TY - JOUR
T1 - Multidisciplinary approaches for enzyme biocatalysis in pharmaceuticals
T2 - protein engineering, computational biology, and nanoarchitectonics
AU - Kim, Suhyeon
AU - Ga, Seongmin
AU - Bae, Hayeon
AU - Sluyter, Ronald
AU - Konstantinov, Konstantin
AU - Shrestha, Lok Kumar
AU - Kim, Yong Ho
AU - Kim, Jung Ho
AU - Ariga, Katsuhiko
N1 - Publisher Copyright:
© 2024 The Author(s).
PY - 2024/1/1
Y1 - 2024/1/1
N2 - Enzyme biocatalysis is reshaping pharmaceutical synthesis, offering sustainable and efficient pathways for drug discovery and production. This paradigm shift towards eco-friendly methodologies addresses concerns inherent in traditional chemical synthesis. Enzymes, celebrated for their precision and adaptability to mild conditions, are poised as ideal candidates for pharmaceutical applications. Their versatility facilitates the synthesis of diverse pharmaceutical compounds, ensuring precise drug design and minimizing environmental impact. The integration of multidisciplinary approaches, including protein engineering, computational biology, and nanoarchitectonics, holds the potential to propel enzyme biocatalysis even further. Protein engineering utilizes directed evolution and rational design to customize enzymes, enhancing their stability and efficacy. Computational biology aids in deciphering enzymatic mechanisms, while nanoarchitectonics introduces innovative enzyme integration strategies into continuous flow systems. This comprehensive review explores how these multidisciplinary approaches can revolutionize pharmaceutical research and production. The synergy among these disciplines promises to expedite pharmaceutical processes, promote sustainability, optimize efficiency, and elevate precision—aligning perfectly with the evolving requirements of the pharmaceutical industry.
AB - Enzyme biocatalysis is reshaping pharmaceutical synthesis, offering sustainable and efficient pathways for drug discovery and production. This paradigm shift towards eco-friendly methodologies addresses concerns inherent in traditional chemical synthesis. Enzymes, celebrated for their precision and adaptability to mild conditions, are poised as ideal candidates for pharmaceutical applications. Their versatility facilitates the synthesis of diverse pharmaceutical compounds, ensuring precise drug design and minimizing environmental impact. The integration of multidisciplinary approaches, including protein engineering, computational biology, and nanoarchitectonics, holds the potential to propel enzyme biocatalysis even further. Protein engineering utilizes directed evolution and rational design to customize enzymes, enhancing their stability and efficacy. Computational biology aids in deciphering enzymatic mechanisms, while nanoarchitectonics introduces innovative enzyme integration strategies into continuous flow systems. This comprehensive review explores how these multidisciplinary approaches can revolutionize pharmaceutical research and production. The synergy among these disciplines promises to expedite pharmaceutical processes, promote sustainability, optimize efficiency, and elevate precision—aligning perfectly with the evolving requirements of the pharmaceutical industry.
UR - https://www.scopus.com/pages/publications/85190360326
U2 - 10.1039/d3ey00239j
DO - 10.1039/d3ey00239j
M3 - Review article
AN - SCOPUS:85190360326
SN - 2753-801X
VL - 2
SP - 14
EP - 48
JO - EES Catalysis
JF - EES Catalysis
IS - 1
ER -