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Thermodynamics of Nanobody Binding to Lactose Permease

机译:纳米抗体结合乳糖通透酶的热力学。

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摘要

Camelid nanobodies (Nbs) raised against the outward-facing conformer of a double-Trp mutant of the lactose permease of Escherichia coli (LacY) stabilize the permease in outward-facing conformations. Isothermal titration calorimetry is applied herein to dissect the binding thermodynamics of two Nbs, one that markedly improves access to the sugar-binding site and another that dramatically increases the affinity for galactoside. The findings presented here show that both enthalpy and entropy contribute favorably to binding of the Nbs to wild-type (WT) LacY and that binding of Nb to double-Trp mutant G46W/G262W is driven by a greater enthalpy at an entropic penalty. Thermodynamic analyses support the interpretation that WT LacY is stabilized in outward-facing conformations like the double-Trp mutant with closure of the cytoplasmic cavity through conformational selection. The LacY conformational transition required for ligand binding is reflected by a favorable entropy increase. Molecular dynamics simulations further suggest that the entropy increase likely stems from release of immobilized water molecules primarily from the cytoplasmic cavity upon closure.
机译:针对大肠杆菌(LacY)乳糖通透酶的双重Trp突变体的朝外构象体产生的骆驼纳米抗体(Nbs)使通透酶稳定在朝外构象中。本文采用等温滴定量热法分析了两种Nb的结合热力学,一种显着改善了对糖结合位点的接近,另一种显着提高了对半乳糖苷的亲和力。此处呈现的发现表明,焓和熵均有利于Nbs与野生型(WT)LacY的结合,并且Nb与double-Trp突变体G46W / G262W的结合由熵变大的焓驱动。热力学分析支持以下解释:WT LacY在面向外部的构象(如双Trp突变体)中稳定,并通过构象选择封闭细胞质腔。配体结合所需的LacY构象转变通过有利的熵增加来反映。分子动力学模拟进一步表明,熵的增加可能是由于封闭后主要从细胞质腔中释放出固定化的水分子所致。

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