Redox signaling modulates axonal microtubule organization and induces a specific phosphorylation signature of microtubule-regulating proteins

IF 11.9 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY Redox Biology Pub Date : 2025-04-03 DOI:10.1016/j.redox.2025.103626
Christian Conze , Nataliya I. Trushina , Nanci Monteiro-Abreu , Lisha Singh , Daniel Villar Romero , Eike Wienbeuker , Anna-Sophie Schwarze , Michael Holtmannspötter , Lidia Bakota , Roland Brandt
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Abstract

Many life processes are regulated by physiological redox signaling, but excessive oxidative stress can damage biomolecules and contribute to disease. Neuronal microtubules are critically involved in axon homeostasis, regulation of axonal transport, and neurodegenerative processes. However, whether and how physiological redox signaling affects axonal microtubules is largely unknown. Using live cell imaging and super-resolution microscopy, we show that subtoxic concentrations of the central redox metabolite hydrogen peroxide increase axonal microtubule dynamics, alter the structure of the axonal microtubule array, and affect the efficiency of axonal transport. We report that the mitochondria-targeting antioxidant SkQ1 and the microtubule stabilizer EpoD abolish the increase in microtubule dynamics. We found that hydrogen peroxide specifically modulates the phosphorylation state of microtubule-regulating proteins, which differs from arsenite as an alternative stress inducer, and induces a largely non-overlapping phosphorylation pattern of MAP1B as a main target. Cell-wide phosphoproteome analysis revealed signaling pathways that are inversely activated by hydrogen peroxide and arsenite. In particular, hydrogen peroxide treatment was associated with kinases that suppress apoptosis and regulate brain metabolism (PRKDC, CK2, PDKs), suggesting that these pathways play a central role in physiological redox signaling and modulation of axonal microtubule organization. The results suggest that the redox metabolite and second messenger hydrogen peroxide induces rapid and local reorganization of the microtubule array in response to mitochondrial activity or as a messenger from neighboring cells by activating specific signaling cascades.
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氧化还原信号调节轴突微管组织并诱导微管调节蛋白的特定磷酸化特征
许多生命过程受到生理氧化还原信号的调节,但过度的氧化应激会损害生物分子并导致疾病。神经元微管在轴突稳态、轴突运输调节和神经退行性过程中起着重要作用。然而,生理氧化还原信号是否以及如何影响轴突微管在很大程度上是未知的。利用活细胞成像和超分辨率显微镜,我们发现亚毒性浓度的中央氧化还原代谢物过氧化氢增加轴突微管动力学,改变轴突微管阵列的结构,并影响轴突运输的效率。我们报道了线粒体靶向抗氧化剂SkQ1和微管稳定剂EpoD消除了微管动力学的增加。我们发现过氧化氢特异性地调节微管调节蛋白的磷酸化状态,这不同于亚砷酸盐作为一种替代的应激诱导剂,并诱导MAP1B的大部分不重叠的磷酸化模式作为主要靶点。全细胞磷蛋白质组学分析揭示了过氧化氢和亚砷酸盐反向激活的信号通路。特别是,过氧化氢处理与抑制细胞凋亡和调节脑代谢的激酶(PRKDC, CK2, PDKs)相关,表明这些途径在生理氧化还原信号传导和轴突微管组织调节中发挥核心作用。结果表明,氧化还原代谢物和第二信使过氧化氢通过激活特定的信号级联,作为邻近细胞的信使或响应线粒体活性,诱导微管阵列的快速和局部重组。
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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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