Search bioRxiv⌕ Search

Biology subjects

Proszynski, T.

Publications and source records attributed to Proszynski, T..

2 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↗

Cortactin interacts with αDystrobrevin-1 and regulates neuromuscular junction morphology

BackgroundNeuromuscular junctions allow for transmitting signals from the nervous system to skeletal muscles, triggering their contraction, and their proper organization is essential for breathing and voluntary movements. Dystrobrevin-1 is a cytoplasmic component of the dystrophin-glycoprotein complex and has pivotal functions in regulating the integrity of muscle fibres and neuromuscular junctions. Previous studies identified that Dystrobrevin-1 functions in the organization of the neuromuscular junction and that its phosphorylation in the C-terminus is required in this process. MethodsWe used synthetic peptides corresponding to the phosphorylated tyrosine Y730 at the C-terminal part of Dystrobrevin-1 to precipitate interacting proteins from homogenate of differentiated muscle cells. Isolated proteins were identified by mass spectrometry, and co-immunoprecipitation and bimolecular fluorescence complementation experiments in skeletal muscles were used to validate interactions. We used immunohistochemical analysis and muscle electroporation to study cortactin localization in skeletal muscles. To study the function of cortactin in the neuromuscular system, we used cortactin KO mice. Synaptic morphology was studied using unbiased automatic image analysis, and muscle strength was assessed in grip-strength experiments and an animals ability to run on voluntary wheels and a treadmill. ResultsOur proteomic screen identified a number of putative Dystrobrevin-1 interactors recruited to the Y730 site in both its phosphorylated and unphosphorylated state. Amongst various actin regulators, we identified the Arp2/3 complex regulator cortactin. We showed that similarly to Dystrobrevin-1, cortactin is strongly enriched at the neuromuscular postsynaptic machinery and obtained results suggesting that these two proteins interact in cell homogenates and at the neuromuscular junctions. Analysis of synaptic morphology cortactin knockout mice showed abnormalities in the slow-twitching soleus muscle and not in the fast-twitching tibialis. However, muscle strength examination did not reveal apparent deficits in knockout animals. ConclusionsOur studies identified cortactin as a novel interactor of the dystrophin-glycoprotein complex, pivotal in maintaining muscle and neuromuscular junction integrity. We have shown that cortactin is a novel postsynaptic machinery component that can be essential in organizing the neuromuscular junctions.

neuroscience↗