Pang Changxu, Nguyen Hoang, Zhang Qingfang, Bahar Ivet, Liu Qun
Biology Department, Brookhaven National Laboratory; Upton, NY 11973, USA.
Department of Biochemistry and Cell Biology, Renaissance School of Medicine, Stony Brook University, Stony Brook, NY 11794, USA.
bioRxiv. 2025 Jul 4:2025.07.03.663024. doi: 10.1101/2025.07.03.663024.
How do bacteria acquire scarce Zn to fuel vital cellular functions? Microorganisms employ high-affinity Zn ABC transporters, yet their structures and regulation are poorly understood. Here, we report cryo-EM structures of the ZnuB-ZnuC complex, revealing a ZnuB homodimer in an outward-facing, sealed conformation with a central hydrophilic cavity and ZnuC subunits composed of an N-terminal ATP-binding cassette and a C-terminal zinc-sensing domain (ZSD). Zn binding to the ZSD locks the transporter in an inhibited state regardless of nucleotide, whereas under low-Zn conditions, ZSD C-terminal disorder permits ATP-driven zinc uptake. These findings clarify the molecular basis of Zn acquisition and highlight new targets for disrupting metal homeostasis in pathogens.
细菌如何获取稀缺的锌以支持重要的细胞功能?微生物利用高亲和力的锌ABC转运蛋白,但其结构和调控机制却知之甚少。在此,我们报告了ZnuB-ZnuC复合物的冷冻电镜结构,揭示了一个处于向外开放、封闭构象的ZnuB同型二聚体,其具有一个中央亲水腔,以及由N端ATP结合盒和C端锌感应结构域(ZSD)组成的ZnuC亚基。锌与ZSD结合会使转运蛋白无论核苷酸状态如何都处于抑制状态,而在低锌条件下,ZSD C端的无序状态允许ATP驱动锌的摄取。这些发现阐明了锌获取的分子基础,并突出了破坏病原体金属稳态的新靶点。