Alternating Current Electrospinning of Polycaprolactone/Chitosan Nanofibers for Wound Healing Applications

被引:10
作者
del Olmo, Jon Andrade [1 ]
Mikes, Petr [2 ]
Asatiani, Nikifor [2 ]
Alonso, Jose Maria [1 ]
Saez Martinez, Virginia [1 ]
Perez Gonzalez, Raul [1 ]
机构
[1] I Med S Coop, Alava Technol Pk,Albert Einstein 15,Nave 15, Vitoria 01510, Spain
[2] Tech Univ Liberec, Fac Sci Humanities & Educ, Dept Phys, Studentska 1402-2, Liberec 46117, Czech Republic
基金
欧盟地平线“2020”;
关键词
electrospinning; polycaprolactone; chitosan; nanofibers; wound healing; tissue regeneration; CHITOSAN; DRESSINGS; FABRICATION; SCAFFOLDS; POLYMERS; CHITIN; STEP;
D O I
10.3390/polym16101333
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
Traditional wound dressings have not been able to satisfy the needs of the regenerative medicine biomedical area. With the aim of improving tissue regeneration, nanofiber-based wound dressings fabricated by electrospinning (ES) processes have emerged as a powerful approach. Nowadays, nanofiber-based bioactive dressings are mainly developed with a combination of natural and synthetic polymers, such as polycaprolactone (PCL) and chitosan (CHI). Accordingly, herein, PCL/CHI nanofibers have been developed with varying PCL:CHI weight ratios (9:1, 8:2 and 7:3) or CHI viscosities (20, 100 and 600 mPa<middle dot>s) using a novel alternating current ES (ACES) process. Such nanofibers were thoroughly characterized by determining physicochemical and nanomechanical properties, along with wettability, absorption capacity and hydrolytic plus enzymatic stability. Furthermore, PCL/CHI nanofiber biological safety was validated in terms of cytocompatibility and hemocompatibility (hemolysis < 2%), in addition to a notable antibacterial performance (bacterial reductions of 99.90% for S. aureus and 99.91% for P. aeruginosa). Lastly, the enhanced wound healing activity of PCL/CHI nanofibers was confirmed thanks to their ability to remarkably promote cell proliferation, which make them ideal candidates for long-term applications such as wound dressings.
引用
收藏
页数:19
相关论文
共 66 条
[1]   Antimicrobial and wound healing activities of electrospun nanofibers based on functionalized carbohydrates and proteins [J].
Alavi, Mehran ;
Nokhodchi, Ali .
CELLULOSE, 2022, 29 (03) :1331-1347
[2]   Antibacterial Coatings for Improving the Performance of Biomaterials [J].
Andrade-Del Olmo, Jon ;
Ruiz-Rubio, Leire ;
Perez-Alvarez, Leyre ;
Saez-Martinez, Virginia ;
Vilas-Vilela, Jose Luis .
COATINGS, 2020, 10 (02)
[3]   Recent advances in electrospinning of nanofibers from bio-based carbohydrate polymers and their applications [J].
Angel, Nicole ;
Li, Songnan ;
Yan, Feng ;
Kong, Lingyan .
TRENDS IN FOOD SCIENCE & TECHNOLOGY, 2022, 120 :308-324
[4]   Electrospinning of chitosan-based nanofibers: from design to prospective applications [J].
Anisiei, Alexandru ;
Oancea, Florin ;
Marin, Luminita .
REVIEWS IN CHEMICAL ENGINEERING, 2023, 39 (01) :31-70
[5]  
[Anonymous], 2002, ISO 13726-1:2002
[6]   Bio-Based Electrospun Fibers for Wound Healing [J].
Azimi, Bahareh ;
Maleki, Homa ;
Zavagna, Lorenzo ;
Gustavo De la Ossa, Jose ;
Linari, Stefano ;
Lazzeri, Andrea ;
Danti, Serena .
JOURNAL OF FUNCTIONAL BIOMATERIALS, 2020, 11 (03)
[7]   Chitosan nanofiber biocomposites for potential wound healing applications: Antioxidant activity with synergic antibacterial effect [J].
Bagheri, Mitra ;
Validi, Majid ;
Gholipour, Abolfazl ;
Makvandi, Pooyan ;
Sharifi, Esmaeel .
BIOENGINEERING & TRANSLATIONAL MEDICINE, 2022, 7 (01)
[8]   Alternating current electrospinning for preparation of fibrous drug delivery systems [J].
Balogh, Attila ;
Cselko, Richard ;
Demuth, Balazs ;
Verreck, Geert ;
Mensch, Juergen ;
Marosi, Gyoergy ;
Nagy, Zsombor Kristof .
INTERNATIONAL JOURNAL OF PHARMACEUTICS, 2015, 495 (01) :75-80
[9]  
Balusamy B, 2017, WOODH PUBL SER BIOM, P101, DOI 10.1016/B978-0-08-101022-8.00017-X
[10]   Analysis of Long-Term Durability of Superhydrophobic Properties under Continuous Contact with Water [J].
Boinovich, Ludmila ;
Emelyanenko, Alexandre M. ;
Pashinin, Andrei S. .
ACS APPLIED MATERIALS & INTERFACES, 2010, 2 (06) :1754-1758