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Harrington, D. A.

Publications and source records attributed to Harrington, D. A..

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Hyaluronan Hydrogel "Safety Nets" for 3D Cell Culture Applications

Polymeric hydrogels can mimic features of native extracellular matrix (ECM), and their facile production and characterization enable customizable cell encapsulation and 3-dimensional (3D) culture. These have applications relevant to dentistry such as soft tissue engineering, cancer modeling, and drug screening. Hyaluronan (HA), a biologically-derived polymer found in native ECM, offers an optimal platform for this use, as it can be modified covalently with adhesive ligands, enzyme-degradable crosslinkers, and other biorelevant moieties, yielding tailored physical properties and biological response. Cell-directed degradation of these encapsulating matrices can be a prerequisite for phenotype preservation, but degradation kinetics may not match desired timelines for drug screening applications. This study focused on optimizing hydrogel composition, network structure, and gelation kinetics to preserve z-distribution of physiologically relevant cells within high-throughput microfluidic plates. Hydrogels were formed from aqueous solutions of thiolated HA (HA-SH), bifunctional acrylated poly(ethylene glycol)-peptide crosslinkers, and pendant acrylated peptides (RGD or YIGSR sequences) to support cell adhesion. By varying the absolute crosslinker concentration and relative proportions of high:low crosslinker degradation kinetics, hydrogels could be tuned to desired moduli (G: [~]10-120 Pa) and enzymatic degradation rate. Ratios of high:low degradable crosslinkers, at equivalent total crosslinker concentration, minimally impacted final modulus or gelation rate. Similarly, pendant adhesive ligands were swapped easily with negligible impact on hydrogel physical properties. Hydrogels with a 50:50 ratio of high:low degradable crosslinkers provided a "safety net" that preserved z-distribution of encapsulated bone marrow-derived fibroblasts, while maintaining expected phenotype. A comparable system supported the 3D co-culture of primary human salivary epithelial and mesenchymal cells within a perfusable microfluidic multiwell plate. This customizable bottom-up construction reduced confounding factors encountered in hybridoma-derived protein matrices, enabling modular customization of physiologically relevant, yet reproducible matrices to replicate native ECM. Our optimized model demonstrates workflows to improve future pharmaceutical screens, and tailor tissue engineering applications.

bioengineering↗

Functionalized Biomimetic Hydrogels Enhance Salivary Stem/Progenitor Cell Organization

Complex branched salivary structures remain challenging to replicate within implant ready hydrogels. We showed previously that hyaluronic acid (HA)-based hydrogels enable growth and organization of primary salivary-derived human stem/progenitor cells (hS/PCs) into multicellular spheroids. Here, we systematically functionalized three components of migration-permissive hydrogels to foster salivary tissue morphogenesis. We separately analyzed contributions of an enzymatically degradable crosslinker, a pendant integrin-binding site, and hydrogel porosity to best support high viability, integrin-dependent cell adhesion and migration. Structure size, frequency, and morphology were all affected by hydrogel crosslink density and integration of biofunctional peptides. Viability and proliferation data suggested that integration of integrin binding sites had the greatest effect on hS/PCs behavior. A larger internal matrix space, created by increasing both crosslinker length and PEG content, was needed to form large multicellular hS/PC structures. Peptide-modified hydrogels with more internal space shifted hS/PC organization from spheroidal, surrounded by thick basement membrane, to an asymmetric arrangement with punctate matrix proteins defining a "wrinkled" perimeter. Integrin-binding peptides activated integrin {beta}1, with highest activation observed in hydrogels having both cleavable peptide and integrin ligand. The design parameters we prescribe allowed us to encapsulate hS/PCs in a humanized biomimetic hydrogel matrix able to support morphogenesis needed for salivary restoration.

bioengineering↗