Weller Arjen, Hansen Morten B, Marie Rodolphe, Hundahl Adam C, Hempel Casper, Kempen Paul J, Frandsen Henrik L, Parhamifar Ladan, Larsen Jannik B, Andresen Thomas L
Center for Intestinal Absorption and Transport of Biopharmaceuticals, Technical University of Denmark, Lyngby, Denmark.
Department of Health Technology, Technical University of Denmark, Lyngby, Denmark.
Front Bioeng Biotechnol. 2022 Sep 9;10:965200. doi: 10.3389/fbioe.2022.965200. eCollection 2022.
Unsuccessful clinical translation of orally delivered biological drugs remains a challenge in pharmaceutical development and has been linked to insufficient mechanistic understanding of intestinal drug transport. Live cell imaging could provide such mechanistic insights by directly tracking drug transport across intestinal barriers at subcellular resolution, however traditional intestinal models are not compatible with the necessary live cell imaging modalities. Here, we employed a novel microfluidic platform to develop an intestinal epithelial barrier compatible with advanced widefield- and confocal microscopy. We established a quantitative, multiplexed and high-temporal resolution imaging assay for investigating the cellular uptake and cross-barrier transport of biologics while simultaneously monitoring barrier integrity. As a proof-of-principle, we use the generic model to monitor the transport of co-administrated cell penetrating peptide (TAT) and insulin. We show that while TAT displayed a concentration dependent difference in its transport mechanism and efficiency, insulin displayed cellular internalization, but was restricted from transport across the barrier. This illustrates how such a sophisticated imaging based barrier model can facilitate mechanistic studies of drug transport across intestinal barriers and aid and clinical translation in drug development.
口服生物药物在临床转化方面的失败仍然是药物研发中的一个挑战,并且与对肠道药物转运的机制理解不足有关。活细胞成像可以通过以亚细胞分辨率直接跟踪药物跨肠道屏障的转运来提供这种机制性见解,然而传统的肠道模型与必要的活细胞成像方式不兼容。在这里,我们采用了一种新型微流控平台来开发一种与先进的宽场和共聚焦显微镜兼容的肠道上皮屏障。我们建立了一种定量、多重和高时间分辨率的成像分析方法,用于研究生物制品的细胞摄取和跨屏障转运,同时监测屏障完整性。作为原理验证,我们使用该通用模型来监测共同给药的细胞穿透肽(TAT)和胰岛素的转运。我们表明,虽然TAT在其转运机制和效率上表现出浓度依赖性差异,但胰岛素表现出细胞内化,但被限制在跨屏障转运。这说明了这样一个基于成像的复杂屏障模型如何能够促进对药物跨肠道屏障转运的机制研究,并有助于药物研发中的临床转化。