School of Environmental Sciences, University of Guelph, School of Environmental Sciences, Guelph, Ontario, Canada.
Crit Rev Microbiol. 2013 May;39(2):196-217. doi: 10.3109/1040841X.2012.702098. Epub 2012 Jul 27.
Bacterial envelopes are chemically complex, diverse structures. Chemical and physical influences from cellular microenvironments force lipids, proteins, and sugars to organize dynamically. This constant reorganization serves to maintain compartmentalization and function, but also affects the influence of charged functional groups that drive electrochemical interactions with metal ions. The interactions of metal species with cell walls are of particular interest because (i) metals must be taken up or excluded to maintain cell function, and (ii) electrochemical interactions between charged metals and anionic ligands are inevitable. In this review we explore the associations of metals with metal-reactive ligands found within bacterial envelopes, and outward to include those within biofilm matrics. The mechanisms that underpin metal binding to these ligands have not been well considered with respect to the dynamic organization of the biological structures themselves. Bacteria respond sensitively and rapidly to growth environment with de novo syntheses of chemical constituents, which can impact metal interactions. We discuss causes of membrane chemical variability as observed in laboratory experiments, and offer consequences for this adaptability in natural settings. The structural impacts of metal ion associations with bacterial envelopes are often overlooked. This review explores how dynamic bacterial surface chemistry influences metal binding and, in turn, how metal ions impact membrane organization in laboratory and natural conditions.
细菌包膜是化学性质复杂、多样的结构。细胞微环境的化学和物理影响迫使脂质、蛋白质和糖动态地组织起来。这种不断的重组有助于维持区室化和功能,但也会影响带电荷的官能团的影响,这些官能团驱动与金属离子的电化学相互作用。金属物种与细胞壁的相互作用特别有趣,因为 (i) 为了维持细胞功能,金属必须被摄取或排除,以及 (ii) 带电荷的金属和阴离子配体之间的电化学相互作用是不可避免的。在这篇综述中,我们探讨了金属与细菌包膜内发现的金属反应性配体的结合,以及向外包括生物膜基质内的结合。就生物结构本身的动态组织而言,金属与这些配体结合的机制尚未得到很好的考虑。细菌对生长环境的变化非常敏感且反应迅速,会重新合成化学成分,这可能会影响金属的相互作用。我们讨论了在实验室实验中观察到的膜化学变异性的原因,并提出了这种适应性在自然环境中的后果。金属离子与细菌包膜结合的结构影响往往被忽视。这篇综述探讨了细菌表面化学的动态如何影响金属结合,以及反过来金属离子如何在实验室和自然条件下影响膜组织。