Project description:To achieve extreme spermidine stress we used DspeG E. coli strain. We identified the pathways that are altered under spermidine stress. Among many changes spermidine altered the iron-sulfur cluster metabolism and redox balance in the cells. Therefore, we have shown that superoxide quencher, NAC and ascorbate mitigates spermidine stress. Overall our data explains the importaance of tight spermidine homeostasisin the cell.
Project description:To achieve extreme spermidine stress we used DspeG E. coli strain. We identified the pathways that are altered under spermidine stress. Among many changes spermidine altered the iron-sulfur cluster metabolism and redox balance in the cells. Therefore, we have shown that superoxide quencher, NAC and ascorbate mitigates spermidine stress. Overall our data explains the importaance of tight spermidine homeostasisin the cell.
Project description:Administration of spermidine, a natural polyamine whose intracellular concentration declines during human ageing, markedly extends the lifespan of various model organisms including yeast, flies and worms. In ageing yeast, spermidine treatment triggeres epigenetic deacetylation of histone H3 through inhibition of histone acetyltransferases (HAT), leading to induction of autophagy and thereby suppressing oxidative stress and necrosis. In order to further characterize the effects by spermidine supplementation of aging yeast cultures and to understand how global histone deacetylation affects gene transcription during aging, Affymetrix-based microarray analyses of three day old as well as ten day old cultures with and without administration of spermidine was performed.
Project description:To compare the effects of spermidine, key polyamine, on the gene expression profile of organ cultured human hair follicles Vehicle treated Vs. 0.5 µM spermidine treatment. Two control samples, two spermidine treated samples
Project description:The polyamines putrescine, spermidine and spermine are ubiquitous metabolites synthesized in all cells. The intracellular levels of polyamines, especially spermidine, decrease in aging. Oral spermidine supplementation has been reported to alleviate aspects of aging-related disease in animal models, including decline in learning and memory. The diverse health benefits of spermidine supplementation, often at doses that do not significantly alter spermidine levels of target organs, suggests that exogenous spermidine may have a common site of action, the gastrointestinal (GI) tract. To directly deliver spermidine to the GI tract with minimum impact on the global spermidine levels, we engineered the probiotic yeast Sacchromyces boulardii (Sb) to overproduce and secrete spermidine. We tested the effects of a spermidine-producing yeast strain (Sb576) on aging-associated learning and memory decline in an olfactory classical conditioning in Drosophila melanogaster. Feeding of newly eclosed flies of the wild-type (w1118) strain for 30 days with food supplemented with live Sb576, but not live wild-type Sb (SbWT) or free spermidine, reduced aging-associated short-term memory (STM) decline. Notably, Sb576 supplementation, but not SbWT or spermidine supplementation, of either young flies or old flies for only three days also enhanced STM without affecting locomotive ability. Furthermore, we showed that Sb576 supplementation also significantly reduced aging-associated STM decline in Dh31R, a mutant strain lacking the diuretic hormone 31 receptor, which exhibits compromised learning and memory. These results demonstrate that in situ production of spermidine by a synthetic biotic yeast in the GI tract can enhance STM, and further suggest a mechanism involving the gut-brain axis.
Project description:The naturally occurring polyamines putrescine, spermidine or spermine are ubiquitous in all cells. Although polyamines have prominent regulatory roles in cell division and growth, precise molecular and cellular functions are not well established in vivo. In this work we have performed a microarray experiment in a polyamine mutant (delta-spe3 delta-fms1) strain to investigate the responsiveness of yeast genes to supplementation with spermidine and spermine. Expression analysis identified genes responsive to the addition of either excess spermidine (10-5 M) or spermine (10-5 M) compared to a control culture containing 10-8 M spermidine. 247 genes were up-regulated >2-fold, and 11 genes were up-regulated more than 10-fold after spermidine addition. Functional categorization of the genes showed induction of transport related genes, and genes involved in methionine, arginine, lysine, NAD and biotin biosynthesis. 268 genes were down-regulated more than 2-fold, and 6 genes were down-regulated more than 8-fold after spermidine addition. A majority of the down-regulated genes are involved in nucleic acid metabolism and various stress responses. In contrast, only few genes (18) were significantly responsive to spermine. Thus, results from global gene expression profiling demonstrate a more major role for spermidine in modulating gene expression in yeast than spermine. Experiment Overall Design: 5 control replicates vs. 3 spermine (SP)-treated or 5 spermidine (SPD)-treated samples.
Project description:Spermidine is involved in a variety of biological processes, including DNA metabolism, autophagy and aging. Previous studies have shown that spermidine can increase the percentage of mouse oocytes developing into blastocysts after in vitro fertilization. However, none of the past studies elucidated the effects of spermidine supplementation on porcine oocyte maturation. Here, we choose appropriate dose of spermidine to be added to the maturation medium during in vitro maturation (IVM) to verify whether spermidine can actively promote the maturation of porcine oocytes. Our study provided substantial evidence that spermidine exposure promoted the porcine oocyte meiotic maturation. In addition, single-cell transcriptome analysis identified the target effectors of spermidine actions in porcine oocytes, further demonstrating that spermidine exposure enhanced mitochondrial distribution and function, leading to a reduced excessive oxidative stress-induced DNA damage and early apoptosis of porcine oocytes. These findings demonstrate that spermidine not only delays ageing and cancer treatment, but also improves the quality of germ cells, which may be less likely to suffer from sterility or infertility in humans and animals.