ArticleCell death & disease2024
Reduction of spermine synthase enhances autophagy to suppress Tau accumulation.
Article in Cell death & disease, 2024. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 9 papers.
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Who cites it
9 citing papers in PubMed.
- Metabolic alterations in Snyder-Robinson syndrome lymphoblasts are ameliorated by phenylbutyrate treatment.Molecular genetics and metabolism · 2026Article
- Serum amino acid levels are associated with brain hypometabolism in patients across the Alzheimer's disease continuum.IBRO neuroscience reports · 2026Article
- Polyamine Metabolism in Brain Health and Disease.Neuropharmacology and therapy · 2026Article
- Spermine synthase in Snyder-Robinson syndrome and cancer.Molecular biology reports · 2025Review
- Role of Glyoxalase in Astrocytes' Supportive Function Under Hyperglycemic Conditions: Aminoguanidine and Kir4.1 Channel Recovery.Brain sciences · 2025Article
- Age-Dependent Redistribution of the Life-Important Enzyme in the Retina: Adult Müller Glial Cells' Endfeet Lack Spermine Synthase Expression.Biomolecules · 2025Article
- G1 and G2 ApolipoproteinL1 modulate macrophage inflammation and lipid accumulation through the polyamine pathway.bioRxiv : the preprint server for biology · 2025Article
- Regulation of proteostasis by sleep through autophagy inLife science alliance · 2024Article
- A Bis(Acridino)-Crown Ether for Recognizing Oligoamines in Spermine Biosynthesis.Molecules (Basel, Switzerland) · 2024Article
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Authors and funding
8 authors.
Funding
Abstract
Precise polyamine metabolism regulation is vital for cells and organisms. Mutations in spermine synthase (SMS) cause Snyder-Robinson intellectual disability syndrome (SRS), characterized by significant spermidine accumulation and autophagy blockage in the nervous system. Emerging evidence connects polyamine metabolism with other autophagy-related diseases, such as Tauopathy, however, the functional intersection between polyamine metabolism and autophagy in the context of these diseases remains unclear. Here, we altered SMS expression level to investigate the regulation of autophagy by modulated polyamine metabolism in Tauopathy in Drosophila and human cellular models. Interestingly, while complete loss of Drosophila spermine synthase (dSms) impairs lysosomal function and blocks autophagic flux recapitulating SRS disease phenotype, partial loss of dSms enhanced autophagic flux, reduced Tau protein accumulation, and led to extended lifespan and improved climbing performance in Tauopathy flies. Measurement of polyamine levels detected a mild elevation of spermidine in flies with partial loss of dSms. Similarly, in human neuronal or glial cells, partial loss of SMS by siRNA-mediated knockdown upregulated autophagic flux and reduced Tau protein accumulation. Importantly, proteomics analysis of postmortem brain tissue from Alzheimer's disease (AD) patients showed a significant albeit modest elevation of SMS level. Taken together, our study uncovers a functional correlation between polyamine metabolism and autophagy in AD: SMS reduction upregulates autophagy, suppresses Tau accumulation, and ameliorates neurodegeneration and cell death. These findings provide a new potential therapeutic target for AD.
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