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Open access Sep 2026

Mice with the mono-allelic p.R37H Dhdds variant show aberrant glycosylation and interneuron deficits.

Developmental delay and seizures with or without movement abnormalities (OMIM 617836) caused by heterozygous pathogenic variants in the DHDDS gene (DHDDS-CDG) is a rare genetic disease that belongs to the progressive encephalopathy spectrum. It results in cognitive delay in affected children, accompanied by myoclonus, seizures, ataxia and tremor, which worsens over time. DHDDS encodes a subunit of a DHDDS/NUS1 cis-prenyltransferase (cis-PTase), a branch point enzyme of the mevalonate pathway essential for N-linked glycosylation. We describe the first mouse model of this disease, DhddsR37H+/- strain, heterozygous for the human recurrent de novo c.110G>A:p.R37H pathogenic variant. DhddsR37H+/- mice present with seizures, myoclonus and memory deficits associated with reduced density or/and maturity of inhibitory interneurons in the cortex. Multiomics analyses of mouse CNS tissues, together with the enzymatic/structural characterization of the R37H DHDDS mutant protein, reveal that the variant produces a catalytically inactive enzyme and results in a brain dolichol deficit, aberrant glycosylation of brain glycoproteins, including those involved in synaptic transmission and major perturbations in the CNS proteome and lipidome. Acetazolamide, a carbonic anhydrase inhibitor clinically approved for treatment of glaucoma, epilepsy, and intracranial hypertension, and successfully used "off-label" to treat genetic movement disorders, reduces seizure susceptibility to pentylenetetrazol in DhddsR37H+/- mice, suggesting potential therapeutic value of using this drug in human DHDDS-CDG patients. Together, our results define cis-PTase as a master regulator of CNS development and function and establish that its monoallelic debilitating variants cause a novel congenital disorder of glycosylation associated with aberrant levels of neuronal proteins and lipids.

Afitz Da Silva, Merrick S. Fallah, Samuel Boris Tene Tadoum et al. · 0 citations
Open access Jul 2026

A multipurpose probe for identification and mechanistic analysis of prenylation inhibitors.

Protein prenylation is a critical post-translational modification that controls many cancer-related signalling pathways and represents an important therapeutic target currently lacking effective pharmacological agents. Here, we establish the fluorescent prenyl diphosphate analogue MANT-O-GPP as a multipurpose probe for simultaneous analysis of ligand binding and catalysis in geranylgeranyltransferase I (GGTaseI) and farnesyltransferase (FTase). Using a tryptophan-to-MANT-O-GPP FRET assay, we found that MANT-O-GPP bound to GGTaseI and FTase with high affinity and reported occupancy of the isoprenoid donor site, as confirmed by displacement with the native substrates. In parallel, a FRET-based activity assay employing CFP-tagged protein substrates enabled direct monitoring of prenyl transfer and product formation. Notably, the known inhibitor L-778123 blocked catalysis without displacing MANT-O-GPP, demonstrating that the combined platform distinguishes prenyl-site competitors from inhibitors acting through the adjacent protein-substrate region. This fluorescence-based system provides a practical, mechanistically informative, and high-throughput-compatible platform for prenyltransferase inhibitor discovery.

Ruba Yehia, Moshe Giladi, Y. Haitin · 0 citations

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