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1.
JCI Insight ; 9(8)2024 Mar 26.
Article in English | MEDLINE | ID: mdl-38530354

ABSTRACT

Skeletal muscle wasting results from numerous pathological conditions affecting both the musculoskeletal and nervous systems. A unifying feature of these pathologies is the upregulation of members of the E3 ubiquitin ligase family, resulting in increased proteolytic degradation of target proteins. Despite the critical role of E3 ubiquitin ligases in regulating muscle mass, the specific proteins they target for degradation and the mechanisms by which they regulate skeletal muscle homeostasis remain ill-defined. Here, using zebrafish loss-of-function models combined with in vivo cell biology and proteomic approaches, we reveal a role of atrogin-1 in regulating the levels of the endoplasmic reticulum chaperone BiP. Loss of atrogin-1 resulted in an accumulation of BiP, leading to impaired mitochondrial dynamics and a subsequent loss in muscle fiber integrity. We further implicated a disruption in atrogin-1-mediated BiP regulation in the pathogenesis of Duchenne muscular dystrophy. We revealed that BiP was not only upregulated in Duchenne muscular dystrophy, but its inhibition using pharmacological strategies, or by upregulating atrogin-1, significantly ameliorated pathology in a zebrafish model of Duchenne muscular dystrophy. Collectively, our data implicate atrogin-1 and BiP in the pathogenesis of Duchenne muscular dystrophy and highlight atrogin-1's essential role in maintaining muscle homeostasis.


Subject(s)
Disease Models, Animal , Endoplasmic Reticulum Chaperone BiP , Homeostasis , Muscle Proteins , Muscle, Skeletal , Muscular Dystrophy, Duchenne , SKP Cullin F-Box Protein Ligases , Zebrafish , Animals , SKP Cullin F-Box Protein Ligases/metabolism , SKP Cullin F-Box Protein Ligases/genetics , Muscle Proteins/metabolism , Muscle Proteins/genetics , Muscle, Skeletal/metabolism , Muscle, Skeletal/pathology , Muscular Dystrophy, Duchenne/metabolism , Muscular Dystrophy, Duchenne/pathology , Muscular Dystrophy, Duchenne/genetics , Humans , Endoplasmic Reticulum Chaperone BiP/metabolism , Heat-Shock Proteins/metabolism , Heat-Shock Proteins/genetics , Zebrafish Proteins/metabolism , Zebrafish Proteins/genetics , Endoplasmic Reticulum/metabolism , Mitochondrial Dynamics
2.
Nat Commun ; 14(1): 6628, 2023 10 19.
Article in English | MEDLINE | ID: mdl-37857613

ABSTRACT

Sharks occupy diverse ecological niches and play critical roles in marine ecosystems, often acting as apex predators. They are considered a slow-evolving lineage and have been suggested to exhibit exceptionally low cancer rates. These two features could be explained by a low nuclear mutation rate. Here, we provide a direct estimate of the nuclear mutation rate in the epaulette shark (Hemiscyllium ocellatum). We generate a high-quality reference genome, and resequence the whole genomes of parents and nine offspring to detect de novo mutations. Using stringent criteria, we estimate a mutation rate of 7×10-10 per base pair, per generation. This represents one of the lowest directly estimated mutation rates for any vertebrate clade, indicating that this basal vertebrate group is indeed a slowly evolving lineage whose ability to restore genetic diversity following a sustained population bottleneck may be hampered by a low mutation rate.


Subject(s)
Mutation Rate , Sharks , Animals , Sharks/genetics , Ecosystem
3.
Bioessays ; 44(5): e2100270, 2022 05.
Article in English | MEDLINE | ID: mdl-35229908

ABSTRACT

The recently uncovered role of Fukutin-related protein (FKRP) in fibronectin glycosylation has challenged our understanding of the basis of disease pathogenesis in the muscular dystrophies. FKRP is a Golgi-resident glycosyltransferase implicated in a broad spectrum of muscular dystrophy (MD) pathologies that are not fully attributable to the well-described α-Dystroglycan hypoglycosylation. By revealing a new role for FKRP in the glycosylation of fibronectin, a modification critical for the development of the muscle basement membrane (MBM) and its associated muscle linkages, new possibilities for understanding clinical phenotype arise. This modification involves an interaction between FKRP and myosin-10, a protein involved in the Golgi organization and function. These observations suggest a FKRP nexus exists that controls two critical aspects to muscle fibre integrity, both fibre stability at the MBM and its elastic properties. This review explores the new potential disease axis in the context of our current knowledge of muscular dystrophies.


Subject(s)
Fibronectins , Muscular Dystrophies , Dystroglycans/genetics , Dystroglycans/metabolism , Fibronectins/genetics , Fibronectins/metabolism , Glycosylation , Humans , Muscle, Skeletal , Muscular Dystrophies/genetics , Muscular Dystrophies/metabolism , Muscular Dystrophies/pathology , Mutation , Pentosyltransferases/genetics , Pentosyltransferases/metabolism
4.
NPJ Regen Med ; 7(1): 15, 2022 Feb 11.
Article in English | MEDLINE | ID: mdl-35149726

ABSTRACT

Homeostatic renal filtration relies on the integrity of podocytes, which function in glomerular filtration. These highly specialized cells are damaged in 90% of chronic kidney disease, representing the leading cause of end-stage renal failure. Although modest podocyte renewal has been documented in adult mice, the mechanisms regulating this process remain largely unknown and controversial. Using a mouse model of Adriamycin-induced nephropathy, we find that the recovery of filtration function requires up-regulation of the endogenous telomerase component TERT. Previous work has shown that transient overexpression of catalytically inactive TERT (i-TERTci mouse model) has an unexpected role in triggering dramatic podocyte proliferation and renewal. We therefore used this model to conduct specific and stochastic lineage-tracing strategies in combination with high throughput sequencing methods. These experiments provide evidence that TERT drives the activation and clonal expansion of podocyte progenitor cells. Our findings demonstrate that the adult kidney bears intrinsic regenerative capabilities involving the protein component of telomerase, paving the way for innovative research toward the development of chronic kidney disease therapeutics.

5.
J Vis Exp ; (167)2021 01 18.
Article in English | MEDLINE | ID: mdl-33522516

ABSTRACT

Skeletal muscle has a remarkable ability to regenerate following injury, which is driven by obligate tissue resident muscle stem cells. Following injury, the muscle stem cell is activated and undergoes cell proliferation to generate a pool of myoblasts, which subsequently differentiate to form new muscle fibers. In many muscle wasting conditions, including muscular dystrophy and ageing, this process is impaired resulting in the inability of muscle to regenerate. The process of muscle regeneration in zebrafish is highly conserved with mammalian systems providing an excellent system to study muscle stem cell function and regeneration, in muscle wasting conditions such as muscular dystrophy. Here, we present a method to examine muscle regeneration in zebrafish models of muscle disease. The first step involves the use of a genotyping platform that allows the determination of the genotype of the larvae prior to eliciting an injury. Having determined the genotype, the muscle is injured using a needle stab, following which polarizing light microscopy is used to determine the extent of muscle regeneration. We therefore provide a high throughput pipeline which allows the examination of muscle regeneration in zebrafish models of muscle disease.


Subject(s)
Muscle, Skeletal/physiopathology , Muscular Diseases/physiopathology , Regeneration/physiology , Zebrafish/physiology , Animals , Disease Models, Animal , Embryo, Nonmammalian/physiopathology , Genotype , Laminin/deficiency , Laminin/metabolism , Larva/physiology , Muscle, Skeletal/diagnostic imaging , Muscle, Skeletal/pathology , Muscular Diseases/pathology , Zebrafish/embryology
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