HPDL Biallelic Variants in Cerebral Palsy and Childhood-Onset Hereditary Spastic Paraplegia: Human and Zebrafish

Serena Mero1,2, Sara Satolli1,3, Daniele Galatolo1

  • 1Molecular Medicine, IRCCS Fondazione Stella Maris, Pisa, Italy.

Insights

Genetic variants in the 4-hydroxyphenylpyruvate dioxygenase-like protein (HPDL) cause childhood cerebral palsy-like spastic paraparesis. Loss of HPDL function impairs cellular metabolism and neurodevelopment, impacting energy homeostasis.

Area of Science:

  • Genetics
  • Neuroscience
  • Metabolomics

Background:

  • The human 4-hydroxyphenylpyruvate dioxygenase-like protein (HPDL) is implicated in hereditary spastic paraplegia (HSP), neurogenesis, and energy metabolism.
  • The role and prevalence of HPDL variants in childhood-onset motor impairments are not well understood.

Purpose of the Study:

  • To characterize new patients with biallelic HPDL variants.
  • To investigate the in vitro and in vivo functions of HPDL.

Main Methods:

  • Exome sequencing in 210 patients with HSP, cerebral palsy (CP), or neurodevelopmental disorders.
  • Functional studies using patient-derived fibroblasts and hpdl-F0 zebrafish larvae.
  • Analysis of plasma glial fibrillary acidic protein and serum metabolomics.

Main Results:

  • Identified 14 patients with reduced HPDL expression and biallelic HPDL variants.
  • Observed elevated glial fibrillary acidic protein and altered metabolite levels (reduced 4-hydroxybenzeneacetic acid) in patients.
  • Demonstrated impaired mitochondrial respiration, increased reactive oxygen species in patient cells, and neurodevelopmental/epilepsy-like phenotypes in hpdl-F0 zebrafish.
  • Showed that 4-hydroxymandelic acid (4HMA) bypass therapy rescued disease phenotypes in cells and zebrafish.

Conclusions:

  • HPDL variants are a cause of CP-like spastic paraparesis in children.
  • Loss of HPDL function disrupts cellular oxidative metabolism, impacting neurodevelopment and energy homeostasis.
  • HPDL plays a critical role in maintaining cellular energy balance and normal neurological function.
Abstract