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Biology subjects

Griffin, K. H.

Publications and source records attributed to Griffin, K. H..

2 recordsLinked to original sources

Controlled delivery of immunomodulatory factors for mineralized tissue formation in an inflammatory microenvironment

Mesenchymal stromal cells (MSCs) are a promising cell-based therapy for bone healing, contributing to tissue regeneration through direct differentiation or immunomodulatory factor secretion. However, diseases that feature chronic or dysregulated inflammation, such as non-union fractures and osteonecrosis of the jaw (ONJ), have proven difficult to treat with current MSC-based approaches. Here, we investigated whether controlled delivery of immunomodulatory factors would allow MSCs to simultaneously undergo osteogenic differentiation and modulate inflammation. We first used a Design of Experiments approach to identify the type and concentrations of immunomodulatory factors (IMFs) that most effectively induce concurrent pro-regenerative macrophages and MSC osteogenic differentiation, then loaded these IMFs into polymeric microparticles for controlled release. Through our in vitro models, we demonstrated that microparticles releasing IL-10 and IL-4 promote naive MSC osteogenesis and modulate immune response, even in chronic, physiologically relevant, inflammatory conditions. We then applied this approach to an in vivo rat model of ONJ as a clinically relevant example of such conditions. We observed clinically relevant sex-based differences in inflammation and bone formation that have not yet been reported. These data represent key findings that will facilitate the reversal of diseases that are linked to chronic bone loss and inflammation, such as ONJ.

bioengineering↗

Conductive microgel annealed scaffolds enhance myogenic potential of myoblastic cells

Bioelectricity is an understudied phenomenon to guide tissue homeostasis and regeneration. Conductive biomaterials may capture native or exogenous bioelectric signaling, but incorporation of conductive moieties is limited by cytotoxicity, poor injectability, or insufficient stimulation. Microgel annealed scaffolds are promising as hydrogel-based materials due to their inherent void space that facilitates cell migration and proliferation better than nanoporous bulk hydrogels. We generated conductive microgels from poly(ethylene) glycol and poly(3,4-ethylenedioxythiophene) polystyrene sulfonate (PEDOT:PSS) to explore the interplay of void volume and conductivity on myogenic differentiation. PEDOT:PSS increased microgel conductivity over 2-fold while maintaining stiffness, annealing strength, and viability of associated myoblastic cells. C2C12 myoblasts exhibited increases in the late-stage differentiation marker myosin heavy chain as a function of both porosity and conductivity. Myogenin, an earlier marker, was influenced only by porosity. Human skeletal muscle derived cells exhibited increased Myod1, IGF-1, and IGFBP-2 at earlier timepoints on conductive microgel scaffolds compared to non-conductive scaffolds. They also secreted higher levels of VEGF at early timepoints and expressed factors that led to macrophage polarization patterns observed during muscle repair. These data indicate that conductivity aids myogenic differentiation of myogenic cell lines and primary cells, motivating the need for future translational studies to promote muscle repair.

bioengineering↗