食品科学 ›› 2026, Vol. 47 ›› Issue (13): 71-81.doi: 10.7506/spkx1002-6630-20251015-080

• 食品化学 • 上一篇    下一篇

脱木质素方式对甘蔗渣阿拉伯木聚糖提取效率、产物结构及体外消化酶抑制活性的影响

周玉恒,黄庆灿,张国柱,刘金磊,覃香香,陈海珊   

  1. (1.广西壮族自治区中国科学院广西植物研究所,广西木质纤维素生物炼制技术创新中心,广西植物功能物质与资源持续利用重点实验室,广西特色食药植物资源高值化利用科技成果转化中试研究基地,广西 桂林 541006;2.广西桂林市中山中学,广西 桂林 541001)
  • 出版日期:2026-07-15 发布日期:2026-07-17
  • 基金资助:
    国家自然科学基金联合基金项目(U24A20364);广西科技重大专项(桂科AA22117013;桂科AA18118044);

Effect of Delignification Methods on the Extraction Efficiency, Product Structure, and in Vitro Digestive Enzyme Inhibitory Activity of Arabinoxylan from Sugarcane Bagasse

ZHOU Yuheng, HUANG Qingcan, ZHANG Guozhu, LIU Jinlei, QIN Xiangxiang, CHEN Haishan   

  1. (1. Guangxi Lignocellulose Biorefinery Technology Innovation Center, Guangxi Key Laboratory of Plant Functional Phytochemicals and Sustainable Utilization, Guangxi Special Food and Medicinal Plant Resources High Value Utilization Science and Technology Achievement Transformation Pilot Research Base, Guangxi Institute of Botany, Chinese Academy of Sciences, Guilin 541006, China; 2. Guangxi Guilin Zhongshan Middle School, Guilin 541001, China)
  • Online:2026-07-15 Published:2026-07-17

摘要: 采用直接碱提法、H2O2-NaOH一步法、H2O2-NaOH两步法从甘蔗渣中提取阿拉伯木聚糖(arabinoxylan,AX),系统比较3 种方法对AX提取效率、理化性质及结构特征的影响,并评价提取产物对葡萄糖吸附与扩散抑制作用及体外消化酶抑制活性。结果表明,一步法提取优势最显著,AX溶出率(94.85%)、回收率(97.50%)及产物纯度均最高,水溶性AX与水不溶性AX纯度分别达95.22%和88.84%;两步法虽溶出率略高(95.27%),但回收率仅为77.31%,且水不溶性产物纯度偏低(52.98%)。3 种方法所得AX分子质量呈现一致规律:直接碱提法>一步法>两步法,其中水不溶性AX分子质量依次为8.55×105、7.15×105、4.65×105 Da。白度方面,一步法水溶性与水不溶性产物白度达91.42与90.80。扫描电子显微镜观察显示,不同产物微观形貌无显著差异。单糖组成分析表明,甘蔗渣AX主要由木糖、阿拉伯糖等8 种单糖及糖醛酸组成,且水溶性AX单糖种类更丰富、阿拉伯糖/木糖比值更高。生物活性方面,直接碱提法所得AX葡萄糖吸附量最高(水溶性AX、水不溶性AX分别为378、282 mg/g),显著高于一步法(均为241 mg/g)和两步法(141、46 mg/g);葡萄糖扩散抑制活性均表现为水不溶性AX>水溶性AX。体外消化酶抑制活性方面,高浓度产物对4 种消化酶均表现出不同程度抑制作用,其中α-淀粉酶、麦芽糖酶及蔗糖酶抑制活性呈水溶性AX>水不溶性AX,两步法制备水溶性AX抑制效果最优,α-淀粉酶、麦芽糖酶及蔗糖酶半抑制浓度分别为34.25、38.40、24.85 g/L;对α-葡萄糖苷酶的抑制活性则呈相反趋势(水溶性AX<水不溶性AX)。综上,脱木质素方式显著影响AX提取效率、理化性质与生物活性:一步法产物在溶出率、回收率、纯度及白度方面优势突出;直接碱提法产物葡萄糖吸附性能与扩散抑制活性最优;水溶性AX展现出更优的消化酶抑制活性。

关键词: 甘蔗渣;阿拉伯木聚糖;脱木质素;提取;酶活性抑制

Abstract: Three delignification-assisted extraction approaches were employed for arabinoxylan (AX) isolation from sugarcane bagasse, namely direct alkaline extraction, one-step H2O2-NaOH extraction, and two-step H2O2-NaOH extraction. Their impacts on the extraction efficiency, physicochemical properties, and structural features of AX were systematically compared, and the glucose adsorption capacity, glucose diffusion inhibitory effect, and in vitro digestive enzyme inhibitory activities of the extracted products were evaluated. Results indicated that the one-step extraction method exhibited the most prominent advantages, achieving the highest dissolution rate (94.85%), recovery rate (97.50%), and purity of AX; the water-soluble and water-insoluble fractions reached purities of 95.22% and 88.84%, respectively. Although the two-step method showed a slightly higher dissolution rate (95.27%), its recovery rate was only 77.31%, and the purity of the water-insoluble fraction was significantly lower (52.98%). The molecular masses of the water-soluble and water-insoluble AX obtained by the three methods followed a consistent trend: direct alkaline extraction > one-step method > two-step method. Specifically, the molecular masses of the water-insoluble AX fractions were 8.55 × 105, 7.15 × 105, and 4.65 × 105 Da, respectively. The whiteness values of the water-soluble and water-insoluble AX obtained by one-step extraction were 91.42 and 90.80, respectively. Scanning electron microscopy (SEM) observation revealed no significant differences in the micromorphology of the products. Monosaccharide composition analysis demonstrated that sugarcane bagasse AX was mainly composed of eight monosaccharides (including xylose and arabinose) and uronic acid, with the water-soluble fraction exhibiting a richer monosaccharide profile and a higher arabinose/xylose (A/X) ratio than the water-insoluble fraction. In terms of biological activities, the AX extracted by direct alkaline extraction showed the highest glucose adsorption capacity (378 mg/g for the water-soluble fraction and 282 mg/g for the water-insoluble fraction), which was significantly higher than that of the one-step method (all 241 mg/g) and the two-step method (141 and 46 mg/g, respectively). The glucose diffusion inhibitory effect of the water-insoluble fraction was stronger than that of the water-soluble fraction, irrespective of the extraction method used. In vitro digestive enzyme inhibitory activity assays showed that the products at high concentrations exhibited varying degrees of inhibitory effects on four digestive enzymes. Specifically, the inhibitory activities of water-soluble AX against α-amylase, maltase, and sucrase were more potent than those of water-insoluble AX. Among the three extraction methods, the water-soluble AX prepared by the two-step method displayed the strongest inhibitory activity, with half maximal inhibitory concentration (IC50) values of 34.25 g/L for α-amylase, 38.40 g/L for maltase, and 24.85 g/L for sucrase. In contrast, the α-glucosidase inhibitory activity of the water-soluble fraction was weaker than that of the water-insoluble fraction. In conclusion, delignification methods significantly affected the extraction efficiency, physicochemical properties, and biological activities of AX. The one-step method was superior in terms of dissolution rate, recovery rate, purity, and whiteness. The AX extracted by the direct alkaline method exhibited the best glucose adsorption and diffusion inhibition activities. The water-soluble AX fraction showed stronger inhibitory effects on digestive enzymes than the water-insoluble fraction.

Key words: sugarcane bagasse; arabinoxylan; delignification; extraction; enzyme activity inhibition

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