Appendix: Anatomy of the Larval Body Wall Muscles and NMJs in the third instar larval stage

Author(s):  
Michael Gorczyca ◽  
Vivian Budnik
2007 ◽  
Vol 18 (12) ◽  
pp. 4721-4730 ◽  
Author(s):  
Nicola Haines ◽  
Sara Seabrooke ◽  
Bryan A. Stewart

In vertebrates, mutations in Protein O-mannosyltransferase1 (POMT1) or POMT2 are associated with muscular dystrophy due to a requirement for O-linked mannose glycans on the Dystroglycan (Dg) protein. In this study we examine larval body wall muscles of Drosophila mutant for Dg, or RNA interference knockdown for Dg and find defects in muscle attachment, altered muscle contraction, and a change in muscle membrane resistance. To determine if POMTs are required for Dg function in Drosophila, we examine larvae mutant for genes encoding POMT1 or POMT2. Larvae mutant for either POMT, or doubly mutant for both, show muscle attachment and muscle contraction phenotypes identical to those associated with reduced Dg function, consistent with a requirement for O-linked mannose on Drosophila Dg. Together these data establish a central role for Dg in maintaining integrity in Drosophila larval muscles and demonstrate the importance of glycosylation to Dg function in Drosophila. This study opens the possibility of using Drosophila to investigate muscular dystrophy.


2010 ◽  
Vol 2010 (9) ◽  
pp. pdb.prot5487-pdb.prot5487 ◽  
Author(s):  
B. Zhang ◽  
B. Stewart

1999 ◽  
Vol 43 ◽  
pp. 25-44 ◽  
Author(s):  
M BATE ◽  
M LANDGRAF ◽  
M GOMEZBATE

2018 ◽  
Author(s):  
Sophie S. Katz ◽  
Chloe Maybrun ◽  
Hannah M. Maul-Newby ◽  
Alison R. Frand

ABSTRACTSpecialized epithelia produce apical matrices with distinctive topographies by enigmatic mechanisms. Here, we describe a holistic mechanism that integrates cortical actomyosin dynamics with apical matrix remodeling to pattern C. elegans cuticles. Therein, axial AFBs appear near the surface of lateral epidermal syncytia during an interval of transverse apical constriction (AC). AC gives rise to three temporary semi-circular cellular protrusions beneath a provisional matrix (sheath). In turn, sheath components pattern durable ridges along the midline of adult cuticles (alae). We propose that forces generated by AC are relayed via the sheath to sculpt the the acellular adult cuticle manifest several hours later. Furthermore, we provide evidence that circumferential actin filament bundles (CFBs) near the surface of the adjacent syncytia (hyp7) are largely dispensable for the propagation of annular cuticle structures from one larval stage to the next. Rather, the temporary CFBs extend from actin bundles overlying body wall muscles, which are situated between Ce. hemidesmosomes. Similar mechanisms may contribute to the morphogenesis of integumentary organs in higher metazoans.


2010 ◽  
Vol 2010 (8) ◽  
pp. pdb.prot5469 ◽  
Author(s):  
Preethi Ramachandran ◽  
Vivian Budnik

2010 ◽  
Vol 2010 (8) ◽  
pp. pdb.prot5470 ◽  
Author(s):  
Preethi Ramachandran ◽  
Vivian Budnik

2021 ◽  
Vol 11 (1) ◽  
Author(s):  
Benjamin Bertin ◽  
Yoan Renaud ◽  
Teresa Jagla ◽  
Guillaume Lavergne ◽  
Cristiana Dondi ◽  
...  

AbstractA combinatorial code of identity transcription factors (iTFs) specifies the diversity of muscle types in Drosophila. We previously showed that two iTFs, Lms and Ap, play critical role in the identity of a subset of larval body wall muscles, the lateral transverse (LT) muscles. Intriguingly, a small portion of ap and lms mutants displays an increased number of LT muscles, a phenotype that recalls pathological split muscle fibers in human. However, genes acting downstream of Ap and Lms to prevent these aberrant muscle feature are not known. Here, we applied a cell type specific translational profiling (TRAP) to identify gene expression signatures underlying identity of muscle subsets including the LT muscles. We found that Gelsolin (Gel) and dCryAB, both encoding actin-interacting proteins, displayed LT muscle prevailing expression positively regulated by, the LT iTFs. Loss of dCryAB function resulted in LTs with irregular shape and occasional branched ends also observed in ap and lms mutant contexts. In contrast, enlarged and then split LTs with a greater number of myonuclei formed in Gel mutants while Gel gain of function resulted in unfused myoblasts, collectively indicating that Gel regulates LTs size and prevents splitting by limiting myoblast fusion. Thus, dCryAB and Gel act downstream of Lms and Ap and contribute to preventing LT muscle branching and splitting. Our findings offer first clues to still unknown mechanisms of pathological muscle splitting commonly detected in human dystrophic muscles and causing muscle weakness.


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