Vitamin-Responsive Seizures in Children and Neonates: The Treatable Epilepsies You Should Not Miss

seizures

Vitamin-responsive seizures are uncommon, but they represent some of the most important treatable causes of neonatal and early-infantile epilepsy. Recognizing them early can prevent status epilepticus, developmental injury, and potentially irreversible neurological damage.

Introduction

Neonatal seizures are usually approached as an emergency, with hypoxic-ischemic injury, hypoglycemia, hypocalcemia, intracranial hemorrhage, stroke, infection, and structural brain abnormalities among the major considerations.

However, a small but particularly important group of seizures results from inborn errors of metabolism involving vitamins or vitamin-dependent enzymes. These seizures may be remarkably resistant to conventional antiseizure medications but respond dramatically to administration of the appropriate vitamin or cofactor.

The major clinically relevant disorders include:

  • Pyridoxine-dependent epilepsy (PDE)
  • Pyridoxal-5′-phosphate (PLP)-dependent epilepsy
  • Folinic acid-responsive seizures
  • Biotinidase deficiency
  • Biotin-thiamine-responsive basal ganglia disease
  • Other metabolic disorders in which vitamin/cofactor therapy can be seizure-modifying

Among these, vitamin B6-dependent epilepsies are particularly important in the neonate.


1. When should you suspect a vitamin-responsive seizure disorder?

The diagnosis should enter the differential particularly when a neonate or infant has:

Red flags

  1. Seizures beginning in the neonatal period without an obvious cause
  2. Frequent or recurrent seizures despite appropriate antiseizure medication
  3. Status epilepticus
  4. Abnormal EEG with burst suppression or marked discontinuity
  5. Seizures accompanied by unexplained encephalopathy
  6. Irritability, abnormal crying, vomiting, or feeding difficulty
  7. Unexplained metabolic acidosis or elevated lactate
  8. Seizures recurring after apparently successful treatment
  9. A previous sibling who died from unexplained neonatal seizures
  10. Consanguinity or a family history suggestive of an autosomal-recessive disorder
  11. Seizures with unusual movements, spasms, myoclonus, or autonomic features
  12. Seizures that respond dramatically to pyridoxine or PLP

The ILAE specifically recommends considering a trial of pyridoxine in neonates with clinical features suggestive of vitamin B6-dependent epilepsy and in neonates whose seizures remain unexplained and refractory to second-line antiseizure medication.


2. Pyridoxine-dependent epilepsy

The classic vitamin-responsive epilepsy

Pyridoxine-dependent epilepsy is one of the most important treatable causes of neonatal-onset epilepsy.

The classical form is caused by pathogenic variants in ALDH7A1, which encodes antiquitin, an enzyme involved in lysine degradation. Deficiency results in accumulation of metabolites including α-aminoadipic semialdehyde (α-AASA)/P6C. P6C can inactivate pyridoxal-5′-phosphate (PLP), ultimately impairing neurotransmitter synthesis and producing seizures.

Clinical presentation

The classical presentation is:

A neonate with otherwise unexplained, frequent, treatment-resistant seizures.

Seizures may be:

  • Focal
  • Multifocal
  • Generalized
  • Clonic
  • Tonic
  • Myoclonic
  • Epileptic spasms

Some infants may initially appear encephalopathic rather than having obvious convulsive seizures.

The ILAE recognizes frequent drug-resistant seizures, often progressing to status epilepticus, with marked reduction or cessation following pyridoxine supplementation as characteristic of vitamin B6-dependent epilepsy.

An important clue

Some infants may have:

  • Irritability
  • Restlessness
  • Abnormal crying
  • Vomiting
  • Feeding difficulties

before or around the time of seizures.


3. Why does pyridoxine stop the seizure?

Vitamin B6 exists in several biologically active forms. Pyridoxal-5′-phosphate (PLP) is the major active cofactor involved in numerous enzymatic reactions.

One of its critical neurological roles is participation in neurotransmitter synthesis.

In pyridoxine-dependent epilepsy, abnormal lysine metabolism leads to accumulation of metabolites that interfere with PLP availability.

Therefore:

ALDH7A1 defect

Abnormal lysine degradation

↑ α-AASA/P6C

PLP inactivation

Impaired neurotransmitter synthesis

Neuronal hyperexcitability

Seizures

Administration of pharmacological doses of pyridoxine restores adequate PLP availability and suppresses seizures.


4. Pyridoxine trial

This is one of the most important practical points in neonatal neurology.

A pyridoxine trial should be performed under continuous cardiorespiratory and preferably EEG monitoring, because intravenous pyridoxine can cause significant apnea, respiratory depression, and prolonged somnolence.

For prolonged/refractory clinical seizures, a commonly used approach is:

Pyridoxine 100 mg IV, with EEG and cardiorespiratory monitoring.

If there is no response, further doses may be administered according to specialist/neonatal protocol, with some references allowing repeated dosing up to a cumulative 500 mg.

The ILAE notes that responses can occasionally be delayed; therefore, lack of an immediate response does not automatically exclude vitamin B6-dependent epilepsy. A trial may need to be continued for several days in selected patients.

Important safety point

Do not give a high-dose IV pyridoxine trial to an unsupervised neonate.

Apnea and cardiorespiratory depression can occur, so airway and ventilatory support must be immediately available.


5. Pyridoxine maintenance therapy

Once pyridoxine-dependent epilepsy is established, treatment is generally lifelong.

Current International PDE Consortium recommendations summarized by GeneReviews include:

AgePyridoxine dose
Newborn100 mg/day
Infant30 mg/kg/day, maximum 300 mg/day
Child/adolescent/adult30 mg/kg/day, maximum 500 mg/day

Doses should be individualized by a metabolic/pediatric neurology team.

Long-term excessive pyridoxine can produce sensory neuropathy, so high-dose therapy requires monitoring.


6. Pyridoxal-5′-phosphate-dependent epilepsy

Not every vitamin B6-responsive seizure disorder responds to pyridoxine itself.

This distinction is crucial.

Pyridoxamine-5′-phosphate oxidase (PNPO) deficiency results from pathogenic variants in PNPO.

The enzyme is required for conversion of pyridoxine/pyridoxamine derivatives to the active cofactor PLP.

Therefore:

Pyridoxine → requires metabolic activation → PLP

If this pathway is defective, administering pyridoxine may not adequately correct the biochemical defect.

These patients may instead respond to pyridoxal-5′-phosphate (PLP).

Practical distinction

DisorderMain defectEffective vitamin form
Pyridoxine-dependent epilepsyALDH7A1/antiquitin pathwayPyridoxine (B6)
PNPO deficiencyConversion to active PLP impairedPyridoxal-5′-phosphate
PLPBP deficiencyPLP binding/transport-related dysfunctionOften B6/PLP-dependent

The ILAE recognizes ALDH7A1, PNPO and PLPBP-related disorders among the genetic causes of vitamin B6-dependent epilepsy.


7. PLPBP deficiency

PLPBP encodes pyridoxal phosphate-binding protein.

Deficiency can produce neonatal or infantile epilepsy with variable response to pyridoxine or PLP.

This disorder highlights an important clinical principle:

A negative response to one form of vitamin B6 does not necessarily exclude a vitamin B6-dependent epilepsy.

Patients may require a carefully monitored trial of the appropriate B6 formulation under metabolic/neurology supervision.


8. Folinic acid-responsive seizures

Another important treatable cause is folinic acid-responsive epilepsy.

These infants can present with:

  • Neonatal seizures
  • Drug-resistant epilepsy
  • Encephalopathy
  • Abnormal EEG
  • Sometimes a transient or incomplete response to pyridoxine

An important clinical clue is:

Seizures initially improve with pyridoxine but subsequently recur.

Folinic acid may then produce seizure control.

Interestingly, subsequent biochemical and genetic work demonstrated substantial overlap between classical folinic acid-responsive seizures and ALDH7A1-related pyridoxine-dependent epilepsy.

Thus, the old concept of completely separate “pyridoxine-responsive” and “folinic-acid-responsive” disorders has become more nuanced.


9. When should folinic acid be considered?

Folinic acid should be considered particularly when:

  • Neonatal seizures are unexplained
  • Pyridoxine produces only a partial/transient response
  • Seizures recur despite pyridoxine
  • There is biochemical/genetic evidence suggesting a folate-related disorder

Some literature describes folinic acid doses in the range of approximately 3–5 mg/kg/day, but dosing should be directed by a pediatric neurologist/metabolic specialist because the optimal regimen depends on the suspected disorder.


10. Biotin-responsive seizures

Biotinidase deficiency is another important treatable metabolic disorder.

Biotinidase is responsible for recycling biotin, an essential cofactor for several carboxylases.

Untreated profound biotinidase deficiency can produce:

  • Seizures
  • Hypotonia
  • Developmental delay
  • Ataxia
  • Alopecia
  • Eczematous rash
  • Conjunctivitis
  • Hearing loss
  • Optic atrophy
  • Respiratory abnormalities

Seizures may be focal, generalized, or myoclonic, and infantile spasms have also been reported.

The key point

This is a highly treatable disorder.

Early treatment can prevent neurological injury, and seizures can resolve rapidly after biotin supplementation.


11. Biotinidase deficiency: treatment

Current GeneReviews recommendations are:

  • Profound deficiency: oral biotin 5–10 mg/day
  • Partial deficiency: approximately 2.5–10 mg/day

Treatment is generally lifelong.

An important practical issue is that biotin can interfere with certain laboratory immunoassays, potentially producing misleading results. Clinicians should inform the laboratory when a patient is receiving pharmacological doses of biotin.


12. Biotin-thiamine-responsive basal ganglia disease

This is a particularly fascinating vitamin-responsive neurological disorder.

It results from pathogenic variants in SLC19A3, which encodes thiamine transporter 2.

It can present in three broad patterns:

Early-infantile disease

Usually before 3 months of age:

  • Vomiting
  • Feeding difficulty
  • Encephalopathy
  • Hypotonia
  • Seizures/infantile spasms
  • Respiratory failure
  • Severe lactic acidosis

Childhood disease

Usually presents with recurrent episodes of:

  • Encephalopathy
  • Seizures
  • Ataxia
  • Dystonia
  • Ophthalmoplegia
  • Dysphagia

Episodes may be precipitated by febrile illness or metabolic stress.

MRI clue

Symmetrical abnormalities involving the:

  • Caudate
  • Putamen
  • Medial thalami

with possible extension to the brainstem and other structures should raise suspicion.


13. Treatment of biotin-thiamine-responsive basal ganglia disease

Treatment should be started promptly when the disorder is suspected.

GeneReviews recommends:

Biotin: 5–10 mg/kg/day

plus

Thiamine: up to 40 mg/kg/day, maximum 1,500 mg/day

with lifelong therapy. During acute decompensation, thiamine may be increased and administered intravenously.

Early treatment is critical because neurological damage may become irreversible.


14. Other metabolic disorders where vitamins matter

Vitamin-responsive seizures should not be interpreted as only a “B6 problem.”

Other treatable metabolic epilepsies include disorders involving:

  • Folate metabolism
  • Thiamine metabolism
  • Biotin metabolism
  • Riboflavin-related pathways
  • Vitamin B12/cobalamin metabolism
  • Serine synthesis
  • Creatine metabolism
  • Glucose transport
  • Mitochondrial metabolism

Some are better classified as cofactor-responsive metabolic epilepsies rather than classical vitamin-dependent epilepsy.

A broad metabolic approach is therefore essential in unexplained refractory neonatal epilepsy. Reviews of inborn errors of metabolism in pediatric epilepsy emphasize pyridoxine/PLP, folinic acid and biotin among the particularly important treatable pathways.


15. Practical approach to a neonate with refractory seizures

A useful bedside approach is:

Step 1 — Stabilize

ABC + glucose

Check:

  • Blood glucose
  • Calcium
  • Magnesium
  • Sodium
  • Potassium
  • Blood gas
  • Lactate

Treat immediately reversible abnormalities.

Step 2 — Search for common causes

Consider:

  • HIE
  • Intracranial hemorrhage
  • Stroke
  • CNS infection
  • Hypoglycemia
  • Hypocalcemia
  • Electrolyte abnormalities
  • Structural brain disease

Step 3 — EEG

Use continuous EEG where available.

Vitamin-dependent epilepsies can have distinctive EEG abnormalities, including burst suppression or marked discontinuity, although these findings are not diagnostic by themselves.

Step 4 — If seizures remain unexplained/refractory

Think:

“Could this be a vitamin-dependent epilepsy?”

Step 5 — Consider a monitored pyridoxine trial

Especially when:

  • Etiology remains unexplained
  • Seizures are refractory
  • Clinical/EEG findings suggest B6-dependent epilepsy

This approach is supported by current ILAE neonatal seizure recommendations.

Step 6 — If pyridoxine fails

Consider:

PLP-dependent epilepsy → pyridoxal-5′-phosphate

and

Folinic-acid responsive epilepsy → folinic acid

under specialist guidance.

Step 7 — Send metabolic/genetic testing

Depending on availability:

  • Urine/plasma α-AASA
  • Pipecolic acid
  • PLP-related studies
  • Biotinidase activity
  • Lactate
  • Ammonia
  • Plasma amino acids
  • Acylcarnitine profile
  • Urine organic acids
  • CSF studies when indicated
  • Epilepsy/metabolic gene panel
  • Whole-exome/genome sequencing

Importantly, treatment should not necessarily be delayed until genetic confirmation when clinical suspicion is high.


16. High-yield comparison

DisorderGene/pathwayTypical presentationTreatment
Pyridoxine-dependent epilepsyALDH7A1Neonatal refractory seizuresPyridoxine
PNPO deficiencyPNPONeonatal/infantile refractory seizuresPLP
PLPBP deficiencyPLPBPNeonatal/infantile epilepsyPyridoxine/PLP
Folinic acid-responsive seizuresOften overlaps ALDH7A1-related diseaseNeonatal/infantile refractory seizuresFolinic acid
Biotinidase deficiencyBTDSeizures + hypotonia ± rash/alopeciaBiotin
Biotin-thiamine-responsive basal ganglia diseaseSLC19A3Encephalopathy + seizures ± dystonia/lactic acidosisBiotin + thiamine

17. The most important neonatal pearl

A neonate with refractory seizures of unexplained etiology should trigger consideration of pyridoxine-dependent epilepsy.

The important sequence is:

Unexplained neonatal seizures

Correct glucose/electrolytes + evaluate structural/infectious causes

Persistent/refractory seizures

Consider vitamin B6-dependent epilepsy

Monitored pyridoxine trial

If inadequate response → consider PLP

Consider folinic acid and other metabolic/cofactor-responsive disorders

Confirm with biochemical/genetic testing

This is particularly important because the treatment is relatively simple compared with the potential consequences of missing the diagnosis. The ILAE specifically recommends a pyridoxine trial in selected neonates with unexplained refractory seizures.


18. Take-home points

  1. Vitamin-responsive epilepsies are rare but potentially dramatically treatable causes of neonatal and infantile seizures.
  2. Pyridoxine-dependent epilepsy is the classic disorder to remember.
  3. ALDH7A1/antiquitin deficiency is the major cause of classical pyridoxine-dependent epilepsy.
  4. PNPO deficiency may respond to PLP rather than pyridoxine.
  5. A transient or incomplete pyridoxine response should not end the investigation.
  6. Folinic acid-responsive seizures should be considered in selected refractory cases.
  7. Biotinidase deficiency can cause seizures, hypotonia, rash, alopecia, and developmental problems—and is highly treatable.
  8. SLC19A3-related biotin-thiamine-responsive basal ganglia disease is another important treatable disorder, particularly when encephalopathy, lactic acidosis and basal ganglia MRI abnormalities coexist.
  9. High-dose IV pyridoxine can cause apnea and cardiorespiratory depression; administration requires appropriate monitoring and resuscitation capability.
  10. Do not wait for genetic confirmation before treating a strongly suspected vitamin-dependent epilepsy.

References

Major pediatric/neonatal textbooks

  1. Kliegman RM, St Geme JW, Blum NJ, Shah SS, Tasker RC, Wilson KM, eds. Nelson Textbook of Pediatrics. 22nd ed. Elsevier; 2023. Sections on neonatal seizures, epilepsy, and inborn errors of metabolism.
  2. Eichenwald EC, Hansen AR, Martin CR, Stark AR, eds. Cloherty and Stark’s Manual of Neonatal Care. 9th ed. Wolters Kluwer; 2022. Sections on neonatal seizures and metabolic disorders.
  3. Gleason CA, Juul SE, eds. Avery’s Diseases of the Newborn. 11th ed. Elsevier; 2024. Sections on neonatal neurologic disorders, seizures, and inborn errors of metabolism.
  4. Volpe JJ. Volpe’s Neurology of the Newborn. 7th ed. Elsevier; 2018. Chapters on neonatal seizures and metabolic/epileptic disorders.

Guidelines and primary/review literature

  1. Pressler RM, Cilio MR, Mizrahi EM, et al. Treatment of seizures in the neonate: Guidelines and consensus-based recommendations—Special report from the ILAE Task Force on Neonatal Seizures. Epilepsia. 2023.
  2. Stockler S, Plecko B, Gospe SM Jr, et al. Neonatal vitamin-responsive epileptic encephalopathies. Neuropediatrics. 2011.
  3. Coughlin CR, Tseng LA, et al. International consensus recommendations for the diagnosis and management of pyridoxine-dependent epilepsy. 2021.
  4. GeneReviews. Pyridoxine-Dependent Epilepsy – ALDH7A1. University of Washington, Seattle. Updated 2026.
  5. GeneReviews. Biotinidase Deficiency. University of Washington, Seattle. Updated 2026.
  6. GeneReviews. Biotin-Thiamine-Responsive Basal Ganglia Disease. University of Washington, Seattle. Updated 2025.
  7. Gallagher RC, Van Hove JLK, Scharer G, et al. Folinic acid-responsive seizures are identical to pyridoxine-dependent epilepsy. Ann Neurol. 2009;65(5):550-556.
  8. Inborn Errors of Metabolism in Pediatric Epilepsy. Pediatr Neurol. Review of vitamin/cofactor-responsive epilepsies.
  9. ILAE Task Force. Classification and diagnostic criteria for early-onset vitamin-dependent developmental and epileptic encephalopathies.

Editorial note

For a medical blog, I would not present the dosing section as a general prescription protocol. High-dose pyridoxine and PLP trials—particularly IV administration in neonates—should be performed in a monitored setting with respiratory support available. The exact treatment protocol should follow the neonatal unit’s guideline and pediatric neurology/metabolic specialist recommendations. The ILAE evidence base also acknowledges that much of the evidence for neonatal pyridoxine/PLP therapy is retrospective rather than from randomized trials.

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