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A severe infantile form of proximal spinal muscular atrophy characterized by severe and progressive muscle weakness and hypotonia resulting from the degeneration and loss of the lower motor neurons in the spinal cord and the brain stem nuclei.
Features include common findings: Decreased fetal movement. 14 total HPO annotations.
Organ System | Phenotype Count | Example Features |
|---|---|---|
Muscles | 4 | Generalized hypotonia, Proximal lower limb muscle weakness, Tongue fasciculations |
Lungs and breathing | 3 | Difficulty breathing (respiratory insufficiency), Respiratory failure, Recurrent respiratory infections |
Brain and nerves | 2 | EMG: neuropathic changes, Tongue fasciculations |
Heart and blood vessels | 2 | Ventricular septal defect, Atrial septal defect |
Arms and legs | 1 | Proximal lower limb muscle weakness |
Pregnancy and birth | 1 | Decreased fetal movement |
Blood and immune system | 1 | Recurrent respiratory infections |
Age of onset: before birth.
Spinal muscular atrophy (SMA) is characterized by muscle weakness and atrophy resulting from progressive degeneration and irreversible loss of the anterior horn cells in the spinal cord (i.e., lower motor neurons) and the brain stem nuclei. The onset of weakness ranges from before birth to adulthood. The weakness is symmetric, proximal greater than distal, and progressive. Before the advent of molecular diagnosis, attempts were made to classify SMA into discrete subtypes; however, it is now apparent that the phenotype of SMA associated with SMN1 pathogenic variants spans a broad continuum without clear delineation of subtypes. Newly approved treatment options are changing the natural history of SMA phenotypes and blurring the boundaries even further . Nonetheless, the existing classification system based on age of onset and maximum function attained with supportive care only is useful for prognosis and management. Table 2. Spinal Muscular Atrophy: Spectrum of Phenotypes at Presentation
Phenotype | Age of Onset | Life Span1 | Motor Milestones1 |
|---|
SMN1 function has not been fully characterized.
Spinal muscular atrophy, type 1 is associated with mutations in the SMN1 gene on chromosome 5.
SMN1. No correlation exists between the type of SMN1 pathogenic variants and the severity of disease: the homozygous exon 7 deletion is observed with approximately the same frequency in all phenotypes. SMN2. Small amounts (up to one quarter) of full-length transcripts generated by SMN2 produce functional protein and result in the milder SMA phenotypes. The number of copies (dosage) of SMN2 (arranged in tandem on the same allele on both chromosomes) ranges from zero to five . The presence of two copies of SMN2 is approximately 80% predictive of the SMA I phenotype, whereas the presence of four or more copies of SMN2 is approximately 88% predictive of achieving the ability to ambulate with supportive care only (SMA III/IV) . Modifying factors that are not fully understood are likely to contribute to the variability in clinical severity, as can be demonstrated with individuals who have three copies of SMN2. Data from are summarized in . Table 3. Spinal Muscular Atrophy: SMN2 Copy Number and Clinical Phenotype SMN2 CopyNumber | SMA Clinical Phenotype1
SMA I | SMA II2 | SMA III/IV3 |
|---|---|---|
1 | 96% | 4% |
2 | 79% | 16% |
3 | 15% | 54% |
≥44 | 1% | 11% |
Source: GeneReviews — "Spinal Muscular Atrophy"
A consensus document on the diagnosis of children with spinal muscular atrophy (SMA) was initially developed by and was updated by .
Suggestive Findings
Scenario 1. Abnormal newborn screening (NBS) result
NBS for spinal muscular atrophy (SMA) is primarily based on real-time PCR that detects the common SMN1 deletion and may also detect SMN2 copy number on dried blood spots .
Follow-up molecular genetic testing confirmation of a positive NBS result is recommended . SMN2 copy number should also be obtained on confirmatory testing.
Source: GeneReviews — "Spinal Muscular Atrophy"
Table 5. Disorders to Consider in the Differential Diagnosis of Spinal Muscular Atrophy
Age of Onset | Disorder | Gene(s) or Region | MOI | Clinical Features of Disorder |
|---|---|---|---|---|
UBA1 | XL | Hypotonia, weakness, areflexia | Multiple congenital contractures, intrauterine fractures SMARD11 (OMIM 604320) | — |
Genetic testing for SMN1 is available. Testing is considered confirmatory for diagnosis.
Biomarker and diagnostic research for spinal muscular atrophy, type 1 has been reported in the published literature.
3 FDA-approved treatments are available for spinal muscular atrophy, type 1, including NUSINERSEN (SPINRAZA, approved 2016), onasemnogene abeparvovec-xioi (Zolgensma, approved 2019), and RISDIPLAM (EVRYSDI, approved 2020).
Brand Name | Generic Name | Mechanism | Approved | Market Status |
|---|---|---|---|---|
EVRYSDI | RISDIPLAM | — | 2020 | Available |
Zolgensma | onasemnogene abeparvovec-xioi | — | 2019 | Available |
SPINRAZA | NUSINERSEN | — | 2016 | Available |
Detailed recommendations on management of care in individuals with spinal muscular atrophy (SMA) have been published; see (full text) and (full text). Furthermore, treatment algorithms for infants diagnosed through newborn screen have been published (full text). Evaluations Following Initial Diagnosis To establish the extent of disease and needs in an individual diagnosed with SMA, the affected individual should be referred to a multidisciplinary clinic. Regardless of SMA subtype, clinical care should be based on an individual's current functional status. Issues to consider are listed in . Table 6. Spinal Muscular Atrophy: Evaluations to Consider Following Initial Diagnosis
System/Concern | Evaluation | Comment |
|---|---|---|
Constitutional | Assessment of growth parameters | Plotted on standard growth chart Gastrointestinal/ |
Feeding |
Prolonged fasting should be avoided, particularly in the acutely ill infant with SMA .
Source: GeneReviews — "Spinal Muscular Atrophy"
A number of different therapeutic approaches are in development, including further studies on the approved therapeutics discussed above. See the SMA Drug Pipeline maintained by Cure SMA for a list of therapies in preclinical and clinical development phases. SMN2-targeted therapeutic approaches. Therapeutic approaches in this category aim to alter SMN2 splicing to increase the proportion of transcripts containing exon 7 and thus increase full-length survival motor neuron (SMN) protein. Antisense oligonucleotides are single-stranded RNA molecules specifically designed to target complementary sequences in the SMN2 transcript, leading to inclusion of exon 7. Nusinersen and risdiplam work through this mechanism. SMN-independent approaches.
Source: GeneReviews — "Spinal Muscular Atrophy"
3 trials found
Where available, targeted therapy should be initiated as soon as possible for eligible individuals. A treatment algorithm for the evaluation of presymptomatic infants has been published . Presymptomatic individuals with five copies of SMN2 should be carefully monitored for the development of symptoms to determine appropriate timing to initiate targeted and/or supportive therapies. For those who are receiving a targeted therapy, review of prescribing information and the package insert is suggested, as recommendations for ongoing surveillance are changing rapidly for each targeted therapy. Both potential side effects and new phenotypes associated with targeted treatments continue to emerge. Individuals with SMA are evaluated at least every six months; weaker children are evaluated more frequently. Multidisciplinary surveillance at each visit includes assessments of nutritional state, respiratory function, motor function, and orthopedic status (spine, hips, and joint range of motion) to help determine appropriate interventions.
Source: GeneReviews — "Spinal Muscular Atrophy"
Phenotype severity distribution: 1 common feature.
Estimated prevalence: 1-9 in 100,000 (Uncommon).
3 clinical trials registered. Interventions under study include other interventions, gene therapy, and biologic therapy. Pipeline includes 1 NA. Research is sponsored by a mix of industry and academic institutions.
173 publications have been identified in PubMed for spinal muscular atrophy, type 1. Research spans Epidemiology / Natural History (24%), Gene Therapy / Novel Therapeutics (22%), and Case Report / Case Series (16%).
Research Type | Count | % of Total |
|---|---|---|
Disease patterns and progression | 41 | 24% |
New treatment approaches | 38 | 22% |
Patient case studies | 28 | 16% |
Clinical study results | 22 | 13% |
Research summaries | 17 | 10% |
Testing and diagnosis research | 12 | 7% |
Laboratory research | 11 | 6% |
Other research | 4 | 2% |
Coratti G (2026). [PMID: 41617535](https://pubmed.ncbi.nlm.nih.gov/41617535/). *J Neurol Neurosurg Psychiatry*. [Epidemiology / Natural History]
Pronto-Laborinho AC (2026). [PMID: 41655361](https://pubmed.ncbi.nlm.nih.gov/41655361/). *J Neurol Sci*. [Gene Therapy / Novel Therapeutics]
García Estévez DA (2026). [PMID: 41609131](https://pubmed.ncbi.nlm.nih.gov/41609131/). *Rev Neurol*. [Gene Therapy / Novel Therapeutics]
Be'er M (2026). [PMID: 41770482](https://pubmed.ncbi.nlm.nih.gov/41770482/). *Adv Ther*. [Gene Therapy / Novel Therapeutics]
Buddle S (2026). [PMID: 41545588](https://pubmed.ncbi.nlm.nih.gov/41545588/). *Nature medicine*. [Gene Therapy / Novel Therapeutics]
Cesarone E (2026). [PMID: 41954146](https://pubmed.ncbi.nlm.nih.gov/41954146/). *Acta Myol*. [Epidemiology / Natural History]
Wang X (2026). [PMID: 41512690](https://pubmed.ncbi.nlm.nih.gov/41512690/). *Ann Phys Rehabil Med*. [Epidemiology / Natural History]
Buchignani B (2026). [PMID: 41889286](https://pubmed.ncbi.nlm.nih.gov/41889286/). *Dev Med Child Neurol*. [Epidemiology / Natural History]
Unknown (2026). [PMID: 41996271](https://pubmed.ncbi.nlm.nih.gov/41996271/). *Dev Med Child Neurol*. [Case Report / Case Series]
Rezende LV (2026). [PMID: 41851912](https://pubmed.ncbi.nlm.nih.gov/41851912/). *Dev Med Child Neurol*. [Case Report / Case Series]
Data assembled from 9 of 12 sources · Last updated Sep 19, 2026, 11:55 AM UTC
Online Mendelian Inheritance in Man
European rare disease database
Genetic and Rare Diseases Info Center
SMA 0 | Prenatal | A few weeks, 6 mos | None achieved | Severe neonatal hypotonia; Severe weakness; Areflexia; Respiratory failure at birth; Facial diplegia; fetal movements; Atrial septal defects; Arthrogryposis |
SMA I | 6 mos | Median survival 8-10 mos | Some head control, sit w/support only | Loss of head control; Mild joint contractures; Normal or minimal facial weakness; Variable suck swallow difficulties |
SMA II | 6-18 mos | 70% alive at age 25 yrs | Independent sitting when placed | Developmental delay w/loss of motor skills; or absent deep tendon reflexes; Proximal muscle weakness; Postural tremor of fingers |
SMA III | 18 mos | Normal | Independent ambulation | Proximal muscle weakness (i.e., difficulty w/stairs, running); Loss of motor skills; Fatigue; Postural tremor of fingers; Loss of patellar reflexes |
SMA IV | Adulthood | Normal | Normal | Fatigue; Proximal muscle weakness 1. With supportive care only SMA 0 presents with severe weakness, hypotonia, and respiratory distress at birth. There may be a history of decreased in utero movements, joint contractures, and atrial septal defects. |
Source: GeneReviews — "Spinal Muscular Atrophy"
AR |
Weakness, respiratory failure, hypo- or areflexia |
Distal predominant weakness, diaphragmatic paralysis GARS1-related infantile-onset SMA2 (OMIM 619042) |
— |
GARS1 | AD | Hypotonia, weakness, areflexia | Diaphragmatic paralysis, sensory involvement | — |
Prader-Willi syndrome | 15q11.2-q133 | See footnote 3. | Hypotonia, feeding difficulties | Poor respiratory effort is rare. Myotonic dystrophy type 1 |
DMPK | AD | Hypotonia, muscle weakness | Marked facial weakness | — |
Congenital muscular dystrophy | Many genes | ARAD | Hypotonia, muscle weakness | CNS, eye involvement, possible tone |
Zellweger spectrum disorder | PEX family of genes | AR | Hypotonia | Hepatosplenomegaly, CNS |
Congenital myasthenic syndromes | CHATCHRNECOLQDOK7GFPT1RAPSN4 | ARAD | Hypotonia | Ophthalmoplegia, ptosis, episodic respiratory failure Pompe disease |
GAA | AR | Hypotonia | Cardiomegaly | — |
Other: congenital myopathies,5 metabolic/mitochondrial myopathies,6 peripheral neuropathies7 6 mos | Botulism | NA | Proximal muscle weakness, reflexes | Prominent cranial nerve palsies, acute onset |
Later childhood | Guillain-Barr syndrome | NA | Muscle weakness | Subacute onset, sensory involvement Duchenne muscular dystrophy |
DMD | XL | Muscle weakness, motor regression | Serum creatine kinase concentration 10-20x normal Hexosaminidase A deficiency (juvenile, chronic, adult-onset variants) | — |
HEXA | AR | Lower motor neuron disease | Slow progression, progressive dystonia, spinocerebellar degeneration, cognitive/psychiatric involvement Fazio-Londe syndrome (See Riboflavin Transporter Deficiency Neuronopathy.) | SLC52A2 |
SLC52A3 | AR | Progressive bulbar palsy | Limited to lower cranial nerves; progresses to death in 1-5 yrs | — |
Monomelic amyotrophy (Hirayama disease) (OMIM 602440) | Unknown | Muscle weakness | Predominantly cervical; tongue may be affected (rare); other cranial nerves spared | — |
Other: peripheral neuropathies,7 muscular dystrophies8 Adulthood | Spinal bulbar muscular atrophy (Kennedy disease) | — | — | — |
AR | XL | Proximal muscle weakness, muscle atrophy, fasciculations | Gradually progressive; gynecomastia, testicular atrophy, fertility | — |
Amyotrophic lateral sclerosis | Many genes9 | ADARXL | May begin w/pure lower motor neuron signs | Progressive neurodegeneration; involves both upper lower motor neurons AD = autosomal dominant; AR = autosomal recessive; CNS = central nervous system; MOI = mode of inh... |
Source: GeneReviews — "Spinal Muscular Atrophy"
Assessment for feeding dysfunction GERD
Incl evaluation of aspiration risk,1 nutritional status, time required to complete a feed; Consider eval for gastrostomy tube placement in those w/dysphagia /or aspiration risk. Assessment of liver function |
Respiratory | Assessment of pulse oximetry capnography | Consider referral to pulmonologist familiar w/SMA.2 Consider FVC, as appropriate to age. |
Musculoskeletal | Orthopedic/ physical medicine rehab/ PT OT eval | Incl assessment of:; Gross motor fine motor skills; Contractures, hip dislocation, scoliosis; Mobility, ADL, need for adaptive devices3; Need for PT (to improve gross motor skills) /or OT (to improve fine motor skills) |
Hematologic | Assessment for thrombocytopenia coagulation abnormalities | Prior to administration of nusinersen (Spinraza®; antisense oligonucleotide) onasemnogene abeparvovec (Zolgensma®) (See .) Miscellaneous/ |
Other | Consultation w/clinical geneticist /or genetic counselor | Incl genetic counseling Family support resources |
Source: GeneReviews — "Spinal Muscular Atrophy"
AI-curated news mentioning spinal muscular atrophy, type 1
Updated Feb 6, 2026
A review highlights the potential of AAV9 vectors in gene therapy for inherited CNS diseases, building on the success of Zolgensma for spinal muscular atrophy. The International Society for Stem Cell Research provides a global map of marketed gene and cell therapies.