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◆ International journal of pharmaceutics2026-08-13

A bioengineered 3D fibrous plaque microsystem for evaluating multimodal nanotherapy in atherosclerosis.

Yatian Fu, Mohamed Elhousseini Hilal, Wang Guo, Ke Huang, Wei Li, Sander Dekyvere, Zhiqiang Ma, Junchen Liao, Somboon Chaemchuen, Yang Sylvia Liu, Song Lin Chua, Francis Verpoort, Bee Luan Khoo

原始摘要(英文原文)· Original abstract
Atherosclerosis progression involves macrophage-mediated inflammation and collagen-associated changes in the fibrous matrix, yet effective therapeutic strategies to modulate plaque-associated macrophage activity remain limited. Here, we established a bioengineered three-dimensional in vitro fibrous plaque (I-FP) microsystem that recapitulates selected inflammatory, foam-cell-associated, and fibrous matrix features of atherosclerotic lesions and enables quantitative evaluation of nanotherapeutic interventions. Using this multicellular platform, we evaluated a multimodal metal-organic framework nanocarrier integrating pH-responsive TCH release, Cu-associated oxidative responses, and nitric oxide-associated signaling. Within the I-FP microsystem, treatment significantly suppressed macrophage-associated inflammatory responses, including a 2.04-fold reduction in IL-6 and a 1.94-fold decrease in matrix metalloproteinase (MMP-1) expression. T-5CuZI also reduced macrophage-associated viability by 1.27-fold while preserving myofibroblast viability, and increased collagen-associated fibrous matrix content, indicating a collagen-retaining fibrous matrix phenotype under atherosclerosis-mimicking conditions. These findings establish the I-FP microsystem as an applied plaque-mimicking in vitro platform for quantitative evaluation of treatment-induced inflammatory, macrophage-associated, and fibrous matrix-related readouts relevant to atherosclerosis.
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A bioengineered 3D fibrous plaque microsystem for evaluating multimodal nanotherapy in atherosclerosis. — 科研速览 Science Skim