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来自阿拉伯胶树木材的生物改性木质素的体外抗氧化和抗糖尿病活性。

In vitro antioxidant and antidiabetic activities of biomodified lignin from Acacia nilotica wood.

作者信息

Barapatre Anand, Aadil Keshaw Ram, Tiwary Bhupendra Nath, Jha Harit

机构信息

Department of Biotechnology, Guru Ghasidas Vishwavidyalaya (A Central University), Bilaspur, Chhattisgarh 495009, India.

Department of Biotechnology, Guru Ghasidas Vishwavidyalaya (A Central University), Bilaspur, Chhattisgarh 495009, India.

出版信息

Int J Biol Macromol. 2015 Apr;75:81-9. doi: 10.1016/j.ijbiomac.2015.01.012. Epub 2015 Jan 16.

Abstract

The antioxidant and antidiabetic activity of biomodified alkali lignin extracted from a deciduous plant Acacia nilotica, was evaluated in vitro. The extracted alkali lignin was subjected to microbial biotransformation by ligninolytic fungus Aspergillus flavus and Emericella nidulans. These modifications were done under varying concentration of carbon to nitrogen sources. The structural feature of the lignin samples were compared by FTIR, functional group analysis and (13)C solid state NMR. All lignin samples were tested for antioxidant efficiency, reducing power and H2O2 scavenging power. Modifications in all lignin samples showed correlation with their antioxidant scavenging activity and reducing power. Antidiabetic properties were evaluated in terms of in vitro glucose movement inhibition and α-amylase inhibition assay. Modified samples exhibited increased glucose binding efficiency as demonstrated by the decreased glucose diffusion (55.5-76.3%) and 1.16-1.18-fold enhanced α-amylase inhibition in comparison to their control samples. The results obtained demonstrate that the structure and functional modifications in lignin significantly affects its bioefficacy in term of antioxidant and antidiabetic activities.

摘要

对从落叶植物阿拉伯胶树中提取的生物改性碱木质素的抗氧化和抗糖尿病活性进行了体外评估。提取的碱木质素通过木质素分解真菌黄曲霉和构巢曲霉进行微生物生物转化。这些改性是在不同浓度的碳源和氮源下进行的。通过傅里叶变换红外光谱(FTIR)、官能团分析和(13)C固体核磁共振对木质素样品的结构特征进行了比较。对所有木质素样品进行了抗氧化效率、还原能力和过氧化氢清除能力测试。所有木质素样品的改性均与其抗氧化清除活性和还原能力相关。通过体外葡萄糖转运抑制和α-淀粉酶抑制试验评估抗糖尿病特性。与对照样品相比,改性样品表现出更高的葡萄糖结合效率,表现为葡萄糖扩散降低(55.5-76.3%)以及α-淀粉酶抑制增强1.16-1.18倍。所得结果表明,木质素的结构和功能改性在抗氧化和抗糖尿病活性方面显著影响其生物功效。

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