食品科学 ›› 2026, Vol. 47 ›› Issue (13): 289-304.doi: 10.7506/spkx1002-6630-20251215-129

• 包装贮运 • 上一篇    下一篇

大豆分离蛋白/羧甲基壳聚糖/小檗碱复合膜制备及其对罗非鱼的保鲜效果

蒋欣玥,卜金晶,殷天翔,刘晓丽,黄秋桐,忻宇   

  1. (江南大学食品学院,江苏 无锡 214122)
  • 出版日期:2026-07-15 发布日期:2026-07-17
  • 基金资助:
    海南省重点研发项目(ZDYF2022XDNY335);2024年江苏省高等教育学会专项(2024JCSZ33)

Preparation of Soy Protein Isolate/Carboxymethyl Chitosan/Berberine Composite Film and Its Preservation Effect on Tilapia Quality

JIANG Xinyue, BU Jinjing, YIN Tianxiang, LIU Xiaoli, HUANG Qiutong, Xin Yu   

  1. (School of Food Science and Technology, Jiangnan University, Wuxi 214122, China)
  • Online:2026-07-15 Published:2026-07-17

摘要: 本研究旨在通过开发环保型生物基包装材料应对日益严峻的塑料污染问题。选用羧甲基壳聚糖(carboxymethyl chitosan,CMCS)和大豆分离蛋白(soy protein isolate,SPI)作为成膜基质,加入具有生物活性的小檗碱(berberine,Ber),制备出一种可生物降解且具有功能活性的SPI-CMCSn-Berm(n=1、2、3;m=0.5、1.0、1.5)复合膜,并系统评估不同SPI与CMCS质量比(1∶1、1∶2、1∶3)及不同Ber含量对复合材料性能的影响。采用溶液共混法制备薄膜后,对其化学结构、结晶形态、热稳定性、外观和阻隔性能进行全面表征与分析。结果表明,SPI-CMCS1组拉伸强度达1.8 MPa、断裂伸长率达60%;添加Ber后,薄膜机械性能有所下降,但稳定性整体呈现增强效果。X射线衍射与傅里叶变换红外光谱结果证实,Ber与SPI/CMCS基质之间形成有效分子交联。SPI-CMCS1-Ber1.0组透光阻隔性最优(透明度3.17);且适量Ber可降低膜体水溶性与溶胀度,同时提升其1,1-二苯基-2-三硝基苯肼自由基清除活性。将该复合薄膜应用于罗非鱼片保鲜,4 ℃贮藏10 d,复合涂膜组罗非鱼片总挥发性盐基氮含量始终低于20 mg/100 g安全限值;SPI-CMCS1-Ber1.5组总色差仅12.81,褐变指数也处于较低水平;低场核磁共振结果表明,SPI-CMCS1-Ber1.0组不易流动水占比稳定、自由水占比低至5.5%,可有效降低鱼肉离心失水率与蒸煮损失率;贮藏末期涂膜组鱼肉肌原纤维蛋白α-螺旋相对含量最高达74.40%,无规卷曲相对含量降至7.60%,可有效抑制蛋白二级结构无序化转变,同时维持蛋白三级荧光特征强度、延缓构象劣变。综上,Ber改性SPI-CMCS复合膜可延缓罗非鱼片冷藏期间蛋白变性、水分流失与品质劣变,是性能优异的水产品可降解活性保鲜包装材料。综上,该活性复合薄膜有望替代传统塑料包装,应用于水产品保鲜领域,可为绿色包装材料的研发提供依据。

关键词: 大豆分离蛋白;羧甲基壳聚糖;小檗碱;罗非鱼;可生物降解薄膜

Abstract: To address increasingly severe plastic pollution, this study aimed to develop eco-friendly bio-based packaging materials. Carboxymethyl chitosan (CMCS) and soy protein isolate (SPI) were selected as film-forming substrates, and bioactive berberine (Ber) was incorporated to fabricate biodegradable and functionally active SPI-CMCSn-Berm composite films (n = 1, 2, 3; m = 0.5, 1.0, 1.5). The effects of different mass ratios of SPI to CMCS (1:1, 1:2, and 1:3) and various Ber contents on the properties of the composite materials were systematically investigated. The films were prepared via solution blending, and their chemical structure, crystalline morphology, thermal stability, appearance, and barrier properties were comprehensively characterized and analyzed. The results showed that the tensile strength and elongation at break of the SPI-CMCS1 group reached 1.8 MPa and 60%, respectively. After Ber incorporation, the mechanical properties of the film slightly decreased, while its overall stability was enhanced. X-ray diffraction and Fourier-transform infrared spectroscopy confirmed the formation of effective molecular cross-linking between Ber and the SPI/CMCS matrix. The SPI-CMCS1-Ber1.0 group exhibited the optimal light barrier performance with a transparency value of 3.17. Appropriate Ber addition reduced the water solubility and swelling degree of the film and improved its 1,1-diphenyl-2-picrylhydrazyl (DPPH) radical scavenging activity. During storage at 4 ℃ for 10 d, the total volatile basic nitrogen content in tilapia fillets treated with the composite film remained below the safe limit of 20 mg/100 g. The total color difference of the SPI-CMCS1-Ber1.5 group was only 12.81 with a low browning index. Low-field nuclear magnetic resonance results revealed that the SPI-CMCS1-Ber1.0 group maintained a stable proportion of immobile water, with free water at only 5.5%, which effectively reduced the centrifugal and cooking loss rates of fish muscle. At the end of storage, the relative content of α-helix in myofibrillar proteins in the coated groups reached up to 74.40%, while the relative content of random coils decreased to 7.60%, indicating effective inhibition of the order-disorder transformation of protein secondary structure. Meanwhile, the fluorescence intensity of protein tertiary structure was maintained, delaying conformational deterioration. In conclusion, Ber-modified SPI-CMCS composite film can retard protein denaturation, water loss, and quality deterioration of tilapia fillets during refrigeration, rendering it an excellent biodegradable active packaging material for aquatic products. This active composite film has great potential to replace conventional plastic packaging in aquatic product preservation, providing a theoretical basis for the research and development of green packaging materials.

Key words: soy protein isolate; carboxymethyl chitosan; berberine; tilapia; biodegradable film

中图分类号: