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Please use this identifier to cite or link to this item: http://hdl.handle.net/20.500.12710/33727
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dc.contributor.authorSecu, Doina
dc.contributor.authorBlaniță, Daniela
dc.contributor.authorUșurelu, Natalia
dc.contributor.authorNicolescu, Alina
dc.contributor.authorDeleanu, Călin
dc.contributor.authorSacară, Victoria
dc.date.accessioned2026-10-06T07:54:21Z
dc.date.available2026-10-06T07:54:21Z
dc.date.issued2026
dc.identifier.citationSECU, Doina; Daniela BLANIȚĂ; Natalia UȘURELU; Alina NICOLESCU; Călin DELEANU and Victoria SACARĂ. Algorithmic approach to the diagnosis of mitochondrial disorders: integrating clinical, biochemical, and genomic data. Revista de Ştiinţe ale Sănătăţii din Moldova = Moldovan Journal of Health Sciences. 2026, vol. 13, nr. 3, pp. 11-18. ISSN 2345-1467. https://doi.org/10.52645/MJHS.2026.3.02en_US
dc.identifier.issn2345-1467
dc.identifier.urihttps://mjhs.md/api/media-documents/file/MJHS_13_3_2026_red.pdf
dc.identifier.urihttps://doi.org/10.52645/MJHS.2026.3.02
dc.identifier.urihttps://repository.usmf.md/handle/20.500.12710/33727
dc.description.abstractorders, making early diagnostic stratification essential. This study aimed to evaluate the performance of a stepwise molecular diagnostic algorithm integrating High-Resolution Melting qPCR screening and targeted sequencing in individuals suspected of mitochondrial pathology based on a Nijmegen Mitochondrial Disease Score (NMDS) ≥3. Materials and methods. The analysis included 240 patients with clinical suspicion of mitochondrial disease and an NMDS ≥3, all evaluated through a standardized clinical, biochemical, and instrumental assessment. Molecular testing followed a tiered workflow: initial qPCR-HRM screening for seven common mtDNA mutations, followed by targeted Sanger sequencing of mitochondrial genes, including POLG hotspot regions, in patients meeting predefined clinical and NMDS thresholds. For individuals subsequently identified with non-mitochondrial etiologies, next-generation sequencing approaches were performed in accredited external laboratories. Statistical evaluation relied on descriptive statistical methods and non-parametric comparative analyses. Results. Molecular analysis confirmed mitochondrial involvement in 37 patients (15.4%) and identified non-mitochondrial genetic disorders in 44 patients (18.3%), while 159 individuals (66.3%) remained without a definitive molecular diagnosis. Patients with mitochondrial involvement showed higher frequencies of severe neuromuscular dysfunction, developmental regression, ophthalmic manifestations including ophthalmoplegia, and cardiovascular involvement. By contrast, neurodevelopmental and behavioral impairments and dysmorphic features were more prevalent in non-mitochondrial and undiagnosed patients. Biochemically, elevated plasma lactate and hyperalaninemia were significantly more common among individuals with mitochondrial involvement. Neuroimaging findings in this group were characterized by cerebral and cerebellar atrophy and basal ganglia abnormalities. Consistently, NMDS values were markedly higher in patients with mitochondrial involvement, and their integration as threshold-based decision points within the stepwise diagnostic algorithm substantially enhanced diagnostic stratification, enabling more precise differentiation between mitochondrial involvement and alternative genetic etiologies. Conclusions. The structured algorithm integrating NMDS-based selection, qPCR-HRM screening, and targeted sequencing demonstrated effective stratification of patients with suspected mitochondrial disease, achieving a combined diagnostic rate of 33.7%. These findings support the utility of this tiered approach in distinguishing mitochondrial from non-mitochondrial genetic conditions and in optimizing molecular diagnostic workflows.en_US
dc.language.isoenen_US
dc.publisherInstituţia Publică Universitatea de Stat de Medicină şi Farmacie „Nicolae Testemiţanu” din Republica Moldovaen_US
dc.relation.ispartofRevista de Științe ale Sănătății din Moldova = Moldovan Journal of Health Sciencesen_US
dc.subjectmitochondrial diseaseen_US
dc.subjectNijmegen mitochondrial disease scoreen_US
dc.subjectqPCR-HRMen_US
dc.subjectmitochondrial mimicsen_US
dc.subjectSanger sequencingen_US
dc.subject.ddcUDC: 616-056.7-078+575.1+576.311.347en_US
dc.titleAlgorithmic approach to the diagnosis of mitochondrial disorders: integrating clinical, biochemical, and genomic dataen_US
dc.typeArticleen_US
Appears in Collections:Revista de Științe ale Sănătății din Moldova : Moldovan Journal of Health Sciences 2026 Vol. 13, Issue 3



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