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Hashemolhosseini, S.

Publications and source records attributed to Hashemolhosseini, S..

3 recordsLinked to original sources

Deciphering the regulatory pathways in skeletal muscle lineage organized by the YAP1/TAZ-TEAD transcriptional network

Recently, we reported that YAP1/TAZ-TEAD1/TEAD4 signaling regulates synaptic gene expression and acetylcholine receptor clustering at neuromuscular junctions (NMJs). Here, we looked for further impairments in skeletal muscle of Yap1 and/or Wwtr1 (protein called TAZ) conditional knockout mice. Single knockout muscles have an increased number of central nuclei and Wwtr1-deficient muscles possess more type I and less type IIa fibers. Fiber cross sectional areas were larger in Wwtr1-deficient muscles. However, adult Yap1-, but not Wwtr1-, deficient muscles showed reduced transcript levels of Axin2; Ctnnb1 was lower in both mutants. Both adult single knockout muscles transcribed less Myod and Myog. It was reported that double knockout mice do not survive past birth, likely due to the absence of NMJs. On further inspection, double knockout neonates had severely reduced muscle diameters, consistent with the impaired myogenic proliferation and sarcomere disorganization. Transcriptomic analysis demonstrates severely impaired myogenic transcription of several sarcomere genes in double knockout muscles; particularly Myh genes. Comparisons with available ChIP-seq data identified myogenic targets of YAP1/TAZ-TEAD signaling. ChIP-seq fragments of representative targets, like Myh3, Myl1, Myl2, and Ttn, overlapped with evolutionarily conserved regions and possess M-CAT motifs. Our data identified a role for YAP1/TAZ-TEAD signaling in muscle development and sarcomere structure.

cell biology↗

SH3BP2 regulates the organization of the neuromuscular synapses through protein-driven phase separation

The molecular mechanisms underlying the development and maintenance of the neuromuscular junction are poorly understood, even though the malfunction of these specialized synapses is associated with severe genetic and autoimmune disorders. The identity of factors controlling the maintenance mechanisms of postsynaptic acetylcholine receptors (AChR) in high-density has been elusive and is of great interest to the pharma industry, searching for possible new targets for disease interventions. Here, we report the identification of a scaffold protein SH3BP2, which exhibits polyvalent interaction with the dystrophin-glycoprotein complex (DGC) and AChR pentamers, promoting AChR clustering through phase separation. Muscle-specific SH3BP2 deletion in mice leads to impaired organization of the neuromuscular synapses, defects in synaptic transmission, and reduced muscle strength. Our studies identified a novel regulator of the postsynaptic machinery involved in clustering AChR and linking it to the DGC.

neuroscience↗

The desmin mutation R349P increases contractility and fragility of stem cell-generated muscle micro-tissues

Desminopathies comprise hereditary myopathies and cardiomyopathies caused by mutations in the intermediate filament protein desmin that lead to severe and often lethal degeneration of striated muscle tissue. Animal and single cell studies hinted that this degeneration process is associated with massive ultrastructural defects correlating with increased susceptibility of the muscle to acute mechanical stress. The underlying mechanism of mechanical susceptibility, and how muscle degeneration develops over time, however, has remained elusive. Here, we investigated the effect of a desmin mutation on the formation, differentiation, and contractile function of in vitro-engineered three-dimensional micro-tissues grown from muscle stem cells (satellite cells) isolated from heterozygous R349P desmin knock-in mice. Micro-tissues grown from desmin-mutated cells exhibited spontaneous unsynchronized contractions, higher contractile forces in response to electrical stimulation, and faster force recovery compared to tissues grown from wild-type cells. Within one week of culture, the majority of R349P desmin-mutated tissues disintegrated, whereas wild-type tissues remained intact over at least three weeks. Moreover, under tetanic stimulation lasting less than five seconds, desmin-mutated tissues partially or completely ruptured, whereas wild-type tissues did not display signs of damage. Our results demonstrate that the progressive degeneration of desmin-mutated micro-tissues is closely linked to extracellular matrix fiber breakage associated with increased contractile forces and unevenly distributed tensile stress. This suggests that the age-related degeneration of skeletal and cardiac muscle in patients suffering from desminopathies may be similarly exacerbated by mechanical damage from high-intensity muscle contractions. We conclude that micro-tissues may provide a valuable tool for studying the organization of myocytes and the pathogenic mechanisms of myopathies.

biophysics↗