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利用差示扫描量热法研究强至超紧密蛋白质相互作用

Study of strong to ultratight protein interactions using differential scanning calorimetry.

作者信息

Brandts J F, Lin L N

机构信息

Department of Chemistry, University of Massachusetts, Amherst 01003.

出版信息

Biochemistry. 1990 Jul 24;29(29):6927-40. doi: 10.1021/bi00481a024.

Abstract

Data from differential scanning calorimetry (DSC) may be used to estimate very large binding constants that cannot be conveniently measured by more conventional equilibrium techniques. Thermodynamic models have been formulated to describe interacting systems that involve either one thermal transition (protein-ligand) or two thermal transitions (protein-protein) and either 1:1 or higher binding stoichiometry. Methods are described for obtaining binding constants and heats of binding by two different methods: calculation or simulation fitting of data. Extensive DSC data on 2'CMP binding to RNase are presented and analyzed by the two methods. It is found that the methods agree when binding sites are completely saturated, but substantial errors arise in the calculation method when site saturation is incomplete and the transition of liganded molecules overlaps that of unliganded molecules. This arises primarily from an inability to determine TM (i.e., the temperature where concentrations of folded and unfolded protein are equal) under weak-binding conditions. Results from simulation show that the binding constants and heats of binding from the DSC method agree quantitatively with corresponding estimates obtained from equilibrium methods when extrapolated to the same temperature. It was also found from the DSC data that the binding constant decreases with increasing concentration of ligand, which might arise from nonideality effects associated with dimerization of 2'CMP. Simulations show that the DSC method is capable of estimating binding constants for ultratight interactions up to perhaps 10(40) M-1 or higher, while most equilibrium methods fail well below 10(10) M-1. DSC data from the literature on a number of interacting systems (trypsin-soybean trypsin inhibitor, trypsin-ovomucoid, trypsin-pancreatic trypsin inhibitor, chymotrypsin-subtilisin inhibitor, subtilisin BPN-subtilisin inhibitor, RNase S protein-RNase S peptide, avidin-biotin, ovotransferrin-Fe3+, superoxide dismutase-Zn2+, alkaline phosphatase-Zn2+, and assembly of regulatory and catalytic subunits of aspartate transcarbamoylase) were analyzed by simulation fitting or by calculation. Apparent single-site binding constants ranged from ca. 10(5) to 10(20) M-1, while the interaction constant for assembly of aspartate transcarbamoylase was estimated as 10(37) in molarity units. For most of these systems, the DSC interaction constants compared favorably with other literature estimates, for some it did not for reasons unknown, while for still others this represented the first estimate. Simulations show that for proteins having two binding sites for the same ligand within a single cooperative unit, ligand rearrangement will occur spontaneously during a DSC scan as the transition temperature of the unliganded protein is approached.(ABSTRACT TRUNCATED AT 400 WORDS)

摘要

差示扫描量热法(DSC)的数据可用于估算非常大的结合常数,这些常数无法用更传统的平衡技术方便地测量。已经建立了热力学模型来描述相互作用系统,这些系统涉及一个热转变(蛋白质-配体)或两个热转变(蛋白质-蛋白质)以及1:1或更高的结合化学计量。文中描述了通过两种不同方法获得结合常数和结合热的方法:数据的计算或模拟拟合。给出了关于2'CMP与核糖核酸酶结合的大量DSC数据,并通过这两种方法进行了分析。结果发现,当结合位点完全饱和时,两种方法结果一致,但当位点饱和不完全且配体化分子的转变与未配体化分子的转变重叠时,计算方法会出现较大误差。这主要是由于在弱结合条件下无法确定Tm(即折叠和未折叠蛋白质浓度相等时的温度)。模拟结果表明,当外推到相同温度时,DSC方法得到的结合常数和结合热与从平衡方法获得的相应估计值在数量上一致。从DSC数据还发现,结合常数随配体浓度增加而降低,这可能是由于2'CMP二聚化相关的非理想效应。模拟表明,DSC方法能够估算高达10(40) M-1或更高的超紧密相互作用的结合常数,而大多数平衡方法在远低于10(10) M-1时就失效了。对文献中一些相互作用系统(胰蛋白酶-大豆胰蛋白酶抑制剂、胰蛋白酶-卵类粘蛋白、胰蛋白酶-胰腺胰蛋白酶抑制剂、糜蛋白酶-枯草杆菌蛋白酶抑制剂、枯草杆菌蛋白酶BPN-枯草杆菌蛋白酶抑制剂、核糖核酸酶S蛋白-核糖核酸酶S肽、抗生物素蛋白-生物素、卵转铁蛋白-Fe3+、超氧化物歧化酶-Zn2+、碱性磷酸酶-Zn2+以及天冬氨酸转氨甲酰酶调节亚基和催化亚基的组装)的DSC数据通过模拟拟合或计算进行了分析。表观单位点结合常数范围约为10(5)至10(20) M-1,而天冬氨酸转氨甲酰酶组装的相互作用常数以摩尔浓度单位估计为10(37)。对于大多数这些系统,DSC相互作用常数与其他文献估计值相比良好,对于一些系统原因不明则不然,而对于其他一些系统这是首次估计。模拟表明,对于在单个协同单元内具有相同配体两个结合位点的蛋白质,在DSC扫描过程中,随着未配体化蛋白质转变温度的接近,配体重排将自发发生。(摘要截断于400字)

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