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ZnT2 is an electroneutral proton-coupled vesicular antiporter displaying an apparent stoichiometry of two protons per zinc ion

机译:ZnT2是电中性质子偶联的水泡反向转运体每个锌离子的表观化学计量为两个质子

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摘要

Zinc is a vital trace element crucial for the proper function of some 3,000 cellular proteins. Specifically, zinc is essential for key physiological processes including nucleic acid metabolism, regulation of gene expression, signal transduction, cell division, immune- and nervous system functions, wound healing, and apoptosis. Consequently, impairment of zinc homeostasis disrupts key cellular functions resulting in various human pathologies. Mammalian zinc transport proceeds via two transporter families ZnT and ZIP. However, the detailed mechanism of action of ZnT2, which is responsible for vesicular zinc accumulation and zinc secretion into breast milk during lactation, is currently unknown. Moreover, although the putative coupling of zinc transport to the proton gradient in acidic vesicles has been suggested, it has not been conclusively established. Herein we modeled the mechanism of action of ZnT2 and demonstrated both computationally and experimentally, using functional zinc transport assays, that ZnT2 is indeed a proton-coupled zinc antiporter. Bafilomycin A1, a specific inhibitor of vacuolar-type proton ATPase (V-ATPase) which alkalizes acidic vesicles, abolished ZnT2-dependent zinc transport into intracellular vesicles. Moreover, using LysoTracker Red and Lyso-pHluorin, we further showed that upon transient ZnT2 overexpression in intracellular vesicles and addition of exogenous zinc, the vesicular pH underwent alkalization, presumably due to a proton-zinc antiport; this phenomenon was reversed in the presence of TPEN, a specific zinc chelator. Finally, based on computational energy calculations, we propose that ZnT2 functions as an antiporter with a stoichiometry of 2H+/Zn2+ ion. Hence, ZnT2 is a proton motive force-driven, electroneutral vesicular zinc exchanger, concentrating zinc in acidic vesicles on the expense of proton extrusion to the cytoplasm.
机译:锌是至关重要的微量元素,对约3,000种细胞蛋白质的正常功能至关重要。具体而言,锌对于关键的生理过程至关重要,包括核酸代谢,基因表达调节,信号转导,细胞分裂,免疫和神经系统功能,伤口愈合和细胞凋亡。因此,锌稳态的损害破坏了关键的细胞功能,导致各种人类疾病。哺乳动物的锌运输通过两个运输族ZnT和ZIP进行。但是,目前尚不清楚ZnT2的详细作用机理,ZnT2引起泌乳期间水泡中锌的积累和锌分泌到母乳中。而且,尽管已经提出了锌转运与酸性囊泡中质子梯度的可能偶合,但尚未最终确定。本文中,我们对ZnT2的作用机理进行了建模,并使用功能性锌转运分析法在计算和实验上均证明了ZnT2确实是质子偶联的锌反转运蛋白。 Bafilomycin A1是液泡型质子ATPase(V-ATPase)的一种特异性抑制剂,可将酸性囊泡碱化,从而消除了依赖ZnT2的锌向细胞内囊泡的转运。此外,使用LysoTracker Red和Lyso-pHluorin,我们进一步表明,在细胞内小泡中瞬时ZnT2过表达并添加外源锌后,小泡pH值发生了碱化,这可能是由于质子-锌的反转运所致。在TPEN(一种特殊的锌螯合剂)的存在下,这种现象被逆转了。最后,基于计算能量的计算,我们提出ZnT2作为反转运蛋白,其化学计量比为2H + / Zn 2 + 离子。因此,ZnT2是质子动力驱动的电子中性囊泡锌交换剂,以质子挤出到细胞质的代价浓缩了酸性囊泡中的锌。

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