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镁与壁磷壁酸的平衡结合行为

Equilibrium binding behavior of magnesium to wall teichoic acid.

作者信息

Thomas Kieth J, Rice Charles V

机构信息

Department of Chemistry and Biochemistry, Stephenson Life Sciences Research Center, University of Oklahoma, 101 Stephenson Parkway, Norman, OK 73019, USA.

Department of Chemistry and Biochemistry, Stephenson Life Sciences Research Center, University of Oklahoma, 101 Stephenson Parkway, Norman, OK 73019, USA.

出版信息

Biochim Biophys Acta. 2015 Oct;1848(10 Pt A):1981-7. doi: 10.1016/j.bbamem.2015.05.003. Epub 2015 May 10.

Abstract

Peptidoglycan and teichoic acids are the major cell wall components of Gram-positive bacteria that obtain and sequester metal ions required for biochemical processes. The delivery of metals to the cytoplasmic membrane is aided by anionic binding sites within the peptidoglycan and along the phosphodiester polymer of teichoic acid. The interaction with metals is a delicate balance between the need for attraction and ion diffusion to the membrane. Likewise, metal chelation from the extracellular fluid must initially have strong binding energetics that weaken within the cell wall to enable ion release. We employed atomic absorption and equilibrium dialysis to measure the metal binding capacity and metal binding affinity of wall teichoic acid and Mg2+. Data show that Mg2+ binds to WTA with a 1:2Mg2+ to phosphate ratio with a binding capacity of 1.27 μmol/mg. The affinity of Mg2+ to WTA was also found to be 41×10(3) M(-1) at low metal concentrations and 1.3×10(3) M(-1) at higher Mg2+ concentrations due to weakening electrostatic effects. These values are lower than the values describing Mg2+ interactions with peptidoglycan. However, the binding capacity of WTA is 4 times larger than peptidoglycan. External WTA initially binds metals with positive cooperativity, but metal binding switches to negative cooperativity, whereas interior WTA binds metals with only negative cooperativity. The relevance of this work is to describe changes in metal binding behavior depending on environment. When metals are sparse, chelation is strong to ensure survival yet the binding weakens when essential minerals are abundant.

摘要

肽聚糖和磷壁酸是革兰氏阳性菌的主要细胞壁成分,它们获取并隔离生化过程所需的金属离子。肽聚糖内以及磷壁酸的磷酸二酯聚合物上的阴离子结合位点有助于将金属输送到细胞质膜。与金属的相互作用是吸引需求与离子向膜扩散之间的微妙平衡。同样,从细胞外液中螯合金属最初必须具有很强的结合能,而在细胞壁内结合能会减弱,以实现离子释放。我们采用原子吸收和平衡透析法来测量壁磷壁酸与Mg2+的金属结合能力和金属结合亲和力。数据表明,Mg2+以1:2的Mg2+与磷酸比例结合到WTA上,结合能力为1.27 μmol/mg。在低金属浓度下,Mg2+与WTA的亲和力为41×10(3) M(-1),而在较高Mg2+浓度下,由于静电效应减弱,亲和力为1.3×10(3) M(-1)。这些值低于描述Mg2+与肽聚糖相互作用的值。然而,WTA的结合能力比肽聚糖大4倍。外部WTA最初以正协同性结合金属,但金属结合会转变为负协同性,而内部WTA仅以负协同性结合金属。这项工作的意义在于描述金属结合行为随环境的变化。当金属稀缺时,螯合作用很强以确保生存,但当必需矿物质丰富时,结合作用会减弱。

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