged volume. There was almost no contribution from local sprouting from spared NE axons. Regrown axons did not appear to use either the paths of previously lesioned NE axons or NE axons that were spared and survived DSP4 as a guide. To measure NE release, GCaMP8s was selectively expressed in neocortical astrocytes and startle-evoked, NE receptor-mediated Ca2+ transients were measured. These Ca2+ transients were abolished soon after DSP4 lesion but returned to pre-lesion values after 3-5 weeks, roughly coincident with NE axon regrowth, suggesting that the regrown NE axons are competent to release NE in response to a physiological stimulus in the awake mouse.

成年小鼠脑损伤后去甲肾上腺素轴突的功能再生。
人们普遍认为,成年哺乳动物中枢神经系统的轴突在损伤后不会再生。这种失败被认为,至少在一定程度上,是脑或脊髓损伤后功能恢复有限的原因。一些固定组织的研究表明,与教条相反,去甲肾上腺素(NE)轴突在脑损伤后再生。在这里,我们在NE神经元中选择性表达荧光团的转基因小鼠的初级体感觉皮层的第一层使用了体内双光子显微镜。该方案使我们能够探索选择性NE轴突毒素N-(2-氯乙基)-N-乙基-2-溴苄胺(DSP4)损伤后NE轴突的动态性质。在DSP4之后,NE轴突大量消耗,然后在数周内缓慢和部分恢复其密度。这种再生以进入成像体积的新轴突为主。未受影响的NE轴突的本地发芽几乎没有贡献。再生的轴突似乎没有使用先前受损的NE轴突的路径,也没有使用幸免于DSP4并存活下来的NE轴突作为指导。为了测量NE的释放,GCaMP8s在新皮质星形胶质细胞中选择性表达,并测量了惊起的,NE受体介导的Ca2+瞬态。这些Ca2+瞬态在DSP4损伤后很快被消除,但在3-5周后恢复到损伤前的值,大致与NE轴突的再生一致,这表明再生的NE轴突能够在清醒小鼠的生理刺激下释放NE。意义声明人们普遍认为,成年哺乳动物中枢神经系统(CNS)的轴突在损伤后不能再生。与这一观点相反,我们描述了成年小鼠脑损伤后去甲肾上腺素轴突的结构和功能再生。这些结果通过证明另一种神经元亚型的轴突再生以及这些再生轴突对外部生理刺激的正常反应能力,扩展了先前描述中枢神经系统中血清素轴突再生能力的研究。综上所述,这些发现表明单胺能神经元有一个共同的轴突再生程序。阐明这一分子和遗传程序可以为促进中枢神经系统损伤后轴突再生和功能恢复的治疗提供信息。
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
eNeuro
eNeuro Neuroscience-General Neuroscience
CiteScore
5.00
自引率
2.90%
发文量
486
审稿时长
16 weeks
期刊介绍: An open-access journal from the Society for Neuroscience, eNeuro publishes high-quality, broad-based, peer-reviewed research focused solely on the field of neuroscience. eNeuro embodies an emerging scientific vision that offers a new experience for authors and readers, all in support of the Society’s mission to advance understanding of the brain and nervous system.
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