Antioxidant activity of low molecular weight polysaccharides from Tremella fuciformis in Caenorhabditis elegans based on metabolomics analysis

IF 7.2 Q1 FOOD SCIENCE & TECHNOLOGY
Quancen Lee , Zhixiang Xue , Mingfeng Zheng , Bin Liu , Feng Zeng
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Abstract

Tremella fuciformis polysaccharides have rich bioactivities, while low molecular weight polysaccharides have higher bioavailability and nutritional value. In this study, it was investigated that the structural characteristics of low molecular weight polysaccharides from Tremella fuciformis (TFLP) prepared by acid hydrolysis method, its impact on antioxidant capacity and stress resistance of Caenorhabditis elegans (C. elegans), and potential mechanisms. TFLP was an acidic polysaccharide mainly composed of mannose and xylose with a molecular weight of 106 kDa. TFLP could prolong the median lifespan of C. elegans under heat stress and acute oxidative stress conditions through significantly reducing the MDA level and increasing the activity of antioxidant enzymes T-SOD, GSH Px and CAT. The intervention of high-dose TFLP significantly prolonged the median lifespan of C. elegans under heat stress and acute oxidative stress conditions by 24.47% and 7.84%, respectively. At the same time, the MDA levels significantly decreased by 69.59%, and the levels of antioxidant enzymes T-SOD, GSH-Px and CAT increased significantly by 2.22, 1.28 and 0.53 times, respectively. Meanwhile, the transcription levels of daf-16, fat-5, fat-7, and hsf-1 mRNA in C. elegans treated with TFLP were significantly increased, while the transcription levels of akt-1 and daf-2 mRNA were significantly reduced. In addition, propanoate metabolism, valine, leucine and isoleucine degradation metabolism and vitamin B6 metabolism were key metabolic pathways for TFLP to enhance antioxidant capacity and stress resistance in C. elegans. These results indicated that TFLP could enhance in vivo antioxidant capacity and stress resistance by improving the levels mRNA transcription and metabolites, and it provided new evidence for TFLP to exert in vivo antioxidant activity.

Abstract Image

基于代谢组学分析的银耳低分子量多糖对秀丽隐杆线虫抗氧化活性研究
银耳多糖具有丰富的生物活性,而低分子量多糖具有较高的生物利用度和营养价值。本研究研究了酸水解法制备银耳低分子量多糖(Tremella fuciformis, TFLP)的结构特征、对秀丽隐杆线虫(秀丽隐杆线虫)抗氧化能力和抗逆性的影响及其可能的机制。TFLP是一种主要由甘露糖和木糖组成的酸性多糖,分子量为106 kDa。TFLP通过显著降低丙二醛(MDA)水平,提高抗氧化酶T-SOD、GSH Px和CAT活性,延长秀丽隐杆线虫在热应激和急性氧化应激条件下的中位寿命。高剂量TFLP干预可显著延长秀丽隐杆线虫在热应激和急性氧化应激条件下的平均寿命,分别延长24.47%和7.84%。同时,MDA水平显著降低了69.59%,抗氧化酶T-SOD、GSH-Px和CAT水平分别显著升高了2.22倍、1.28倍和0.53倍。同时,经TFLP处理的秀丽隐杆线虫中daf-16、fat-5、fat-7和hsf-1 mRNA的转录水平显著升高,而akt-1和daf-2 mRNA的转录水平显著降低。此外,丙酸代谢、缬氨酸、亮氨酸和异亮氨酸降解代谢和维生素B6代谢是TFLP增强秀丽隐杆线虫抗氧化能力和抗逆性的关键代谢途径。上述结果表明,TFLP可通过提高mRNA转录和代谢产物水平,增强小鼠体内抗氧化能力和抗逆性,为TFLP在体内发挥抗氧化作用提供了新的证据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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