Microscale purification in support of high-throughput medicinal chemistry

被引:12
|
作者
Barhate, Chandan L. [1 ]
Donnell, Andrew F. [2 ]
Davies, Merrill [1 ]
Li, Ling [2 ]
Zhang, Yong [3 ]
Yang, Fukang [3 ]
Black, Regina [4 ]
Zipp, Greg [1 ]
Zhang, Yingru [1 ]
Cavallaro, Cullen L. [2 ]
Priestley, E. Scott [2 ]
Weller, Harold N. [1 ]
机构
[1] Bristol Myers Squibb, Separat & Anal Technol Team, Lawrenceville, NJ 08648 USA
[2] Bristol Myers Squibb, Chemotype Discovery & Optimizat, Lawrenceville, NJ USA
[3] Bristol Myers Squibb, Novel Drug Modal, Lawrenceville, NJ USA
[4] Agilent Technol, Wilmington, DE 19808 USA
关键词
DRUG DISCOVERY; EXPERIMENTATION; CHROMATOGRAPHY; ANTAGONISTS;
D O I
10.1039/d1cc03791a
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
In recent years, successful assay miniaturization has enabled the exploration of synthesis scale reduction in pharmaceutical discovery. Miniaturization of pharmaceutical synthesis and purification allows a reduction in material consumption and shortens timelines, which ultimately reduces the cost per experiment without compromising data quality. Isolating and purifying the compounds of interest is a key step in the library synthesis process. In this manuscript we describe a high-throughput purification workflow in support of microscale (1-5 mu mol or 0.5-2 mg) library synthesis. The optimized microscale purification system can routinely purify 384-well reaction plates with an analysis time of 4 min per sample. Instrument optimization, critical parameters such as column loading, delay time calibration, ultrafast pre- and post-purification analysis and library purification examples are provided.
引用
收藏
页码:11037 / 11040
页数:4
相关论文
共 50 条
  • [21] Selenylation Chemistry Suitable for On-Plate Parallel and On-DNA Library Synthesis Enabling High-Throughput Medicinal Chemistry
    Xu, Hongtao
    Wang, Yan
    Dong, Hewei
    Zhang, Yiyuan
    Gu, Yuang
    Zhang, Shuning
    Meng, Yu
    Li, Jie
    Shi, Xiao Jie
    Ji, Qun
    Liu, Lili
    Ma, Peixiang
    Ma, Fei
    Yang, Guang
    Hou, Wei
    ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2022, 61 (35)
  • [22] High-throughput purification of viral RNA based on novel aqueous chemistry for nucleic acid isolation
    Hourfar, MK
    Michelsen, U
    Schmidt, M
    Berger, A
    Seifried, E
    Roth, WK
    CLINICAL CHEMISTRY, 2005, 51 (07) : 1217 - 1222
  • [23] High-throughput natural products chemistry: Is it possible?
    O'Neil-Johnson, M.
    Eldridge, G.
    Norcross, J.
    Peck, T.
    Milling, C.
    PLANTA MEDICA, 2010, 76 (12) : 1184 - 1184
  • [24] Myths of high-throughput experimentation and automation in chemistry
    Gaunt, Matthew J.
    Janey, Jacob M.
    Schultz, Danielle M.
    Cernak, Tim
    CHEM, 2021, 7 (09): : 2259 - 2260
  • [25] High-throughput Natural Products Chemistry Is it possible?
    O'Neil-Johnson, Mark
    Eldndge, Gary
    Milling, Craig
    Norcross, Jim
    Peck, Tim
    IN VITRO CELLULAR & DEVELOPMENTAL BIOLOGY-ANIMAL, 2010, 46 : S54 - S54
  • [26] Microfluidic systems for high-throughput and combinatorial chemistry
    Cullen, CJ
    Wootton, RCR
    de Mello, AJ
    CURRENT OPINION IN DRUG DISCOVERY & DEVELOPMENT, 2004, 7 (06) : 798 - 806
  • [27] High-throughput natural products chemistry: Is it possible?
    O'Neil-Johnson, Mark
    Eldridge, Gary
    Norcross, Jim
    Milling, Craig
    Peck, Tim
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2010, 240
  • [28] Review: Microscale methods for high-throughput chromatography development in the pharmaceutical industry
    Chhatre, Sunil
    Titchener-Hooker, Nigel J.
    JOURNAL OF CHEMICAL TECHNOLOGY AND BIOTECHNOLOGY, 2009, 84 (07) : 927 - 940
  • [29] Unlocking the Potential of High-Throughput Experimentation for Electrochemistry with a Standardized Microscale Reactor
    Rein, Jonas
    Annand, James R.
    Wismer, Michael K.
    Fu, Jiantao
    Siu, Juno C.
    Klapars, Artis
    Strotman, Neil A.
    Kalyani, Dipannita
    Lehnherr, Dan
    Lin, Song
    ACS CENTRAL SCIENCE, 2021, 7 (08) : 1347 - 1355
  • [30] FAST BUSES SUPPORT HIGH-THROUGHPUT DSPS
    WEISS, R
    COMPUTER DESIGN, 1995, 34 (07): : 30 - 32