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Isolation of Intermediate Filament Proteins from Multiple Mouse Tissues to Study Aging-associated Post-translational Modifications
Published on: May 18, 2017
Structure-activity comparison of native larch arabinogalactan and its arabinose-depleted derivative in
Qi Yin1, Kuo Cui1, Tongchen Lu1
1Engineering Research Center of Glycoconjugates, Ministry of Education, Jilin Provincial Key Laboratory of Chemistry and Biology of Changbai Mountain Natural Drugs, School of Life Sciences, Northeast Normal University, Changchun, 130024, China.
Abstract:
Inflammaging is closely associated with gut microbiota dysbiosis, and structurally complex polysaccharides may provide microbiota-directed protection. This study compared the protective effects and gut microbiota-metabolite responses of native larch arabinogalactan (AG) and an acid-hydrolyzed arabinose-depleted derivative (DA) in D-galactose-induced aging-like mice. AG is a highly branched galactose (Gal)- and arabinose (Ara)-rich polysaccharide with a 1,3-linked Galp backbone and Galp/Ara-containing side chains. Acid hydrolysis markedly depleted Ara residues while largely retaining the Gal-rich branched framework, but also altered molecular size and solution-level properties. Both AG and DA alleviated oxidative-inflammatory responses, behavioral and multi-organ aging-like alterations, P53/P21-associated senescence-related responses, and colonic mucus barrier impairment. Direct dose-matched comparisons showed no significant AG-DA differences for most major host endpoints, while dose-response patterns varied across outcomes rather than showing a uniform monotonic trend. Cecal microbiota analyses revealed overlapping but treatment-biased responses, with AG associated with greater Bifidobacterium enrichment and DA with stronger Turicibacter enrichment. Exploratory metabolomic and pathway analyses further suggested partially convergent bile acid/lipid-related responses together with treatment-biased metabolic patterns. These findings suggest that Ara-depletion-associated structural changes are linked to treatment-biased microbiota-metabolite responses, whereas the retained Gal-rich branched framework may contribute to the protective effects observed with both treatments.