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Abstract
Recent advancements in the field of biomedical engineering have underscored the pivotal role of biodegradable materials in addressing the challenges associated with tissue regeneration therapies. The spectrum of biodegradable materials presently encompasses ceramics, polymers, metals, and composites, each offering distinct advantages for the replacement or repair of compromised human tissues. Despite their utility, these biomaterials are not devoid of limitations, with issues such as suboptimal tissue integration, potential cytotoxicity, and mechanical mismatch (stress shielding) emerging as significant concerns. To mitigate these drawbacks, our research collective has embarked on the development of protein-based composite materials, showcasing enhanced biodegradability and biocompatibility. This study is dedicated to the elaboration and characterization of an innovative suture fabricated from human serum albumin through an extrusion methodology. Employing a suite of analytical techniques—namely tensile testing, scanning electron microscopy (SEM), and thermal gravimetric analysis (TGA)—we endeavored to elucidate the physicochemical attributes of the engineered suture. Additionally, the investigation extends to assessing the influence of integrating biodegradable organic modifiers on the suture's mechanical performance. Preliminary tensile testing has delineated the mechanical profile of the Filament Suture (FS), delineating tensile strengths spanning 1.3 to 9.616 MPa and elongation at break percentages ranging from 11.5 to 146.64%. These findings illuminate the mechanical versatility of the suture, hinting at its applicability across a broad spectrum of medical interventions. Subsequent analyses via SEM and TGA are anticipated to further delineate the suture’s morphological features and thermal resilience, thereby enriching our comprehension of its overall performance characteristics. Moreover, the investigation delves into the ramifications of incorporating biodegradable organic constituents on the suture's mechanical integrity. Collectively, the study not only sheds light on the mechanical and thermal dynamics of a novel suture material derived from human serum albumin but also explores the prospective enhancements afforded by the amalgamation of biodegradable organic compounds, thereby broadening the horizon for future biomedical applications.
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Details
1 Minia University, Faculty of Engineering, Biomedical Engineering Department, Minia, Egypt (GRID:grid.411806.a) (ISNI:0000 0000 8999 4945); Helwan University, Faculty of Engineering, Biomedical Engineering Department, Helwan, Egypt (GRID:grid.412093.d) (ISNI:0000 0000 9853 2750)
2 Helwan University, Faculty of Engineering, Biomedical Engineering Department, Helwan, Egypt (GRID:grid.412093.d) (ISNI:0000 0000 9853 2750); MSOE University, EECS Department, Milwaukee, United States (GRID:grid.260064.6) (ISNI:0000 0001 0706 8057)
3 Minia University, Faculty of Engineering, Chemical Engineering Department, Minia, Egypt (GRID:grid.411806.a) (ISNI:0000 0000 8999 4945)
4 Future University Egypt, Faculty of Engineering and Technology, Fifth Settlement, Egypt (GRID:grid.440865.b) (ISNI:0000 0004 0377 3762)
5 Minia University, Faculty of Engineering, Biomedical Engineering Department, Minia, Egypt (GRID:grid.411806.a) (ISNI:0000 0000 8999 4945)