纺织学报 ›› 2025, Vol. 46 ›› Issue (06): 73-79.doi: 10.13475/j.fzxb.20240606601

• 纤维材料 • 上一篇    下一篇

天麻多糖/聚乙烯醇静电纺抗菌保鲜膜的制备与性能

王春翔1,2,3, 李姣1,2,3, 解开放1,2,3(), 薛宏坤4, 徐广标5   

  1. 1.湖南工程学院 纺织服装学院, 湖南 湘潭 411104
    2.智能纺织加工技术湖南省普通高校重点实验室,湖南 湘潭 411104
    3.智能纺织技术创新研究院, 湖南 湘潭 411104
    4.河北大学 中医学院,河北 保定 071002
    5.东华大学 纺织学院, 上海 201620
  • 收稿日期:2024-06-28 修回日期:2025-03-12 出版日期:2025-06-15 发布日期:2025-07-02
  • 通讯作者: 解开放(1988—),男,讲师,博士。主要研究方向为功能性和产业用纺织品。E-mail:20846@hnie.edu.cn
  • 作者简介:王春翔(1996—),男,硕士生。主要研究方向为纺织新材料。
  • 基金资助:
    湖南省科技厅自然科学基金-区域联合基金项目(2024JJ7106);湖南省教育厅优秀青年项目(22B0729);国家级大学生创新训练计划项目(S202411342011)

Preparation and properties of gastrodia elata polysaccharide/polyvinyl alcohol antibacterial food-wrap membrane by electrospinning

WANG Chunxiang1,2,3, LI Jiao1,2,3, XIE Kaifang1,2,3(), XUE Hongkun4, XU Guangbiao5   

  1. 1. College of Textile and Fashion, Hunan Institute of Engineering, Xiangtan, Hunan 411104, China
    2. Key Laboratory of Intelligent Textile Processing Technology, College of Hunan Province, Xiangtan, Hunan 411104, China
    3. Intelligent Textile Institute of Innovation, Xiangtan, Hunan 411104, China
    4. College of Traditional Chinese Medicine, Hebei University, Baoding, Hebei 071002, China
    5. College of Textiles, Donghua University, Shanghai 201620, China
  • Received:2024-06-28 Revised:2025-03-12 Published:2025-06-15 Online:2025-07-02

摘要: 为探索天麻多糖(GEP)通过静电纺丝制备抗菌保鲜膜的可行性,采用热水浸提和双水相萃取相结合的方法提取GEP,并表征其形貌、结构和抗菌性。以医用级聚乙烯醇(PVA)为成膜载体,采用静电纺丝工艺制备了GEP/PVA纳米纤维膜(GEP添加量为1.0%),研究了纺丝电压对GEP/PVA纳米纤维膜微观形态和纤维直径的影响,同时探究了GEP/PVA纳米纤维膜的抗菌性能、拉伸性能以及对草莓的保鲜效果。结果表明:GEP的提取率为2.0%,含量为82.22%,具有圆润光滑的表面、无定形结构和良好的抗菌效果;GEP/PVA复合纺丝液对大肠杆菌的抑菌率超过99%;静电纺丝电压为18 kV时,GEP/PVA纳米纤维膜成形良好,纤维平均直径为320 nm;膜厚为0.09 mm时,其拉伸断裂强力高达247.59 cN;5 ℃环境下,GEP/PVA纳米纤维膜对草莓的保鲜效果最佳,其质量损失率最低;常温环境下,GEP/PVA抗菌纳米纤维膜可延长草莓3 d的保质期。

关键词: 天麻多糖, 双水相提取, 静电纺丝, 纳米纤维膜, 抗菌性, 保鲜膜, 聚乙烯醇

Abstract:

Objective Fruits, vegetables and foods are easily contaminated by Escherichia coli, Staphylococcus aureus, mold and other common microorganisms. To extend the shelf life of fruits, vegetables and foods, it is of practical significance and application value to develop advanced packaging materials with antibacterial and fresh-keeping effects. In this paper, the feasibility of preparing antibacterial food-wrap membrane by electrospinning from gastrodia elata polysaccharides (GEP) and medical grade polyvinyl alcohol (PVA) was explored, which laid the foundation for the development of GEP nanofiber membrane with low-cost, green, antibacterial and fresh-keeping properties.

Method GEP was extracted by hot water extraction and aqueous two-phase extraction. The dry gastrodia elata blume was soaked in water, heated and extracted twice by induction cooker, and then the extract was cooled to room temperature, and the precipitate was collected after ethanol precipitation, and the GEP was extracted in ethanol/ammonium sulfate aqueous two-phase system, and the lower supernatant was taken out after standing for 24 h, and the crude polysaccharide of gastrodia elata blume was obtained by vacuum filtration, dialysis and freeze-drying. The purity, chemical structure, crystal structure, morphology and antibacterial properties of GEP were tested and analyzed. The GEP/PVA nanofiber membranes(with a GEP addition amount of 1.0%) were prepared by electrospinning under different voltages, and their antibacterial properties, surface morphology, fiber fineness, tensile properties, and fresh-keeping effect on strawberry were tested and analyzed.

Results The extraction rate of GEP obtained using a combination of hot water extraction and aqueous two-phase extraction is 2.0%, with a content of 82.22%, and it exhibits a typical infrared spectrum curve of polysaccharides. The GEP show that it has amorphous structure and smooth surface. The antibacterial property of GEP was tested by agar plate diffusion method, and 200 mg/mL GEP solution had good antibacterial performance against Escherichia coli and Staphylococcus aureus. The antibacterial performance of GEP/PVA spinning solution was tested by absorption method, and the antibacterial rate of GEP/PVA(1.0% GEP) spinning solution against Escherichia coli was more than 99%. When the electrospinning voltage is 18 kV, the GEP/PVA nanofiber membrane is well formed, the average fiber diameter is about 320 nm, and the tensile breaking strength of the membrane is up to 247.59 cN when the membrane thickness is 0.09 mm; The preservation effect of GEP/PVA nanofiber membrane was the best and the weight loss rate was the lowest at 5 ℃ in the refrigerator environment. The preservation effect of GEP/PVA nanofiber membrane could extend the shelf life of strawberry for 3 d at room temperature.

Conclusion In this paper, the dry gastrodia elata blume was used as raw material to extract crude polysaccharide by hot water extraction and aqueous two-phase extraction, and the GEP/PVA nanofiber membrane was successfully prepared by electrospinning technology with PVA as the film-forming carrier. When the electrospinning voltage was 18 kV, the GEP/PVA nanofiber membrane was well formed. GEP/PVA nanofiber membrane has good fresh-keeping effect, which can effectively slow down the evaporation and loss of water, and prolong the shelf life of strawberries for 3 d at room temperature. The successful preparation of GEP/PVA nanofiber membrane not only realizes the application feasibility of GEP in fruit and vegetable preservation, but also contributes to the development of plant polysaccharide fruit and vegetable and food packaging materials with low-cost, green environmental protection, antibacterial preservation and excellent performance.

Key words: gastrodia elata polysaccharide, aqueous two-phase extraction, electrospinning, nanofiber membrane, antibacterial property, food-wrap membrane, polyvinyl alcohol

中图分类号: 

  • TS151

图1

天麻多糖提取工艺"

图2

葡萄糖标准曲线图"

图3

GEP的红外光谱图"

图4

GEP的X射线衍射图谱"

图5

GEP的表观形貌"

图6

200 mg/mL GEP溶液抗菌检测结果"

图7

GEP/PVA纳米纤维膜的扫描电镜照片及纤维直径分布图"

图8

GEP/PVA纺丝液抗大肠杆菌检测结果"

图9

GEP/PVA纳米纤维膜的拉伸性能"

图10

5 ℃冰箱环境和常温环境中草莓的质量损失率"

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