Search bioRxiv⌕ Search

Biology subjects

Mill, L.

Publications and source records attributed to Mill, L..

2 recordsLinked to original sources

Impaired autophagic flux in skeletal muscle of plectin-related epidermolysis bullosa simplex with muscular dystrophy

BackgroundPlectin, a multi-functional cytolinker and intermediate filament (IF) stabilizing protein, is essential for muscle fiber integrity and function. Mutations in the human plectin gene (PLEC) cause autosomal recessive epidermolysis bullosa simplex with muscular dystrophy (EBS-MD). The disorganization and aggregation of desmin IFs in conjunction with degenerative changes of the myofibrillar apparatus are key features in the skeletal muscle pathology of EBS-MD. We performed a comprehensive analysis addressing protein homeostasis in this rare protein aggregation disease by using human EBS-MD tissue, plectin knock-out mice, and plectin-deficient cells. MethodsProtein degradation pathways were analyzed in muscles from EBS-MD patients, muscle-specific conditional plectin knockout (MCK-Cre/cKO) mice, as well as immortalized plectin-deficient (Plec-/-) myoblasts by electron and immunofluorescence microscopy. To obtain a comprehensive picture of autophagic processes, we evaluated the transcriptional regulation and expression levels of autophagic markers in plectin-deficient muscles and myoblasts (RNA-Seq, qRT-PCR, immunoblotting). Autophagic turnover was dynamically assessed by measuring baseline autophagy as well as specific inhibition and activation in mCherry-EGFP-LC3B-expressing Plec+/+and Plec-/- myoblasts, and by monitoring primary wild-type (WT) and plectin-deficient (P0) myoblasts using organelle-specific dyes. Analyses of chloroquine (CQ)-treated MCK-Cre/cKO mice corroborated that loss of plectin coincides with impaired autophagic clearance. ResultsOur study identified massive accumulation of degradative vacuoles as well as LC3 and SQSTM1-positive patches in EBS-MD patient and MCK-Cre/cKO mouse muscles and Plec-/- myoblasts. While the transcriptional regulation of autophagy-related proteins remained largely unaltered, protein levels of downstream targets of the autophagosomal degradation machinery were elevated in MCK-Cre/cKO muscle lysates (e.g. LAMP2, BAG3, and SQSTM1 to [~]160, [~]150, and [~]140% of control samples, respectively; P<0.05). Autophagosome turnover was compromised in mCherry-EGFP-LC3B-expressing Plec-/-myoblasts compared to Plec+/+ cells ([~]40% reduction in median red:green ratio, reduced puncta number, smaller puncta; P<0.01). By labelling autophagic compartments with CYTO-ID dye or lysosomes with LYSO-ID, we found reduced signal intensities in P0 cells (P<0.001). Treatment of primary myoblasts with CQ led to drastic swelling of autophagic vacuoles in WT myoblasts, while the swelling in P0 cells was moderate, establishing a defect in their autophagic clearance. Finally, CQ-treatment of MCK-Cre/cKO mice reassured in vivo the concept that autophagic flux is impaired in plectin-deficient muscles. ConclusionsOur work demonstrates that the characteristic protein aggregation pathology in EBS-MD is linked to an impaired autophagic flux. The obtained results open a new perspective on the understanding of the protein aggregation pathology in plectin-related disorders and provides a basis for further pharmacological intervention.

cell biology↗

Integrated data from R405W desmin knock-in mice highlight alterations of mitochondrial function, protein quality control, and myofibrillar structure in the initial stages of myofibrillar myopathy

BackgroundMutations in the desmin gene cause skeletal myopathies and cardiomyopathies. The objective of this study was to elucidate the molecular pathology induced by the expression of R405W mutant desmin in murine skeletal muscle tissue. MethodsA comprehensive characterization of the skeletal muscle pathology in hetero- and homozygous R405W desmin knock-in mice was performed, employing grip strength, blood acylcarnitine and amino acid, histological, ultrastructural, immunofluorescence, immunoblot, ribosomal stalling, RNA sequencing and proteomic analyses. ResultsBoth hetero- and homozygous R405W desmin knock-in mice showed classical myopathological features of a myofibrillar myopathy with desmin-positive protein aggregation, degenerative changes of the myofibrillar apparatus, increased autophagic build-up, and mitochondrial alterations. Muscle weakness and increased blood concentrations of acylcarnitines and amino acids were only present in homozygous animals. During its translation, mutant desmin does not induce terminal ribosomal stalling. Analyses of RNA sequencing and proteomic data from soleus muscle of 3-month-old mice depicted 59 up- and 2 down-regulated mRNAs and 101 up- and 18 down-regulated proteins that were shared between the heterozygous and homozygous genotypes in the respective omics datasets compared to the wild-type genotype. Combined analysis of the omics data demonstrated 187 significantly dysregulated candidates distributed across four groups of regulation. A down-regulation on the mRNA and protein levels was observed for a multitude of mitochondrial proteins including essential proton gradient-dependent carriers. Up-regulation on both omics levels was present for the transcription factor Mlf1, which is a binding partner of protein quality control related Dnajb6. Down-regulated on mRNA but up-regulated on the protein level was the sarcomeric lesion marker Xirp2 (xin actin-binding repeat-containing protein 2), whereas Ces2c (acylcarnitine hydrolase) was regulated in the opposite way. ConclusionsThe present study demonstrates that the expression of mutant desmin results in a myofibrillar myopathy in hetero- and homozygous R405W desmin knock-in mice. Combined morphological, transcriptomic and proteomic analyses helped to decipher the complex pattern of early pathological changes induced by the expression of mutant desmin. Our findings highlight the importance of major mitochondrial alterations, including essential proton gradient-dependent carriers as well as Dnajb6-related protein quality control and Xin-related myofibrillar damage, in the molecular pathogenesis of desminopathies.

neuroscience↗