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Published on: February 7, 2018
Oxidative stress in phenylketonuria-evidence from human studies and animal models, and possible implications for
Vanessa Trindade Bortoluzzi1, Carlos Severo Dutra Filho2, Clovis Milton Duval Wannmacher2
1Departamento de Bioquímica, Instituto de Ciências Básicas da Saúde, Universidade Federal do Rio Grande do Sul, Rua Ramiro Barcelos 2600-Anexo, Porto Alegre, RS, CEP 90.035-003, Brazil. vbortoluzzi@gmail.com.
Insights
Phenylketonuria (PKU), a metabolic disorder, involves oxidative stress impacting cell function. Research suggests this stress may disrupt redox signaling, offering new insights into PKU
Area of Science:
- Biochemistry
- Metabolic Disorders
- Neuroscience
Background:
- Phenylketonuria (PKU) is a common inborn error of amino acid metabolism.
- Historically, untreated PKU led to severe intellectual disability and neurological issues.
- Modern neonatal screening and early diet therapy have significantly improved outcomes, though psychiatric symptoms persist in non-compliant patients.
Purpose of the Study:
- To review the evidence linking oxidative stress to PKU pathogenesis.
- To explore the role of oxidative stress in PKU neuropathophysiology.
- To investigate the potential impact of oxidative stress on redox signaling in PKU.
Main Methods:
- Review of existing literature on oxidative damage and antioxidant defenses in PKU.
- Analysis of data from patients, animal models, and in vitro experiments.
- Discussion of the clinical significance of oxidative stress findings.
Main Results:
- Evidence indicates oxidative damage and compromised antioxidant defenses in PKU.
- Studies suggest phenylalanine may influence metabolic pathways via oxidative stress.
- Few studies have explored the disturbance of redox signaling in PKU.
Conclusions:
- Oxidative stress is implicated in PKU pathogenesis.
- Further research is needed to understand how oxidative stress modulates metabolic pathways and redox signaling in PKU.
- Oxidative stress may mediate phenylalanine's effects on enzyme activity in PKU.
Abstract:
Phenylketonuria (PKU) is one of the commonest inborn error of amino acid metabolism. Before mass neonatal screening was possible, and the success of introducing diet therapy right after birth, the typical clinical finds in patients ranged from intellectual disability, epilepsy, motor deficits to behavioral disturbances and other neurological and psychiatric symptoms. Since early diagnosis and treatment became widespread, usually only those patients who do not strictly follow the diet present psychiatric, less severe symptoms such as anxiety, depression, sleep pattern disturbance, and concentration and memory problems. Despite the success of low protein intake in preventing otherwise severe outcomes, PKU's underlying neuropathophysiology remains to be better elucidated. Oxidative stress has gained acceptance as a disturbance implicated in the pathogenesis of PKU. The conception of oxidative stress has evolved to comprehend how it could interfere and ultimately modulate metabolic pathways regulating cell function. We summarize the evidence of oxidative damage, as well as compromised antioxidant defenses, from patients, animal models of PKU, and in vitro experiments, discussing the possible clinical significance of these findings. There are many studies on oxidative stress and PKU, but only a few went further than showing macromolecular damage and disturbance of antioxidant defenses. In this review, we argue that these few studies may point that oxidative stress may also disturb redox signaling in PKU, an aspect few authors have explored so far. The reported effect of phenylalanine on the expression or activity of enzymes participating in metabolic pathways known to be responsive to redox signaling might be mediated through oxidative stress.
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