Injectable extracellular matrix microparticles for regenerative and biocompatible soft tissue augmentation
DOI:
https://doi.org/10.17179/excli2026-9490Keywords:
Amniotic membrane, decellularized extracellular matrix, soft tissue reconstruction, tissue engineering, translational medicineAbstract
Decellularized extracellular matrices (DEMs) have been widely investigated as promising biomaterials for soft tissue augmentation. In contrast, the use of decellularized human amniotic membrane (dHAM) represents a novel approach within this field, offering unique potential for clinical application. The objective of this study is to develop an “off-the-shelf” bioactive soft tissue filler from crosslinked and non-crosslinked dHAM in the injectable microparticle formulation. We used physical and enzymatic processes for decellularization and milling for fabricating the injectable matrix. The decellularization, crosslinking and detoxification protocol removed immunogenic cellular components, preserved collagen and glycosaminoglycan content, and reduced residual crosslinker to sub-cytotoxic levels. Consequently, both crosslinked and non-crosslinked powder extractions promoted cell viability and proliferation and did not affect cell migration in culture. Moreover, the crosslinked powder showed higher stability upon in vitro enzymatic degradation and prolonged volume retention in the subcutaneous guinea pig model. Histopathologic evaluation of the implants showed that immune cell infiltration markedly resolved over the 12-week study period. Moreover, immunohistochemistry staining for CD68 and CD163 macrophage markers indicated the abundance of CD163-positive cells, commonly associated with an anti-inflammatory or M2-like phenotype. Staining for CD31 endothelial cell marker demonstrated the formation of blood vessels with intraluminal RBCs and endothelial cell lining within the implants, which is indicative of neovascularization. Therefore, dHAM demonstrated long-term volume retention, reduced immune cell infiltration, and was associated with a CD163-positive macrophage phenotype and evidence of vascularization in the animal model. This study suggests dHAM as a readily deliverable biomaterial and a promising candidate to address clinical translational needs for soft tissue reconstruction.
Downloads
Additional Files
Published
How to Cite
License
Copyright (c) 2026 Javad Khanali, Yasamin Ostadi, Fatemeh A. Tehrani, Tahereh Tayebi, Roghayeh Tarasi, Younes Yassaghi, Yasaman Nazerian, Maryam Salimi, Feizollah Niazi, Soheyl Bahrami, Hassan Niknejad

This work is licensed under a Creative Commons Attribution 4.0 International License.
Authors who publish in this journal agree to the following terms:
- The authors keep the copyright and grant the journal the right of first publication under the terms of the Creative Commons Attribution license, CC BY 4.0. This licencse permits unrestricted use, distribution and reproduction in any medium, provided that the original work is properly cited.
- The use of general descriptive names, trade names, trademarks, and so forth in this publication, even if not specifically identified, does not imply that these names are not protected by the relevant laws and regulations.
- Because the advice and information in this journal are believed to be true and accurate at the time of publication, neither the authors, the editors, nor the publisher accept any legal responsibility for any errors or omissions presented in the publication. The publisher makes no guarantee, express or implied, with respect to the material contained herein.
- The authors can enter into additional contracts for the non-exclusive distribution of the journal's published version by citing the initial publication in this journal (e.g. publishing in an institutional repository or in a book).
