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1.
Cell ; 186(10): 2062-2077.e17, 2023 05 11.
Article in English | MEDLINE | ID: mdl-37075755

ABSTRACT

Entry of enveloped viruses into cells is mediated by viral fusogenic proteins that drive membrane rearrangements needed for fusion between viral and target membranes. Skeletal muscle development also requires membrane fusion events between progenitor cells to form multinucleated myofibers. Myomaker and Myomerger are muscle-specific cell fusogens but do not structurally or functionally resemble classical viral fusogens. We asked whether the muscle fusogens could functionally substitute for viral fusogens, despite their structural distinctiveness, and fuse viruses to cells. We report that engineering of Myomaker and Myomerger on the membrane of enveloped viruses leads to specific transduction of skeletal muscle. We also demonstrate that locally and systemically injected virions pseudotyped with the muscle fusogens can deliver µDystrophin to skeletal muscle of a mouse model of Duchenne muscular dystrophy and alleviate pathology. Through harnessing the intrinsic properties of myogenic membranes, we establish a platform for delivery of therapeutic material to skeletal muscle.


Subject(s)
Bioengineering , Lentivirus , Membrane Proteins , Muscle, Skeletal , Muscular Dystrophy, Duchenne , Animals , Mice , Cell Fusion , Membrane Fusion , Membrane Proteins/genetics , Membrane Proteins/metabolism , Muscle Development , Muscle, Skeletal/metabolism , Muscle, Skeletal/virology , Bioengineering/methods , Muscular Dystrophy, Duchenne/therapy , Disease Models, Animal , Viral Tropism , Lentivirus/genetics
2.
Cell ; 185(12): 2057-2070.e15, 2022 06 09.
Article in English | MEDLINE | ID: mdl-35688133

ABSTRACT

Spinal muscular atrophy (SMA) is a motor-neuron disease caused by mutations of the SMN1 gene. The human paralog SMN2, whose exon 7 (E7) is predominantly skipped, cannot compensate for the lack of SMN1. Nusinersen is an antisense oligonucleotide (ASO) that upregulates E7 inclusion and SMN protein levels by displacing the splicing repressors hnRNPA1/A2 from their target site in intron 7. We show that by promoting transcriptional elongation, the histone deacetylase inhibitor VPA cooperates with a nusinersen-like ASO to promote E7 inclusion. Surprisingly, the ASO promotes the deployment of the silencing histone mark H3K9me2 on the SMN2 gene, creating a roadblock to RNA polymerase II elongation that inhibits E7 inclusion. By removing the roadblock, VPA counteracts the chromatin effects of the ASO, resulting in higher E7 inclusion without large pleiotropic effects. Combined administration of the nusinersen-like ASO and VPA in SMA mice strongly synergizes SMN expression, growth, survival, and neuromuscular function.


Subject(s)
Muscular Atrophy, Spinal , Oligonucleotides, Antisense , Animals , Chromatin , Exons , Mice , Muscular Atrophy, Spinal/drug therapy , Muscular Atrophy, Spinal/genetics , Oligonucleotides, Antisense/pharmacology , Oligonucleotides, Antisense/therapeutic use , RNA Splicing
3.
Cell ; 184(10): 2715-2732.e23, 2021 05 13.
Article in English | MEDLINE | ID: mdl-33852912

ABSTRACT

Traumatic brain injury (TBI) is the largest non-genetic, non-aging related risk factor for Alzheimer's disease (AD). We report here that TBI induces tau acetylation (ac-tau) at sites acetylated also in human AD brain. This is mediated by S-nitrosylated-GAPDH, which simultaneously inactivates Sirtuin1 deacetylase and activates p300/CBP acetyltransferase, increasing neuronal ac-tau. Subsequent tau mislocalization causes neurodegeneration and neurobehavioral impairment, and ac-tau accumulates in the blood. Blocking GAPDH S-nitrosylation, inhibiting p300/CBP, or stimulating Sirtuin1 all protect mice from neurodegeneration, neurobehavioral impairment, and blood and brain accumulation of ac-tau after TBI. Ac-tau is thus a therapeutic target and potential blood biomarker of TBI that may represent pathologic convergence between TBI and AD. Increased ac-tau in human AD brain is further augmented in AD patients with history of TBI, and patients receiving the p300/CBP inhibitors salsalate or diflunisal exhibit decreased incidence of AD and clinically diagnosed TBI.


Subject(s)
Alzheimer Disease/etiology , Alzheimer Disease/prevention & control , Brain Injuries, Traumatic/complications , Neuroprotection , tau Proteins/metabolism , Acetylation , Alzheimer Disease/metabolism , Animals , Anti-Inflammatory Agents, Non-Steroidal/therapeutic use , Biomarkers/blood , Biomarkers/metabolism , Brain Injuries, Traumatic/metabolism , Cell Line , Diflunisal/therapeutic use , Female , Glyceraldehyde-3-Phosphate Dehydrogenase (Phosphorylating) , Humans , Male , Mice , Mice, Inbred C57BL , Neurons/metabolism , Salicylates/therapeutic use , Sirtuin 1/metabolism , p300-CBP Transcription Factors/antagonists & inhibitors , p300-CBP Transcription Factors/metabolism , tau Proteins/blood
4.
Cell ; 184(19): 4919-4938.e22, 2021 09 16.
Article in English | MEDLINE | ID: mdl-34506722

ABSTRACT

Replacing or editing disease-causing mutations holds great promise for treating many human diseases. Yet, delivering therapeutic genetic modifiers to specific cells in vivo has been challenging, particularly in large, anatomically distributed tissues such as skeletal muscle. Here, we establish an in vivo strategy to evolve and stringently select capsid variants of adeno-associated viruses (AAVs) that enable potent delivery to desired tissues. Using this method, we identify a class of RGD motif-containing capsids that transduces muscle with superior efficiency and selectivity after intravenous injection in mice and non-human primates. We demonstrate substantially enhanced potency and therapeutic efficacy of these engineered vectors compared to naturally occurring AAV capsids in two mouse models of genetic muscle disease. The top capsid variants from our selection approach show conserved potency for delivery across a variety of inbred mouse strains, and in cynomolgus macaques and human primary myotubes, with transduction dependent on target cell expressed integrin heterodimers.


Subject(s)
Capsid/metabolism , Dependovirus/metabolism , Directed Molecular Evolution , Gene Transfer Techniques , Muscle, Skeletal/metabolism , Amino Acid Sequence , Animals , Capsid/chemistry , Cells, Cultured , Disease Models, Animal , HEK293 Cells , Humans , Integrins/metabolism , Macaca fascicularis , Mice, Inbred BALB C , Mice, Inbred C57BL , Muscle Fibers, Skeletal/metabolism , Muscular Dystrophy, Duchenne/pathology , Muscular Dystrophy, Duchenne/therapy , Myopathies, Structural, Congenital/pathology , Myopathies, Structural, Congenital/therapy , Protein Multimerization , Protein Tyrosine Phosphatases, Non-Receptor/genetics , Protein Tyrosine Phosphatases, Non-Receptor/metabolism , Protein Tyrosine Phosphatases, Non-Receptor/therapeutic use , RNA, Guide, Kinetoplastida/metabolism , Recombination, Genetic/genetics , Species Specificity , Transgenes
5.
Cell ; 170(2): 340-351.e12, 2017 Jul 13.
Article in English | MEDLINE | ID: mdl-28709001

ABSTRACT

Injured skeletal muscle regenerates, but with age or in muscular dystrophies, muscle is replaced by fat. Upon injury, muscle-resident fibro/adipogenic progenitors (FAPs) proliferated and gave rise to adipocytes. These FAPs dynamically produced primary cilia, structures that transduce intercellular cues such as Hedgehog (Hh) signals. Genetically removing cilia from FAPs inhibited intramuscular adipogenesis, both after injury and in a mouse model of Duchenne muscular dystrophy. Blocking FAP ciliation also enhanced myofiber regeneration after injury and reduced myofiber size decline in the muscular dystrophy model. Hh signaling through FAP cilia regulated the expression of TIMP3, a secreted metalloproteinase inhibitor, that inhibited MMP14 to block adipogenesis. A pharmacological mimetic of TIMP3 blocked the conversion of FAPs into adipocytes, pointing to a strategy to combat fatty degeneration of skeletal muscle. We conclude that ciliary Hh signaling by FAPs orchestrates the regenerative response to skeletal muscle injury.


Subject(s)
Adipogenesis , Hedgehog Proteins/metabolism , Muscle, Skeletal/metabolism , Signal Transduction , Stem Cells/metabolism , Adipocytes/metabolism , Animals , Cilia/metabolism , Dystrophin/genetics , Matrix Metalloproteinase 14/metabolism , Mice , Muscle Development , Muscular Dystrophy, Duchenne/metabolism , Muscular Dystrophy, Duchenne/pathology , Regeneration , Tissue Inhibitor of Metalloproteinase-3/metabolism
6.
Cell ; 171(7): 1495-1507.e15, 2017 Dec 14.
Article in English | MEDLINE | ID: mdl-29224783

ABSTRACT

Current genome-editing systems generally rely on inducing DNA double-strand breaks (DSBs). This may limit their utility in clinical therapies, as unwanted mutations caused by DSBs can have deleterious effects. CRISPR/Cas9 system has recently been repurposed to enable target gene activation, allowing regulation of endogenous gene expression without creating DSBs. However, in vivo implementation of this gain-of-function system has proven difficult. Here, we report a robust system for in vivo activation of endogenous target genes through trans-epigenetic remodeling. The system relies on recruitment of Cas9 and transcriptional activation complexes to target loci by modified single guide RNAs. As proof-of-concept, we used this technology to treat mouse models of diabetes, muscular dystrophy, and acute kidney disease. Results demonstrate that CRISPR/Cas9-mediated target gene activation can be achieved in vivo, leading to measurable phenotypes and amelioration of disease symptoms. This establishes new avenues for developing targeted epigenetic therapies against human diseases. VIDEO ABSTRACT.


Subject(s)
CRISPR-Cas Systems , Epigenesis, Genetic , Gene Targeting/methods , Genetic Therapy/methods , Muscular Dystrophy, Duchenne/genetics , Muscular Dystrophy, Duchenne/therapy , Utrophin/genetics , Animals , Base Sequence , Disease Models, Animal , Dystrophin/genetics , Interleukin-10/genetics , Klotho Proteins , Membrane Proteins/genetics , Mice , Mice, Inbred C57BL , Transcriptional Activation
7.
EMBO J ; 43(10): 1919-1946, 2024 May.
Article in English | MEDLINE | ID: mdl-38360993

ABSTRACT

Most cellular ubiquitin signaling is initiated by UBA1, which activates and transfers ubiquitin to tens of E2 enzymes. Clonally acquired UBA1 missense mutations cause an inflammatory-hematologic overlap disease called VEXAS (vacuoles, E1, X-linked, autoinflammatory, somatic) syndrome. Despite extensive clinical investigation into this lethal disease, little is known about the underlying molecular mechanisms. Here, by dissecting VEXAS-causing UBA1 mutations, we discovered that p.Met41 mutations alter cytoplasmic isoform expression, whereas other mutations reduce catalytic activity of nuclear and cytoplasmic isoforms by diverse mechanisms, including aberrant oxyester formation. Strikingly, non-p.Met41 mutations most prominently affect transthioesterification, revealing ubiquitin transfer to cytoplasmic E2 enzymes as a shared property of pathogenesis amongst different VEXAS syndrome genotypes. A similar E2 charging bottleneck exists in some lung cancer-associated UBA1 mutations, but not in spinal muscular atrophy-causing UBA1 mutations, which instead, render UBA1 thermolabile. Collectively, our results highlight the precision of conformational changes required for faithful ubiquitin transfer, define distinct and shared mechanisms of UBA1 inactivation in diverse diseases, and suggest that specific E1-E2 modules control different aspects of tissue differentiation and maintenance.


Subject(s)
Ubiquitin-Activating Enzymes , Ubiquitin-Activating Enzymes/metabolism , Ubiquitin-Activating Enzymes/genetics , Humans , Mutation, Missense , Ubiquitin/metabolism , Lung Neoplasms/genetics , Lung Neoplasms/pathology , Lung Neoplasms/metabolism
8.
Trends Biochem Sci ; 48(8): 689-698, 2023 08.
Article in English | MEDLINE | ID: mdl-37156649

ABSTRACT

Biomolecular condensates (BMCs) can facilitate or inhibit diverse cellular functions. BMC formation is driven by noncovalent protein-protein, protein-RNA, and RNA-RNA interactions. Here, we focus on Tudor domain-containing proteins - such as survival motor neuron protein (SMN) - that contribute to BMC formation by binding to dimethylarginine (DMA) modifications on protein ligands. SMN is present in RNA-rich BMCs, and its absence causes spinal muscular atrophy (SMA). SMN's Tudor domain forms cytoplasmic and nuclear BMCs, but its DMA ligands are largely unknown, highlighting open questions about the function of SMN. Moreover, DMA modification can alter intramolecular interactions and affect protein localization. Despite these emerging functions, the lack of direct methods of DMA detection remains an obstacle to understanding Tudor-DMA interactions in cells.


Subject(s)
RNA-Binding Proteins , RNA , Ligands , RNA-Binding Proteins/metabolism , SMN Complex Proteins/metabolism
9.
EMBO J ; 42(10): e111699, 2023 05 15.
Article in English | MEDLINE | ID: mdl-36912136

ABSTRACT

The maintenance of cellular function relies on the close regulation of adenosine triphosphate (ATP) synthesis and hydrolysis. ATP hydrolysis by mitochondrial ATP Synthase (CV) is induced by loss of proton motive force and inhibited by the mitochondrial protein ATPase inhibitor (ATPIF1). The extent of CV hydrolytic activity and its impact on cellular energetics remains unknown due to the lack of selective hydrolysis inhibitors of CV. We find that CV hydrolytic activity takes place in coupled intact mitochondria and is increased by respiratory chain defects. We identified (+)-Epicatechin as a selective inhibitor of ATP hydrolysis that binds CV while preventing the binding of ATPIF1. In cells with Complex-III deficiency, we show that inhibition of CV hydrolytic activity by (+)-Epichatechin is sufficient to restore ATP content without restoring respiratory function. Inhibition of CV-ATP hydrolysis in a mouse model of Duchenne Muscular Dystrophy is sufficient to improve muscle force without any increase in mitochondrial content. We conclude that the impact of compromised mitochondrial respiration can be lessened using hydrolysis-selective inhibitors of CV.


Subject(s)
Adenosine Triphosphate , Mitochondria , Mice , Animals , Adenosine Triphosphate/metabolism , Mitochondria/metabolism , Proton-Translocating ATPases/metabolism , Proteins/metabolism , Homeostasis , Hydrolysis
10.
Annu Rev Neurosci ; 42: 385-406, 2019 07 08.
Article in English | MEDLINE | ID: mdl-31283897

ABSTRACT

Antisense oligonucleotides represent a novel therapeutic platform for the discovery of medicines that have the potential to treat most neurodegenerative diseases. Antisense drugs are currently in development for the treatment of amyotrophic lateral sclerosis, Huntington's disease, and Alzheimer's disease, and multiple research programs are underway for additional neurodegenerative diseases. One antisense drug, nusinersen, has been approved for the treatment of spinal muscular atrophy. Importantly, nusinersen improves disease symptoms when administered to symptomatic patients rather than just slowing the progression of the disease. In addition to the benefit to spinal muscular atrophy patients, there are discoveries from nusinersen that can be applied to other neurological diseases, including method of delivery, doses, tolerability of intrathecally delivered antisense drugs, and the biodistribution of intrathecal dosed antisense drugs. Based in part on the early success of nusinersen, antisense drugs hold great promise as a therapeutic platform for the treatment of neurological diseases.


Subject(s)
Muscular Atrophy, Spinal/drug therapy , Neurodegenerative Diseases/drug therapy , Oligonucleotides, Antisense/therapeutic use , Oligonucleotides/pharmacology , Tissue Distribution/genetics , Animals , Brain/metabolism , Brain/pathology , Humans , Neurodegenerative Diseases/genetics
11.
Proc Natl Acad Sci U S A ; 121(22): e2405123121, 2024 May 28.
Article in English | MEDLINE | ID: mdl-38781208

ABSTRACT

Mitochondria play a central role in muscle metabolism and function. A unique family of iron-sulfur proteins, termed CDGSH Iron Sulfur Domain-containing (CISD/NEET) proteins, support mitochondrial function in skeletal muscles. The abundance of these proteins declines during aging leading to muscle degeneration. Although the function of the outer mitochondrial CISD/NEET proteins, CISD1/mitoNEET and CISD2/NAF-1, has been defined in skeletal muscle cells, the role of the inner mitochondrial CISD protein, CISD3/MiNT, is currently unknown. Here, we show that CISD3 deficiency in mice results in muscle atrophy that shares proteomic features with Duchenne muscular dystrophy. We further reveal that CISD3 deficiency impairs the function and structure of skeletal muscles, as well as their mitochondria, and that CISD3 interacts with, and donates its [2Fe-2S] clusters to, complex I respiratory chain subunit NADH Ubiquinone Oxidoreductase Core Subunit V2 (NDUFV2). Using coevolutionary and structural computational tools, we model a CISD3-NDUFV2 complex with proximal coevolving residue interactions conducive of [2Fe-2S] cluster transfer reactions, placing the clusters of the two proteins 10 to 16 Å apart. Taken together, our findings reveal that CISD3/MiNT is important for supporting the biogenesis and function of complex I, essential for muscle maintenance and function. Interventions that target CISD3 could therefore impact different muscle degeneration syndromes, aging, and related conditions.


Subject(s)
Electron Transport Complex I , Mitochondrial Proteins , Muscle, Skeletal , Animals , Muscle, Skeletal/metabolism , Muscle, Skeletal/pathology , Mice , Electron Transport Complex I/metabolism , Electron Transport Complex I/genetics , Mitochondrial Proteins/metabolism , Mitochondrial Proteins/genetics , Mitochondria/metabolism , Iron-Sulfur Proteins/metabolism , Iron-Sulfur Proteins/genetics , Mice, Knockout , Mitochondria, Muscle/metabolism , Humans , Muscular Atrophy/metabolism , Muscular Atrophy/pathology , Muscular Atrophy/genetics , Muscular Dystrophy, Duchenne/metabolism , Muscular Dystrophy, Duchenne/pathology , Muscular Dystrophy, Duchenne/genetics
12.
Hum Mol Genet ; 33(15): 1339-1355, 2024 Jul 22.
Article in English | MEDLINE | ID: mdl-38710523

ABSTRACT

Duchenne Muscular Dystrophy (DMD) is a progressive and fatal neuromuscular disease. Cycles of myofibre degeneration and regeneration are hallmarks of the disease where immune cells infiltrate to repair damaged skeletal muscle. Benfotiamine is a lipid soluble precursor to thiamine, shown clinically to reduce inflammation in diabetic related complications. We assessed whether benfotiamine administration could reduce inflammation related dystrophic pathology. Benfotiamine (10 mg/kg/day) was fed to male mdx mice (n = 7) for 15 weeks from 4 weeks of age. Treated mice had an increased growth weight (5-7 weeks) and myofibre size at treatment completion. Markers of dystrophic pathology (area of damaged necrotic tissue, central nuclei) were reduced in benfotiamine mdx quadriceps. Grip strength was increased and improved exercise capacity was found in mdx treated with benfotiamine for 12 weeks, before being placed into individual cages and allowed access to an exercise wheel for 3 weeks. Global gene expression profiling (RNAseq) in the gastrocnemius revealed benfotiamine regulated signalling pathways relevant to dystrophic pathology (Inflammatory Response, Myogenesis) and fibrotic gene markers (Col1a1, Col1a2, Col4a5, Col5a2, Col6a2, Col6a2, Col6a3, Lum) towards wildtype levels. In addition, we observed a reduction in gene expression of inflammatory gene markers in the quadriceps (Emr1, Cd163, Cd4, Cd8, Ifng). Overall, these data suggest that benfotiamine reduces dystrophic pathology by acting on inflammatory and fibrotic gene markers and signalling pathways. Given benfotiamine's excellent safety profile and current clinical use, it could be used in combination with glucocorticoids to treat DMD patients.


Subject(s)
Fibrosis , Inflammation , Mice, Inbred mdx , Muscle, Skeletal , Muscular Dystrophy, Duchenne , Thiamine , Animals , Mice , Fibrosis/drug therapy , Muscular Dystrophy, Duchenne/drug therapy , Muscular Dystrophy, Duchenne/genetics , Muscular Dystrophy, Duchenne/pathology , Muscular Dystrophy, Duchenne/physiopathology , Muscular Dystrophy, Duchenne/metabolism , Inflammation/drug therapy , Inflammation/genetics , Inflammation/pathology , Muscle, Skeletal/drug effects , Muscle, Skeletal/metabolism , Male , Thiamine/analogs & derivatives , Thiamine/pharmacology , Physical Conditioning, Animal , Disease Models, Animal
13.
Hum Mol Genet ; 33(3): 211-223, 2024 Jan 20.
Article in English | MEDLINE | ID: mdl-37819629

ABSTRACT

Duchenne muscular dystrophy (DMD) is a progressive disabling X-linked recessive disorder that causes gradual and irreversible loss of muscle, resulting in early death. The corticosteroids prednisone/prednisolone and deflazacort are used to treat DMD as the standard of care; however, only deflazacort is FDA approved for DMD. The novel atypical corticosteroid vamorolone is being investigated for treatment of DMD. We compared the pharmaceutical properties as well as the efficacy and safety of the three corticosteroids across multiple doses in the B10-mdx DMD mouse model. Pharmacokinetic studies in the mouse and evaluation of p-glycoprotein (P-gP) efflux in a cellular system demonstrated that vamorolone is not a strong P-gp substrate resulting in measurable central nervous system (CNS) exposure in the mouse. In contrast, deflazacort and prednisolone are strong P-gp substrates. All three corticosteroids showed efficacy, but also side effects at efficacious doses. After dosing mdx mice for two weeks, all three corticosteroids induced changes in gene expression in the liver and the muscle, but prednisolone and vamorolone induced more changes in the brain than did deflazacort. Both prednisolone and vamorolone induced depression-like behavior. All three corticosteroids reduced endogenous corticosterone levels, increased glucose levels, and reduced osteocalcin levels. Using micro-computed tomography, femur bone density was decreased, reaching significance with prednisolone. The results of these studies indicate that efficacious doses of vamorolone, are associated with similar side effects as seen with other corticosteroids. Further, because vamorolone is not a strong P-gp substrate, vamorolone distributes into the CNS increasing the potential CNS side-effects.


Subject(s)
Muscular Dystrophy, Duchenne , Prednisolone , Pregnadienediols , Pregnenediones , Animals , Mice , Prednisolone/therapeutic use , X-Ray Microtomography , Mice, Inbred mdx , Muscular Dystrophy, Duchenne/drug therapy , Muscular Dystrophy, Duchenne/genetics , Corticosterone/therapeutic use , Pharmaceutical Preparations
14.
Hum Mol Genet ; 33(13): 1120-1130, 2024 Jun 21.
Article in English | MEDLINE | ID: mdl-38520738

ABSTRACT

Spinal muscular atrophy (SMA), which results from the deletion or/and mutation in the SMN1 gene, is an autosomal recessive neuromuscular disorder that leads to weakness and muscle atrophy. SMN2 is a paralogous gene of SMN1. SMN2 copy number affects the severity of SMA, but its role in patients treated with disease modifying therapies is unclear. The most appropriate individualized treatment for SMA has not yet been determined. Here, we reported a case of SMA type I with normal breathing and swallowing function. We genetically confirmed that this patient had a compound heterozygous variant: one deleted SMN1 allele and a novel splice mutation c.628-3T>G in the retained allele, with one SMN2 copy. Patient-derived sequencing of 4 SMN1 cDNA clones showed that this intronic single transversion mutation results in an alternative exon (e)5 3' splice site, which leads to an additional 2 nucleotides (AG) at the 5' end of e5, thereby explaining why the patient with only one copy of SMN2 had a mild clinical phenotype. Additionally, a minigene assay of wild type and mutant SMN1 in HEK293T cells also demonstrated that this transversion mutation induced e5 skipping. Considering treatment cost and goals of avoiding pain caused by injections and starting treatment as early as possible, risdiplam was prescribed for this patient. However, the patient showed remarkable clinical improvements after treatment with risdiplam for 7 months despite carrying only one copy of SMN2. This study is the first report on the treatment of risdiplam in a patient with one SMN2 copy in a real-world setting. These findings expand the mutation spectrum of SMA and provide accurate genetic counseling information, as well as clarify the molecular mechanism of careful genotype-phenotype correlation of the patient.


Subject(s)
Mutation , RNA Splicing , Spinal Muscular Atrophies of Childhood , Survival of Motor Neuron 2 Protein , Female , Humans , Alleles , Azo Compounds , Exons/genetics , HEK293 Cells , Pyrimidines/therapeutic use , RNA Splicing/genetics , Spinal Muscular Atrophies of Childhood/genetics , Survival of Motor Neuron 1 Protein/genetics , Survival of Motor Neuron 2 Protein/genetics , Infant, Newborn , Infant
15.
Hum Mol Genet ; 33(7): 594-611, 2024 Mar 20.
Article in English | MEDLINE | ID: mdl-38181046

ABSTRACT

Duchenne muscular dystrophy (DMD) is a lethal degenerative muscle wasting disease caused by the loss of the structural protein dystrophin with secondary pathological manifestations including metabolic dysfunction, mood and behavioral disorders. In the mildly affected mdx mouse model of DMD, brief scruff stress causes inactivity, while more severe subordination stress results in lethality. Here, we investigated the kynurenine pathway of tryptophan degradation and the nicotinamide adenine dinucleotide (NAD+) metabolic pathway in mdx mice and their involvement as possible mediators of mdx stress-related pathology. We identified downregulation of the kynurenic acid shunt, a neuroprotective branch of the kynurenine pathway, in mdx skeletal muscle associated with attenuated peroxisome proliferator-activated receptor-gamma coactivator 1 alpha (PGC-1α) transcriptional regulatory activity. Restoring the kynurenic acid shunt by skeletal muscle-specific PGC-1α overexpression in mdx mice did not prevent scruff -induced inactivity, nor did abrogating extrahepatic kynurenine pathway activity by genetic deletion of the pathway rate-limiting enzyme, indoleamine oxygenase 1. We further show that reduced NAD+ production in mdx skeletal muscle after subordination stress exposure corresponded with elevated levels of NAD+ catabolites produced by ectoenzyme cluster of differentiation 38 (CD38) that have been implicated in lethal mdx response to pharmacological ß-adrenergic receptor agonism. However, genetic CD38 ablation did not prevent mdx scruff-induced inactivity. Our data do not support a direct contribution by the kynurenine pathway or CD38 metabolic dysfunction to the exaggerated stress response of mdx mice.


Subject(s)
ADP-ribosyl Cyclase 1 , Indoleamine-Pyrrole 2,3,-Dioxygenase , Membrane Glycoproteins , Muscular Dystrophy, Duchenne , Peroxisome Proliferator-Activated Receptor Gamma Coactivator 1-alpha , Animals , Mice , Disease Models, Animal , Kynurenic Acid/metabolism , Kynurenine/metabolism , Mice, Inbred mdx , Muscle, Skeletal/metabolism , Muscular Dystrophy, Duchenne/pathology , NAD/metabolism , Peroxisome Proliferator-Activated Receptor Gamma Coactivator 1-alpha/metabolism , Indoleamine-Pyrrole 2,3,-Dioxygenase/metabolism , Membrane Glycoproteins/metabolism , ADP-ribosyl Cyclase 1/metabolism
16.
Hum Mol Genet ; 33(2): 182-197, 2024 Jan 07.
Article in English | MEDLINE | ID: mdl-37856562

ABSTRACT

Facioscapulohumeral muscular dystrophy (FSHD) is a prevalent, incurable myopathy. FSHD is highly heterogeneous, with patients following a variety of clinical trajectories, complicating clinical trials. Skeletal muscle in FSHD undergoes fibrosis and fatty replacement that can be accelerated by inflammation, adding to heterogeneity. Well controlled molecular studies are thus essential to both categorize FSHD patients into distinct subtypes and understand pathomechanisms. Here, we further analyzed RNA-sequencing data from 24 FSHD patients, each of whom donated a biopsy from both a non-inflamed (TIRM-) and inflamed (TIRM+) muscle, and 15 FSHD patients who donated peripheral blood mononucleated cells (PBMCs), alongside non-affected control individuals. Differential gene expression analysis identified suppression of mitochondrial biogenesis and up-regulation of fibroadipogenic progenitor (FAP) gene expression in FSHD muscle, which was particularly marked on inflamed samples. PBMCs demonstrated suppression of antigen presentation in FSHD. Gene expression deconvolution revealed FAP expansion as a consistent feature of FSHD muscle, via meta-analysis of 7 independent transcriptomic datasets. Clustering of muscle biopsies separated patients in an unbiased manner into clinically mild and severe subtypes, independently of known disease modifiers (age, sex, D4Z4 repeat length). Lastly, the first genome-wide analysis of alternative splicing in FSHD muscle revealed perturbation of autophagy, BMP2 and HMGB1 signalling. Overall, our findings reveal molecular subtypes of FSHD with clinical relevance and identify novel pathomechanisms for this highly heterogeneous condition.


Subject(s)
Muscular Dystrophy, Facioscapulohumeral , Humans , Alternative Splicing/genetics , Inflammation/pathology , Mitochondria/metabolism , Muscle, Skeletal/metabolism , Muscular Dystrophy, Facioscapulohumeral/pathology , Stem Cells/metabolism
17.
Hum Mol Genet ; 33(5): 400-425, 2024 Feb 18.
Article in English | MEDLINE | ID: mdl-37947217

ABSTRACT

Spinal muscular atrophy (SMA) is a genetic neuromuscular disorder caused by the reduction of survival of motor neuron (SMN) protein levels. Although three SMN-augmentation therapies are clinically approved that significantly slow down disease progression, they are unfortunately not cures. Thus, complementary SMN-independent therapies that can target key SMA pathologies and that can support the clinically approved SMN-dependent drugs are the forefront of therapeutic development. We have previously demonstrated that prednisolone, a synthetic glucocorticoid (GC) improved muscle health and survival in severe Smn-/-;SMN2 and intermediate Smn2B/- SMA mice. However, long-term administration of prednisolone can promote myopathy. We thus wanted to identify genes and pathways targeted by prednisolone in skeletal muscle to discover clinically approved drugs that are predicted to emulate prednisolone's activities. Using an RNA-sequencing, bioinformatics, and drug repositioning pipeline on skeletal muscle from symptomatic prednisolone-treated and untreated Smn-/-; SMN2 SMA and Smn+/-; SMN2 healthy mice, we identified molecular targets linked to prednisolone's ameliorative effects and a list of 580 drug candidates with similar predicted activities. Two of these candidates, metformin and oxandrolone, were further investigated in SMA cellular and animal models, which highlighted that these compounds do not have the same ameliorative effects on SMA phenotypes as prednisolone; however, a number of other important drug targets remain. Overall, our work further supports the usefulness of prednisolone's potential as a second-generation therapy for SMA, identifies a list of potential SMA drug treatments and highlights improvements for future transcriptomic-based drug repositioning studies in SMA.


Subject(s)
Drug Repositioning , Muscular Atrophy, Spinal , Mice , Animals , Pharmaceutical Preparations , Muscular Atrophy, Spinal/drug therapy , Muscular Atrophy, Spinal/genetics , Muscular Atrophy, Spinal/metabolism , Muscle, Skeletal/metabolism , Gene Expression Profiling , Prednisolone/therapeutic use , Disease Models, Animal , Survival of Motor Neuron 1 Protein/genetics , Survival of Motor Neuron 1 Protein/metabolism
18.
Hum Mol Genet ; 33(3): 284-298, 2024 Jan 20.
Article in English | MEDLINE | ID: mdl-37934801

ABSTRACT

The sporadic nature of DUX4 expression in FSHD muscle challenges comparative transcriptome analyses between FSHD and control samples. A variety of DUX4 and FSHD-associated transcriptional changes have been identified, but bulk RNA-seq strategies prohibit comprehensive analysis of their spatiotemporal relation, interdependence and role in the disease process. In this study, we used single-nucleus RNA-sequencing of nuclei isolated from patient- and control-derived multinucleated primary myotubes to investigate the cellular heterogeneity in FSHD. Taking advantage of the increased resolution in snRNA-sequencing of fully differentiated myotubes, two distinct populations of DUX4-affected nuclei could be defined by their transcriptional profiles. Our data provides insights into the differences between these two populations and suggests heterogeneity in two well-known FSHD-associated transcriptional aberrations: increased oxidative stress and inhibition of myogenic differentiation. Additionally, we provide evidence that DUX4-affected nuclei share transcriptome features with early embryonic cells beyond the well-described cleavage stage, progressing into the 8-cell and blastocyst stages. Altogether, our data suggests that the FSHD transcriptional profile is defined by a mixture of individual and sometimes mutually exclusive DUX4-induced responses and cellular state-dependent downstream effects.


Subject(s)
Muscular Dystrophy, Facioscapulohumeral , Humans , Muscular Dystrophy, Facioscapulohumeral/genetics , Muscular Dystrophy, Facioscapulohumeral/metabolism , Transcriptome/genetics , Homeodomain Proteins/metabolism , RNA, Small Nuclear/genetics , RNA, Small Nuclear/metabolism , Oxidative Stress/genetics , Apoptosis , Muscle, Skeletal/metabolism , Gene Expression Regulation/genetics
19.
Hum Mol Genet ; 33(15): 1367-1377, 2024 Jul 22.
Article in English | MEDLINE | ID: mdl-38704739

ABSTRACT

Spinal Muscular Atrophy is caused by partial loss of survival of motoneuron (SMN) protein expression. The numerous interaction partners and mechanisms influenced by SMN loss result in a complex disease. Current treatments restore SMN protein levels to a certain extent, but do not cure all symptoms. The prolonged survival of patients creates an increasing need for a better understanding of SMA. Although many SMN-protein interactions, dysregulated pathways, and organ phenotypes are known, the connections among them remain largely unexplored. Monogenic diseases are ideal examples for the exploration of cause-and-effect relationships to create a network describing the disease-context. Machine learning tools can utilize such knowledge to analyze similarities between disease-relevant molecules and molecules not described in the disease so far. We used an artificial intelligence-based algorithm to predict new genes of interest. The transcriptional regulation of 8 out of 13 molecules selected from the predicted set were successfully validated in an SMA mouse model. This bioinformatic approach, using the given experimental knowledge for relevance predictions, enhances efficient targeted research in SMA and potentially in other disease settings.


Subject(s)
Artificial Intelligence , Computational Biology , Disease Models, Animal , Muscular Atrophy, Spinal , Muscular Atrophy, Spinal/genetics , Muscular Atrophy, Spinal/metabolism , Animals , Mice , Humans , Computational Biology/methods , Survival of Motor Neuron 1 Protein/genetics , Survival of Motor Neuron 1 Protein/metabolism , Machine Learning , Algorithms , Gene Expression Regulation/genetics
20.
Hum Mol Genet ; 2024 Jun 09.
Article in English | MEDLINE | ID: mdl-38850567

ABSTRACT

Alterations in Dp71 expression, the most ubiquitous dystrophin isoform, have been associated with patient survival across tumours. Intriguingly, in certain malignancies, Dp71 acts as a tumour suppressor, while manifesting oncogenic properties in others. This diversity could be explained by the expression of two Dp71 splice variants encoding proteins with distinct C-termini, each with specific properties. Expression of these variants has impeded the exploration of their unique roles. Using CRISPR/Cas9, we ablated the Dp71f variant with the alternative C-terminus in a sarcoma cell line not expressing the canonical C-terminal variant, and conducted molecular (RNAseq) and functional characterisation of the knockout cells. Dp71f ablation induced major transcriptomic alterations, particularly affecting the expression of genes involved in calcium signalling and ECM-receptor interaction pathways. The genome-scale metabolic analysis identified significant downregulation of glucose transport via membrane vesicle reaction (GLCter) and downregulated glycolysis/gluconeogenesis pathway. Functionally, these molecular changes corresponded with, increased calcium responses, cell adhesion, proliferation, survival under serum starvation and chemotherapeutic resistance. Knockout cells showed reduced GLUT1 protein expression, survival without attachment and their migration and invasion in vitro and in vivo were unaltered, despite increased matrix metalloproteinases release. Our findings emphasise the importance of alternative splicing of dystrophin transcripts and underscore the role of the Dp71f variant, which appears to govern distinct cellular processes frequently dysregulated in tumour cells. The loss of this regulatory mechanism promotes sarcoma cell survival and treatment resistance. Thus, Dp71f is a target for future investigations exploring the intricate functions of specific DMD transcripts in physiology and across malignancies.

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