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Physical continuity at biomaterial-ECM interfaces is associated with reduced fibroblast activation and NF-κB signaling.

Journal articles  - Journal Article
Suarez-Arnedo, A; Harris, M; Robinson, C; Riley, L; Kim, A; Zhang, L; Hoffman, BD; Segura, T
Published in: Biomaterials
June 2026

Fibrotic responses at biomaterial-tissue interfaces limit implant integration and regenerative healing, yet how the interaction between biomaterials and the extracellular matrix (ECM) regulates fibroblast activation remains poorly understood. Granular hydrogels including microporous annealed particle (MAP) scaffolds reduce fibrosis, while chemically and mechanically matched hydrogels do not, suggesting a dominant role for scaffold architecture. To determine how biomaterial architecture influences extracellular matrix (ECM) integration and fibroblast activation, we developed a reductionist in vitro model that integrates collagen type I with either MAP scaffolds or chemically and mechanically matched bulk hydrogels. MAP scaffolds allow collagen infiltration and form physically continuous composites, whereas hydrogels exclude collagen and generate interfacial slip planes. This physical integration stabilizes collagen architecture, limits fibroblast-mediated matrix compaction, suppresses contractility, and attenuates myofibroblast transition. Fibroblasts in mechanically integrated environments exhibit reduced expression and nuclear localization of NF-κB and are enriched for quiescent phenotypes. Together, these findings identify biomaterial-ECM physical continuity as a design principle for limiting fibrotic signaling.

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Published In

Biomaterials

DOI

EISSN

1878-5905

ISSN

0142-9612

Publication Date

June 2026

Volume

335

Start / End Page

124402

Related Subject Headings

  • Biomedical Engineering
 

Citation

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Suarez-Arnedo, A., Harris, M., Robinson, C., Riley, L., Kim, A., Zhang, L., … Segura, T. (2026). Physical continuity at biomaterial-ECM interfaces is associated with reduced fibroblast activation and NF-κB signaling. Biomaterials, 335, 124402. https://doi.org/10.1016/j.biomaterials.2026.124402
Suarez-Arnedo, Alejandra, Michaela Harris, Calista Robinson, Lindsay Riley, Amy Kim, Lucy Zhang, Brenton D. Hoffman, and Tatiana Segura. “Physical continuity at biomaterial-ECM interfaces is associated with reduced fibroblast activation and NF-κB signaling.Biomaterials 335 (June 2026): 124402. https://doi.org/10.1016/j.biomaterials.2026.124402.
Suarez-Arnedo A, Harris M, Robinson C, Riley L, Kim A, Zhang L, et al. Physical continuity at biomaterial-ECM interfaces is associated with reduced fibroblast activation and NF-κB signaling. Biomaterials. 2026 Jun;335:124402.
Suarez-Arnedo, Alejandra, et al. “Physical continuity at biomaterial-ECM interfaces is associated with reduced fibroblast activation and NF-κB signaling.Biomaterials, vol. 335, June 2026, p. 124402. Epmc, doi:10.1016/j.biomaterials.2026.124402.
Suarez-Arnedo A, Harris M, Robinson C, Riley L, Kim A, Zhang L, Hoffman BD, Segura T. Physical continuity at biomaterial-ECM interfaces is associated with reduced fibroblast activation and NF-κB signaling. Biomaterials. 2026 Jun;335:124402.
Journal cover image

Published In

Biomaterials

DOI

EISSN

1878-5905

ISSN

0142-9612

Publication Date

June 2026

Volume

335

Start / End Page

124402

Related Subject Headings

  • Biomedical Engineering