4.5 Article

Covalent conjugation of single-walled carbon nanotube with CYP101 mutant for direct electrocatalysis

Journal

ANALYTICAL BIOCHEMISTRY
Volume 626, Issue -, Pages -

Publisher

ACADEMIC PRESS INC ELSEVIER SCIENCE
DOI: 10.1016/j.ab.2021.114204

Keywords

CYP101; Cytochrome P450; Electrocatalysis; SWCNT; Maleimide conjugation

Funding

  1. Department of Atomic Energy, Government of India [RT14003]
  2. Department of Biotechnology, New Delhi (DBT) [BT/PR9989/NNT/28/77/2007]
  3. Tata Institute of Fundamental Research, Mumbai

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The covalent linkage between SWCNT and CYP101 provides a novel method for designing efficient enzyme electrodes, enabling electrochemically driven enzymatic mono-oxygenation reactions. The catalytic current of camphor oxidation increases with higher camphor concentrations, producing hydroxy-camphor as the identified product.
Covalent linkage between the single-walled carbon nanotube (SWCNT) and CYP101 through a specific site of the enzyme can provide a novel method of designing efficient enzyme electrodes using this prototype cytochrome P450 enzyme. We have chemically modified the SWCNT with linker 4-carboxy phenyl maleimide (CPMI) containing maleimide functional groups. The enzyme was covalently attached on to the SWCNT through the maleimide group of the linker (CPMI) to the thiolate group of the surface exposed Cys 58 or Cys 136 of the CYP101 forming a covalently immobilized protein on the nanotube. Thin film of the modified SWCNT-CPMICYP101conjugate was made on a glassy carbon (GC) electrode. Direct electrochemistry of the substrate (camphor)-bound enzyme was studied using this immobilized enzyme electrode system and the redox potential was found to be -320mV vs Ag/AgCl (3 M KCl), which agrees with the redox potential of the substrate bound enzyme reported earlier. The electrochemically driven enzymatic mono-oxygenation of camphor by this immobilized enzyme electrode system was studied by measurement of the catalytic current at different concentrations of camphor. The catalytic current was found to increase with increasing concentration of camphor in presence of oxygen. The product formed during the catalysis was identified by mass-spectrometry as hydroxy-camphor.

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