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Badylak, S. F.

Publications and source records attributed to Badylak, S. F..

2 recordsLinked to original sources

Intervening to preserve function in ischemic cardiomyopathy with a porous hydrogel and extracellular matrix composite in a rat myocardial infarction model

A variety of hydrogels have been developed for intramyocardial injection therapy after myocardial infarction. Some of these biomaterials have incorporated bioactive substances that promote local tissue regeneration and integration, while others have emphasized the mechanical role of the injectate in providing functional benefit. In this study, we incorporated two bioactive features, porosity, and extracellular matrix derived hydrogel (ECM), into a mechanically optimized, thermoresponsive, degradable hydrogel (poly(N-isopropylacrylamide-co-N-vinylpyrrolidone-co-MAPLA) copolymer) and evaluated whether injection of this biomaterial could abrogate the remodeling process in a rat ischemic cardiomyopathy model. After myocardial infarction by coronary artery ligation, rats were randomly divided into four groups: group NP (non-porous hydrogel) without either ECM or porosity, group PM (porous hydrogel) from the same synthetic copolymer with mannitol beads as porogens, and group PME with porosity and ECM digest added to the synthetic copolymer. A group with PBS injection alone served as a control. Intramyocardial injections were made 3 days after myocardial infarction. Serial echocardiography was assessed over time, and histological assessments were performed eight weeks after infarction. Results demonstrated improved echocardiographic function and neovascularization in the PME group compared to the other hydrogels and PBS injection. The PME group also demonstrated significant improvement in LV geometry and macrophage polarization (towards M2) compared to the PBS group, whereas these differences were not observed in the NP or PM groups versus the control. These results demonstrate that further functional improvement may be achieved in hydrogel injection therapy for ischemic cardiomyopathy by incorporating porosity and ECM digest, representing a combination of mechanical and biological effects.

bioengineering↗

Spatiotemporal mapping of immune and stem cell dysregulation after volumetric muscle loss

Volumetric muscle loss (VML) is an acute trauma that results in persistent inflammation, supplantation of muscle tissue with fibrotic scarring, and decreased muscle function. The cell types, nature of cellular communication and tissue locations that drive the aberrant VML response have remained elusive. Herein, we used spatial transcriptomics integrated with single-cell RNA sequencing on mouse and canine models administered VML. We observed VML engenders a unique spatial pro-fibrotic pattern driven by crosstalk between macrophages and fibro-adipogenic progenitors that was conserved between murine and canine models albeit with varying kinetics. This program was observed to restrict muscle stem cell mediated repair and targeting this circuit in a murine model resulted in increased regeneration and reductions in inflammation and fibrosis. Collectively, these results enhance our understanding of the immune cell-progenitor cell-stem cell crosstalk that drives regenerative dysfunction and provides further insight into possible avenues for fibrotic therapy exploration.

cell biology↗