Page 204 - ebook
P. 204

[B. Cell Biology/Stem Cell] B-37



                  Functional human small intestinal epithelium and their


                          applications in human microbiome research




                 Ohman Kwon¹ , KwangBo Jung¹,² , Mooseung Lee¹,², Dae-Soo Kim¹,², Mi-Young Son¹,²*
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            ¹Stem Cell Research Convergence Center, Korea Research Institute of Bioscience and Biotechnology (KRIBB),

          Daejeon 34141, Korea, ²KRIBB School of Bioscience, Korea University of Science and Technology (UST), Daejeon

                                                       34113, Korea




        Advanced  technologies  are  required  for  generating  human  intestinal  epithelial  cells  (hIECs)  harboring  cellular
        diversity and functionalities to predict drug absorption in humans and study normal intestinal epithelial physiology.

        We developed a reproducible two-step protocol to induce human pluripotent stem cells to differentiate into a
        functional hIEC monolayer exhibiting intestinal molecular features, cell type diversity, and high activities of intestinal

        transporters and metabolic enzymes such as cytochrome P450 3A4 (CYP3A4). Functional hIECs are more suitable
        for predicting compounds metabolized by CYP3A4 and absorbed in the intestine than Caco-2 cells. A significantly

        higher number of bacteria were in contact with the apical surface of the functional hIEC monolayers. Moreover, a
        higher number of macrophages attached to the basolateral side of the functional hIEC monolayer and translocated

        to the upper side of the Transwell compared to that in immature hIECs, which may be attributed to elevated receptor
        expression of bacterial antigens. This system is a step toward the transition from 3D intestinal organoids to 2D hIEC

        monolayers without compromising cellular diversity and function. A physiologically relevant hIEC model offers a
        novel platform for creating patient-specific assays and support translational applications, thereby bridging the gap
        between 3D and 2D culture models of the intestine.
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