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Automated synthesis and combinatorial chemistry

DeWitt1, Czarnik

  • 1Sheila H DeWitt (corresponding author) and Anthony W Czarnik, Parke-Davis Pharmaceutical Research, Division of Warner-Lambert Company, 2800 Plymouth Road, Ann Arbor, Michigan 48105, USA. E-mail address for Sheila H DeWitt: dewitts@aa.wl.com.

Current Opinion in Biotechnology
|December 1, 1995
PubMed
Summary

Combinatorial chemistry and high-throughput synthesis accelerate drug discovery. Automation in reaction design, synthesis, and analysis is crucial for maximizing the potential of these advanced chemical technologies.

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Journal of combinatorial chemistry·2000

Area of Science:

  • Synthetic Chemistry
  • Medicinal Chemistry
  • Chemical Biology

Background:

  • Combinatorial chemistry enables the rapid synthesis of large compound libraries.
  • High-throughput synthesis is a key driver for discovering novel molecules.
  • Advancements in synthetic chemistry are crucial for modern research.

Purpose of the Study:

  • To highlight the necessity of automation in combinatorial chemistry.
  • To outline the essential automated methods for synthetic chemistry laboratories.
  • To underscore the role of automation in realizing the potential of high-throughput synthesis.

Main Methods:

  • Review of automated technologies in chemical synthesis.
  • Analysis of integrated systems for reaction design and execution.

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  • Discussion of automated compound analysis and biological testing.
  • Main Results:

    • Automation is essential for efficient high-throughput synthesis.
    • Integrated automated platforms enhance reaction design and information management.
    • Automated analysis and testing are critical for evaluating synthesized compounds.

    Conclusions:

    • Full realization of combinatorial chemistry requires comprehensive automation.
    • Automated methods span reaction design, synthesis, analysis, and testing.
    • Automation is key to advancing synthetic chemistry laboratories and drug discovery.