Intracellular Zn2+ concentrations increase via depolarization-mediated influx or intracellular release, but the immediate effects of Zn2+ signals on neuron function are not fully understood. By simultaneous recording of cytosolic Zn2+ and organelle motility, we find that elevated Zn2+ (IC50 â 5-10 nM) reduces both lysosomal and mitochondrial motility in primary rat hippocampal neurons and HeLa cells. Using live-cell confocal microscopy and in vitro single-molecule TIRF imaging, we reveal that Zn2+ inhibits activity of motor proteins (kinesin and dynein) without disrupting their microtubule binding. Instead, Zn2+ directly binds to microtubules and selectively promotes detachment of tau, DCX, and MAP2C, but not MAP1B, MAP4, MAP7, MAP9, or p150glued. Bioinformatic predictions and structural modeling show that the Zn2+ binding sites on microtubules partially overlap with the microtubule binding sites of tau, DCX, dynein, and kinesin. Our results reveal that intraneuronal Zn2+ regulates axonal transport and microtubule-based processes by interacting with microtubules.
Zn2+ decoration of microtubules arrests axonal transport and displaces tau, doublecortin, and MAP2C.
Zn2+修饰微管可阻止轴突运输,并使tau蛋白、双皮质素和MAP2C蛋白移位
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作者:Minckley Taylor F, Salvagio Lyndsie A, Fudge Dylan H, Verhey Kristen, Markus Steven M, Qin Yan
| 期刊: | Journal of Cell Biology | 影响因子: | 6.400 |
| 时间: | 2023 | 起止号: | 2023 Aug 7; 222(8):e202208121 |
| doi: | 10.1083/jcb.202208121 | 研究方向: | 免疫/内分泌 |
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