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Samborowska, E.

Publications and source records attributed to Samborowska, E..

3 recordsLinked to original sources

LOSS OF ARGINASE 2 DISRUPTS STRIATUM-SPECIFIC POLYAMINE HOMEOSTASIS

Arginase converts arginine (Arg) to ornithine (Orn), regulating their availability for the metabolic pathways that utilize these amino acids. The roles of arginase isoenzymes, Arg1 and Arg2, vary by cell type, tissue, and physiological state. In the brain, Arg2 is the predominant isoenzyme, particularly enriched in the striatum, where it localizes to a striatum-specific neuronal population - medium spiny neurons (MSNs). While the precise role of Arg2 in MSNs remains unclear, its loss alters the striatal metabolomic profile, highlighting its metabolic significance. Here, to investigate the basis of these complex metabolic changes, we examined Arg metabolism in Arg2 knockout (Arg2-/-) mice. Targeted analysis of Arg-related metabolites and selected proteins regulating Arg metabolic pathways revealed that Arg2 loss significantly increased Arg levels but did not affect Orn, likely due to compensatory synthesis of Orn from Arg (via arginine:glycine amidinotransferase) and/or proline (via ornithine aminotransferase). Additionally, markers of nitric oxide (NO) production remained unchanged, suggesting that striatal Arg2 is not involved in the regulation of this pathway, a role commonly attributed to arginase. Most notably, Arg2 loss disrupted polyamine homeostasis, shifting the balance toward higher polyamines at the expense of lower ones and altering the expression of polyamine-regulating proteins. These findings highlight Arg2 crucial role in striatal metabolism and its potential relevance to striatum-related disorders. Given that striatal Arg2 impairment has been reported in Huntingtons disease, a neurodegenerative disorder specifically affecting MSNs, understanding its function may provide insights into the pathology.

neuroscience↗

Dynamics and fermentation patterns of stool microbiota on simple carbon sources in in vitro batch cultures reveal dysbiosis in Crohn's disease.

Crohns disease (CD)-associated dysbiosis is characterized by reduced microbial diversity, depletion of short-chain fatty acid (SCFA) producers, especially butyrate-forming taxa, and altered metabolic profiles. This study examined whether CD-related dysbiosis is reflected in the fermentation behavior of stool-derived microbial communities cultured in vitro on simple carbon substrates (glucose or acetate+lactate). Shotgun metagenomics and metabolomics revealed that CD-derived communities produced lower levels of butyrate (mainly via lactate and acetate), valerate, caproate, and propionate, and higher levels of ethanol and certain amino acids compared to healthy controls. These metabolic alterations aligned with compositional shifts, including a loss of beneficial commensals (e.g., Coprococcus catus, Ruminococcus torques, Eubacterium rectale, Fusicatenibacter saccharivorans, and Faecalibacterium prausnitzii) and an overrepresentation of CD-associated taxa, particularly Escherichia coli. Metabolic potential analysis revealed an enrichment of genes linked to ethanol and amino acid synthesis in CD-associated microbiotas, underscoring the metabolic adaptability of E. coli. Notably, acetate+lactate substrates supported the growth of healthy microbiota-associated bacteria, whereas glucose favored CD-associated taxa, highlighting disease-specific metabolic imbalances. These findings suggest that in vitro fermentation profiling may help distinguish CD-associated dysbiosis from a healthy microbiome and might support the development of microbiome-informed diagnostic or therapeutic approaches for CD. Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=171 SRC="FIGDIR/small/656803v1_ufig1.gif" ALT="Figure 1"> View larger version (42K): org.highwire.dtl.DTLVardef@809890org.highwire.dtl.DTLVardef@a04b89org.highwire.dtl.DTLVardef@1bf39c0org.highwire.dtl.DTLVardef@1687974_HPS_FORMAT_FIGEXP M_FIG C_FIG A short abstract: CD-related dysbiosis alters stool microbial fermentation, reducing butyrate, propionate, valerate, caproate, and increasing ethanol/amino acids in vitro. Fermentation tests may help distinguish CD-associated patterns, suggesting potential for future microbiome-based diagnostics.

microbiology↗

TMAO, a seafood-derived molecule, produces diuresis and reduces mortality in heart failure rats

BackgroundThere is an ongoing debate whether trimethylamine-oxide (TMAO), a molecule present in seafood and a derivate of microbiota metabolism, is beneficial or harmful for the circulatory system. Interestingly, deep-water animals accumulate TMAO that protects proteins such as lactate dehydrogenase (LDH) against high hydrostatic pressure. We hypothesized that TMAO may benefit the circulatory system by protecting cardiac LDH exposed to hydrostatic stress (HS) produced by contracting heart. Methods and ResultsMale, 6-week-old, Sprague-Dawley (SD, n=40) and Spontaneously-Hypertensive-Heart-Failure (SHHF n=18) rats were divided into either Water or TMAO oral treatment. After 56 weeks, half of Water and TMAO SD rats were given isoprenaline (ISO) to produce catecholamine stress. In vitro, LDH with or without TMAO was exposed to HS (changes in pressure 0-250mmHg x 280min-1) and was evaluated using fluorescence correlation spectroscopy. After 58 weeks of the treatment survival was 100% in SD-Water, SD-TMAO, ISO-TMAO and 90% in ISO-Water. In SHHF-Water survival was 66% vs 100% in SHHF-TMAO. In general, TMAO-treated rats showed higher diuresis and natriuresis. In comparison to SHHF-Water, SHHF-TMAO showed significantly lower diastolic arterial blood pressure, plasma NT-proBNP and expression of angiotensinogen and AT1 receptors in the heart. In separate experiments, intravenous TMAO but not vehicle or urea significantly increased diuresis in SD. In vitro, exposure of LDH to HS with or without TMAO did not affect the protein structure. ConclusionsTMAO reduces mortality in SHHF rats that is associated with diuretic, natriuretic and hypotensive effects. HS produced by the contracting heart is neutral for cardiac LDH structure.

physiology↗