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.
Background:
The human 4-hydroxyphenylpyruvate dioxygenase-like protein (HPDL) has been linked to hereditary spastic paraplegia (HSP) with potential roles in neurogenesis and energy metabolism. However, the prevalence of HPDL variants in childhood-onset motor impairments remains unclear.
Objective:
This study set out to characterize new patients with biallelic HPDL variants, and to explore the role of this protein both in vitro and in vivo.
Methods:
Exome sequencing was performed on 210 patients with HSP, diplegic cerebral palsy (CP), or moderate/severe neurodevelopmental disorders. To understand the role of HPDL, we performed functional studies in patient-derived fibroblasts and crispant (hpdl-F0) zebrafish larvae.
Results:
We identified 14 patients who exhibited reduced HPDL protein expression in cultured skin fibroblasts. Children with HPDL variants had elevated plasma glial fibrillary acidic protein levels, and serum metabolomics revealed reduced levels of 4-hydroxybenzeneacetic acid, a precursor of 4-hydroxymandelic acid (4HMA) and 4-hydroxybenzoic acid (4HB), with disruptions in metabolic pathways, including the Krebs cycle. The involvement of HPDL in energy metabolism was supported by altered mitochondrial respiration and increased cytosolic reactive oxygen species in human cells. Investigations into hpdl-F0 revealed neurodevelopmental abnormalities and epilepsy-like behavior, likely due to mitochondrial dysfunction, mirroring the phenotypes observed in children. Bypass therapy with 4HMA rescued the disease phenotypes in cells and hpdl-F0 crispant, while 4HB did so only partially in fish.
Conclusions:
HPDL variants are responsible for CP-like spastic paraparesis in children. Loss of HPDL function disrupts cellular oxidative metabolism, highlighting its role in neurodevelopment and energy homeostasis, both in vitro and in vivo. © 2025 International Parkinson and Movement Disorder Society.
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