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NMR studies of backbone and side-chain dynamics in dihydrofolate reductase.

机译:二氢叶酸还原酶中主链和侧链动力学的NMR研究。

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摘要

The active site of the E. coli enzyme dihydrofolate reductase (DHFR) is surrounded by several flexible loops that are involved in ligand binding and catalysis. This study seeks to understand how molecular motion in DHFR correlates with the ligand state and catalytic competency of the enzyme. To achieve this goal, a range of isotopic labeling strategies and nuclear magnetic resonance relaxation techniques were used to probe DHFR dynamics at backbone amides and side-chain imino and methyl sites on the picosecond/nanosecond and microsecond/millisecond time scales. The wild-type ternary complex with folate and NADP+, which assumes a “closed” active site loop conformation, was studied to explore the effects of ligand binding and loop conformation on protein dynamics. The mutant protein G121V in complex with folate was studied to examine the effects on dynamics of a flexible loop mutation that dramatically affects enzyme catalysis. In both studies, the folate-bound wild-type enzyme, which assumes an “occluded” active site loop conformation, served as a comparator. Backbone amide and side-chain imino dynamics were probed by 15N nuclear relaxation. Side-chain methyl dynamics on the picosecond/nanosecond time scale were probed by deuterium relaxation and on the microsecond/millisecond time scale by 13C relaxation dispersion. The deuterium relaxation studies indicate a loss of side-chain flexibility in the active site loops on fast time scales in the ternary folate:NADP+ complex, consistent with backbone dynamics studies. However, relaxation dispersion measurements reveal significant microsecond/millisecond time scale side-chain motion that is consistent with a closed-to-occluded active site loop equilibrium occurring at physiologically relevant rates. In studies of the G121V mutant dynamics, motion at the site of the mutation, as well as in a loop that lies directly over the active site, is diminished. These results suggest a strong correlation between flexibility and catalysis.
机译: E的活动站点。大肠杆菌酶二氢叶酸还原酶(DHFR)被与配体结合和催化有关的几个柔性环包围。这项研究旨在了解DHFR中的分子运动如何与酶的配体状态和催化能力相关。为了实现此目标,使用了一系列同位素标记策略和核磁共振弛豫技术,以皮秒/纳秒和微秒/毫秒的时间尺度在主链酰胺以及侧链亚氨基和甲基位点处探测DHFR动力学。研究了叶酸和NADP + 的野生型三元复合物(假设其为“封闭的”活性位点环构象),以研究配体结合和环构象对蛋白质动力学的影响。研究了与叶酸复合的突变蛋白G121V,以检查对显着影响酶催化作用的柔性环突变对动力学的影响。在两项研究中,叶酸结合的野生型酶(作为假定的“封闭”活性位点环构象)用作比较物。通过 15 N核弛豫研究了骨架酰胺和侧链亚氨基动力学。通过氘弛豫来探测皮秒/纳秒时间尺度上的侧链甲基动力学,通过 13 弛豫分散来在微秒/毫秒时间尺度上进行侧链甲基动力学研究。氘弛豫研究表明,三元叶酸:NADP + 络合物在快速时间尺度上在活性位点环中失去了侧链柔性,这与骨架动力学研究一致。但是,弛豫色散测量结果显示了显着的微秒/毫秒时标侧链运动,这与以生理相关速率发生的封闭到封闭的活性位点环平衡相一致。在对G121V突变体动力学的研究中,突变位点以及直接位于活性位点上方的环中的运动减少了。这些结果表明柔韧性和催化作用之间有很强的相关性。

著录项

  • 作者

    Schnell, Jason Ronald.;

  • 作者单位

    The Scripps Research Institute.;

  • 授予单位 The Scripps Research Institute.;
  • 学科 Biophysics General.
  • 学位 Ph.D.
  • 年度 2003
  • 页码 200 p.
  • 总页数 200
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物物理学 ;
  • 关键词

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