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Pyridox (am) Ine 5'-phosphate Oxidase Deficiency Induces Seizures in Drosophila Melanogaster

Overview
Journal Hum Mol Genet
Date 2019 Jul 2
PMID 31261385
Citations 6
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Abstract

Pyridox (am) ine 5'-phosphate oxidase (PNPO) is a rate-limiting enzyme in converting dietary vitamin B6 (VB6) to pyridoxal 5'-phosphate (PLP), the biologically active form of VB6 and involved in the synthesis of neurotransmitters including γ-aminobutyric acid (GABA), dopamine, and serotonin. In humans, PNPO mutations have been increasingly identified in neonatal epileptic encephalopathy and more recently also in early-onset epilepsy. Till now, little is known about the neurobiological mechanisms underlying PNPO-deficiency-induced seizures due to the lack of animal models. Previously, we identified a c.95 C>A missense mutation in sugarlethal (sgll)-the Drosophila homolog of human PNPO (hPNPO)-and found mutant (sgll95) flies exhibiting a lethal phenotype on a diet devoid of VB6. Here, we report the establishment of both sgll95 and ubiquitous sgll knockdown (KD) flies as valid animal models of PNPO-deficiency-induced epilepsy. Both sgll95 and sgll KD flies exhibit spontaneous seizures before they die. Electrophysiological recordings reveal that seizures caused by PNPO deficiency have characteristics similar to that in flies treated with the GABA antagonist picrotoxin. Both seizures and lethality are associated with low PLP levels and can be rescued by ubiquitous expression of wild-type sgll or hPNPO, suggesting the functional conservation of the PNPO enzyme between humans and flies. Results from cell type-specific sgll KD further demonstrate that PNPO in the brain is necessary for seizure prevention and survival. Our establishment of the first animal model of PNPO deficiency will lead to better understanding of VB6 biology, the PNPO gene and its mutations discovered in patients, and can be a cost-effective system to test therapeutic strategies.

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References
1.
Xue J, Chang X, Zhang Y, Yang Z . Novel phenotypes of pyridox(am)ine-5'-phosphate oxidase deficiency and high prevalence of c.445_448del mutation in Chinese patients. Metab Brain Dis. 2017; 32(4):1081-1087. DOI: 10.1007/s11011-017-9995-2. View

2.
Waymire K, Mahuren J, Jaje J, Guilarte T, Coburn S, Macgregor G . Mice lacking tissue non-specific alkaline phosphatase die from seizures due to defective metabolism of vitamin B-6. Nat Genet. 1995; 11(1):45-51. DOI: 10.1038/ng0995-45. View

3.
Jaeger B, Abeling N, Salomons G, Struys E, Simas-Mendes M, Geukers V . Pyridoxine responsive epilepsy caused by a novel homozygous PNPO mutation. Mol Genet Metab Rep. 2016; 6:60-3. PMC: 4789384. DOI: 10.1016/j.ymgmr.2016.01.004. View

4.
Chi W, Zhang L, Du W, Zhuang X . A nutritional conditional lethal mutant due to pyridoxine 5'-phosphate oxidase deficiency in Drosophila melanogaster. G3 (Bethesda). 2014; 4(6):1147-54. PMC: 4065258. DOI: 10.1534/g3.114.011130. View

5.
Di Salvo M, Mastrangelo M, Nogues I, Tolve M, Paiardini A, Carducci C . Biochemical data from the characterization of a new pathogenic mutation of human pyridoxine-5'-phosphate oxidase (PNPO). Data Brief. 2018; 15:868-875. PMC: 5779537. DOI: 10.1016/j.dib.2017.10.032. View