Automated Optimization of a Multistep, Multiphase Continuous Flow Process for Pharmaceutical Synthesis

被引:0
|
作者
Boyall, Sarah L. [1 ]
Clarke, Holly [1 ]
Dixon, Thomas [1 ]
Davidson, Robert W. M. [2 ]
Leslie, Kevin [3 ]
Clemens, Graeme [3 ]
Muller, Frans L. [1 ]
Clayton, Adam D. [1 ]
Bourne, Richard A. [1 ]
Chamberlain, Thomas W. [1 ]
机构
[1] Institute of Process Research and Development, School of Chemistry, School of Chemical and Process Engineering, University of Leeds, Leeds,LS2 9JT, United Kingdom
[2] Dr. Reddy’s Laboratories (EU), 410 Science Park, Milton Road, Cambridge,CB4 0PE, United Kingdom
[3] Chemical Development, Pharmaceutical Technology & Development, Operations, AstraZeneca, Macclesfield,SK10 2NA, United Kingdom
来源
基金
英国工程与自然科学研究理事会;
关键词
Batch data processing - Bioremediation - Filtration - Hydrogenation - Reaction intermediates - Syngas production;
D O I
10.1021/acssuschemeng.4c05015
中图分类号
学科分类号
摘要
Flow synthesis is becoming increasingly relevant as a sustainable and safe alternative to traditional batch processes, as reaction conditions that are not usually achievable in batch chemistry can be exploited (for example, higher temperatures and pressures). Telescoped continuous reactions have the potential to reduce waste by decreasing the number of separate unit operations (e.g., crystallization, filtration, washing, and drying), increase safety due to limiting operator interaction with potentially harmful materials that can be reacted in subsequent steps, minimize supply chain disruption, and reduce the need to store large inventories of intermediates as they can be synthesized on demand. Optimization of these flow processes leads to further efficiency when exploring new reactions, as with a higher yield comes higher purity, reduced waste, and a greener synthesis. This project explored a two-step process consisting of a three-phase heterogeneously catalyzed hydrogenation followed by a homogeneous amidation reaction. The steps were optimized individually and as a multistep telescoped process for yield using remote automated control via a Bayesian optimization algorithm and HPLC analysis to assess the performance of a reaction for a given set of experimental conditions. 2-MeTHF was selected as a green solvent throughout the process, and the heterogeneous step provided good atom economy due to the use of pure hydrogen gas as a reagent. This research highlights the benefits of using multistage automated optimization in the development of pharmaceutical syntheses. The combination of telescoping and optimization with automation allows for swift investigation of synthetic processes in a minimum number of experiments, leading to a reduction in the number of experiments performed and a large reduction in process mass intensity values. © 2024 The Authors. Published by American Chemical Society.
引用
收藏
页码:15125 / 15133
相关论文
共 50 条
  • [41] Continuous flow synthesis of heterocyclic scaffolds Design principles of multistep systems - A review
    Lovei, Klara
    Bana, Peter
    Orkenyi, Robert
    Turos, Gyorgy I.
    Eles, Janos
    Novak, Zoltan
    Faigl, Ferenc
    CHIMICA OGGI-CHEMISTRY TODAY, 2016, 34 (04) : 18 - 21
  • [42] A Fully Continuous-Flow Process for the Synthesis of &ITp&IT-Cresol: Impurity Analysis and Process Optimization
    Yu, Zhiqun
    Ye, Xin
    Xu, Qilin
    Xie, Xiaoxuan
    Dong, Hei
    Su, Weike
    ORGANIC PROCESS RESEARCH & DEVELOPMENT, 2017, 21 (10) : 1644 - 1652
  • [43] Continuous Synthesis and Purification by Coupling a Multistep Flow Reaction with Centrifugal Partition Chromatography
    Orkenyi, Robert
    Eles, Janos
    Faigl, Ferenc
    Vincze, Peter
    Prechl, Anita
    Szakacs, Zoltan
    Koti, Janos
    Greiner, Istvan
    ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2017, 56 (30) : 8742 - 8745
  • [44] Multistep continuous flow system for on-demand synthesis of chemokine receptor ligands
    Petersen, Trine P.
    Ritzen, Andreas
    Ulven, Trond
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2012, 243
  • [45] Continuous flow multistep synthesis of α-functionalized esters via lithium enolate intermediates
    von Keutz, Timo
    Strauss, Franz J.
    Cantillo, David
    Kappe, C. Oliver
    TETRAHEDRON, 2018, 74 (25) : 3113 - 3117
  • [46] AUTOMATED CONTINUOUS-FLOW PEPTIDE-SYNTHESIS
    ANDREWS, RP
    NATURE, 1986, 319 (6052) : 429 - 430
  • [47] Multistep continuous-flow microchemical synthesis involving multiple reactions and separations
    Sahoo, Hemantkumar R.
    Kralj, Jason G.
    Jensen, Klavs F.
    ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2007, 46 (30) : 5704 - 5708
  • [48] Continuous flow thermolysis of azidoacrylates for the synthesis of heterocycles and pharmaceutical intermediates
    O'Brien, Alexander G.
    Levesque, Francois
    Seeberger, Peter H.
    CHEMICAL COMMUNICATIONS, 2011, 47 (09) : 2688 - 2690
  • [49] Process analysis and optimization of continuous pharmaceutical manufacturing using flowsheet models
    Wang, Zilong
    Escotet-Espinoza, M. Sebastian
    Ierapetritou, Marianthi
    COMPUTERS & CHEMICAL ENGINEERING, 2017, 107 : 77 - 91
  • [50] Innovative Process Development of Pharmaceutical Intermediates under Continuous Flow System
    Yasukouchi, Hiroaki
    Nishiyama, Akira
    Mitsuda, Masaru
    JOURNAL OF SYNTHETIC ORGANIC CHEMISTRY JAPAN, 2020, 78 (03) : 240 - 249