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Hydrogen isotope exchange kinetics of single protons in bovine pancreatic trypsin inhibitor.

机译:牛胰胰蛋白酶抑制剂中单个质子的氢同位素交换动力学。

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摘要

The exchange kinetics of the slowest exchanging BPTI beta-sheet protons are complex compared to model peptides; the activation energy, E alpha, and the pH dependence are temperature dependent. We have measured the exchange kinetics in the range pH 1--11, 33--71 degrees C, particularly the temperature dependence. The data are fit to a model in which exchange of each proton is determined by two discrete dynamical processes, one with E alpha approximately 65 kcal/mol and less than first order dependence on catalyst ion, and one with E alpha 20--30 kcal/mol and approaching first order in catalyst ion. The low activation energy process is the mechanism of interest in the native conformation of globular proteins and involves low energy, small amplitude fluctuations; the high activation energy process involves major unfolding. The model is simple, has a precedent in the hydrogen exchange literature, and explains quantitatively the complex feature of the exchange kinetics of single protons in BPTI, including the following. For the slowest exchanging protons, in the range 36 degrees--68 degrees C, E alpha is approximately 65 kcal/mol at pH approximately 4, 20--30 kcal/mol at pH greater than 10, and rises to approximately 65 kcal/mol with increasing temperature at pH 6--10; the Arrhenius plots converge around 70 degrees C; the pH of minimum rate, pHmin, is greater than 1 pH unit higher at 68 degrees C than for model compounds; and at high pH, the pH-rate profiles shift to steeper slope; the exchange rates around pHmin are correlated to the thermal unfolding temperature in BPTI derivatives (Wagner and Wüthrich, 1979, J. Mol. Biol. 130:31). For the more rapidly exchanging protons in BPTI the model accounts for the observation of normal pHmin and E alpha of 20--30 kcal/mol at all pH's. The important results of our analysis are (a) rates for exchange from the folded state of proteins are not correlated to thermal lability, as proposed by Wuthrich et al. (1979, J. Mol. Biol. 134:75); (b) the unfolding rate for the BPTI cooperative thermal transition is equal to the observed exchange rates of the slowest exchanging protons between pH 8.4--9.6, 51 degrees C; (c) the rates for exchange of single protons from folded BPTI are consistent with our previous hydrogen-tritium exchange results and with a penetration model of the dynamic processes limiting hydrogen exchange.
机译:与模型肽相比,最慢交换的BPTIβ-sheet质子的交换动力学复杂。活化能,Eα和pH依赖性取决于温度。我们在pH 1--11、33--71摄氏度范围内测量了交换动力学,尤其是温度依赖性。数据适合模型,其中每个质子的交换由两个离散的动力学过程确定,一个过程的Eα约为65 kcal / mol,并且对催化剂离子的依赖性小于一阶,而另一个过程的E alpha为20--30 kcal / mol并接近催化剂离子的一级。低激活能过程是球形蛋白天然构象的重要机制,涉及低能量,小幅度波动;高活化能过程涉及重大进展。该模型简单,在氢交换文献中具​​有先例,并定量解释了BPTI中单个质子交换动力学的复杂特征,包括以下内容。对于最慢的质子交换,在36摄氏度至68摄氏度的范围内,pH约为4时E alpha约为65 kcal / mol,pH大于10时E alpha为20--30 kcal / mol,并升高到65 kcal / mol摩尔,随着温度的升高在pH 6--10; Arrhenius曲线在70摄氏度左右收敛;最低速率的pHmin在68摄氏度时比模型化合物高1个pH单位;在高pH下,pH速率曲线向陡峭的斜线移动; pHmin附近的交换速率与BPTI衍生物的热解折叠温度相关(Wagner andWüthrich,1979,J. Mol。Biol。130:31)。对于BPTI中质子交换更快的模型,该模型说明了在所有pH值下正常pHmin和E alpha为20--30 kcal / mol的现象。我们分析的重要结果是:(a)蛋白质折叠状态的交换速率与热不稳定性无关,正如Wuthrich等人所提出的。 (1979,J.Mol.Biol.134:75)。 (b)BPTI协同热转变的展开速率等于在pH 8.4--9.6、51摄氏度之间观察到的最慢交换质子的交换速率; (c)来自折叠BPTI的单个质子交换速率与我们之前的氢hydrogen交换结果以及限制氢交换的动态过程的渗透模型一致。

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