Sustained release of phenytoin from jellyfish collagen-based electrospun nanofibers: A wound dressing candidate with promising cell compatibility

被引:0
作者
Hajiani, Elham [1 ]
Osfouri, Shahriar [1 ]
Azin, Reza [2 ]
Zaeri, Sasan [3 ]
Rostami, Amir [1 ]
机构
[1] Persian Gulf Univ, Fac Petr Gas & Petrochem Engn, Dept Chem Engn, Bushehr, Iran
[2] Persian Gulf Univ, Fac Petr Gas & Petrochem Engn, Dept Petr Engn, Bushehr, Iran
[3] Bushehr Univ Med Sci, Sch Med, Dept Pharmacol, Bushehr, Iran
关键词
Jellyfish; Collagen; Chitosan; Nanofiber; Wound healing; Drug release; FABRICATION; SCAFFOLD; SODIUM;
D O I
10.1016/j.jddst.2025.107183
中图分类号
R9 [药学];
学科分类号
1007 ;
摘要
In this study, a wound dressing composed of nanofibers was fabricated to mimic the properties of the extra-cellular matrix using collagen extracted from Persian Gulf jellyfish (Catostylus mosaicus). The enzymatic extraction using pepsin yielded 14.58 % +/- 0.19 %, 9.98 times more efficient than the acidic method. Characterization revealed that the extracted collagen is type I, featuring amide bands in its structure and a denaturation temperature of 28.6 degrees C. Nanofibers were produced from polycaprolactone (PCL), with the addition of collagen (C) and phenytoin (P) to enhance wound healing. The ratio of PCL to collagen and the electrospinning parameters were optimized using response to produce optimal nanofibers (PCL-C-P ONFs) that facilitate sustained drug release over two days. The predicted drug release from PCL-C-P ONFs showed a relative inaccuracy of 1.4 % compared to the experimental results after four days. Incorporating collagen and phenytoin into the nanofibers enhanced their swelling properties, porosity, and hydrophilicity while reducing density. FTIR spectroscopy and XRD analyses confirmed the successful loading of both the collagen and the drug. Furthermore, FESEM and thermogravimetric analysis revealed a bead-free network with an average fiber diameter of 95 nm and an initial decomposition temperature of 280 degrees C. Chitosan (Chi) was added as a shell layer (PCL-C-P Chi-CSNFs) to improve the controlled release of phenytoin. TEM and FESEM experiments confirmed the core-shell structure, with a shell thickness of 39 +/- 16 nm and a core diameter of 92 +/- 21 nm. The chitosan shell increased porosity and swelling while enhancing the controlled release of phenytoin over 85 h compared to PCL-C-P ONFs and PCL-C-P-Chi NFs. Cytotoxicity assessments showed that PCL-C-P ONFs and PCL-C-P Chi-CSNFs are non-toxic, and improved drug release increases cell viability in the core-shell NFs dressings.
引用
收藏
页数:18
相关论文
共 71 条
[51]   A Study of the Relationship between Polymer Solution Entanglement and Electrospun PCL Fiber Mechanics [J].
Rajeev, Manasa ;
Helms, Christine C. .
POLYMERS, 2023, 15 (23)
[52]   Type I Collagen from Jellyfish Catostylus mosaicus for Biomaterial Applications [J].
Rastian, Zahra ;
Puetz, Sabine ;
Wang, YuJen ;
Kumar, Sachin ;
Fleissner, Frederik ;
Weidner, Tobias ;
Parekh, Sapun H. .
ACS BIOMATERIALS SCIENCE & ENGINEERING, 2018, 4 (06) :2115-2125
[53]   Collagen-coated silk fibroin nanofibers with antioxidants for enhanced wound healing [J].
Selvaraj, Sowmya ;
Inbasekar, Chandrasekar ;
Pandurangan, Suryalakshmi ;
Nishter, Nishad Fathima .
JOURNAL OF BIOMATERIALS SCIENCE-POLYMER EDITION, 2023, 34 (01) :35-52
[54]   Mechanism of Action of Collagen and Epidermal Growth Factor: A Review on Theory and Research Methods [J].
Shahrajabian, Mohamad Hesam ;
Sun, Wenli .
MINI-REVIEWS IN MEDICINAL CHEMISTRY, 2024, 24 (04) :453-477
[55]   Collagen-Based Micro/Nano Fibrous Constructs: Step-By-Step Reverse Biomimetics of Structure and Mechanical Function [J].
Sharon, Smadar E. ;
Aharonov, Adi ;
Mordechai, Haim S. ;
Tavakoli, Javad ;
Sharabi, Mirit .
ACS APPLIED POLYMER MATERIALS, 2023, 5 (04) :2816-2829
[56]   Role of chain entanglements on fiber formation during electrospinning of polymer solutions: good solvent, non-specific polymer-polymer interaction limit [J].
Shenoy, SL ;
Bates, WD ;
Frisch, HL ;
Wnek, GE .
POLYMER, 2005, 46 (10) :3372-3384
[57]   Recent progresses of collagen dressings for chronic skin wound healing [J].
Shi, Shuangni ;
Wang, Lili ;
Song, Chen ;
Yao, Linyan ;
Xiao, Jianxi .
COLLAGEN AND LEATHER, 2023, 5 (01)
[58]  
Taheri N., 2013, Int. Sportmed J. (ISMJ), V16, P359
[59]   Schwann cell-encapsulated chitosan-collagen hydrogel nerve conduit promotes peripheral nerve regeneration in rodent sciatic nerve defect models [J].
Takeya, Hiroaki ;
Itai, Shun ;
Kimura, Hiroo ;
Kurashina, Yuta ;
Amemiya, Tsuyoshi ;
Nagoshi, Narihito ;
Iwamoto, Takuji ;
Sato, Kazuki ;
Shibata, Shinsuke ;
Matsumoto, Morio ;
Onoe, Hiroaki ;
Nakamura, Masaya .
SCIENTIFIC REPORTS, 2023, 13 (01)
[60]   The initiation of oxidative stress and therapeutic strategies in wound healing [J].
Wang, Gang ;
Yang, Feifei ;
Zhou, Weiying ;
Xiao, Nanyang ;
Luo, Mao ;
Tang, Zonghao .
BIOMEDICINE & PHARMACOTHERAPY, 2023, 157