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Yedalla, A. C.

Publications and source records attributed to Yedalla, A. C..

2 recordsLinked to original sources

Mechanical History and Substrate Stiffness Shape Integrin-Mediated Endothelial Cell Behavior on Bioactive Hydrogels

Synthetic blood contacting devices frequently fail due to the lack of requisite biochemical and biomechanical cues needed to support transanastamotic endothelialization. During transanastomotic endothelialization, endothelial cells experience dynamic changes in extracellular mechanical cues as they migrate from compliant native vessels onto stiffer blood contacting device surfaces. However, how substrate stiffness and mechanical memory from prior mechanical environments influence temporal integrin remodeling and downstream endothelialization processes necessary to establish a stable endothelial layer remains poorly understood. In this study, human coronary artery endothelial cells (HCECs) were cultured on substrates spanning physiologically relevant stiffnesses to determine how substrate mechanics regulate collagen binding integrins and endothelialization. Increasing substrate stiffness promoted time dependent upregulation of 2{beta}1 integrin expression, whereas 1{beta}1 expression remained unchanged. Enhanced 2{beta}1 expression on stiff substrates was accompanied by increased vinculin associated focal adhesion maturation and accelerated endothelialization, characterized by increased proliferation, migration, and progression to confluence prior to reaching quiescence after 1 week. To better model transanastomotic migration and investigate mechanical history effects, cells initially expanded on compliant hydrogels were transferred to stiff substrates. Although these cells exhibited transient reductions in 2{beta}1 expression at early timepoints compared with tissue culture polystyrene expanded controls, no persistent differences in focal adhesion maturation, proliferation, migration, confluence, or quiescence were observed. Collectively, these findings demonstrate that substrate stiffness is a primary regulator of the early endothelialization processes required to establish a stable endothelial monolayer, whereas the influence of mechanical history is transient and ultimately superseded by the current mechanical environment. These findings also identify 2{beta}1 mediated mechanotransduction as a potential design target for blood contacting biomaterials that promote rapid endothelialization while supporting long-term endothelial cell quiescence.

bioengineering↗

Characterization of Sex-Based Differences in Integrin-Mediated Endothelial Cel Adhesion to Bioactive Hydrogels

Endothelialization promotes thromboresistance in blood-contacting devices, but biomaterial designs often overlook sex differences in endothelialization processes. In this study, we elucidated sex differences in endothelial cell-material interactions through investigation of the integrin-ligand interplay with biomaterial substrates and the corollary effects on cell adhesion and spreading. First, integrin expression of human coronary artery endothelial cells (HCAECs) was characterized for age-matched donors (3 male, 3 female). Sex-based differences in integrin expression were identified, with notably higher 2{beta}1, 5{beta}1, and V{beta}3 expression in female cells and higher 1{beta}1 expression in male cells. On polyethylene glycol (PEG)-based hydrogel incorporating collagen or gelatin, female cells showed increased attachment on stiff substrates as compared to male HCAECs, likely driven by increased 2{beta}1, 5{beta}1, and V{beta}3 expression in female cells. Collectively, these results demonstrate sex-biased endothelial cell responses to bioactive hydrogels mediated by integrin interactions and highlight the importance of incorporating biological sex as a design variable in the development of blood-contacting biomaterials. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=72 SRC="FIGDIR/small/656802v2_ufig1.gif" ALT="Figure 1"> View larger version (33K): org.highwire.dtl.DTLVardef@41bfb9org.highwire.dtl.DTLVardef@921619org.highwire.dtl.DTLVardef@e8df4corg.highwire.dtl.DTLVardef@9c0faa_HPS_FORMAT_FIGEXP M_FIG C_FIG

bioengineering↗