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Savchenko, E.

Publications and source records attributed to Savchenko, E..

2 recordsLinked to original sources

A convergent metabolic-kinase signaling axis links Parkinson s disease and multiple system atrophy

Parkinsons disease (PD) and multiple system atrophy (MSA) are alpha-synucleinopathies with overlapping clinical phenotypes but distinct cellular pathological hallmarks. Whether these disorders share upstream molecular changes beyond alpha-synuclein aggregation remains unresolved. Here, we generated induced pluripotent stem cell (iPSC)-derived midbrain spheroids containing dopaminergic neurons from individuals with monogenic PD, idiopathic PD, MSA, and controls, and applied integrated proteomics, metabolomics, and phosphoproteomics to define disease-associated biochemical programs and their regulatory architecture. Despite their distinct etiologies, PD and MSA spheroids displayed highly concordant molecular remodeling, with cellular metabolism emerging as the dominant shared disturbance. Network analyses identified coordinated changes in central carbon metabolism, oxidative phosphorylation, branched-chain amino acid catabolism, pantothenate/CoA metabolism, and lipid remodeling, coupled to phosphorylation-driven rewiring of MAPK, mTOR, AMPK, PKA/PKC, and second-messenger kinase programs. Importantly, these metabolic and signaling axes were also prominent in postmortem substantia nigra from PD and MSA donors, supporting conservation between patient-derived models and postmortem brain tissue. Together, these data identify metabolic dysregulation as a unifying molecular feature across PD and MSA and suggesting phosphorylation-linked metabolic control nodes as candidate entry points for therapeutic intervention. HighlightsO_LIPD and MSA exhibit molecular programs that extend beyond alpha-synuclein pathology. C_LIO_LIProteomics identifies metabolism as the dominant shared disease axis across PD and MSA. C_LIO_LIMetabolomics resolves a coupled glucose-TCA-BCAA-CoA-lipid remodeling program in PD and MSA. C_LIO_LIPhosphorylation-centered kinase networks link signaling rewiring to metabolic bottlenecks. C_LIO_LIShared metabolic features are conserved between patient iPSC-derived midbrain spheroids and substantia nigra. C_LI Graphic abstract (generated using BioRender) O_FIG O_LINKSMALLFIG WIDTH=191 HEIGHT=200 SRC="FIGDIR/small/731777v1_ufig1.gif" ALT="Figure 1"> View larger version (77K): org.highwire.dtl.DTLVardef@1748e51org.highwire.dtl.DTLVardef@12b8f91org.highwire.dtl.DTLVardef@de8893org.highwire.dtl.DTLVardef@1d89ea1_HPS_FORMAT_FIGEXP M_FIG C_FIG

neuroscience↗

Rapid and efficient generation of human oligodendrocytes myelinating adult human cortical neurons

Intracerebral transplantation of stem cell-derived oligodendrocytes (OLs) is a promising strategy for repairing demyelinated human brain tissue, the main hallmark of white-matter disorders. However, several challenges hinder clinical translation, including slow or inefficient production of human OLs with current protocols, and difficulty in generating pure OL grafts capable of remyelinating injured neural circuits. Here, we present a robust, highly reproducible method for the rapid and efficient production of human OLs from human induced pluripotent stem cell derived long-term neuroepithelial-like stem (lt-NES) cells. Induced expression of the lineage-defining transcription factors SOX10 and OLIG2 in lt-NES cells is sufficient to generate a population of 80% OLs within 7 days. Importantly, these cells survive, differentiate and form functional OL-exclusive grafts when transplanted into adult human brain slices ex vivo, constituting the first demonstration that an OL-exclusive graft with robust myelination capacity can be generated in a clinically relevant allogeneic environment. This advance marks a significant step towards the clinical application of oligodendrocyte replacement therapy for human demyelinating disorders.

neuroscience↗