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Biology subjects

Pear, M.

Publications and source records attributed to Pear, M..

2 recordsLinked to original sources

3D-printing-assisted, microfabricated devices reveal hierarchical and temporal mechanosensing in high-density fibroblast culture

Understanding how cells integrate mechanical forces across multiple directions, length scales, and timescales remains a fundamental challenge in mechanobiology. Deciphering how cells integrate this information is particularly important in the context of wound healing, where the timing and duration of the fibroblast-to-myofibroblast transition can determine healing outcomes. Here, we discovered that fibroblasts in engineered tissues respond to directional anisotropy in stress through a hierarchical temporal cascade, with individual cell elongation (24 hr) preceding collective alignment (40 hr), which then drives -smooth muscle actin expression and myofibroblast transition (96h). To enable this discovery, we developed a modified hydrogel-assisted stereolithographic elastomer (HASTE) prototyping platform to incorporate a detergent that improves wettability of template agar hydrogels by poly(dimethylsiloxane) elastomer. HASTE allowed rapid prototyping of intricate 3D micropost arrays that provides isotropic (8-post) versus anisotropic (4-post) boundary conditions. Fibroblasts sensed and responded to stress directionality before bulk tissue reorganization occurs. Computational modeling predicted steady-state activation patterns based on initial stress anisotropy rather than magnitude, and our experiments reveal that reaching this state requires sequential mechanosensitive processes operating across distinct timescales. This temporal hierarchy persists even when extensive cell-cell contacts might be expected to mask matrix-mediated mechanical signals. Our findings demonstrate that fibroblast mechanosensing involves adaptive responses encoded through progressive cell and tissue reorganization. Results provide insight into how nanoscale mechanosensing scales up to direct tissue-level organization, with implications for understanding wound healing, understanding fibrosis, and engineering functional tissue replacements.

bioengineering↗

Hydrogel Assisted Double Molding of 3D-Print Enables Prestress Regulation of Micro-Heart Muscle Physiology

Engineered heart tissues have been created to study cardiac biology and disease in a setting that more closely mimics in-vivo heart muscle than 2D monolayer culture. Previously published studies suggest that geometrically anisotropic micro-environments are crucial for inducing "in vivo-like" physiology from immature cardiomyocytes. We hypothesized that such anisotropic tissue geometries regulate tissue prestress, and that in turn this prestress is a major factor regulating cardiomyocytes electrophysiological development. Thus, we studied the effects of tissue geometry on electrophysiology of micro-heart muscle arrays (HM) engineered from human induced pluripotent stem cells (iPSC). Geometries predicted to increase tissue prestress not only affected cardiomyocyte structure, but also had profound effects on electrophysiology. Elongated geometries led to adaptations that yielded increased calcium intake during each contraction cycle. Strikingly, pharmacologic studies revealed a prestress threshold is required for sodium channel function, whereas L-type calcium and rapidly-rectifying potassium channels were largely insensitive. Analysis of RNA and protein levels suggest sodium channel activity changes were related to post-transcriptional, and potentially post-translational, changes. HM formed from Plakophilin 2 (PKP2) knockout iPSC had a cellular structure similar to isogenic controls. However, these tissues exhibited no functional sodium current and an overall lesser degree of electrical remodeling in response to prestress. These results suggest that PKP2, a key component of the nascent desmosome, is crucial to transducing tissue prestress into physiologically beneficial electrical remodeling via activation of sodium channels.

bioengineering↗