Superclear, Porous Cellulose Membranes with Chitosan-Coated Nanofibers for Visualized Cutaneous Wound Healing Dressing.
Jian XiaHao ZhangFaquan YuYing PeiXiaogang LuoPublished in: ACS applied materials & interfaces (2020)
Easy and rapid continuous large-scale industrial production of transparent visualized cutaneous wound healing dressing from natural polymers is very worth studying in medical natural polymer materials and multifunction gauze dressing design fields. In this work, superclear, porous cellulose membranes (CMs) with chitosan-coated nanofibers were fabricated using a simple, one-step electrostatic spinning technology and evaluated as potential wound dressings. First, the pure CMs were dissolved by a simple physical method, and then, the membranes were regenerated in an acidic coagulation bath by the casting method. The chitosan solution was polarized into nanofibers and formed a continuous fiber mat on CMs because of the charge repulsion between molecules. The prepared chitosan-coated CMs (CM-CS) were characterized by scanning electron microscopy, Fourier transform infrared spectroscopy, X-ray diffraction, differential scanning calorimetry, tensile tests, and so forth. The results indicated that CM-CS showed high wettability, hydrophilicity, and gas permeability, in addition to excellent light transmittance and mechanical compliance. Cell cytotoxicity and morphology assay and antibacterial activity against Escherichia coli and Staphylococcus aureus were also studied. They exhibited good biocompatibility and antibacterial activity of CM-CS. Moreover, evaluation of an in vivo wound healing model in mice revealed that CM-CS had a good effect in promoting wound healing. This work provided an easy and rapid continuous large-scale industrial design strategy for natural bioresource-based wound dressing materials, which could act as potential wound dressings for clinical use.
Keyphrases
- wound healing
- electron microscopy
- escherichia coli
- staphylococcus aureus
- silver nanoparticles
- ionic liquid
- wastewater treatment
- single cell
- heavy metals
- high resolution
- physical activity
- healthcare
- high throughput
- solid state
- mental health
- drug delivery
- tissue engineering
- loop mediated isothermal amplification
- magnetic resonance imaging
- type diabetes
- metabolic syndrome
- cell therapy
- adipose tissue
- human health
- endothelial cells
- pseudomonas aeruginosa
- risk assessment
- bone marrow
- biofilm formation
- climate change
- light emitting