4.8 Article

Breaking Symmetry: Engineering Single-Chain Dimeric Streptavidin as Host for Artificial Metalloenzymes

期刊

JOURNAL OF THE AMERICAN CHEMICAL SOCIETY
卷 141, 期 40, 页码 15869-15878

出版社

AMER CHEMICAL SOC
DOI: 10.1021/jacs.9b06923

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资金

  1. ERC [694424]
  2. Swiss National Science Foundation [SNF 200020_182046]
  3. NCCR Molecular Systems Engineering
  4. Federal Commission for Scholarships for Foreign Students
  5. European Molecular Biology Organisation [EMBO ALTF 194-2017]
  6. Swiss National Science Foundation (SNF) [200020_182046] Funding Source: Swiss National Science Foundation (SNF)
  7. European Research Council (ERC) [694424] Funding Source: European Research Council (ERC)

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The biotin-streptavidin technology has been extensively exploited to engineer artificial metalloenzymes (ArMs) that catalyze a dozen different reactions. Despite its versatility, the homotetrameric nature of streptavidin (Say) and the noncooperative binding of biotinylated cofactors impose two limitations on the genetic optimization of ArMs: (i) point mutations are reflected in all four subunits of Say, and (ii) the noncooperative binding of biotinylated cofactors to Say may lead to an erosion in the catalytic performance, depending on the cofactor:biotin-binding site ratio. To address these challenges, we report on our efforts to engineer a (monovalent) single-chain dimeric streptavidin (scdSav) as scaffold for Sav-based ArMs. The versatility of scdSav as host protein is highlighted for the asymmetric transfer hydrogenation of prochiral imines using [Cp*Ir(biot-p-L)Cl] as cofactor. By capitalizing on a more precise genetic fine-tuning of the biotin-binding vestibule, unrivaled levels of activity and selectivity were achieved for the reduction of challenging prochiral imines. Comparison of the saturation kinetic data and X-ray structures of [Cp*Ir(biot-p-L)Cl].scdSay with a structurally related [Cp*Ir(biot-p-L)Cl].monovalent scdSav highlights the advantages of the presence of a single biotinylated cofactor precisely localized within the biotin-binding vestibule of the monovalent scdSay. The practicality of scdSav-based ArMs was illustrated for the reduction of the salsolidine precursor (500 mM) to afford (R)-salsolidine in 90% ee and >17 000 TONs. Monovalent scdSav thus provides a versatile scaffold to evolve more efficient ArMs for in vivo catalysis and large-scale applications.

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