Engineering an Oxygen-Binding Protein for Photocatalytic CO2 Reductions in Water

Angew Chem Int Ed Engl. 2023 May 8;62(20):e202215719. doi: 10.1002/anie.202215719. Epub 2023 Apr 4.

Abstract

While native CO2 -reducing enzymes display remarkable catalytic efficiency and product selectivity, few artificial biocatalysts have been engineered to allow understanding how the native enzymes work. To address this issue, we report cobalt porphyrin substituted myoglobin (CoMb) as a homogeneous catalyst for photo-driven CO2 to CO conversion in water. The activity and product selectivity were optimized by varying pH and concentrations of the enzyme and the photosensitizer. Up to 2000 TON(CO) was attained at low enzyme concentrations with low product selectivity (15 %), while a product selectivity of 74 % was reached by increasing the enzyme loading but with a compromised TON(CO). The efficiency of CO generation and overall TON(CO) were further improved by introducing positively charged residues (Lys or Arg) near the active stie of CoMb, which demonstrates the value of tuning the enzyme secondary coordination sphere to enhance the CO2 -reducing performance of a protein-based photocatalytic system.

Keywords: Artificial Metalloenzyme; CO2 Reduction; Cobalt; H2 Evolution; Photocatalysis.

MeSH terms

  • Carbon Dioxide*
  • Carrier Proteins*
  • Myoglobin
  • Oxygen
  • Water

Substances

  • Carrier Proteins
  • Carbon Dioxide
  • Water
  • Myoglobin
  • Oxygen