化学
磷化氢
反应性(心理学)
组合化学
苯甲酸
水溶液
序列(生物学)
范围(计算机科学)
还原(数学)
氧化还原
二硫键
氧化还原
有机化学
还原剂
选择性还原
纳米技术
氨
水介质
作者
Marion H. Emmert (1790821),Cuixian Yang (1943581),Eugene E. Kwan (1487764),Rebecca Chmielowski (19164179),Bruce Kilgore (8997707),Zachary L. VanAernum (5899628),Cecilia Bottecchia (2827982),Rodell C. Barrientos (13119928),Monica Haley (19119043),Kelly Raymond (19119040),Michael Rauscher (18455113),Zachary D. Dunn (5509658),Jay Desai (60999)
出处
期刊:
[Figshare (United Kingdom)]
日期:2024-12-13
标识
DOI:10.1021/acs.oprd.4c00343.s001
摘要
This manuscript describes the detailed evaluation of more than 40 phosphine reductants via automated and nonautomated high-throughput experimentation approaches with the goal of identifying selective reductants for cleaving the disulfide bonds of capped, engineered cysteines in a proprietary monoclonal antibody (mAb). As a point of reference, this study included phosphines that have previously been documented in the literature [4-diphenylphosphino benzoic acid (DPPBA), tris(3-sulfophenyl)phosphine (TSPP), and 3-(diphenylphosphino)benzenesulfonate (diPPBS)]; however, all known reductants showed the formation of undesired side products upon reduction (detectable by IEX), especially at higher phosphine loadings. The high-throughput study also revealed several phosphines with potential for selective reduction that had not been previously studied for this type of transformation. These initial hits were further evaluated with regard to the phosphine/mAb ratio, solubility in aqueous media, and air oxidation behavior. The best phosphine identified (1-(4-(diphenylphosphanyl)benzyl)-1-methylpyrrolidin-1-ium bromide (P10)) was then employed in a sequence of high-throughput studies that established efficient one-pot reduction/conjugation reaction conditions. Overall, the work detailed herein demonstrates how high-throughput experimental design enables rapid and resource-sparing insights into mAb reduction and conjugation reactivity with phosphine-based reductants.
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