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Published on: February 24, 2021
Inborn errors of purine and pyrimidine metabolism
1Department of Metabolic Diseases, Endocrinology and Diabetology, The Children's Memorial Health Institute, Al. Dzieci Polskich 20, 04-730, Warsaw, Poland. ajurecka@gmail.com
Abstract:
Genetic disorders of purine and pyrimidine (PP) metabolism are under-reported and infrequently mentioned in the general literature, as well as in reviews dedicated to other inborn errors of metabolism. Owing to limited awareness, relatively recent recognition, as well as considerable phenotypic variation, these disorders may often be misdiagnosed or remain undiagnosed. Disorders that arise as a result of dysfunction in PP metabolism represent some of the most challenging diagnostic problems in medicine. In addition to their low prevalence rates, they also present with extremely variable signs and symptoms. They may affect any system in a variety of manners, and often mimic other, more recognizable disorders. The diagnostic problem is compounded by the fact that some biochemically affected patients are symptom-free. Rapidly evolving laboratory techniques such as high-performance liquid chromatography coupled to tandem mass spectrometry are now well established as the preferred method for detection for these defects, but currently the most important step in diagnosis consists of suspecting the disorder. Diagnosis is vital because genetic counselling can be provided and, in some cases, specific treatment can be offered that may slow or even reverse clinical symptoms. If undiagnosed, these disorders can be devastating to patients and their families, resulting in early death or institutionalization for the rest of patient's life. This article describes the current state of knowledge about inborn errors of purine and pyrimidine metabolism, focusing on the varying clinical presentations, the laboratory findings and discusses indications for selective screening for these disorders.
Insights
Genetic disorders of purine and pyrimidine metabolism are often misdiagnosed due to varied symptoms and low awareness. Early diagnosis is crucial for genetic counseling and potential treatment to prevent severe outcomes.
Area of Science:
- Biochemistry
- Genetics
- Metabolic Disorders
Background:
- Genetic disorders of purine and pyrimidine (PP) metabolism are under-reported and face diagnostic challenges.
- Limited awareness and significant phenotypic variation contribute to misdiagnosis or failure to diagnose.
- These disorders present complex diagnostic problems due to low prevalence and highly variable symptoms affecting multiple systems.
Purpose of the Study:
- To review the current knowledge on inborn errors of purine and pyrimidine metabolism.
- To highlight the varying clinical presentations and laboratory findings associated with these disorders.
- To discuss the indications for selective screening for purine and pyrimidine metabolism defects.
Main Methods:
- Review of current literature on genetic disorders of purine and pyrimidine metabolism.
- Focus on clinical presentations, laboratory findings, and diagnostic challenges.
- Discussion of diagnostic techniques and screening indications.
Main Results:
- Purine and pyrimidine metabolism disorders are challenging to diagnose, often mimicking other conditions.
- High-performance liquid chromatography coupled to tandem mass spectrometry are preferred detection methods.
- Suspecting the disorder remains the most critical diagnostic step.
Conclusions:
- Accurate diagnosis is vital for genetic counseling and timely, potentially life-altering treatment.
- Undiagnosed disorders can lead to severe, lifelong consequences including early death or institutionalization.
- Increased awareness and understanding of these metabolic defects are essential for improved patient outcomes.
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