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EFFECTIVE FRAGMENT POTENTIALS AND SPECTROSCOPY AT ENZYME ACTIVE SITES

机译:酶活性位点的有效片段电位和光谱

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摘要

Spectroscopy at a biochemical active site is influenced by local fields and hydrogen-bonds. Quantum calculations of the electronic structure of the entire biomolecule is, of course, impossible, but the chemical system can be modeled by dividing it into an active region (A) described quantum mechanically, and a spectator region (S) that influences A with strong fields and hydrogen-bonds. The all-electron interaction between A and S is replaced by an effective fragment potential (EFP) which represents the interaction as electrostatic, polarization and exchange repulsion terms. The EFP are derived entirely by ab initio model calculations of the S electronic properties and interactions and have been implemented in the quantum chemistry code, GAMESS. Spectroscopic analysis of enzyme active sites using the EFP will examine rhodanese and glutathione bound to glutathione S-transferase. The effect of specific hydrogen-bonds and local helices on spectral shifts is determined.
机译:生化活性位点的光谱受局部场和氢键的影响。当然,不可能对整个生物分子的电子结构进行量子计算,但是可以通过将化学系统划分为以机械方式描述的活性区域(A)和对A产生强烈影响的旁观者区域(S)来对化学系统进行建模。场和氢键。 A和S之间的全电子相互作用被有效片段电势(EFP)取代,该片段电势表示为静电,极化和交换排斥项。 EFP完全由S电子性质和相互作用的从头算模型得出,并已在量子化学代码GAMESS中实现。使用EFP的酶活性位点的光谱分析将检查与谷胱甘肽S-转移酶结合的罗丹明和谷胱甘肽。确定了特定氢键和局部螺旋对光谱位移的影响。

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  • 来源
    《Computers & Chemistry》 |1995年第1期|p.33-38|共6页
  • 作者

    M. KRAUSS;

  • 作者单位

    Center for Advanced Research in Biotechnology, 9600 Gudelsky Drive, Rockville, MD 20850, U.S.A.;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 计算机的应用;
  • 关键词

  • 入库时间 2022-08-18 01:07:41

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