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Sleboda, D.

Publications and source records attributed to Sleboda, D..

2 recordsLinked to original sources

Collagen type VI regulates TGFβ bioavailability in skeletal muscle

Collagen VI-related disorders (COL6-RDs) are a group of rare muscular dystrophies caused by pathogenic variants in collagen VI genes (COL6A1, COL6A2, and COL6A3). Collagen type VI is a heterotrimeric, microfibrillar component of the muscle extracellular matrix (ECM), predominantly secreted by resident fibroadipogenic precursor cells in skeletal muscle. The absence or mislocalizatoion of collagen VI in the ECM underlies the non-cell autonomous dysfunction and dystrophic changes in skeletal muscle with an as of yet elusive direct mechanistic link between the ECM and myofiber dysfunction. Here, we conduct a comprehensive natural history and outcome study in a novel mouse model of COL6-RDs (Col6a2-/-mice) using standardized (Treat-NMD) functional, histological, and physiologic parameter. Notably, we identify a conspicuous dysregulation of the TGF{beta} pathway early in the disease process and propose that the collagen VI deficient matrix is not capable of regulating the dynamic TGF{beta} bioavailability at baseline and also in response to muscle injury. Thus, we propose a new mechanism for pathogenesis of the disease that links the ECM regulation of TGF{beta} with downstream skeletal muscle abnormalities, paving the way for developing and validating therapeutics that target this pathway.

neuroscience↗

Multiscale structural control of hydraulic bending in the sensitive plant Mimosa pudica

Pulvini are joint-like motor organs that power active leaf movement in many plants. Multiple structural specializations spanning subcellular, cellular, and tissue scales of pulvinus organization have been described; however, the impacts of multiscale mechanics on pulvinus physiology remain poorly understood. To investigate the influence of multiscale morphology on turgor-induced deformation, we visualized Mimosa pudica pulvinus morphology at multiple hierarchical scales of organization and used osmotic perturbations to experimentally swell pulvini in incremental states of dissection. We observed directional cellulose microfibril reinforcement, oblong, spindle-shaped primary pit fields, and flattened, disk-like cell geometries in the parenchyma of M. pudica. Consistent with these observations, isolated parenchyma tissues displayed highly anisotropic swelling behaviors indicating a high degree of mechanical anisotropy. Swelling behaviors at higher scales of pulvinus organization were also influenced by the presence of the pulvinus epidermis, which displayed oblong epidermal cells oriented transverse to the pulvinus long axis. Our findings indicate that structural specializations spread across multiple hierarchical scales of organization guide hydraulic deformation of pulvini, suggesting that multiscale mechanics are crucial to the translation of cell-level turgor variations into organ-scale pulvinus motion in vivo.

plant biology↗