Mitochondrial ROS modulate presynaptic plasticity in the drosophila neuromuscular junction

IF 10.7 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY Redox Biology Pub Date : 2025-02-01 DOI:10.1016/j.redox.2024.103474
Irina Stavrovskaya, Bethany Kristi Morin, Stephen Madamba, Cliyahnelle Alexander, Alexis Romano, Samia Alam, Lucas Pavlov, Erna Mitaishvili, Pablo M. Peixoto
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Abstract

The elevated emission of reactive oxygen species (ROS) from presynaptic mitochondria is well-documented in several inflammatory and neurodegenerative diseases. However, the potential role of mitochondrial ROS in presynaptic function and plasticity remains largely understudied beyond the context of disease. Here, we investigated this potential ROS role in presynaptic function and short-term plasticity by combining optogenetics, whole cell electrophysiological recordings, and live confocal imaging using a well-established protocol for induction and measurement of synaptic potentiation in Drosophila melanogaster neuromuscular junctions (NMJ). Optogenetic induction of ROS emission from presynaptic motorneuron mitochondria expressing mitokiller red (mK) resulted in synaptic potentiation, evidenced by an increase in the frequency of spontaneous mini excitatory junction potentials. Notably, this effect was not observed in flies co-expressing catalase, a cytosolic hydrogen peroxide (H2O2) scavenging enzyme. Moreover, the increase in electrical activity did not coincide with synaptic structural changes. The absence of Wnt1/Wg release from synaptic boutons suggested involvement of alternative or non-canonical signaling pathway(s). However, in existing boutons we observed an increase in the active zone (AZ) marker Brp/Erc1, which serves as docking site for the neurotransmitter vesicle release pool. We propose the involvement of putative redox switches in AZ components as the molecular target of mitochondrial H2O2. These findings establish a novel framework for understanding the signaling role of mROS in presynaptic structural and functional plasticity, providing insights into redox-based mechanisms of neuronal communication.

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线粒体ROS调节果蝇神经肌肉连接处的突触前可塑性。
在一些炎症和神经退行性疾病中,突触前线粒体活性氧(ROS)的升高是有充分证据的。然而,线粒体ROS在突触前功能和可塑性中的潜在作用在疾病背景之外仍未得到充分研究。在这里,我们通过结合光遗传学、全细胞电生理记录和实时共聚焦成像,研究了ROS在突触前功能和短期可塑性中的潜在作用,并使用了一种成熟的方案来诱导和测量黑腹果蝇神经肌肉连接(NMJ)的突触增强。光遗传诱导表达有丝分裂细胞红(mitokiller red, mK)的突触前运动神经元线粒体的ROS发射导致突触增强,这可以通过自发微兴奋连接电位的频率增加来证明。值得注意的是,在共表达过氧化氢酶(一种胞质过氧化氢(H2O2)清除酶)的果蝇中没有观察到这种效应。此外,脑电活动的增加与突触结构的变化并不一致。突触钮扣中Wnt1/Wg释放缺失提示参与了替代或非规范信号通路。然而,在现有钮扣中,我们观察到作为神经递质囊泡释放池对接位点的活性区(AZ)标记Brp/Erc1的增加。我们提出AZ组分中可能的氧化还原开关作为线粒体H2O2的分子靶标。这些发现为理解mROS在突触前结构和功能可塑性中的信号作用建立了一个新的框架,为基于氧化还原的神经元通信机制提供了见解。
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来源期刊
Redox Biology
Redox Biology BIOCHEMISTRY & MOLECULAR BIOLOGY-
CiteScore
19.90
自引率
3.50%
发文量
318
审稿时长
25 days
期刊介绍: Redox Biology is the official journal of the Society for Redox Biology and Medicine and the Society for Free Radical Research-Europe. It is also affiliated with the International Society for Free Radical Research (SFRRI). This journal serves as a platform for publishing pioneering research, innovative methods, and comprehensive review articles in the field of redox biology, encompassing both health and disease. Redox Biology welcomes various forms of contributions, including research articles (short or full communications), methods, mini-reviews, and commentaries. Through its diverse range of published content, Redox Biology aims to foster advancements and insights in the understanding of redox biology and its implications.
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