School of Veterinary Medicine and Science, University of Nottingham, College Road, Sutton Bonington, LE12 5RD, UK.
School of Veterinary Medicine and Science, University of Nottingham, College Road, Sutton Bonington, LE12 5RD, UK.
Biochim Biophys Acta Biomembr. 2017 Feb;1859(2):282-288. doi: 10.1016/j.bbamem.2016.12.002. Epub 2016 Dec 7.
The anionic-polyelectrolyte nature of the wall of Gram-positive bacteria has long been suspected to be involved in homeostasis of essential cations and bacterial growth. A better understanding of the coupling between the biophysics and the biology of the wall is essential to understand some key features at play in ion-homeostasis in this living system.
We consider the wall as a polyelectrolyte gel and balance the long-range electrostatic repulsion within this structure against the penalty entropy required to condense cations around wall polyelectrolytes. The resulting equations define how cations interact physically with the wall and the characteristic time required for a cation to leave the wall and enter into the bacterium to enable its usage for bacterial metabolism and growth.
The model was challenged against experimental data regarding growth of Gram-positive bacteria in the presence of varying concentration of divalent ions. The model explains qualitatively and quantitatively how divalent cations interact with the wall as well as how the biophysical properties of the wall impact on bacterial growth (in particular the initiation of bacterial growth).
The interplay between polymer biophysics and the biology of Gram positive bacteria is defined for the first time as a new set of variables that contribute to the kinetics of bacterial growth.
Providing an understanding of how bacteria capture essential metal cations in way that does not follow usual binding laws has implications when considering the control of such organisms and their ability to survive and grow in extreme environments.
革兰氏阳性菌的细胞壁具有阴离子聚电解质的性质,长期以来一直被怀疑与必需阳离子的体内平衡和细菌生长有关。更好地理解细胞壁的生物物理学和生物学之间的耦合对于理解在这个生命系统中离子体内平衡中起作用的一些关键特征至关重要。
我们将细胞壁视为聚电解质凝胶,并平衡该结构内的长程静电排斥与围绕细胞壁聚电解质浓缩阳离子所需的熵惩罚之间的关系。由此产生的方程定义了阳离子如何与细胞壁物理相互作用,以及阳离子离开细胞壁进入细菌以使其用于细菌代谢和生长所需的特征时间。
该模型受到了关于革兰氏阳性菌在不同浓度二价离子存在下生长的实验数据的挑战。该模型定性和定量地解释了二价阳离子如何与细胞壁相互作用,以及细胞壁的生物物理特性如何影响细菌生长(特别是细菌生长的启动)。
首次定义了革兰氏阳性菌中聚合物生物物理学和生物学之间的相互作用,作为一组新的变量,有助于细菌生长的动力学。
提供了一种理解细菌以不遵循常见结合定律的方式捕获必需金属阳离子的方式,当考虑控制这些生物体及其在极端环境中生存和生长的能力时,具有重要意义。