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1.
Int J Biol Macromol ; 157: 641-647, 2020 Aug 15.
Article in English | MEDLINE | ID: mdl-31786299

ABSTRACT

The objective of this work was to fabricate and characterize food-grade pea protein isolate (PPI) and carbohydrate polymer pullulan (PUL) nanofiber films by using green electrospinning technology. The effect of the blend ratios on the PPI/PUL solution properties (e.g. viscosity, surface tension and electrical conductivity) and morphology of the resulting electrospun nanofibers was investigated. The presence of PUL in the blends resulted in decreased apparent viscosity (P < 0.05), stable surface tension (42.09-46.26 mN/m) (P < 0.05) and lower conductivity of the solutions (P < 0.05), which were due to a better chain entanglement and decrease in the polyelectrolyte protein character, respectively, both factors were needed for uniform nanofiber (around 203 nm) formation. Rheological evaluation indicated a pseudoplastic behavior for all formulations. The Fourier transform infrared spectral changes and XRD patterns indicated that the protein and polysaccharide were well tangled in nanofibers. The results of the differential scanning calorimetry (DSC) indicate that thermal stability of the electrospun nanofiber films were improved in comparison to pure PUL. Finally, in order to expand the application range of the electrospun nanofiber films in future, thermal crosslinking method was conducted and water contact angles (WCAs) of the thermal treated nanofiber films exhibited better hydrophobic properties compared to the un-crosslinking samples.


Subject(s)
Glucans/chemistry , Nanofibers/chemistry , Pea Proteins/chemistry , Calorimetry, Differential Scanning , Glucans/isolation & purification , Hydrophobic and Hydrophilic Interactions , Pea Proteins/isolation & purification , Spectroscopy, Fourier Transform Infrared , Surface Tension
2.
Int J Biol Macromol ; 137: 224-231, 2019 Sep 15.
Article in English | MEDLINE | ID: mdl-31260763

ABSTRACT

In this study, Chitosan/pullulan composite nanofiber fast dissolving oral films (FDOFs) were prepared via electrospinning technology. The ratio of chitosan/pullulan (C/P) had an influence on solution property and nanofiber morphology, with the increase of chitosan, viscosity and conductivity of solutions increased, the morphology obtained by scanning electron microscopy indicated that the diameter of nanofibers decreased initially then increased. The Fourier transform infrared spectra indicated hydrogen bond interactions between chitosan and pullulan molecules. X-ray diffraction analysis proved that electrospinning process decreased the crystallinity of materials. Thermal analysis showed that melting point, degradation temperature and glass transition temperature increased with the addition of chitosan content in the FDOF. Water solubility test proved that the FDOF can dissolve in water completely within 60 s. Finally, in order to prove its practicability in future, a model drug of aspirin was encapsulated in the FDOF successfully.


Subject(s)
Chitosan/chemistry , Drug Carriers/chemistry , Drug Delivery Systems , Glucans/chemistry , Nanofibers/chemistry , Nanofibers/ultrastructure , Polymers , Solubility , Spectrum Analysis , Thermogravimetry
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