Development and Characterization of Conducting-Polymer-Based Hydrogel Dressing for Wound Healing

被引:10
作者
Badhe, Ravindra, V [1 ]
Godse, Anagha [1 ]
Shinkar, Ankita [1 ]
Kharat, Avinash [2 ]
Patil, Vikrant [2 ]
Gupta, Archana [2 ]
Kheur, Supriya [2 ]
机构
[1] Dr DY Patil Inst Pharmaceut Sci & Res, Dept Pharmaceut Chem, Pune, Maharashtra, India
[2] Dr DY Patil Vidyapeeth, Regenerat Med Lab, Dr DY Patil Dent Coll & Hosp, Pune, Maharashtra, India
关键词
Polyaniline; chitosan; composite hydrogel; wound healing; electrical stimulation; vitamin D; CHITOSAN HYDROGELS; STEM-CELLS; SCAFFOLDS; RELEASE; CHITIN;
D O I
10.4274/tjps.galenos.2020.44452
中图分类号
R9 [药学];
学科分类号
1007 ;
摘要
Objectives: Normal and chronic wound healing is a global challenge. Electrotherapy has emerged as a novel and efficient technique for treating such wounds in recent decades. Hydrogel applied to the wound to uniformly distribute the electric current is an important component in wound healing electrotherapy. This study reports the development and wound healing efficacy testing of vitamin D entrapped polyaniline (PANI)-chitosan composite hydrogel for electrotherapy. Materials and Methods: To determine the morphological and physicochemical properties, techniques like scanning electron microscopy (SEM); differential scanning calorimetry; X-ray diffraction; fourier-transform infrared spectroscopy were used. Moreover, pH, conductance, viscosity, and porosity were measured to optimize and characterize the vitamin D entrapped PANI-chitosan composite hydrogel. The biodegradation was studied using lysozyme, whereas the water uptake ability was studied using phosphate buffer. Ethanolic phosphate buffer was used to perform the vitamin D entrapment and release study. Cell adhesion, proliferation, and electrical stimulation experiments were conducted by seeding dental pulp stem cells (DPSC) into the scaffolds and performing (3-[4,5-dimethylthiazol-2-yl]-2,5 diphenyl tetrazolium bromide) assay; SEM images were taken to corroborated the proliferation results. The wound healing efficacy of electrotherapy and the developed hydrogel were studied on excision wound healing model in rats, and the scarfree wound healing was further validated by histopathology analysis. Results: The composition of the developed hydrogel was optimized to include 1% w/v PANI and 2% w/v of chitosan composite. This hydrogel showed 1455 mu A conduction, 98.97% entrapment efficiency and 99.12% release of vitamin D in 48 hrs. The optimized hydrogel formulation showed neutral pH of 6.96 and had 2198 CP viscosity at 26 degrees C. The hydrogel showed 652.4% swelling index and 100% degradation in 4 weeks. The in vitro cell culture studies performed on hydrogel scaffolds using DPSC and electric stimulation strongly suggested that electrical stimulation enhances the cell proliferation in a three-dimensional (3D) scaffold environment. The in vivo excision wound healing studies also supported the in vitro results suggesting that electrical stimulation of the wound in the presence of the conducting hydrogel and growth factors like vitamin D heals the wound much faster (within 12 days) compared to non-treated control wounds (requires 21 days for complete healing). Conclusion: The results strongly suggested that the developed PANI-chitosan composite conducting hydrogel acts effectively as an electric current carrier to distribute the current uniformly across the wound surface. It also acted as a drug delivery vehicle for delivering vitamin D to the wound. The hydrogel provided a moist environment, a 3D matrix for free migration of the cells, and antimicrobial activity due to chitosan, all of which contributed to the electrotherapy's faster wound healing mechanism, confirmed through the in vitro and in vivo experiments.
引用
收藏
页码:483 / 491
页数:9
相关论文
共 49 条
  • [1] Chitin and chitosan in selected biomedical applications
    Anitha, A.
    Sowmya, S.
    Kumar, P. T. Sudheesh
    Deepthi, S.
    Chennazhi, K. P.
    Ehrlich, H.
    Tsurkan, M.
    Jayakumar, R.
    [J]. PROGRESS IN POLYMER SCIENCE, 2014, 39 (09) : 1644 - 1667
  • [2] Low-intensity current (LIC) stimulation of subcutaneous adipose derived stem cells (ADSCs) - A missing link in the course of LIC based wound healing
    Badhe, Ravindra V.
    Nipate, Sonali S.
    [J]. MEDICAL HYPOTHESES, 2019, 125 : 79 - 83
  • [3] A composite chitosan-gelatin bi-layered, biomimetic macroporous scaffold for blood vessel tissue engineering
    Badhe, Ravindra V.
    Bijukumar, Divya
    Chejara, Dharmesh R.
    Mabrouk, Mostafa
    Choonara, Yahya E.
    Kumar, Pradeep
    du Toit, Lisa C.
    Kondiah, Pierre P. D.
    Pillay, Viness
    [J]. CARBOHYDRATE POLYMERS, 2017, 157 : 1215 - 1225
  • [4] Dental pulp stem cells in chitosan/gelatin scaffolds for enhanced orofacial bone regeneration
    Bakopoulou, Athina
    Georgopoulou, Anthie
    Grivas, Ioannis
    Bekiari, Chryssa
    Prymak, Oleg
    Loza, Kateryna
    Epple, Matthias
    Papadopoulos, George C.
    Koidis, Petros
    Chatzinikolaidou, Maria
    [J]. DENTAL MATERIALS, 2019, 35 (02) : 310 - 327
  • [5] Conducting polymer-hydrogel blends for electrochemically controlled drug release devices
    Barthus, Rosangela C.
    Lira, Luiz M.
    de Torresi, Susana I. Cordoba
    [J]. JOURNAL OF THE BRAZILIAN CHEMICAL SOCIETY, 2008, 19 (04) : 630 - 636
  • [6] Structure and interactions in covalently and ionically crosslinked chitosan hydrogels for biomedical applications
    Berger, J
    Reist, M
    Mayer, JM
    Felt, O
    Peppas, NA
    Gurny, R
    [J]. EUROPEAN JOURNAL OF PHARMACEUTICS AND BIOPHARMACEUTICS, 2004, 57 (01) : 19 - 34
  • [7] Chitosan-based hydrogels for controlled, localized drug delivery
    Bhattarai, Narayan
    Gunn, Jonathan
    Zhang, Miqin
    [J]. ADVANCED DRUG DELIVERY REVIEWS, 2010, 62 (01) : 83 - 99
  • [8] Burkiewicz Claudine Juliana Cristina Caznoch, 2012, Rev. Col. Bras. Cir., V39, P401
  • [9] Biomedical applications of hydrogels: A review of patents and commercial products
    Calo, Enrica
    Khutoryanskiy, Vitaliy V.
    [J]. EUROPEAN POLYMER JOURNAL, 2015, 65 : 252 - 267
  • [10] Carterall William A., 2001, SODIUM CHANNELS NEUR