» Articles » PMID: 33464076

Extrusion Printed Scaffolds with Varying Pore Size As Modulators of MSC Angiogenic Paracrine Effects

Overview
Date 2021 Jan 19
PMID 33464076
Citations 20
Authors
Affiliations
Soon will be listed here.
Abstract

Cell encapsulation in confining 3D hydrogels typically prevents encapsulated cells from spreading and establishing cell-cell contacts. Interactions with neighboring cells or with the extracellular matrix (ECM) influence the paracrine activity of mesenchymal stromal cells (MSCs), but how these interactions are regulated by structural properties of biomaterial scaffolds remains insufficiently explored. Here, we describe the use of extrusion-based 3D printing to fabricate acellular, gelatin-based scaffolds with programmed strut spacings of 400 (small), 500 (medium), and 600 μm (large). These scaffolds showed similar effective Young's moduli in the range of 2-5 kPa, and varied based on average pore size which ranged from ∼200 μm (small pore: SP) through ∼302 μm (medium pore: MP) to ∼382 μm (large pore: LP). When seeded with MSCs, pore size guided cell distribution on the scaffolds, with smaller pores preventing cell infiltration, medium ones causing cells to aggregate in between struts, and large ones causing cells to flow through after attachment on the struts. These changes in cell distribution regulated cell-cell and cell-matrix interactions at the gene level, as assessed by pathway focused PCR arrays. Medium pore size scaffolds stimulated the highest paracrine secretion of a panel of angiogenic cytokines. This enhancement of paracrine activity substantially improved endothelial cell migration in a chemotaxis assay, increased single cell migration kinetics such as velocity, and stimulated the formation of robust tubular structures. Together, these findings not only provide new insights on cellular interactions in scaffold environments but also demonstrate how 3D biomaterial design can instruct and enhance the regenerative paracrine activities of MSCs.

Citing Articles

Genipin cross-linked gelatin hydrogel for encapsulating wharton jelly mesenchymal stem cells and basic fibroblast growth factor delivery in vocal fold regeneration.

Wan-Chiew N, Mat Baki M, Lokanathan Y, Fauzi M, Azman M Front Cell Dev Biol. 2024; 12:1489901.

PMID: 39703693 PMC: 11655468. DOI: 10.3389/fcell.2024.1489901.


Nanosilicates facilitate periodontal regeneration potential by activating the PI3K-AKT signaling pathway in periodontal ligament cells.

Chen Z, Xiao N, Luo L, Zhang L, Yin F, Hu W J Nanobiotechnology. 2024; 22(1):532.

PMID: 39223550 PMC: 11370094. DOI: 10.1186/s12951-024-02798-6.


Bioactive Materials That Promote the Homing of Endogenous Mesenchymal Stem Cells to Improve Wound Healing.

Jiang Z, Chen L, Huang L, Yu S, Lin J, Li M Int J Nanomedicine. 2024; 19:7751-7773.

PMID: 39099796 PMC: 11297574. DOI: 10.2147/IJN.S455469.


Matrix stiffness-dependent regulation of immunomodulatory genes in human MSCs is associated with the lncRNA CYTOR.

Lim J, Vining K, Mooney D, Blencowe B Proc Natl Acad Sci U S A. 2024; 121(32):e2404146121.

PMID: 39074278 PMC: 11317610. DOI: 10.1073/pnas.2404146121.


Dental-derived stem cells in tissue engineering: the role of biomaterials and host response.

Yuan W, de Almeida Queiroz Ferreira L, Yu B, Ansari S, Moshaverinia A Regen Biomater. 2024; 11:rbad100.

PMID: 38223292 PMC: 10786679. DOI: 10.1093/rb/rbad100.