Spinal muscular atrophy

Last updated: June 19, 2025

Spinal muscular atrophy

M&M Exam 2

M&M Exam 2

Introduction to the skeletal system
Introduction to the muscular system
Bones of the upper limb
Fascia, vessels and nerves of the upper limb
Anatomy of the brachial plexus
Anatomy of the pectoral and scapular regions
Anatomy of the arm
Muscles of the forearm
Vessels and nerves of the forearm
Muscles of the hand
Anatomy of the sternoclavicular and acromioclavicular joints
Anatomy of the glenohumeral joint
Anatomy of the elbow joint
Anatomy of the radioulnar joints
Joints of the wrist and hand
Anatomy of the axilla
Anatomy clinical correlates: Clavicle and shoulder
Anatomy clinical correlates: Axilla
Anatomy clinical correlates: Arm, elbow and forearm
Anatomy clinical correlates: Wrist and hand
Anatomy clinical correlates: Median, ulnar and radial nerves
Bones of the lower limb
Fascia, vessels and nerves of the lower limb
Anatomy of the anterior and medial thigh
Muscles of the gluteal region and posterior thigh
Vessels and nerves of the gluteal region and posterior thigh
Anatomy of the popliteal fossa
Anatomy of the leg
Anatomy of the foot
Anatomy of the hip joint
Anatomy of the knee joint
Anatomy of the tibiofibular joints
Joints of the ankle and foot
Development of the axial skeleton
Development of the limbs
Development of the muscular system
Bone histology
Cartilage histology
Skeletal muscle histology
Skeletal system anatomy and physiology
Bone remodeling and repair
Cartilage structure and growth
Fibrous, cartilage, and synovial joints
Muscular system anatomy and physiology
Brachial plexus
Neuromuscular junction and motor unit
Sliding filament model of muscle contraction
Slow twitch and fast twitch muscle fibers
Muscle contraction
Muscle spindles and golgi tendon organs
Radial head subluxation (Nursemaid elbow)
Developmental dysplasia of the hip
Legg-Calve-Perthes disease
Slipped capital femoral epiphysis
Transient synovitis
Osgood-Schlatter disease (traction apophysitis)
Rotator cuff tear
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Spondylolysis
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Lordosis, kyphosis, and scoliosis
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Gout
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Lambert-Eaton myasthenic syndrome
Back pain: Pathology review
Rheumatoid arthritis and osteoarthritis: Pathology review
Seronegative and septic arthritis: Pathology review
Bone tumors: Pathology review
Neuromuscular junction disorders: Pathology review
Muscular dystrophies and mitochondrial myopathies: Pathology review
Bone disorders: Pathology review
Opioid agonists, mixed agonist-antagonists and partial agonists
Osteoporosis medications
Anatomy of the descending spinal cord pathways
Anatomy of the ascending spinal cord pathways
Anatomy clinical correlates: Spinal cord pathways
Anatomy of the oculomotor (CN III), trochlear (CN IV) and abducens (CN VI) nerves
Ascending and descending spinal tracts
Motor cortex
Pyramidal and extrapyramidal tracts
Spinal cord reflexes
Sensory receptor function
Somatosensory receptors
Somatosensory pathways
Vascular dementia
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Frontotemporal dementia
Alzheimer disease
Parkinson disease
Huntington disease
Opsoclonus myoclonus syndrome (NORD)
Adult brain tumors
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Congenital neurological disorders: Pathology review
Headaches: Pathology review
Seizures: Pathology review
Cerebral vascular disease: Pathology review
Traumatic brain injury: Pathology review
Spinal cord disorders: Pathology review
Dementia: Pathology review
Central nervous system infections: Pathology review
Movement disorders: Pathology review
Demyelinating disorders: Pathology review
Adult brain tumors: Pathology review
Pediatric brain tumors: Pathology review
Neurocutaneous disorders: Pathology review
General anesthetics
Local anesthetics
Neuromuscular blockers
Anti-parkinson medications
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Opioid antagonists
Muscles of the back
Anatomy clinical correlates: Bones, joints and muscles of the back
Acetaminophen (Paracetamol)
Non-steroidal anti-inflammatory drugs
Parathyroid conditions and calcium imbalance: Clinical
Parathyroid disorders and calcium imbalance: Pathology review
Parathyroid hormone
Hypoparathyroidism
Hyperparathyroidism
Amyotrophic lateral sclerosis
Muscle weakness: Clinical
Spinal muscular atrophy
Dementia and delirium: Clinical
Anatomy of the basal ganglia
Basal ganglia: Direct and indirect pathway of movement
Lower back pain: Clinical

Transcript

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Content Reviewers

Spinal muscular atrophy, or SMA, is a genetic disorder where nerve cells in the spinal cord die prematurely, and this causes the muscles that would normally be controlled by those nerves to atrophy, or wither away, which causes weakness.

When the brain wants a muscle to contract, it sends a signal through an upper motor neuron, which takes the impulse from the brain to the spinal cord, and then through a lower motor neuron, which goes from the spinal cord to the neuromuscular junction, which is where the lower motor neuron touches the muscle cell.

The lower motor neurons which cause voluntary contraction of skeletal muscle are called alpha motor neurons, and these alpha motor neurons are the ones that die in SMA. Their cell bodies are located in the anterior horn, or front part, of the spinal cord, and their axons project from the spinal cord all the way to the muscles they innervate. A group of these neurons is called a motor nerve.

If a lower motor neuron dies or if the entire nerve is injured, the motor unit, which includes the neuron and the muscle fibers it innervates, stops working.

Depending on how many muscle fibers stop contracting, there can be overall muscle weakness or in an extreme situation, a flaccid, or low-tone paralysis.

This denervated muscle also atrophies over time, a classic example of “use it or lose it”. This contrasts with the increased muscle tone and spasticity that develops after an upper motor neuron is damaged.

When a lot of these muscle fibers are affected, fasciculations can happen which are, spontaneous, involuntary muscle contractions.

Alpha motor neurons also carry the signal for muscle contraction in deep tendon reflexes, like the knee-jerk reflex, and they diminish or disappear when alpha motor neurons are damaged.

Now, it turns out that there are a few types and subtypes of SMA.

Type 1a, congenital SMA, is the most severe of all and it starts even before birth, when mothers may notice decreased fetal movements.

SMA type Ib, also called infantile SMA or Werdnig-Hoffman disease, is the classic form where babies often appear normal at birth and then in the first few weeks of life develop hypotonia or low muscle tone.

These infants have progressive weakness, which is worse proximally than distally, and is initially more obvious in the legs, making it hard for them to do things like sit up.

They can also have weakness in the muscles involved in sucking, chewing, and swallowing and as a result, they can have difficulty taking milk, eating foods, or even safely swallowing their own secretions which can lead to aspiration.

The weakness can also affect the chest wall muscles and diaphragm leading to breathing difficulty and eventually respiratory failure.

For these reasons, most of these babies survive only a few years.

SMA types II, III, and IV are each successively milder and have a later age of onset.

In addition to muscle weakness, feeding problems, and breathing difficulties, chronic symptoms of SMA include scoliosis due to poor muscle support of the spine and extremely thin limbs due to muscle wasting.

Key Takeaways

Spinal muscular atrophy or SMA is an autosomal recessive disorder where a deletion of the SMN1 gene causes alpha-motor neurons in the spinal cord to die, resulting in muscle weakness, atrophy, respiratory failure, and death in extreme cases. Treatment for SMA is supportive, like giving nutrition through a feeding tube as well as respiratory support to help with muscle stiffness and strengthen respiratory muscles.