A Synthetic Hydrogel, VitroGel(R) ORGANOID-3, Improves Immune Cell-Epithelial Interactions in a Tissue Chip Co-Culture Model of Human Gastric Organoids and Dendritic Cells

被引:30
|
作者
Cherne, Michelle D. [1 ]
Sidar, Barkan [2 ,3 ]
Sebrell, T. Andrew [1 ]
Sanchez, Humberto S. [2 ,3 ]
Heaton, Kody [1 ]
Kassama, Francis J. [4 ]
Roe, Mandi M. [1 ]
Gentry, Andrew B. [5 ]
Chang, Connie B. [2 ,3 ]
Walk, Seth T. [1 ]
Jutila, Mark [1 ]
Wilking, James N. [2 ,3 ]
Bimczok, Diane [1 ]
机构
[1] Montana State Univ, Dept Microbiol & Cell Biol, Bozeman, MT 59717 USA
[2] Montana State Univ, Chem & Biol Engn Dept, Bozeman, MT 59717 USA
[3] Montana State Univ, Ctr Biofilm Engn, Bozeman, MT 59717 USA
[4] Bowdoin Coll, Dept Chem & Biochem, Brunswick, ME 04011 USA
[5] Deaconess Hosp, Bozeman GI Clin, Bozeman, MT USA
基金
美国国家卫生研究院; 美国国家科学基金会;
关键词
microphysiological system; gastric organoid; mononuclear phagocyte; dendritic cell; chemotaxis; matrigel; hydrogel; SAFETY ASSESSMENT; MATRIX STIFFNESS; MIGRATION; ADHESION; EXPANSION; EFFICACY; PLATFORM;
D O I
10.3389/fphar.2021.707891
中图分类号
R9 [药学];
学科分类号
1007 ;
摘要
Immunosurveillance of the gastrointestinal epithelium by mononuclear phagocytes (MNPs) is essential for maintaining gut health. However, studying the complex interplay between the human gastrointestinal epithelium and MNPs such as dendritic cells (DCs) is difficult, since traditional cell culture systems lack complexity, and animal models may not adequately represent human tissues. Microphysiological systems, or tissue chips, are an attractive alternative for these investigations, because they model functional features of specific tissues or organs using microscale culture platforms that recreate physiological tissue microenvironments. However, successful integration of multiple of tissue types on a tissue chip platform to reproduce physiological cell-cell interactions remains a challenge. We previously developed a tissue chip system, the gut organoid flow chip (GOFlowChip), for long term culture of 3-D pluripotent stem cell-derived human intestinal organoids. Here, we optimized the GOFlowChip platform to build a complex microphysiological immune-cell-epithelial cell co-culture model in order to study DC-epithelial interactions in human stomach. We first tested different tubing materials and chip configurations to optimize DC loading onto the GOFlowChip and demonstrated that DC culture on the GOFlowChip for up to 20 h did not impact DC activation status or viability. However, Transwell chemotaxis assays and live confocal imaging revealed that Matrigel, the extracellular matrix (ECM) material commonly used for organoid culture, prevented DC migration towards the organoids and the establishment of direct MNP-epithelial contacts. Therefore, we next evaluated DC chemotaxis through alternative ECM materials including Matrigel-collagen mixtures and synthetic hydrogels. A polysaccharide-based synthetic hydrogel, VitroGel (R)-ORGANOID-3 (V-ORG-3), enabled significantly increased DC chemotaxis through the matrix, supported organoid survival and growth, and did not significantly alter DC activation or viability. On the GOFlowChip, DCs that were flowed into the chip migrated rapidly through the V-ORG matrix and reached organoids embedded deep within the chip, with increased interactions between DCs and gastric organoids. The successful integration of DCs and V-ORG-3 embedded gastric organoids into the GOFlowChip platform now permits real-time imaging of MNP-epithelial interactions and other investigations of the complex interplay between gastrointestinal MNPs and epithelial cells in their response to pathogens, candidate drugs and mucosal vaccines.
引用
收藏
页数:16
相关论文
共 5 条
  • [1] Molecular-genomic characterization of metastatic gastric cancer organoids and establishment of organoid-immune cell co-culture model
    Mun, Han Byeol
    Park, Juin
    Jang, Jinsoo
    Che, Jingmin
    Kim, Tae Soo
    Kwon, Woo Sun
    Chung, Hyun Cheol
    Rha, Sun Young
    CANCER RESEARCH, 2024, 84 (06)
  • [2] A Preclinical Human-Derived Autologous Gastric Cancer Organoid/Immune Cell Co-Culture Model to Predict the Efficacy of Targeted Therapies
    Chakrabarti, Jayati
    Koh, Vivien
    So, Jimmy Bok Yan
    Yong, Wei Peng
    Zavros, Yana
    JOVE-JOURNAL OF VISUALIZED EXPERIMENTS, 2021, (173):
  • [3] ORGAN-ON-CHIP PLATFORM FOR THE FUNCTIONAL CO-CULTURE OF HUMAN CIRCULATING IMMUNE CELLS AND 3D LIVER TISSUE REPRESENTATION
    Aizenshtadt, Aleksandra
    Frank, Anna Katharina
    Busek, Mathias
    Golovin, Alexey
    Stokowiec, Justyna
    Melum, Espen
    Krauss, Stefan
    HEPATOLOGY, 2022, 76 : S190 - S191
  • [4] H. PYLORI INFECTION OF THE HUMAN GASTRIC EPITHELIUM INDUCES ACCELERATED RECRUITMENT OF DENDRITIC CELLS - OBSERVATIONS FROM A NOVEL DC-ORGANOID CO-CULTURE MODEL
    Sebrell, Thomas A.
    Hashimi, Marziah
    Sidar, Barkan
    Wilking, James N.
    Bimczok, Diane
    GASTROENTEROLOGY, 2018, 154 (06) : S66 - S66
  • [5] Pluripotent Stem Cell Derived Endometrial Stromal Fibroblasts Co-Culture with Endometrial Epithelial Organoids to Form a 3-Dimensional Model of the Human Endometrium.
    Cheung, Virginia Chu
    Peng, Chian-yu
    Marinic, Mirna
    Sakabe, Noboru J.
    Aneas, Ivy
    Lynch, Vincent J.
    Ober, Carole
    Nobrega, Marcelo A.
    Kessler, John A.
    REPRODUCTIVE SCIENCES, 2021, 28 (SUPPL 1) : 104A - 104A