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Phillippi, J. A.

Publications and source records attributed to Phillippi, J. A..

2 recordsLinked to original sources

Ascending and Descending Aortic ECM Hydrogels for Modeling Aortic Wall Biology

Although in vitro modeling systems are becoming increasingly advanced, the complex pathophysiology of aortic diseases remains a challenge to mimic and adequately replicate. Biomechanical weakening of the vessel wall, medial degeneration and remodeling are all hallmarks of aneurysmal diseases via incompletely understood mechanisms. Understanding what factors disrupt the multi-layer biology of large blood vessels during the progression of aneurysmal disease can aid in the unmet clinical need to slow or halt disease progression. In particular, the microvascular network of the vasa vasorum provides the primary blood supply to the outer aortic wall and is a key component of inter-layer vascular health. Different origins of the vasa vasorum correspond to the anatomically specific functions of the aortic regions, which can further pertain to the differing origins of vascular wall cells and putative differences in the composition of extracellular matrix (ECM). Biologic scaffolds produced from ECM are useful biomaterials to understand biological processes and address wound healing, stem cell differentiation, and angiogenesis for both in vitro and in vivo disease models. In the present study, we investigated putative differences in composition and structure between ascending and descending aorta-derived ECM to better understand intra- and inter-layer cell-matrix interactions relevant to vasa vasorum function in the aorta. Ascending and descending aortic ECM (AECM) hydrogels were shown to retain bioactivity and influence contractility of human vasa vasorum-associated pericytes. A comprehensive understanding of the effect of layer-specific ECM on cells in different aortic regions could help uncover novel disease mechanisms.

bioengineering↗

Fiber Diameter and Architecture Direct Three-Dimensional Assembly of Pericytes into Spheroids

Due to their physiological relevance, multicellular 3D spheroids are actively replacing standard 2D monolayer cultures. How spheroids are formed through the assembly of individual cells in natural fibrous environments that include a mix of diameters and architectures in vivo remains unknown. Here, we demonstrate that the spontaneous assembly of human vasa vasorum-derived pericytes in 3D spheroids depends on the fiber diameter and network architecture. A parallel arrangement of suspended fibers of all tested diameters (200, 500, and 800 nm) leads to the formation of spheroids, while on crosshatch networks, spheroid assembly on larger diameters is absent. The design of fibrous networks of a mix of diameters and architectures leads to the patterning of spheroids in desired locations. Fiber remodeling in parallel arrangements serves as force sensors providing mechanical insights into the assembly dynamics of spheroids and subsequent cell sprouting from spheroids. Translocation and merger of spheroids occur predominantly on parallel fiber networks, while on crosshatch networks, a cellular exchange is observed between spheroids connected with remodeled fibers. Rho kinase inhibition by Y27632 and subsequent wash-off leads to spheroid disintegration and reassembly, thus, highlighting the role of cell contractility in the assembly and integrity of 3D spheroids. Overall, using extracellular mimicking fiber networks of varying diameters and architectures, we report new insights into the 3D dynamics of spheroids which may inform pericytes role in vasculogenesis, and (patho)physiological angiogenesis

bioengineering↗