Laccase with substrate non-specificity is particularly effective in pollutant degradation. However, the practical application of the laccase is limited due to its poor stability and reusability. In this study, a simple in situ encapsulation method was used to immobilize laccase into amorphous zeolitic imidazolate frameworks-8 (aZIF-8), and the synthesized Lac@aZIF-8 biocomposites were used to remove Reactive Blue 19 (RB 19). Results indicated that the presence of mesoporous endowed the immobilized laccase with higher substrate affinity. Compared with free laccase, the Lac@aZIF-8 showed higher thermo-tolerant performance, wider pH range, better storage stability, and reusability. The Lac@aZIF-8 biocomposites have excellent performance in the effective removal of RB 19. Without any mediators, the dye decolorization rate of immobilized laccase reached up to 82% in 3 h under optimal conditions. Based on the LC-MS analysis, the proposed degradation pathways of RB 19 were discussed technically. Moreover, the growth inhibition experiments on Scenedesmus obliquus confirmed the lower toxicity intensity of the degradation products. This research enhanced the stability of laccase while maintaining high substrate affinity, providing a novel strategy for the green and efficient treatment of dye wastewater. PRACTITIONERS POINTS: Lac@aZIF-8 was synthesized by a simple in situ encapsulation method. The mesoporous structure endows the immobilized laccase with higher substrate affinity. The Lac@aZIF-8 shows higher thermo-tolerant performance, wider pH range, better storage stability, and reusability. The Lac@aZIF-8 biocomposites have excellent performance in RB 19 removal.
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http://dx.doi.org/10.1002/wer.10879 | DOI Listing |
Angew Chem Int Ed Engl
January 2025
Sun Yat-Sen University, School of Chemistry, 135 Xingang West, 510275, Guangzhou, CHINA.
Integrating enzymes with reticular frameworks offers promising avenues for access to functionally tailorable biocatalysis. This Minireview explores recent advances in enzyme-reticular frameworks hybrid biocomposites, focusing on the utilization of porous reticular frameworks, including metal-organic frameworks, covalent-organic frameworks, and hydrogen-bonded organic frameworks, to regulate the reactivity of an enzyme encapsulated inside mainly by pore infiltration and in situ encapsulation strategies. We highlight how pore engineering and host-guest interfacial interactions within reticular frameworks create tailored microenvironments that substantially impact the mass transfer and enzyme's conformation, leading to biocatalytic rate enhancement, or imparting enzyme with non-native biocatalytic functions including substrate-selectivity and new activity.
View Article and Find Full Text PDFInt J Nanomedicine
January 2025
Guangzhou Institute of Cancer Research, the Affiliated Cancer Hospital, Guangzhou Medical University, Guangzhou, Guangdong, 510095, People's Republic of China.
Purpose: Photo-immunotherapy faces challenges from poor immunogenicity and low response rate due to hypoxic microenvironment. This study presents Rh-PTZ, a small organic molecule with a D-π-A structure, that simultaneously amplifies mitochondria-targeted type-I PDT-dependent immune stimulation for the treatment of hypoxic cancer.
Methods: The hydrophobic Rh-PTZ was encapsulated into F127 to prepare Rh-PTZ nanoparticles (Rh-PTZ NPs).
Inorg Chem
January 2025
MOE Key Laboratory of Cluster Science, School of Chemistry and Chemical Engineering, Beijing Institute of Technology, Beijing 102488, China.
A novel antimonotungstate (AT)-based heterometallic framework {[Er(HO)][Fe(Hpdc)(B-β-SbWO)]}·50HO (, Hpdc = pyridine-2,5-dicarboxylic acid) was obtained through a synergistic strategy of in situ-generated transition-metal-encapsulated polyoxometalate (POM) building units and the substitution reaction. Its structural unit is composed of a tetra-Fe-substituted Krebs-type [Fe(Hpdc)(B-β-SbWO)] subunit and two [Er(HO)] cations. This subunit can be regarded as a product of carboxylic oxygen atoms of Hpdc ligands replacing active water ligands in the [Fe(HO)(B-β-SbWO)] species.
View Article and Find Full Text PDFACS Appl Mater Interfaces
January 2025
State Key Lab of New Ceramics and Fine Processing, School of Materials Science and Engineering, Tsinghua University, Beijing 100084, PR China.
Supported noble metal catalysts have a high catalytic activity and selectivity. However, fast surface reconstruction and sintering of noble metal particles during a high-temperature reaction process pose a major challenge to the stability of the catalysts. In this study, sinter-resistant supported noble metal catalysts were prepared by constructing an oxide nanotrap.
View Article and Find Full Text PDFInt J Pharm
January 2025
Key Laboratory of Biopharmaceutical Preparation and Delivery, State Key Laboratory of Biochemical Engineering, Chinese Academy of Sciences, Beijing 100190 China; Key Laboratory of Industrial Microbiology, Ministry of Education, College of Biotechnology, Tianjin University of Science and Technology, Tianjin 300457 China. Electronic address:
Trauma healing is the process of healing after the body has been subjected to an external force and the skin and other tissues have become dissected or defective, showing the synergistic effect of various processes. Therefore, the investigation of innovative wound dressings has significant research and clinical implications. In this study, we constructed a zinc based metal-organic framework (MOF) and loaded with antimicrobial peptide LL37 to prepare LL37@ZPF-2 (ZPF = zeolite pyrimidine backbone), which was subsequently integrated with Poloxamer 407 to fabricate LL37@ZPF-2 thermosensitive hydrogel.
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