A Toxic Tau-PFKFB3 Circuit Reduces F2,6BP Levels and Drives Neurodegeneration
Mandal, S. M.; Chakraborty, A.; Shahabi, S.; Mankevich, M.; Povo-Retana, A.; Biswas, T.; Sanchez-Garcia, S.; Sreenivasa Murthy, S. G. S.; Yang, L. Z.; Herdy, J.; Mertens, J.; Gage, F. H.; Schlachetzki, J. C.; Krishnan, B.; Bosca, L.; Hazra, T.; Ghosh, G.
Show abstract
Alzheimers disease (AD) and related dementias are progressive neurodegenerative disorders manifested by aggregation of Tau and Amyloid beta (A{beta}). Emerging evidence suggests that metabolic dysregulation contributes to AD pathogenesis, yet how metabolic alterations interface with neuronal integrity remains unclear. Here, we identify dysfunction in PFKFB3-F2,6BP (fructose-2,6-bisphosphate) metabolic axis as a key feature of AD. We show that pathological Tau aggregates aberrantly sequester PFKFB3, limiting its activity and resulting in F2,6BP depletion. F2,6BP exerts protective effects through multiple convergent mechanisms: (i) direct activation of polynucleotide kinase 3-phosphatase (PNKP) to facilitate DNA strand break repair; (ii) transcriptional upregulation of the protein phosphatase 2A catalytic subunit (PP2CA) to limit Tau phosphorylation; (iii) stabilization of PFKFB3 to diminish its sequestration into aggregates; and (iv) direct inhibition of Tau aggregation. These findings establish F2,6BP as a central node linking metabolic regulation to both genomic stability and proteostasis in AD. Importantly, exogenous F2,6BP supplementation rescues multiple pathological features across diverse model systems, including induced neuronal cell lines (iN), primary neurons, organotypic hippocampal slice cultures, and in a Drosophila model of AD. These findings redefine F2,6BP as a metabolite that directly coordinates genome maintenance and proteostasis in neurons. Overall, this study identifies the PFKFB3-F2,6BP axis as a central driver of AD pathogenesis and a promising therapeutic target. HighlightsO_LITau aggregates sequester PFKFB3 depletes neuronal F2,6BP C_LIO_LIF2,6BP links metabolism to DNA repair and Tau proteostasis C_LIO_LIF2,6BP activates PNKP and upregulates PP2A to counter Tau pathology C_LIO_LIF2,6BP supplementation rescues AD phenotypes across models C_LI
Matching journals
The top 8 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- SETD7-mediated lysine monomethylation is abundant on non-hyperphosphorylated nuclear Tau 97%
- β-Amyloid Induces Microglial Expression of GPC4 and APOE Leading to Increased Neuronal Tau Pathology and Toxicity 97%
- A Trem2*R47H mouse model without cryptic splicing drives age- and disease-dependent tissue damage and synaptic loss in response to plaques 96%
Similar papers in this journal
- Aβ oligomers trigger necroptosis-mediated neurodegeneration via microglia activation in Alzheimer's disease. 96%
- Divergent and Convergent TMEM106B Pathology in Murine Models of Neurodegeneration and Human Disease 96%
- Cathepsin B abundance, activity and microglial localisation in Alzheimer's disease-Down syndrome and early onset Alzheimer's disease; the role of elevated cystatin B 96%
Similar papers in this journal
- DnaJC7 specifically regulates tau seeding 97%
- Downregulation of Dickkopf-3, a Wnt antagonist elevated in Alzheimer's disease, restores synapse integrity and memory in a disease mouse model 97%
- Aβ-driven nuclear pore complex dysfunction alters activation of necroptosis proteins in a mouse model of Alzheimer's Disease 96%
Similar papers in this journal
- Genome-wide association study and functional validation implicates JADE1 in tauopathy 97%
- TMEM106B coding variant is protective and deletion detrimental in a mouse model of tauopathy 97%
- Dysregulated coordination of MAPT exon 2 and exon 10 splicing underlies different tau pathologies in PSP and AD 96%
Similar papers in this journal
- A peptide inhibitor of Tau-SH3 interactions ameliorates amyloid-β toxicity 96%
- Extracellular tau clearance is governed by its aggregation state and independent of microglial activation by LPS and IFN-γ 96%
- Tunable Tau Expression in C. elegans Neurons Reveals that Early-AD Tau Phosphorylation Selectively Impacts Behavior and Mitochondrial Quality Control 95%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.