Flipping the switch: dynamic modulation of membrane transporter activity in bacteria.

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS
Rory Elston, Christopher Mulligan, Gavin H Thomas
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引用次数: 0

Abstract

The controlled entry and expulsion of small molecules across the bacterial cytoplasmic membrane is essential for efficient cell growth and cellular homeostasis. While much is known about the transcriptional regulation of genes encoding transporters, less is understood about how transporter activity is modulated once the protein is functional in the membrane, a potentially more rapid and dynamic level of control. In this review, we bring together literature from the bacterial transport community exemplifying the extensive and diverse mechanisms that have evolved to rapidly modulate transporter function, predominantly by switching activity off. This includes small molecule feedback, inhibition by interaction with small peptides, regulation through binding larger signal transduction proteins and, finally, the emerging area of controlled proteolysis. Many of these examples have been discovered in the context of metal transport, which has to finely balance active accumulation of elements that are essential for growth but can also quickly become toxic if intracellular homeostasis is not tightly controlled. Consistent with this, these transporters appear to be regulated at multiple levels. Finally, we find common regulatory themes, most often through the fusion of additional regulatory domains to transporters, which suggest the potential for even more widespread regulation of transporter activity in biology.

拨动开关:细菌膜转运蛋白活性的动态调节。
小分子通过细菌质膜的受控进入和排出对于有效的细胞生长和细胞稳态至关重要。虽然人们对编码转运蛋白的基因的转录调控知之甚少,但对一旦蛋白质在膜中发挥功能,转运蛋白活性如何被调节却知之甚少——这可能是一种更快速、更动态的控制水平。在这篇综述中,我们汇集了来自细菌运输界的文献,举例说明了广泛而多样的机制,这些机制主要通过关闭活性来快速调节转运蛋白功能。这包括小分子反馈、与小肽相互作用的抑制、通过结合更大的信号转导蛋白的调节,控制蛋白水解的新兴领域。这些例子中的许多都是在金属转运的背景下发现的,金属转运必须精细平衡对生长至关重要的元素的活性积累,但如果细胞内稳态没有得到严格控制,这些元素也可能迅速变得有毒。与此一致的是,这些转运蛋白似乎在多个水平上受到调节。最后,我们发现了共同的调控主题,通常是通过将额外的调控结构域与转运蛋白融合,这表明在生物学中对转运蛋白活性进行更广泛调控的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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