Characterizing the Impact of Fabrication Methods on Mechanically Tunable Gelatin Hydrogels for Cardiac Fibrosis Studies
The mechanical properties of the extracellular matrix critically influence cell behavior in both physiological and pathophysiological states, including cardiac fibrosis. In vitro models have played a critical role in assessing biological mechanisms. In this study, we characterized mechanically tunab...
Saved in:
| Main Authors: | Jordyn Folh, Phan Linh Dan Tran, Renita E. Horton |
|---|---|
| Format: | Article |
| Language: | English |
| Published: |
MDPI AG
2025-07-01
|
| Series: | Bioengineering |
| Subjects: | |
| Online Access: | https://www.mdpi.com/2306-5354/12/7/759 |
| Tags: |
Add Tag
No Tags, Be the first to tag this record!
|
Similar Items
-
TFAP4 exacerbates pathological cardiac fibrosis by modulating mechanotransduction
by: Jie Liu, et al.
Published: (2025-08-01) -
Mechanosignaling and 3D morphological adaptation of MSCs in response to hydrogel rigidity underpin angiogenic and immunomodulatory efficacy for ischemic injury regeneration
by: Yeo Gyun Yun, et al.
Published: (2025-11-01) -
Emerging Epigenetic Therapies for the Treatment of Cardiac Fibrosis
by: Nerea Garitano, et al.
Published: (2025-05-01) -
Bio-orthogonally double cross-linked alginate-gelatin hydrogels with tunable viscoelasticity for cardiac tissue engineering
by: Daniele Testore, et al.
Published: (2025-10-01) -
Persistent Fibrosis in Heart Failure With a Reduced Ejection Fraction Linked to Phenotypic Differences in Human Cardiac Fibroblast Populations
by: Rachel M. Biggs, et al.
Published: (2025-04-01)