Improving the Durability of Chitosan Films through Incorporation of Magnesium, Tungsten, and Graphene Oxides for Biomedical Applications

Author:

Alaithan Fatimah1,Khalaf Mai M.12,Gouda Mohamed1,Yousef T. A.34,Kenawy Sayed H.35,Abou‐Krisha Mortaga M.36,Abou Taleb Manal F.7,Shaaban Saad18,Alkars Abdullah M.1,Abd El‐Lateef Hany M.12

Affiliation:

1. Department of Chemistry College of Science King Faisal University Al-Ahsa 31982 Saudi Arabia

2. Chemistry Department Faculty of Science Sohag University Sohag 82524 Egypt

3. College of Science Chemistry Department Imam Mohammad Ibn Saud Islamic University (IMSIU) Riyadh 11623, KSA

4. Department of Toxic and Narcotic Drug Forensic Medicine Mansoura Laboratory Medicolegal organization Ministry of Justice Egypt

5. Refractories Ceramics and Building Materials Department National Research Center El-Buhouth St. Dokki 12622 Giza Egypt

6. Department of Chemistry South Valley University Qena 83523 Egypt

7. Department of Chemistry College of Science and Humanities Prince Sattam Bin Abdulaziz University Al-kharj 11942 Saudi Arabia

8. Department of Chemistry Faculty of Science Mansoura University 35516 Mansoura Egypt

Abstract

AbstractBacterial infections that cause chronic wounds provide a challenge to healthcare worldwide because they frequently impede healing and cause a variety of problems. In this study, loaded with tungsten oxide (WO3), Magnesium oxide (MgO), and graphene oxide (GO) on chitosan (CS) membrane, an inexpensive polymer casting method was successfully prepared for wound healing applications. All fabricated composites were characterized by X‐ray powder diffraction (XRD), Fourier transforms infrared spectroscopy (FT‐IR), and thermogravimetric analysis (TGA). A scanning electron microscope (SEM) was used to study the synthesized film samples’ morphology as well as their microstructure. The formed WO3/MgO@CS shows a great enhancement in the UV/VIS analysis with a highly intense peak at 401 nm and a narrow band gap (3.69 eV) compared to pure CS. The enhanced electron‐hole pair separation rate is responsible for the WO3/MgO/GO@CS scaffold's antibacterial activity. Additionally, human lung cells were used to determine the average cell viability of nanocomposite scaffolds and reached 121 % of WO3/MgO/GO@CS nanocomposite, and the IC50 value was found to be 1654 μg/mL. The ability of the scaffold to inhibit the bacteria has been tested against both E. coli and S. aureus. The 4th sample showed an inhibition zone of 11.5±0.5 mm and 13.5±0.5 mm, respectively. These findings demonstrate the enormous potential for WO3/MgO/GO@CS membrane as wound dressings in the clinical management of bacterially infected wounds.

Funder

Deanship of Scientific Research, Prince Sattam bin Abdulaziz University

Publisher

Wiley

Subject

Molecular Biology,Molecular Medicine,General Chemistry,Biochemistry,General Medicine,Bioengineering

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