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伴刀豆球蛋白A溶液中的溶剂质子磁弛豫色散

Solvent proton magnetic relaxation dispersion in solutions of concanavalin A.

作者信息

Koenig S H, Brown R D, Brewer C F

出版信息

Proc Natl Acad Sci U S A. 1973 Feb;70(2):475-9. doi: 10.1073/pnas.70.2.475.

Abstract

Concanavalin A, a protein isolated from jack beans, exhibits several important biological properties, all of which are related to its ability to bind and precipitate specific polysaccharides. Concanavalin A is a dimer at pH 5.6, and has one transition-metal and one calcium-ion binding site per monomer unit of molecular weight 27,000. Both metal-ion sites must be occupied for the protein to be active. It is of interest to determine the role of the transition metal ion in Concanavalin A and its relationship to the sugar binding activity of the protein. We report the magnetic field and temperature dependences of the spin-lattice magnetic relaxation rates of solvent protons in aqueous solutions of zinc and manganese derivatives of Concanavalin A, and the influence of monosaccharide binding on these rates. The results of a leastsquares fit of the data to the theory, with five adjustable parameters, indicate that there is one rapidly exchanging water molecule ligand on the Mn(2+) ion, with a residence lifetime of 2.5 musec at 25 degrees , and with its protons 0.27 nm (2.7 A) from the Mn(2+) ion. We find that at low magnetic fields (proton Larmor frequencies below about 10 MHz), the correlation time for the dipolar interaction between the Mn(2+) electronic spin moment and the protons on the water ligand is the spin-lattice relaxation time tau(S) of the Mn(2+) moment, but that at higher magnetic fields the correlation time for the dipolar interaction is determined by the Brownian rotational tumbling of the protein, because of the substantial variation of tau(S) with magnetic field. Monosaccharide binding to manganese Concanavalin A has little effect on the relaxation rates of solvent protons, a result that indicates that the sugars do not bind directly to the transition metal in the protein.

摘要

伴刀豆球蛋白A是一种从刀豆中分离出的蛋白质,具有多种重要的生物学特性,所有这些特性都与其结合和沉淀特定多糖的能力有关。伴刀豆球蛋白A在pH 5.6时为二聚体,每个分子量为27,000的单体单元有一个过渡金属和一个钙离子结合位点。两个金属离子位点都必须被占据,蛋白质才具有活性。确定过渡金属离子在伴刀豆球蛋白A中的作用及其与蛋白质糖结合活性的关系很有意义。我们报告了伴刀豆球蛋白A的锌和锰衍生物水溶液中溶剂质子的自旋晶格磁弛豫率对磁场和温度的依赖性,以及单糖结合对这些速率的影响。用五个可调参数将数据与理论进行最小二乘拟合的结果表明,Mn(2+)离子上有一个快速交换的水分子配体,在25℃时的停留寿命为2.5微秒,其质子与Mn(2+)离子的距离为0.27纳米(2.7埃)。我们发现,在低磁场(质子拉莫尔频率低于约10兆赫)下,Mn(2+)电子自旋矩与水配体上质子之间的偶极相互作用的相关时间是Mn(2+)矩的自旋晶格弛豫时间τ(S),但在较高磁场下,偶极相互作用的相关时间由蛋白质的布朗旋转翻滚决定,因为τ(S)随磁场有很大变化。单糖与锰伴刀豆球蛋白A的结合对溶剂质子的弛豫率影响很小,这一结果表明糖类并不直接与蛋白质中的过渡金属结合。

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引用本文的文献

本文引用的文献

4
The transition metal-binding site of concanavalin A at 2.8 A resolution.
FEBS Lett. 1971 Nov 1;18(2):268-270. doi: 10.1016/0014-5793(71)80461-1.
7
The molecular weight of concanavalin A.伴刀豆球蛋白A的分子量。
Biochim Biophys Acta. 1968 Oct 21;168(2):366-7. doi: 10.1016/0005-2795(68)90161-x.

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