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Microfluidic intestinal organoid-on-a-chip uncovers therapeutic targets by recapitulating oxygen dynamics of intestinal IR injury

Increasing evidence demonstrates that mammals have different reactions to hypoxia with varied oxygen dynamic patterns. It takes ∼24 h for tri-gas incubator to achieve steady cell hypoxia, which fails to recapitulate ultrafast oxygen dynamics of intestinal ischemia/reperfusion (IR) injury. Inspired f...

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Detalles Bibliográficos
Autores principales: Huang, Jinjian, Xu, Ziyan, Jiao, Jiao, Li, Zongan, Li, Sicheng, Liu, Ye, Li, Ze, Qu, Guiwen, Wu, Jie, Zhao, Yun, Chen, Kang, Li, Jieshou, Pan, Yichang, Wu, Xiuwen, Ren, Jianan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: KeAi Publishing 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10391666/
https://www.ncbi.nlm.nih.gov/pubmed/37534235
http://dx.doi.org/10.1016/j.bioactmat.2023.07.001
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author Huang, Jinjian
Xu, Ziyan
Jiao, Jiao
Li, Zongan
Li, Sicheng
Liu, Ye
Li, Ze
Qu, Guiwen
Wu, Jie
Zhao, Yun
Chen, Kang
Li, Jieshou
Pan, Yichang
Wu, Xiuwen
Ren, Jianan
author_facet Huang, Jinjian
Xu, Ziyan
Jiao, Jiao
Li, Zongan
Li, Sicheng
Liu, Ye
Li, Ze
Qu, Guiwen
Wu, Jie
Zhao, Yun
Chen, Kang
Li, Jieshou
Pan, Yichang
Wu, Xiuwen
Ren, Jianan
author_sort Huang, Jinjian
collection PubMed
description Increasing evidence demonstrates that mammals have different reactions to hypoxia with varied oxygen dynamic patterns. It takes ∼24 h for tri-gas incubator to achieve steady cell hypoxia, which fails to recapitulate ultrafast oxygen dynamics of intestinal ischemia/reperfusion (IR) injury. Inspired from the structure of native intestinal villi, we engineered an intestinal organoid chip embedded with engineered artificial microvessels based on co-axial microfluidic technology by using pH-responsive ZIF-8/sodium alginate scaffold. The chip was featured on: (i) eight times the oxygen exchange efficiency compared with the conventional device, tri-gas incubator, (ii) implantation of intestinal organoid reproducing all types of intestinal epithelial cells, and (iii) bio-responsiveness to hypoxia and reoxygenation (HR) by presenting metabolism disorder, inflammatory reaction, and cell apoptosis. Strikingly, it was found for the first time that Olfactomedin 4 (Olfm4) was the most significantly down-regulated gene under a rapid HR condition by sequencing the RNA from the organoids. Mechanistically, OLFM4 played protective functions on HR-induced cell inflammation and tissue damage by inhibiting the NF-kappa B signaling activation, thus it could be used as a therapeutic target. Altogether, this study overcomes the issue of mismatched oxygen dynamics between in vitro and in vivo, and sets an example of next-generation multisystem-interactive organoid chip for finding precise therapeutic targets of IR injury.
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spelling pubmed-103916662023-08-02 Microfluidic intestinal organoid-on-a-chip uncovers therapeutic targets by recapitulating oxygen dynamics of intestinal IR injury Huang, Jinjian Xu, Ziyan Jiao, Jiao Li, Zongan Li, Sicheng Liu, Ye Li, Ze Qu, Guiwen Wu, Jie Zhao, Yun Chen, Kang Li, Jieshou Pan, Yichang Wu, Xiuwen Ren, Jianan Bioact Mater Article Increasing evidence demonstrates that mammals have different reactions to hypoxia with varied oxygen dynamic patterns. It takes ∼24 h for tri-gas incubator to achieve steady cell hypoxia, which fails to recapitulate ultrafast oxygen dynamics of intestinal ischemia/reperfusion (IR) injury. Inspired from the structure of native intestinal villi, we engineered an intestinal organoid chip embedded with engineered artificial microvessels based on co-axial microfluidic technology by using pH-responsive ZIF-8/sodium alginate scaffold. The chip was featured on: (i) eight times the oxygen exchange efficiency compared with the conventional device, tri-gas incubator, (ii) implantation of intestinal organoid reproducing all types of intestinal epithelial cells, and (iii) bio-responsiveness to hypoxia and reoxygenation (HR) by presenting metabolism disorder, inflammatory reaction, and cell apoptosis. Strikingly, it was found for the first time that Olfactomedin 4 (Olfm4) was the most significantly down-regulated gene under a rapid HR condition by sequencing the RNA from the organoids. Mechanistically, OLFM4 played protective functions on HR-induced cell inflammation and tissue damage by inhibiting the NF-kappa B signaling activation, thus it could be used as a therapeutic target. Altogether, this study overcomes the issue of mismatched oxygen dynamics between in vitro and in vivo, and sets an example of next-generation multisystem-interactive organoid chip for finding precise therapeutic targets of IR injury. KeAi Publishing 2023-07-21 /pmc/articles/PMC10391666/ /pubmed/37534235 http://dx.doi.org/10.1016/j.bioactmat.2023.07.001 Text en © 2023 The Authors https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Article
Huang, Jinjian
Xu, Ziyan
Jiao, Jiao
Li, Zongan
Li, Sicheng
Liu, Ye
Li, Ze
Qu, Guiwen
Wu, Jie
Zhao, Yun
Chen, Kang
Li, Jieshou
Pan, Yichang
Wu, Xiuwen
Ren, Jianan
Microfluidic intestinal organoid-on-a-chip uncovers therapeutic targets by recapitulating oxygen dynamics of intestinal IR injury
title Microfluidic intestinal organoid-on-a-chip uncovers therapeutic targets by recapitulating oxygen dynamics of intestinal IR injury
title_full Microfluidic intestinal organoid-on-a-chip uncovers therapeutic targets by recapitulating oxygen dynamics of intestinal IR injury
title_fullStr Microfluidic intestinal organoid-on-a-chip uncovers therapeutic targets by recapitulating oxygen dynamics of intestinal IR injury
title_full_unstemmed Microfluidic intestinal organoid-on-a-chip uncovers therapeutic targets by recapitulating oxygen dynamics of intestinal IR injury
title_short Microfluidic intestinal organoid-on-a-chip uncovers therapeutic targets by recapitulating oxygen dynamics of intestinal IR injury
title_sort microfluidic intestinal organoid-on-a-chip uncovers therapeutic targets by recapitulating oxygen dynamics of intestinal ir injury
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10391666/
https://www.ncbi.nlm.nih.gov/pubmed/37534235
http://dx.doi.org/10.1016/j.bioactmat.2023.07.001
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