bioRxiv Science⌕ Search

Biology subjects

Edmondson, A. C.

Publications and source records attributed to Edmondson, A. C..

2 recordsLinked to original sources

Novel mouse model reveals neurodevelopmental origin of PMM2-CDG brain pathology

Congenital disorders of glycosylation (CDG) are a group of neurogenetic conditions resulting from disruptions in the cellular glycosylation machinery. The majority of CDG patients have compound heterozygous pathogenic variants in the phosphomannomutase 2 (PMM2) gene. Individuals with PMM2-CDG exhibit multi-systemic symptoms, prominently featuring neurological deficits with nearly all patients exhibiting cerebellar hypoplasia and ataxia. To overcome embryonic lethality caused by whole body knock-out of Pmm2 and mimic patient-related compound heterozygous pathogenic variants, we paired a Pmm2 flox allele (Pmm2fl) with a catalytically inactive knock-in allele (Pmm2R137H), commonly present in PMM2-CDG patients. Mice with post-mitotic loss of PMM2 from neurons or astrocytes are indistinguishable from unaffected littermates, including in a broad battery of neurological assessments. In contrast, removal of PMM2 from embryonic neural precursor cells leads to cerebellar hypoplasia, ataxia, seizures, and early lethality. Comprehensive multi-omics profiling, including metabolomics, glycomics, single-cell transcriptomics, proteomics, and glycoproteomics, reveal widespread molecular disturbances throughout the brain, with the cerebellum showing the most pronounced disruption. These findings highlight the heightened dependency of the developing cerebellum on intact N-glycosylation, aligning with clinical observations in PMM2-CDG patients. Importantly, glycoproteomic alterations identified in our mouse model are corroborated in PMM2-CDG patient post-mortem cerebellar tissue, underscoring the translational relevance of our findings and implicating impaired synaptic transmission as a key pathogenic mechanism.

neuroscience↗

Neuronal loss of Galnt2 Impairs O-glycosylation and Leads to Neurobehavioral Deficits Mimicking GALNT2-CDG

GALNT2-CDG is a multi-system genetic disorder due to biallelic pathogenic mutations in GALNT2, which encodes a ubiquitously expressed Golgi-localized glycosyltransferase that initiates mucin-type O-glycosylation. Affected individuals exhibit dysmorphic facial features, short stature, decreased HDL-C, and notable impairments in brain function. GALNT2-CDG patients show global developmental delay without speech development, childhood epilepsy, autistic-like features, and white-matter brain abnormalities. The extent of O-glycosylation in brain development and function remains poorly understood. To address this question, we selectively ablated Galnt2 from pan-neuronal cells in the brain and found that conditional knockout mice exhibit deficits across numerous behavioral domains, including locomotion, motor coordination, sociability, learning, and memory, as well as experience spontaneous seizures, recapitulating characteristic neurological manifestations of GALNT2-CDG. Given the catalytic activity of GALNT2 to initiate mucin-type O-glycosylation, we used glycoproteomics to identify disrupted O-glycosylation in synaptosomes purified from cortical tissues. We ascertained a non-redundant, isoform-specific contribution of GALNT2 to the cortical synaptosomal O-glycoproteome, identifying candidate glycoproteins and disrupted O-glycosites that accompany behavioral abnormalities in knockout mice. These findings demonstrate functional impact of O-glycosylation in neurons, implicating roles of O-glycosylation in diverse molecular and cellular pathways related to neuronal function and provide new opportunities to gain insights into the neurological pathophysiology of GALNT2-CDG.

neuroscience↗