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February 25, 2026ACS Sustainable Chemistry & Engineering5 citations

Chemoenzymatic Relay Synthesis of Quinolines: Laccase/TEMPO/ D -Glucose-Based Ionic Salt/atm O 2 -Catalyzed Chemoselective Oxidation of 2-Aminobenzyl Alcohols

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JJJyothylakshmi JayakumarSRSabbasani Rajasekhara Reddy

Key Points

  • To develop a chemoenzymatic one-pot relay synthesis of quinolines using a laccase/TEMPO system and a d-glucose-based ionic salt.
  • Utilized laccase/TEMPO for oxidation of o-aminobenzyl alcohols.
  • Synthesized quinolines and aldehydes through a two-step process.
  • Conducted reactions under air at room temperature.
  • Studied stability of laccase in presence of d-glucose ionic salt.
  • Calculated environmental metrics like E-factor and atom economy.
  • Achieved up to 88% yield for 26 aldehydes.
  • Obtained up to 81% yield for 30 quinolines.
  • E-factor measured at 2.02 indicating environmental efficiency.
  • Atom economy calculated at 89.41% suggesting effective resource use.

Abstract

Laccases are widely applied as promising high-value enzymes for oxidation reactions. To provide more insight into this, we have developed a chemoenzymatic one-pot relay synthesis of quinolines incorporating a laccase/TEMPO system with a d-glucose-based ionic salt (GIS I–) run under air at room temperature. The developed relay strategy involves a two-step process where laccase/TEMPO performs the oxidation of o-aminobenzyl alcohols, forming an o-aminobenzaldehyde intermediate, which is further annulated by coupling with active methylene groups in the presence of GIS I–. This methodology allows a straightforward synthesis of 26 aldehydes up to 88% yield and 30 quinolines up to 81% yield. To provide more insight into the developed synergistic system, the stability of laccase vs GIS I– was studied, and the results indicated that the developed GIS I– did not degrade the protein structure and stabilized the enzyme. Environmental acceptability metrics were calculated for the developed process with a commendable E-factor of 2.02 and an atom economy of 89.41%. The developed catalytic system was successfully employed for the gram-scale synthesis of the antibacterial agent indenoquinolinone in good yield, which can help in developing active pharmaceutical ingredients (APIs).

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Cite This Study

Jayakumar et al. (2026) studied this question.

synapsesocial.com/papers/699e912ef5123be5ed04e7b0https://doi.org/10.1021/acssuschemeng.5c10401
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