AI Article Synopsis

  • Bispecific antibodies (bsAbs) are a promising treatment option but present challenges in purification due to their complex structures and impurities.
  • Ceramic hydroxyapatite (CHT) is a mixed-mode medium that enhances protein purification by allowing different binding interactions, potentially yielding higher purity levels compared to traditional methods like cation exchange chromatography (CEX).
  • The study found that using CHT for bsAb purification achieved over 97% product purity, reduced high molecular weight impurities significantly, and minimized chromatography-induced aggregation, suggesting CHT's effectiveness varies based on the bsAb's characteristics.

Article Abstract

Bispecific antibody (bsAb), a novel therapeutic modality, provides excellent treatment efficacy, yet poses numerous challenges to downstream process development, which are mainly due to the intricate diversity of bsAb structures and impurity profiles. Ceramic hydroxyapatite (CHT), a mixed-mode medium, allows proteins to interact with its calcium sites (C-sites) through metal affinity and/or its phosphate sites (P-sites) through cation exchange interactions. This dual-binding capability potentially offers unique bind and elute behaviours for different proteins of interest, resulting in optimal product purity when suitable elution conditions are employed. In this study, the effectiveness of CHT as a polishing step for bsAb purification was investigated across three model molecules and benchmarked against the traditional cation exchange chromatography (CEX). For both asymmetric and symmetric IgG-like bsAb post Protein A eluates, at least 97% product purity was achieved after CHT polishing. CHT delivered a superior aggregate clearance to CEX, resulting in low high molecular weight (HMW) impurities (0.5%) and low process-related impurities in the product pools. Moreover, CHT significantly mitigated "chromatography-induced aggregation" whereas eightfold more HMW was generated by CEX. This study illustrated the developability of CHT in effectively eliminating low molecular weight (LMW) impurities through post-load-wash (PLW) optimization, resulting in an additional reduction of up to 48% in LMW impurities. A mechanistic explanation regarding the performance of impurity removal and mitigation of the chromatography-induced aggregation by CHT was proposed, illustrating unique CHT capability is potentially driven by C-site cooperation, of which effectiveness could depend on the bsAb composition and size.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10992335PMC
http://dx.doi.org/10.1186/s40643-023-00713-9DOI Listing

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