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Amino acid substitutions at the subunit interface of dimeric Escherichia coli alkaline phosphatase cause reduced structural stability.

机译:二聚大肠杆菌碱性磷酸酶的亚基界面处的氨基酸取代导致结构稳定性降低。

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摘要

The consequences of amino acid substitutions at the dimer interface for the strength of the interactions between the monomers and for the catalytic function of the dimeric enzyme alkaline phosphatase from Escherichia coli have been investigated. The altered enzymes R10A, R10K, R24A, R24K, T59A, and R10A/R24A, which have amino acid substitutions at the dimer interface, were characterized using kinetic assays, ultracentrifugation, and transverse urea gradient gel electrophoresis. The kinetic data for the wild-type and altered alkaline phosphatases show comparable catalytic behavior with k(cat) values between 51.3 and 69.5 s(-1) and Km values between 14.8 and 26.3 microM. The ultracentrifugation profiles indicate that the wild-type enzyme is more stable than all the interface-modified enzymes. The wild-type enzyme is dimeric in the pH range of pH 4.0 and above, and disassembled at pH 3.5 and below. All the interface-modified enzymes, however, are apparently monomeric at pH 4.0, begin assembly at pH 5.0, and are not fully assembled into the dimeric form until pH 6.0. The results from transverse urea gradient gel electrophoresis show clear and reproducible differences both in the position and the shape of the unfolding patterns; all these modified enzymes are more sensitive to the denaturant and begin to unfold at urea concentrations between 1.0 and 1.5 M; the wild-type enzyme remains in the folded high mobility form beyond 2.5 M urea. Alkaline phosphatase H370A, modified at the active site and not at the dimer interface, resembles the wild-type enzyme both in ultracentrifugation and electrophoresis studies. The results obtained suggest that substitution of a single amino acid at the interface sacrifices not only the integrity of the assembled dimer, but also the stability of the monomer fold, even though the activity of the enzyme at optimal pH remains unaffected and does not appear to depend on interface stability.
机译:已经研究了二聚体界面上的氨基酸取代对单体之间相互作用的强度以及来自大肠杆菌的二聚酶碱性磷酸酶的催化​​功能的影响。使用动力学分析,超速离心和横向尿素梯度凝胶电泳对改变后的酶R10A,R10K,R24A,R24K,T59A和R10A / R24A进行了二聚体界面氨基酸取代。野生型和改变的碱性磷酸酶的动力学数据显示可比的催化行为,k(cat)值介于51.3和69.5 s(-1)之间,Km值介于14.8和26.3 microM之间。超速离心曲线表明,野生型酶比所有界面修饰的酶都更稳定。野生型酶在pH 4.0及以上的pH范围内是二聚体,并在pH 3.5及以下的条件下分解。但是,所有界面修饰的酶在pH 4.0时显然都是单体的,在pH 5.0时才开始组装,直到pH 6.0才完全组装成二聚体形式。横向尿素梯度凝胶电泳的结果表明,展开图案的位置和形状均清晰可重复。所有这些修饰的酶对变性剂更敏感,并在尿素浓度介于1.0和1.5 M之间开始展开。野生型酶在2.5 M尿素中仍以折叠的高迁移率形式保留。在超速离心和电泳研究中,在活性位点而非二聚体界面修饰的碱性磷酸酶H370A与野生型酶相似。获得的结果表明,即使在最佳pH下酶的活性不受影响,并且似乎不会破坏组装的二聚体的完整性,也牺牲了单体折叠的稳定性,即使在最佳pH下酶的活性也不受影响。取决于接口的稳定性。

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