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Over the past decade, the preparation of novel materials by enzyme-embedding into biopolyesters has been proposed as a straightforward method to produce self-degrading polymers. This paper reports the preparation and enzymatic degradation of extruded self-degradable films of three different biopolyesters: poly(lactic acid) (PLA), poly(butylene adipate--terephthalate) (PBAT), and poly(butylene succinate) (PBS), as well as three binary/ternary blends. lipase B (CalB) has been employed for the enzyme-embedding procedure, and to the best of our knowledge, the use of this approach in biopolyester blends has not been reported before. The three homopolymers exhibited differentiated degradation and suggested a preferential attack of CalB on PBS films over PBAT and PLA. Moreover, the self-degradable films obtained from the blends showed slow degradation, probably due to the higher content in PLA and PBAT. These observations pave the way for exploring enzymes capable of degrading all blend components or an enzymatic mixture for blend degradation.
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http://dx.doi.org/10.1021/acs.biomac.4c00161 | DOI Listing |
PLoS One
September 2025
Shenzhen University Institute for Advanced Study, Shenzhen, Guangdong, China.
Trichophyton rubrum, a dermatophyte, demonstrates a notable ability to form mature biofilms on skin and associated surfaces, strengthening its resistance to antifungal agents. This characteristic poses intricate challenges in dermatological research and therapeutic strategies, underscoring the need for innovative approaches to effectively manage fungal infections. This work assessed the impact of the anti-biofilm enzymes, i.
View Article and Find Full Text PDFAngiogenesis
September 2025
Pathophysiology and Regenerative Medicine Group, Hospital Nacional de Parapléjicos, Servicio de Salud de Castilla la Mancha (SESCAM), 45071, Toledo, Spain.
Limited vascularization and ischemia are major contributors to the chronicity of wounds, such as ulcers and traumatic injuries, which impose significant medical, social, and economic burdens. These challenges are particularly pronounced in patients with spinal cord injury (SCI), a disabling condition associated with vascular dysfunction, infections, and impaired peripheral circulation, complicating the treatment of pressure injuries (PIs) and the success of reconstructive procedures like grafts and flaps. Regenerative medicine aims to address these issues by identifying effective cellular therapies to restore vascular beds.
View Article and Find Full Text PDFFEMS Yeast Res
September 2025
Enology and Fermentation Biotechnology Area, Department of Science and Food Technology. Faculty of Chemistry, Universidad de la Republica. Montevideo, Uruguay.
Hanseniaspora species are among the most prevalent yeasts found on grapes and other fruits, with a growing role in wine fermentation due to their distinctive metabolic profiles. This review focuses on the functional divergence within the genus, particularly between the fast-evolving fruit clade and the slow-evolving fermentation clade. While species in the fruit clade often exhibit limited fermentation capacity with interesting enzymatic activity, members of the fermentation clade-especially H.
View Article and Find Full Text PDFInt J Mol Med
November 2025
Department of Neurosciences 'Rita Levi Montalcini', University of Turin, I‑10125 Turin, Italy.
Kinases are activators of well‑known inflammatory cascades implicated in metabolic disorders, and abnormal activation of casein kinase II (CK2) is associated with several inflammatory disorders. However, thus far, its role in the low‑grade chronic inflammatory response known as 'metaflammation', which is a hallmark of obesity and type 2 diabetes, has not yet been elucidated. The present study aimed to evaluate the role of CK2 in diet‑induced metaflammation and the effects of the CK2 inhibitor 4,5,6,7‑tetrabromobenzotriazole (TBB) on a murine model fed a high‑fat‑high‑sugar (HFHS) diet.
View Article and Find Full Text PDFACS Catal
August 2025
Department of Chemistry, University of Southern California, Los Angeles, California 90089, United States.
Chlorinated hydrocarbons are widely used as solvents and synthetic intermediates, but their chemical persistence can cause hazardous environmental accumulation. Haloalkane dehalogenase from (DhlA) is a bacterial enzyme that naturally converts toxic chloroalkanes into less harmful alcohols. Using a multiscale approach based on the empirical valence bond method, we investigate the catalytic mechanism of 1,2-dichloroethane dehalogenation within DhlA and its mutants.
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