3D Electrospun poly L-lactic acid nanofibrous structures coated with regenerated silk fibroin and silver nitrate for burn wounds

dc.contributor.author Yvonne, Tusiimire
dc.date.accessioned 2026-07-20T08:56:48Z
dc.date.available 2026-07-20T08:56:48Z
dc.date.issued 2026
dc.description A Thesis submitted to the Directorate of Graduate Training in fulfillment of the requirements for the award of the Degree of Doctor of Philosophy of Makerere University.
dc.description.abstract Pediatric burn victims, who are the majority in Uganda, are treated with cotton gauze embedded with topical creams that require painful, frequent changes because of their adherence tendency due to absorption properties. This research developed a 3D-ES poly L-lactic acid (PLLA) nanofibrous structure coated with antibacterial properties that is also biocompatible and biodegradable. An optimized pristine 3D-ES structure had a height of 23.58 mm and a fiber diameter of 0.77 ± 0.05 µm (p > 0.05), suggesting uniform fiber diameters. It had a contact angle of 120°, 40.3% in vitro degradation, and 480.29% fluid take-up on Day 4. No cytotoxicity was observed by Lactate dehydrogenase (LDH) release assay, and cells adhered and grew, indicating biocompatibility. The 3D-ES structure was coated with regenerated silk fibroin (RSF), whose optimized extraction process was based on Activity-Based Costing (ABC) accounting for the total cost of producing 1 g of RSF, which cost $ 100.06 compared to the $379.58 cost of 1 g of Lyophilized RSF. With optimized spray parameters, silver nitrate (AgNO3) was coated onto the 3D-ES structure. Prior, the minimum inhibitory concentration (MIC) and maximum bactericidal concentration (MBC) of 0.5 mg mL-1 AgNO3 were analyzed and recorded as the 1st and Neat for all standard and clinical isolates for S. aureus and E. coli. The zone of inhibition (ZOI) decreased with increasing serial dilution, with the widest clearance being 24 mm for SE. coli clinical isolate. Overall, the 3D-ES PLLA structure coated with RSF and AgNO3 was biodegradable, biocompatible, and had antibacterial properties. This research introduces the potential of using 3D-ES drug-loaded structures as potential wound dressings.
dc.description.sponsorship Africa Center of Excellence in Materials, Product Development, and Nanotechnology; MAPRONANO ACE, Grant No. P151847IDA credit 5797-UG; College of Engineering, Design, Art, and Technology, Makerere University. Commonwealth Scholarship Commission
dc.identifier.citation Tusiimire, Y. (2026). 3D Electrospun poly L-lactic acid nanofibrous structures coated with regenerated silk fibroin and silver nitrate for burn wounds. (Unpublished Doctroral Dissertation). Makerere University, Kampala, Uganda.
dc.identifier.uri https://makir.mak.ac.ug/handle/10570/16936
dc.language.iso en
dc.publisher Makerere University
dc.subject Research Subject Categories::MEDICINE::Morphology, cell biology, pathology::Morphology::Biomaterials
dc.subject Research Subject Categories::TECHNOLOGY::Materials science::Functional materials
dc.subject Research Subject Categories::TECHNOLOGY::Chemical engineering::Chemical process and manufacturing engineering::Materials chemistry
dc.subject Research Subject Categories::TECHNOLOGY::Materials science
dc.subject Research Subject Categories::NATURAL SCIENCES::Chemistry::Organic chemistry::Polymer chemistry
dc.title 3D Electrospun poly L-lactic acid nanofibrous structures coated with regenerated silk fibroin and silver nitrate for burn wounds
dc.type Thesis
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