Natural Biopolymer-Hydrogel Nanofibers for Antibacterial Applications

被引:8
作者
Habeeb, Salih Abbas [1 ]
Abdulkadhim, Mushreq Kareem [1 ]
机构
[1] Univ Babylon, Coll Mat Engn, Dept Polymer & Petrochem Ind Engn, Al Hilla 51001, Iraq
来源
JOURNAL OF ENGINEERING MATERIALS AND TECHNOLOGY-TRANSACTIONS OF THE ASME | 2024年 / 146卷 / 01期
关键词
antibacterial applications; bionanofibers; chitosan; electrospinning; gelatin; pullulan; materials processing; polymers; CHITOSAN; FILMS;
D O I
10.1115/1.4063329
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
This study used a suitable solvent such as deionized water and aqueous acetic acid to dissolve completely polymer blends such as gelatin: chitosan: pullulan (G: CS: PUL) with mixing ratios of 80:10:10, 60:20:20, 40:30:30, and 20:40:40, respectively. The properties of natural polymer mixtures, viscosity, surface tension, and electrical conductivity were examined, and the fiber diameter and nanofiber diameter distribution were measured. Increasing the gelatin content from 20% to 80% in the G: CS: PUL increases the properties of biopolymer solutions, such as viscosity, surface tension, and electrical conductivity of 157%, 14%, and 37%, respectively. In addition, increasing the gelatin content reduces the contact angle by 55%. In other words, the average diameter of the nanofibers increased from 91.177 +/- 27.162 to 212.46 +/- 67.91 nm with the increase of the gelatin content by 40-100% in the blends and obtaining uniform fibers without beads, which enhanced the ability of nanofibers for releasing into the aqueous media and enhancing their use in packaging food such as (80:10:10 and 60:20:20). Moreover, the blend ratio 60:30:30 (G:CS: PUL) had better resistance to bacterial growth; the inhibition zone diameters were 26 and 23 mm for E. coli and S. aureus and had better average crystalline size and crystallinity.
引用
收藏
页数:8
相关论文
共 49 条
[41]  
Simionescu B. C., 2016, Handbook of Bioceramics and Biocomposites
[42]   Nanofiber diameter in electrospinning of polymer solutions: Model and experiment [J].
Stepanyan, R. ;
Subbotin, A. V. ;
Cuperus, L. ;
Boonen, P. ;
Dorschu, M. ;
Oosterlinck, F. ;
Bulters, M. J. H. .
POLYMER, 2016, 97 :428-439
[43]   Electrospinning of food-grade polysaccharides [J].
Stijnman, Ann C. ;
Bodnar, Igor ;
Tromp, R. Hans .
FOOD HYDROCOLLOIDS, 2011, 25 (05) :1393-1398
[44]   Preparation and characterization of chitosan film incorporated with thinned young apple polyphenols as an active packaging material [J].
Sun, Lijun ;
Sun, Jiaojiao ;
Chen, Lei ;
Niu, Pengfei ;
Yang, Xingbin ;
Guo, Yurong .
CARBOHYDRATE POLYMERS, 2017, 163 :81-91
[45]   Screening methods to determine antibacterial activity of natural products [J].
Valgas, Cleidson ;
de Souza, Simone Machado ;
Smania, Elza F. A. ;
Smania, Artur, Jr. .
BRAZILIAN JOURNAL OF MICROBIOLOGY, 2007, 38 (02) :369-380
[46]   Recent advances in gelatine and chitosan complex material for practical food preservation application [J].
Wang, Hongxia ;
Ding, Fuyuan ;
Ma, Liang ;
Zhang, Yuhao .
INTERNATIONAL JOURNAL OF FOOD SCIENCE AND TECHNOLOGY, 2021, 56 (12) :6279-6300
[47]   Study on the Electrospinning of Gelatin/Pullulan Composite Nanofibers [J].
Wang, Yuanduo ;
Guo, Ziyang ;
Qian, Yongfang ;
Zhang, Zhen ;
Lyu, Lihua ;
Wang, Ying ;
Ye, Fang .
POLYMERS, 2019, 11 (09)
[48]   A bilayer composite composed of TiO2-incorporated electrospun chitosan membrane and human extracellular matrix sheet as a wound dressing [J].
Woo, Chang Hee ;
Choi, Young Chan ;
Choi, Ji Suk ;
Lee, Hee Young ;
Cho, Yong Woo .
JOURNAL OF BIOMATERIALS SCIENCE-POLYMER EDITION, 2015, 26 (13) :841-854
[49]   Electrospun chitosan/gelatin nanofibers containing silver nanoparticles [J].
Zhuang, Xupin ;
Cheng, Bowen ;
Kang, Weimin ;
Xu, Xianlin .
CARBOHYDRATE POLYMERS, 2010, 82 (02) :524-527