Physicochemical aspects of design of ultrathin films based on chitosan, pectin, and their silver nanocomposites with antiadhesive and bactericidal potential

被引:11
作者
Kulikouskaya, Viktoryia [1 ]
Zhdanko, Tsimafei [1 ]
Hileuskaya, Kseniya [1 ]
Kraskouski, Aliaksandr [1 ]
Zhura, Alexandr [2 ]
Skorohod, Hennadiy [2 ]
Butkevich, Vasili [2 ]
Pal, Kunal [3 ]
Tratsyak, Stanislau [2 ]
Agabekov, Vladimir [1 ]
机构
[1] Natl Acad Sci Belarus, Lab Micro & Nanostruct Syst, Inst Chem New Mat, 36 Skaryna Str, Minsk 220141, BELARUS
[2] Belorussian State Med Univ, Dept Surg Dis, 83 Dzerzhinski Ave, Minsk 220116, BELARUS
[3] Natl Inst Technol Rourkela, Dept Biotechnol & Med Engn, Rourkela, India
关键词
antibacterial; chitosan; layer-by-layer technique; pectin; silver nanocomposites; POLYELECTROLYTE MULTILAYER FILMS; BY-LAYER FILMS; ANTIBACTERIAL; COATINGS; NANOPARTICLES; SCAFFOLDS; INFECTION; THICKNESS; STRATEGY; EFFICACY;
D O I
10.1002/jbm.a.37278
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Implant-related infection is one of the serious problems in regenerative medicine. Promising approach to overcome the problems caused by bacterial growth on the medical implants is their modification by bioactive coatings. A versatile technique for designing multilayer films with tailored characteristics at the nanometer scale is layer-by-layer assembly. In this study, multilayer films based on biopolymers (pectin and chitosan) and their nanocomposites with silver nanoparticles have been prepared and evaluated. The buildup of multilayers was monitored using the quartz crystal microbalance with dissipation technique. The morphology of the obtained films was investigated by atomic force microscopy. We have demonstrated that pectin-Ag-containing films were characterized by the linear growth and smooth defect-free surface. When pectin-Ag was substituted for the pectin in the multilayer systems, the properties of the formed coatings were significantly changed: the film rigidity and surface roughness increased, as well as the film growth acquired the parabolic character. All prepared multilayer films have shown antibacterial activity against gram-positive (Staphylococcus aureus) and gram-negative (Escherichia coli) bacteria. The significant decrease in the number of the adhered E. coli on the multilayer surface has been determined; moreover, many of the cells were misshapen with cytoplasm leaking. The prepared multilayer films showed a mild activity against S. aureus predominantly due to the antiadhesive effect. Our results indicate that antibacterial activity of biopolymer multilayers is determined by the film composition and physicochemical characteristics and can be associated with their antiadhesive and bactericidal behaviors.
引用
收藏
页码:217 / 228
页数:12
相关论文
共 56 条
[11]   Nisin/polyanion layer-by-layer films exhibiting different mechanisms in antimicrobial efficacy [J].
Fael, Hanan ;
Demirel, A. Levent .
RSC ADVANCES, 2020, 10 (17) :10329-10337
[12]   Construction of intumescent flame retardant and antimicrobial coating on cotton fabric via layer-by-layer assembly technology [J].
Fang, Fei ;
Xiao, Dezhi ;
Zhang, Xian ;
Meng, Yuedong ;
Cheng, Cheng ;
Bao, Chao ;
Ding, Xin ;
Cao, Hang ;
Tian, Xingyou .
SURFACE & COATINGS TECHNOLOGY, 2015, 276 :726-734
[13]   Construction of anti-adhesive and antibacterial multilayer films via layer-by-layer assembly of heparin and chitosan [J].
Fu, JH ;
Ji, J ;
Yuan, WY ;
Shen, JC .
BIOMATERIALS, 2005, 26 (33) :6684-6692
[14]   An Updated Review on Silver Nanoparticles in Biomedicine [J].
Gherasim, Oana ;
Puiu, Rebecca Alexandra ;
Birca, Alexandra Catalina ;
Burdusel, Alexandra-Cristina ;
Grumezescu, Alexandru Mihai .
NANOMATERIALS, 2020, 10 (11) :1-44
[15]  
Ghosh S., 2011, IEEE, International Conference on Management and Service Science (MASS), P1, DOI [DOI 10.1155/2011/693759, 10.1155/2011/693759]
[16]   Layer by Layer Antimicrobial Coatings Based on Nafion, Lysozyme, and Chitosan [J].
Gibbons, Ella N. ;
Winder, Charis ;
Barron, Elliot ;
Fernandes, Diogo ;
Krysmann, Marta J. ;
Kelarakis, Antonios ;
Parry, Adam V. S. ;
Yeates, Stephen G. .
NANOMATERIALS, 2019, 9 (11)
[17]   Layer-by-layer deposition of antimicrobial polymers on cellulosic fibers: a new strategy to develop bioactive textiles [J].
Gomes, Ana P. ;
Mano, Joao F. ;
Queiroz, Joao A. ;
Gouveia, Isabel C. .
POLYMERS FOR ADVANCED TECHNOLOGIES, 2013, 24 (11) :1005-1010
[18]   A Review of the Antimicrobial Activity of Chitosan [J].
Goy, Rejane C. ;
de Britto, Douglas ;
Assis, Odilio B. G. .
POLIMEROS-CIENCIA E TECNOLOGIA, 2009, 19 (03) :241-247
[19]   Antibacterial Efficacy of Silver-Impregnated Polyelectrolyte Multilayers Immobilized on a Biological Dressing in a Murine Wound Infection Model [J].
Guthrie, Kathleen M. ;
Agarwal, Ankit ;
Tackes, Dana S. ;
Johnson, Kevin W. ;
Abbott, Nicholas L. ;
Murphy, Christopher J. ;
Czuprynski, Charles J. ;
Kierski, Patricia R. ;
Schurr, Michael J. ;
McAnulty, Jonathan F. .
ANNALS OF SURGERY, 2012, 256 (02) :371-377
[20]  
Hartmann H., 2017, BIONANOMATERIALS, V18, DOI 10.1515/bnm-2016-0015