Electrospun Poly-ε-Caprolactone Nanofibers Incorporating Keratin Hydrolysates as Innovative Antioxidant Scaffolds

被引:6
作者
Clerici, Naiara Jacinta [1 ]
Vencato, Aline Aniele [1 ]
Helm Junior, Rafael [1 ]
Daroit, Daniel Joner [2 ]
Brandelli, Adriano [1 ]
机构
[1] Univ Fed Rio Grande do Sul, Inst Food Sci & Technol, Lab Nanobiotechnol & Appl Microbiol, BR-90000000 Porto Alegre, Brazil
[2] Fed Univ Fronteira Sul, Postgrad Program Environm & Sustainable Technol, Campus Cerro Largo, BR-97900000 Cerro Largo, Brazil
关键词
antioxidant activity; biocompatible materials; keratin; polymeric nanofibers; FABRICATION; PCL;
D O I
10.3390/ph17081016
中图分类号
R914 [药物化学];
学科分类号
100701 ;
摘要
This manuscript describes the development and characterization of electrospun nanofibers incorporating bioactive hydrolysates obtained from the microbial bioconversion of feathers, a highly available agro-industrial byproduct. The electrospun nanofibers were characterized using different instrumental methods, and their antioxidant properties and toxicological potential were evaluated. Keratin hydrolysates (KHs) produced by Bacillus velezensis P45 were incorporated at 1, 2.5, and 5% (w/w) into poly-epsilon-caprolactone (PCL; 10 and 15%, w/v solutions) before electrospinning. The obtained nanofibers were between 296 and 363 nm in diameter, showing a string-like morphology and adequate structural continuity. Thermogravimetric analysis showed three weight loss events, with 5% of the mass lost up to 330 degrees C and 90% from 350 to 450 degrees C. Infrared spectroscopy showed typical peaks of PCL and amide bands corresponding to keratin peptides. The biological activity was preserved after electrospinning and the hemolytic activity was below 1% as expected for biocompatible materials. In addition, the antioxidant capacity released from the nanofibers was confirmed by DPPH and ABTS radical scavenging activities. The DPPH scavenging activity observed for the nanofibers was greater than 30% after 24 h of incubation, ranging from 845 to 1080 mu M TEAC (Trolox equivalent antioxidant capacity). The antioxidant activity for the ABTS radical assay was 44.19, 49.61, and 56.21% (corresponding to 972.0, 1153.3, and 1228.7 mu M TEAC) for nanofibers made using 15% PCL with 1, 2.5, and 5% KH, respectively. These nanostructures may represent interesting antioxidant biocompatible materials for various pharmaceutical applications, including wound dressings, topical drug delivery, cosmetics, and packaging.
引用
收藏
页数:16
相关论文
共 50 条
[31]   Bioactive glass/hydroxyapatite- containing electrospun poly (ε-Caprolactone) composite nanofibers for bone tissue engineering [J].
Deliormanli, Aylin M. ;
Konyali, Rabia .
JOURNAL OF THE AUSTRALIAN CERAMIC SOCIETY, 2019, 55 (01) :247-256
[32]   Mechanical properties and fatigue analysis on poly(ε-caprolactone)-polydopamine-coated nanofibers and poly(ε-caprolactone)-carbon nanotube composite scaffolds [J].
Fernandez, Jorge ;
Auzmendi, Oneka ;
Amestoy, Hegoi ;
Diez-Torre, Alejandro ;
Sarasua, Jose-Ramon .
EUROPEAN POLYMER JOURNAL, 2017, 94 :208-221
[33]   Solvent system effects on the physical and mechanical properties of electrospun Poly(ε-caprolactone) scaffolds for in vitro lung models [J].
Salimbeigi, G. ;
Cahill, P. A. ;
McGuinness, G. B. .
JOURNAL OF THE MECHANICAL BEHAVIOR OF BIOMEDICAL MATERIALS, 2022, 136
[34]   Electrospun Silver Nanoparticles-Embedded Feather Keratin/Poly(vinyl alcohol)/Poly(ethylene oxide) Antibacterial Composite Nanofibers [J].
He, Ming ;
Chen, Man ;
Dou, Yao ;
Ding, Jiao ;
Yue, Hangbo ;
Yin, Guoqiang ;
Chen, Xunjun ;
Cui, Yingde .
POLYMERS, 2020, 12 (02)
[35]   Preparation and Characterization of Electrospun Human Hair Keratin/Poly (ethylene oxide) Composite Nanofibers [J].
Liu, Yong ;
Li, Jia ;
Fan, Jie ;
Wang, Meng .
MATERIA-RIO DE JANEIRO, 2014, 19 (04) :382-388
[36]   Effect of Collagen Coating and Fiber Profile on Tenocyte Growth on Braided Poly-ε-Caprolactone Scaffolds for Tendon and Ligament Regeneration [J].
Emonts, Caroline ;
Bauer, Benedict ;
Buechter, Charlotte ;
Pufe, Thomas ;
Gries, Thomas ;
Tohidnezhad, Mersedeh .
INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2025, 26 (04)
[37]   Development and Assessment of Electrospun Poly(ε-caprolactone)-Poly(vinylalcohol) Blend Nanofibers for Pest Control in Stored Products [J].
Manjula, Ramamoorthy ;
Rajiv, Sheeja .
POLYMER-PLASTICS TECHNOLOGY AND ENGINEERING, 2017, 56 (18) :1949-1960
[38]   Selective localization of graphene oxide in electrospun polylactic acid/poly(ε-caprolactone) blended nanofibers [J].
Wang, Xiaofeng ;
Gao, Yanhong ;
Li, Xuyan ;
Xu, Yiyang ;
Jiang, Jing ;
Hou, Jianhua ;
Li, Qian ;
Turng, Lih-Sheng .
POLYMER TESTING, 2017, 59 :396-403
[39]   Designing hybrid nanofibers based on keratin-poly (vinyl alcohol) and poly (-caprolactone) for application as wound dressing [J].
Ranjbar-Mohammadi, Marziyeh ;
Arab-Bafrani, Zahra ;
Karimi, Fatemeh ;
Javid, Naeme .
JOURNAL OF INDUSTRIAL TEXTILES, 2022, 51 (1_SUPPL) :1729S-1749S
[40]   Using mathematical modeling to control topographical properties of poly (ε-caprolactone) melt electrospun scaffolds [J].
Ko, J. ;
Bhullar, S. K. ;
Mohtaram, N. K. ;
Willerth, S. M. ;
Jun, M. B. G. .
JOURNAL OF MICROMECHANICS AND MICROENGINEERING, 2014, 24 (06)