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Zur 调控的 ZinT 蛋白是高亲和力 ZnuABC 锌转运体的辅助成分,有助于在严重缺锌时招募金属。

The Zur-regulated ZinT protein is an auxiliary component of the high-affinity ZnuABC zinc transporter that facilitates metal recruitment during severe zinc shortage.

机构信息

Dipartimento di Biologia Università di Roma Tor Vergata, 00133 Rome, Italy.

出版信息

J Bacteriol. 2010 Mar;192(6):1553-64. doi: 10.1128/JB.01310-09. Epub 2010 Jan 22.

Abstract

The pathways ensuring the efficient uptake of zinc are crucial for the ability of bacteria to multiply in the infected host. To better understand bacterial responses to zinc deficiency, we have investigated the role of the periplasmic protein ZinT in Salmonella enterica serovar Typhimurium. We have found that zinT expression is regulated by Zur and parallels that of ZnuA, the periplasmic component of the zinc transporter ZnuABC. Despite the fact that ZinT contributes to Salmonella growth in media containing little zinc, disruption of zinT does not significantly affect virulence in mice. The role of ZinT became clear using strains expressing a mutated form of ZnuA lacking a characteristic histidine-rich domain. In fact, Salmonella strains producing this modified form of ZnuA exhibited a ZinT-dependent capability to import zinc either in vitro or in infected mice, suggesting that ZinT and the histidine-rich region of ZnuA have redundant function. The hypothesis that ZinT and ZnuA cooperate in the process of zinc recruitment is supported by the observation that they form a stable binary complex in vitro. Although the presence of ZinT is not strictly required to ensure the functionality of the ZnuABC transporter, our data suggest that ZinT facilitates metal acquisition during severe zinc shortage.

摘要

确保锌高效摄取的途径对于细菌在感染宿主中繁殖的能力至关重要。为了更好地理解细菌对缺锌的反应,我们研究了周质蛋白 ZinT 在鼠伤寒沙门氏菌中的作用。我们发现,zinT 的表达受 Zur 调控,并与锌转运体 ZnuABC 的周质成分 ZnuA 的表达平行。尽管 ZinT 有助于沙门氏菌在含锌量低的培养基中生长,但 zinT 的缺失并不显著影响其在小鼠中的毒力。使用表达一种缺乏特征性组氨酸丰富结构域的突变形式的 ZnuA 的菌株,明确了 ZinT 的作用。事实上,产生这种修饰形式的 ZnuA 的沙门氏菌菌株在体外或感染的小鼠中表现出依赖 ZinT 的摄取锌的能力,表明 ZinT 和 ZnuA 的组氨酸丰富区具有冗余功能。ZinT 和 ZnuA 在锌募集过程中合作的假设得到了以下观察结果的支持:它们在体外形成稳定的二元复合物。尽管 ZinT 的存在对于确保 ZnuABC 转运体的功能不是严格必需的,但我们的数据表明,ZinT 有助于在严重缺锌时获取金属。

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