4.8 Article

Essential Functional Interplay of the Catalytic Groups in Acid Phosphatase

期刊

ACS CATALYSIS
卷 12, 期 6, 页码 3357-3370

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acscatal.1c05656

关键词

functional cooperativity; enzyme catalysis; EVB simulations; linear free-energy relationship; nucleophilic catalysis; phosphate transfer

资金

  1. Austrian Science Funds (FWF, DK Molecular Enzymology W9)
  2. Carl Tryggers Foundation for Scientific Research [CTS 19:172]
  3. Swedish Research Council (VR) [2019-03499]
  4. Knut and Alice Wallenberg Foundation [2018.0140, 2019.0431]
  5. Austrian Science Fund (FWF)
  6. Swedish Research Council [2018-05973]
  7. Swedish Research Council [2019-03499] Funding Source: Swedish Research Council

向作者/读者索取更多资源

The cooperative interplay between functional devices in enzyme catalysis is important for understanding the efficiency of natural enzymes and enzyme design. This study investigates the functional interconnectedness of the catalytic nucleophile in an acid phosphatase and provides evidence for the cooperative interplay between nucleophilic and general-acid catalytic groups. The results show that the cooperative nature of enzymatic catalysis distinguishes it from the corresponding reaction in solution.
The cooperative interplay between the functional devices of a preorganized active site is fundamental to enzyme catalysis. An in-depth understanding of this phenomenon is central to elucidating the remarkable efficiency of natural enzymes and provides an essential benchmark for enzyme design and engineering. Here, we study the functional interconnectedness of the catalytic nucleophile (His18) in an acid phosphatase by analyzing the consequences of its replacement with aspartate. We present crystallographic, biochemical, and computational evidence for a conserved mechanistic pathway via a phospho-enzyme intermediate on Asp18. Linear free-energy relationships for phosphoryl transfer from phosphomonoester substrates to His18/Asp18 provide evidence for the cooperative interplay between the nucleophilic and general-acid catalytic groups in the wild-type enzyme, and its substantial loss in the H18D variant. As an isolated factor of phosphatase efficiency, the advantage of a histidine compared to an aspartate nucleophile is similar to 10(4)-fold. Cooperativity with the catalytic acid adds >= 10(2)-fold to that advantage. Empirical valence bond simulations of phosphoryl transfer from glucose 1-phosphate to His and Asp in the enzyme explain the loss of activity of the Asp18 enzyme through a combination of impaired substrate positioning in the Michaelis complex, as well as a shift from early to late protonation of the leaving group in the H18D variant. The evidence presented furthermore suggests that the cooperative nature of catalysis distinguishes the enzymatic reaction from the corresponding reaction in solution and is enabled by the electrostatic preorganization of the active site. Our results reveal sophisticated discrimination in multifunctional catalysis of a highly proficient phosphatase active site.

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