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A human 3D BBB chip model of acute stroke simulating a reversible penumbra.

A human 3D BBB chip model of acute stroke simulating a reversible penumbra.

期刊: PloS one 日期: 2026-01-01 PMID: 42447202 DOI: 10.1371/journal.pone.0352263 浏览: 22
作者: Kwak KA, Shin EY, Yi KS, Choi CH
KA, K., EY, S., KS, Y., & CH, C. (2026). A human 3D BBB chip model of acute stroke simulating a reversible penumbra.. PloS one. https://doi.org/10.1371/journal.pone.0352263
KA K, EY S, KS Y, CH C. A human 3D BBB chip model of acute stroke simulating a reversible penumbra.. PloS one. 2026; doi: 10.1371/journal.pone.0352263
KA K, EY S, KS Y, et al. A human 3D BBB chip model of acute stroke simulating a reversible penumbra.[J]. PloS one. 2026. DOI: 10.1371/journal.pone.0352263.
@article{ka2026,
  author = {Kwak KA and Shin EY and Yi KS and Choi CH},
  title = {A human 3D BBB chip model of acute stroke simulating a reversible penumbra.},
  journal = {PloS one},
  year = {2026},
  doi = {10.1371/journal.pone.0352263},
  note = {PMID: 42447202},
}
TY  - JOUR
AU  - Kwak KA
AU  - Shin EY
AU  - Yi KS
AU  - Choi CH
TI  - A human 3D BBB chip model of acute stroke simulating a reversible penumbra.
T2  - PloS one
PY  - 2026
DO  - 10.1371/journal.pone.0352263
AN  - PMID:42447202
ER  - 

摘要

Ischemic stroke is a leading cause of mortality and disability worldwide. However, existing models often fail to replicate key aspects of human pathophysiology, particularly blood-brain barrier (BBB) dysfunction and the salvageable ischemic penumbra. We developed a three-dimensional BBB chip model of acute ischemic stroke that reproduces penumbra-like, partially reversible BBB injury. This platform integrates a microfluidic BBB chip (Emulate) with parallel Transwell inserts to facilitate complementary structural, molecular, and functional analyses. Ischemia-like injury was induced using 2.5 μM antimycin A for 1 hour under oxygen-glucose deprivation conditions, followed by medium replacement to simulate reperfusion. Therapeutic hypothermia (33°C) was also applied during the reperfusion phase. The combination of reperfusion and hypothermia resulted in the most pronounced restoration of BBB integrity compared with reperfusion alone. The Emulate chip enabled structural evaluation of endothelial morphology, while the transwell model showed concordant recovery of BBB-related markers, including ZO-1 and VE-cadherin, along with decreased expression of the hypoxia-associated marker HIF-1α. This integrated platform enabled evaluation of BBB injury and recovery under ischemia- and reperfusion-like conditions. Our human cell-based 3D BBB stroke model captures key BBB-related features of penumbra-like injury and provides a human-relevant in vitro platform for investigating stroke pathophysiology and evaluating therapeutic strategies.

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