Development of Lepidium sativum Extracts/PVA Electrospun Nanofibers as Wound Healing Dressing

被引:36
作者
Amer, Asmaa A. [1 ]
Mohammed, Reda S. [1 ]
Hussein, Yasmein [2 ]
Ali, Ahmed S. M. [2 ,3 ]
Khalil, Ashraf A. [4 ]
机构
[1] Natl Res Ctr, Pharmaceut & Drug Ind Res Inst, Dept Pharmacognosy, Cairo 12622, Egypt
[2] British Univ Egypt BUE, Nanotechnol Res Ctr NTRC, Cairo 11837, Egypt
[3] Tech Univ Berlin, Inst Biotechnol, Dept Appl Biochem, D-13355 Berlin, Germany
[4] City Sci Res & Technol Applicat, Inst Biotechnol & Genet Engn, Alexandria 5220211, Egypt
关键词
IN-VITRO; ANTIOXIDANT ACTIVITY; CHEMICAL-COMPOSITION; CRESS SEED; MUCILAGE; ASSAY;
D O I
10.1021/acsomega.2c00912
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Lepidium sativum L. (Garden cress/Hab El Rashad) (Ls), family Brassicaceae, has considerable importance in traditional medicine worldwide because of its antioxidant and anti-inflammatory activities. Ls fruits were used in Ayurvedic medicines as a useful drug for injuries, skin, and eye diseases. The aim of this study was to examine the effectiveness of the total ethanol extract (TEE) and polysaccharide (Poly) of Ls seeds loaded on poly(vinyl alcohol) (PVA) nanofibers (NFs) as a wound healing dressing and to correlate the activity with the constituents of each. TEE and Poly were phytochemically analyzed qualitatively and quantitatively. Qualitative analysis proved the presence of phenolic acids, flavonoids, tannins, sterols, triterpenes, and mucilage. Meanwhile, quantitative determinations were carried out spectrophotometrically for total phenolic and total flavonoid contents. High-performance liquid chromatography (HPLC) for TEE identified 15 phenolic acids and flavonoid compounds, with gallic acid and catechin as the majors. Separation, purification, and identification of the major compounds were achieved through a Puriflash system, column Sephadex LH20, and spectroscopic data (H-1, C-13 NMR, and UV). Eight compounds (gallic acid, catechin, rutin, kaempferol-3-O-rutinoside, quercetin-3-O-rharnrioside, kaempferol-3-O-rhamnoside, quercetin, and kaempferol) were obtained. Gas-liquid chromatography (GLC) analysis for Poly identified 11 compounds, with galactose being the main. The antioxidant activity for both extracts was measured by three different methods based on different mechanisms: 1,1-diphenyl-2-picrylhydrazyl (DPPH), ferric reducing ability of plasma (FRAP), and 3-ethylbenzothiazoline-6-sulfonic acid (ABTS). TEE has the highest effectiveness as an antioxidant agent with IC50 82.6 +/- 8.35 mu g/mL for DPPH and 772.47 and 758.92 mu M Trolox equivalent/mg extract for FRAP and ABTS, respectively. The PVA nanofibers (NFs) for each sample were fabricated by electrospinning. The fabricated NFs were characterized by SEM and Fourier transform infrared spectroscopy (FTIR); the results revealed successful encapsulation of TEE and Poly in the prepared NFs. Moreover, the swelling index of TEE in the prepared NFs shows that it is the most appropriate for use as a wound dressing. Cytotoxicity studies indicated a high cell viability with IC50 216 mu g/mL and 1750 mu g/mL for TEE and Poly, respectively. Moreover, the results revealed that nanofibers possess higher cell viability compared to solutions with the same sample quantities: 9-folds for TEE and 4-folds for Poly of amount 400 mu g. The in vitro wound healing test showed that the TEE nanofibers performed better than Poly nanofibers in accelerating wound healing, with 90% for TEE, more than that for the Poly extract (82%), after 48 h. These findings implied that the incorporation of TEE in PVA nanofibers was more efficient than incorporation of Poly in improving the biological activity in wound healing. In conclusion, the TEE and polysaccharides of L. sativum L seed are ideal candidates for nanofibrous wound dressings. Furthermore, the contents of phenolic acids and flavonoids in TEE, which have potential antioxidant activity, make the TEE of L. sativum more favorable for wound healing dressing.
引用
收藏
页码:20683 / 20695
页数:13
相关论文
共 72 条
[1]  
Abd El-Aziz M, 2016, RES J PHARM BIOL CHE, V7, P606
[2]   Lepidium sativum natural seed plant extract in the structural and physical characteristics of polyvinyl alcohol [J].
Abdelghany, A.M. ;
Meikhail, M.S. ;
Abdelraheem, G.E.A. ;
Badr, S.I. ;
Elsheshtawy, N. .
International Journal of Environmental Studies, 2018, 75 (06) :965-977
[3]  
Agrawal PK., 1989, CARBON 13 NMR FLAVON, P564
[4]   Chemical composition and biological activities of n-butanol extract of Lepidium sativum L (Brassicaceae) seed [J].
Ait-yahia, Ouahiba ;
Perreau, Francois ;
Bouzroura, Samia-Aichouche ;
Benmalek, Yamina ;
Dob, Tahar ;
Belkebir, Aicha .
TROPICAL JOURNAL OF PHARMACEUTICAL RESEARCH, 2018, 17 (05) :891-896
[5]   Biocompatibility and hemocompatibility of polyvinyl alcohol hydrogel used for vascular grafting-In vitro and in vivo studies [J].
Alexandre, Nuno ;
Ribeiro, Jorge ;
Gaertner, Andrea ;
Pereira, Tiago ;
Amorim, Irina ;
Fragoso, Joao ;
Lopes, Ascensao ;
Fernandes, Joao ;
Costa, Elisio ;
Santos-Silva, Alice ;
Rodrigues, Miguel ;
Santos, Jose Domingos ;
Mauricio, Ana Colette ;
Luis, Ana Lucia .
JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART A, 2014, 102 (12) :4262-4275
[6]   The hydrophilic and lipophilic contribution to total antioxidant activity [J].
Arnao, MB ;
Cano, A ;
Acosta, M .
FOOD CHEMISTRY, 2001, 73 (02) :239-244
[7]   A rapid microtitre plate Folin-Ciocalteu method for the assessment of polyphenols [J].
Attard, Everaldo .
CENTRAL EUROPEAN JOURNAL OF BIOLOGY, 2013, 8 (01) :48-53
[8]  
Bacakova L., 2020, APPL NANOBIOTECHNOL, P33
[9]   Intrinsic viscosity of cress (Lepidium sativum) seed gum: Effect of salts and sugars [J].
Behrouzian, Fataneh ;
Razavi, Seyed M. A. ;
Karazhiyan, Hojjat .
FOOD HYDROCOLLOIDS, 2014, 35 :100-105
[10]   The ferric reducing ability of plasma (FRAP) as a measure of ''antioxidant power'': The FRAP assay [J].
Benzie, IFF ;
Strain, JJ .
ANALYTICAL BIOCHEMISTRY, 1996, 239 (01) :70-76