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1.
Science ; 380(6642): eadg6518, 2023 04 21.
Article in English | MEDLINE | ID: mdl-36996170

ABSTRACT

Spinal muscular atrophy (SMA), the leading genetic cause of infant mortality, arises from survival motor neuron (SMN) protein insufficiency resulting from SMN1 loss. Approved therapies circumvent endogenous SMN regulation and require repeated dosing or may wane. We describe genome editing of SMN2, an insufficient copy of SMN1 harboring a C6>T mutation, to permanently restore SMN protein levels and rescue SMA phenotypes. We used nucleases or base editors to modify five SMN2 regulatory regions. Base editing converted SMN2 T6>C, restoring SMN protein levels to wild type. Adeno-associated virus serotype 9-mediated base editor delivery in Δ7SMA mice yielded 87% average T6>C conversion, improved motor function, and extended average life span, which was enhanced by one-time base editor and nusinersen coadministration (111 versus 17 days untreated). These findings demonstrate the potential of a one-time base editing treatment for SMA.


Subject(s)
Gene Editing , Muscular Atrophy, Spinal , Survival of Motor Neuron 1 Protein , Survival of Motor Neuron 2 Protein , Animals , Mice , Fibroblasts/metabolism , Motor Neurons/metabolism , Muscular Atrophy, Spinal/genetics , Muscular Atrophy, Spinal/therapy , Survival of Motor Neuron 1 Protein/genetics , Survival of Motor Neuron 2 Protein/genetics
2.
Int J Mol Sci ; 22(16)2021 Aug 06.
Article in English | MEDLINE | ID: mdl-34445199

ABSTRACT

Proximal spinal muscular atrophy (SMA) is an autosomal recessive neurodegenerative disorder characterized by motor neuron loss and subsequent atrophy of skeletal muscle. SMA is caused by deficiency of the essential survival motor neuron (SMN) protein, canonically responsible for the assembly of the spliceosomal small nuclear ribonucleoproteins (snRNPs). Therapeutics aimed at increasing SMN protein levels are efficacious in treating SMA. However, it remains unknown how deficiency of SMN results in motor neuron loss, resulting in many reported cellular functions of SMN and pathways affected in SMA. Herein is a perspective detailing what genetics and biochemistry have told us about SMA and SMN, from identifying the SMA determinant region of the genome, to the development of therapeutics. Furthermore, we will discuss how genetics and biochemistry have been used to understand SMN function and how we can determine which of these are critical to SMA moving forward.


Subject(s)
Muscular Atrophy, Spinal/genetics , Animals , Humans , Motor Neurons/metabolism , Motor Neurons/pathology , Muscular Atrophy, Spinal/metabolism , Muscular Atrophy, Spinal/pathology , Mutation , Signal Transduction , Survival of Motor Neuron 1 Protein/genetics , Survival of Motor Neuron 1 Protein/metabolism , Survival of Motor Neuron 2 Protein/genetics , Survival of Motor Neuron 2 Protein/metabolism
3.
Neurobiol Aging ; 101: 285-296, 2021 05.
Article in English | MEDLINE | ID: mdl-33678425

ABSTRACT

Sarcopenia, or pathological loss of muscle mass and strength during aging, is an important contributor to loss of physical function in older adults. Sarcopenia is a multifactorial syndrome associated with intrinsic muscle and upstream neurological dysfunction. Exercise is well-established as an effective intervention for sarcopenia, but less is known about the long-term neurobiological impact of exercise. The goals of this study were to investigate the effects of exercise, alone or in combination with follistatin (FST) overexpression (antagonist of myostatin), on neuromuscular junction transmission and motor unit numbers in mice between the age of 22 and 27 months, ages at which prior studies have demonstrated that some motor unit loss is already evident. C57BL/6J mice underwent baseline assessment and were randomized to housing with or without voluntary running wheels and injection with adeno-associated virus to overexpress FST or vehicle. Groups for comparison included sedentary and running with and without FST. Longitudinal assessments showed significantly increased muscle mass and contractility in the 'running plus FST' group, but running, with and without FST, showed no effect on motor unit degeneration. In contrast, running, with and without FST, demonstrated marked improvement of neuromuscular junction transmission stability.


Subject(s)
Aging/genetics , Aging/pathology , Follistatin/physiology , Gene Expression/genetics , Gene Expression/physiology , Motor Neurons/pathology , Neuromuscular Junction/physiology , Running/physiology , Sarcopenia/etiology , Synaptic Transmission/genetics , Aging/physiology , Animals , Female , Follistatin/genetics , Follistatin/metabolism , Male , Mice, Inbred C57BL , Sarcopenia/genetics , Sarcopenia/physiopathology
4.
Am J Pathol ; 191(4): 730-747, 2021 04.
Article in English | MEDLINE | ID: mdl-33497702

ABSTRACT

Duchenne muscular dystrophy (DMD) is a genetic, degenerative, striated muscle disease exacerbated by chronic inflammation. Mdx mice in the genotypic DMD model poorly represent immune-mediated pathology observed in patients. Improved understanding of innate immunity in dystrophic muscles is required to develop specific anti-inflammatory treatments. Here, inflammation in mdx mice and the more fibrotic utrn+/-;mdx Het model was comprehensively investigated. Unbiased analysis showed that mdx and Het mice contain increased levels of numerous chemokines and cytokines, with further increased in Het mice. Chemokine and chemokine receptor gene expression levels were dramatically increased in 4-week-old dystrophic quadriceps muscles, and to a lesser extent in diaphragm during the early injury phase, and had a small but consistent increase at 8 and 20 weeks. An optimized direct immune cell isolation method prevented loss of up to 90% of macrophages with density-dependent centrifugation previously used for mdx flow cytometry. Het quadriceps contain higher proportions of neutrophils and infiltrating monocytes than mdx, and higher percentages of F4/80Hi, but lower percentages of F4/80Lo cells and patrolling monocytes compared with Het diaphragms. These differences may restrict regenerative potential of dystrophic diaphragms, increasing pathologic severity. Fibrotic and inflammatory gene expression levels are higher in myeloid cells isolated from Het compared with mdx quadriceps, supporting Het mice may represent an improved model for testing therapeutic manipulation of inflammation in DMD.


Subject(s)
Dystrophin/metabolism , Inflammation/metabolism , Muscle, Skeletal/pathology , Muscular Dystrophy, Animal/pathology , Muscular Dystrophy, Duchenne/pathology , Animals , Inflammation/pathology , Macrophages/metabolism , Mice, Transgenic , Monocytes/metabolism , Muscle, Skeletal/metabolism , Muscular Dystrophy, Animal/metabolism , Muscular Dystrophy, Duchenne/metabolism , Respiratory Muscles/metabolism , Respiratory Muscles/pathology
5.
Hum Mol Genet ; 29(21): 3477-3492, 2020 11 01.
Article in English | MEDLINE | ID: mdl-33075805

ABSTRACT

Spinal muscular atrophy (SMA) is caused by mutation or deletion of survival motor neuron 1 (SMN1) and retention of SMN2 leading to SMN protein deficiency. We developed an immortalized mouse embryonic fibroblast (iMEF) line in which full-length wild-type Smn (flwt-Smn) can be conditionally deleted using Cre recombinase. iMEFs lacking flwt-Smn are not viable. We tested the SMA patient SMN1 missense mutation alleles A2G, D44V, A111G, E134K and T274I in these cells to determine which human SMN (huSMN) mutant alleles can function in the absence of flwt-Smn. All missense mutant alleles failed to rescue survival in the conditionally deleted iMEFs. Thus, the function lost by these mutations is essential to cell survival. However, co-expression of two different huSMN missense mutants can rescue iMEF survival and small nuclear ribonucleoprotein (snRNP) assembly, demonstrating intragenic complementation of SMN alleles. In addition, we show that a Smn protein lacking exon 2B can rescue iMEF survival and snRNP assembly in the absence of flwt-Smn, indicating exon 2B is not required for the essential function of Smn. For the first time, using this novel cell line, we can assay the function of SMN alleles in the complete absence of flwt-Smn.


Subject(s)
Muscular Atrophy, Spinal/genetics , Ribonucleoproteins, Small Nuclear/genetics , Survival of Motor Neuron 1 Protein/genetics , Alleles , Animals , Cell Survival/genetics , Disease Models, Animal , Exons/genetics , Fibroblasts/metabolism , Fibroblasts/pathology , Gene Expression Regulation, Developmental/genetics , Humans , Integrases/genetics , Mice , Muscular Atrophy, Spinal/pathology , Mutation, Missense/genetics , Survival of Motor Neuron 2 Protein/genetics
6.
Hum Mol Genet ; 24(19): 5524-41, 2015 Oct 01.
Article in English | MEDLINE | ID: mdl-26206889

ABSTRACT

Proximal spinal muscular atrophy (SMA) is the most frequent cause of hereditary infant mortality. SMA is an autosomal recessive neuromuscular disorder that results from the loss of the Survival Motor Neuron 1 (SMN1) gene and retention of the SMN2 gene. The SMN2 gene produces an insufficient amount of full-length SMN protein that results in loss of motor neurons in the spinal cord and subsequent muscle paralysis. Previously we have shown that overexpression of human SMN in neurons in the SMA mouse ameliorates the SMA phenotype while overexpression of human SMN in skeletal muscle had no effect. Using Cre recombinase, here we show that either deletion or replacement of Smn in motor neurons (ChAT-Cre) significantly alters the functional output of the motor unit as measured with compound muscle action potential and motor unit number estimation. However ChAT-Cre alone did not alter the survival of SMA mice by replacement and did not appreciably affect survival when used to deplete SMN. However replacement of Smn in both neurons and glia in addition to the motor neuron (Nestin-Cre and ChAT-Cre) resulted in the greatest improvement in survival of the mouse and in some instances complete rescue was achieved. These findings demonstrate that high expression of SMN in the motor neuron is both necessary and sufficient for proper function of the motor unit. Furthermore, in the mouse high expression of SMN in neurons and glia, in addition to motor neurons, has a major impact on survival.


Subject(s)
Motor Neurons/physiology , Muscle, Skeletal/physiology , Muscular Atrophy, Spinal/physiopathology , Survival of Motor Neuron 1 Protein/genetics , Survival of Motor Neuron 1 Protein/metabolism , Action Potentials , Animals , Disease Models, Animal , Electrophysiological Phenomena , Humans , Mice , Mice, Transgenic , Motor Neurons/metabolism , Muscular Atrophy, Spinal/genetics , Muscular Atrophy, Spinal/metabolism , Sequence Deletion
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