Fabrication of a Vitamin B12-Loaded Carbon Dot/Mixed-Ligand Metal Organic Framework Encapsulated within the Gelatin Microsphere for pH Sensing and In Vitro Wound Healing Assessment.
Swarup Krishna BhattacharyyaSuvendu NandiTamal DeySamit Kumar RayMahitosh MandalNarayan Chandra DasSusanta BanerjeePublished in: ACS applied bio materials (2022)
Bacterial invasion is a serious concern during the wound healing process. The colonization of bacteria is mainly responsible for the pH fluctuation at the wound site. Therefore, the fabrication of a proper wound dressing material with antibacterial activity and pH monitoring ability is necessary to acquire a fast healing process. Therefore, this work is dedicated to designing a vitamin B12-loaded gelatin microsphere (MS) decorated with a carbon dot (CD) metal-organic framework (MOF) for simultaneous pH sensing and advanced wound closure application. The resultant MS portrayed a high specific surface area and a hierarchically porous structure. Furthermore, the surface of the resultant MS contained numerous carboxyl groups and amine groups whose deprotonation and protonation with the pH alternation are accountable for the pH-sensitive properties. The vitamin B12 release study was speedy from the MOF structure in an acidic medium, which was checked by gelatin coating, and a controlled drug release behavior was observed. The system showed excellent cytocompatibility toward the L929 cell line and remarkable antibacterial performance against Gram-negative Escherichia coli and Gram-positive Staphylococcus aureus . Furthermore, the combined effect of Zn 2+ , the imidazole unit, and CDs produces an outstanding bactericidal effect on the injury sites. Finally, the in vitro wound model suggests that the presence of the vitamin B12-loaded gelatin MS accelerates the proliferation of resident fibroblast L929 cells and causes tissue regeneration in a time-dependent manner. The relative wound area, % of wound closure, and wound healing speed values are remarkable and suggest the requirement for assessing the response of the system before exploiting its prospective in vivo application.
Keyphrases
- wound healing
- metal organic framework
- gram negative
- mass spectrometry
- multiple sclerosis
- tissue engineering
- ms ms
- escherichia coli
- drug release
- staphylococcus aureus
- multidrug resistant
- hyaluronic acid
- drug delivery
- induced apoptosis
- bone regeneration
- signaling pathway
- stem cells
- quantum dots
- patient safety
- biofilm formation
- cystic fibrosis
- cell cycle arrest
- quality improvement
- cell proliferation
- oxidative stress
- endoplasmic reticulum stress
- energy transfer