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Rodrigo T. Starosta

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Open access Aug 2026

Metabolomic, lipidomic, and N-glycomic analyses of a human cell model of Krabbe disease reveal treatable deficits in glycosylation and serine-ceramide metabolism

Krabbe disease is a rare autosomal recessive lysosomal disease caused by deficiency of galactocerebrosidase (GALC), leading to accumulation of galactosylceramide and formation of the toxic metabolite galactosylsphingosine (psychosine). While psychosine accumulation is well-established as a primary pathogenic mechanism, the broader metabolic consequences of GALC deficiency remain incompletely understood. In this study, we used stable isotope tracing to comprehensively characterize metabolic perturbations in a human oligodendrocellular Krabbe disease model. This approach revealed elevated de novo ceramide synthesis in GALC knock-out cells, characterized by increased incorporation of glucose-derived serine into ceramide biosynthetic pathways. This enhanced ceramide production was amenable to pharmacological intervention by tezacaftor, an inhibitor of sphingolipid Δ4-desaturate (DEGS); tezacaftor administration also normalized psychosine levels, raising the possibility of its use as substrate reduction therapy. Additionally, we identified significant disruption of UDP-hexose metabolism, manifesting as an overabundance of truncated and hypogalactosylated glycans. These findings suggest impaired protein glycosylation as a previously unrecognized pathogenic mechanism in Krabbe disease. Our findings reveal novel metabolic dysregulation in Krabbe disease extending beyond established psychosine toxicity. The identification of enhanced de novo ceramide synthesis presents a new therapeutic target, while the discovery of galactose-deficient glycosylation defects supports galactose supplementation as a potential therapeutic intervention. These metabolic insights provide new mechanistic understanding and therapeutic opportunities for this devastating neurodegenerative disorder.

Rodrigo T. Starosta, Hannah N. Saeger, Johanna ten Hoeve et al. · 0 citations
Jul 2026

Delineation and Phenotypic Expansion of TOP3A-Related Mitochondrial Disease in Childhood.

TOP3A-related mitochondrial disease is a rare autosomal recessive primary mitochondrial cytopathy caused by loss-of-function of the mitochondrial-specific isoform of topoisomerase 3α, leading to multiple mitochondrial DNA deletions and mitochondrial DNA depletion. This condition has been associated with two different phenotypes. Very young patients present with severe growth faltering and early mortality, that is consistent with a Bloom syndrome-like disorder. Adult-onset chronic progressive external ophthalmoplegia, myopathy, and sensory ataxia, with rare hypertrophic cardiomyopathy (a MIRAS-like phenotype), reflects a mitochondrial disorder. In this article, we expand the phenotype spectrum of TOP3A-related mitochondrial disease with a mitochondrial childhood onset form and present four previously unreported patients, including the outcomes of heart transplantation for three patients. Histopathological, electron microscopical, biochemical, and molecular characterization of muscle and heart tissue indicated mitochondrial dysfunction with combined complex deficiency associated with a mitochondrial DNA maintenance disorder primarily expressed in the heart. Heart transplantation was successful in patients with TOP3A-related mitochondrial disease that presented with cardiomyopathy in childhood, although there is slowly progressive neurological disease. In childhood, TOP3A-related disease presents with a combination of developmental delays, sensorineural hearing loss, cardiomyopathy with rhythm abnormalities, stroke-like episodes, and Leigh-like phenotype, and, in some, epilepsy. These mitochondrial phenotypes are different from the infantile Bloom-like syndrome and the adult-onset form.

Rodrigo T. Starosta, Marisa W Friederich, Graeme Preston et al. · 1 citation