De novo mutations of the ATP6V1A gene cause developmental encephalopathy with epilepsy

Anna Fassio1,2, Alessandro Esposito1,2, Mitsuhiro Kato3

  • 1Department of Experimental Medicine, University of Genoa, Genoa, Italy.

Insights

De novo mutations in ATP6V1A, encoding a V-type proton ATPase subunit, cause developmental encephalopathy with epilepsy. These mutations disrupt lysosomal homeostasis and neuronal connectivity, impacting brain development.

Area of Science:

  • Neuroscience
  • Genetics
  • Cell Biology

Background:

  • V-type proton ATPase (v-ATPase) is crucial for pH homeostasis and neuronal synapse function.
  • Mutations in ATP6V1A, encoding the v-ATPase A subunit, are linked to developmental encephalopathy with epilepsy.

Purpose of the Study:

  • To investigate the impact of de novo ATP6V1A mutations on v-ATPase function and neuronal development.
  • To elucidate the pathomechanism underlying developmental encephalopathy associated with ATP6V1A mutations.

Main Methods:

  • Whole exome sequencing identified mutations in four patients.
  • Functional studies in HEK293T cells and patient lymphoblasts analyzed protein expression, degradation, and organelle pH.
  • Neuronal cultures assessed effects on neurite elongation and synaptic connectivity.

Main Results:

  • Two distinct mutation types were identified: gain-of-function (p.Asp349Asn) with increased proton pumping and loss-of-function (p.Asp100Tyr) with reduced expression and lysosomal defects.
  • Both mutations impaired neurite elongation and reduced excitatory inputs in rat hippocampal neurons.
  • Altered lysosomal homeostasis was observed in both mutation types.

Conclusions:

  • De novo heterozygous ATP6V1A mutations cause developmental encephalopathy with epilepsy through disrupted lysosomal homeostasis and neuronal connectivity.
  • These findings highlight a novel role for v-ATPase in neuronal development and synaptic function.

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