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Citrus fruits contain numerous antioxidative biomolecules including phenolic acids, flavonols, flavanones, polymethoxyflavones (PMFs), and their derivatives. Previous in vitro and in vivo studies thoroughly investigated the antioxidant and therapeutic potential of bioflavonoids extracted from different citrus varieties and fruit fractions. Major bioflavonoids such as hesperidin, naringin, naringenin, and PMFs, had restricted their incorporation into food and health products due to their poor solubility, chemical stability and bioavailability. Considering these limitations, modern encapsulation methodologies such as hydrogelation, liposomal interactions, emulsifications, and nanoparticles have been designed to shield bioflavonoids with improved target distribution for therapeutic enhancements. The size, durability, and binding efficiency of bioflavonoid-loaded encapsulates were acquired by the optimized chemical and instrumental parameters such as solubility, gelation, dispersion, extrusion, and drying. Bioflavonoid-enriched encapsulates have been also proven to be effective against cancer, inflammation, neurodegeneration, and various other illnesses. However, in the future, newer natural binding agents with higher binding capacity might accelerate the encapsulating potential, controlled release, and enhanced bioavailability of citrus bioflavonoids. Overall, these modern encapsulation systems are currently leading to a new era of diet-based medicine, as demand for citrus fruit-based nutritional supplements and edibles grows.
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http://dx.doi.org/10.1080/10408398.2021.1961676 | DOI Listing |
Prog Mol Biol Transl Sci
September 2025
School of Forensic Science, National Forensic Sciences University, Gandhinagar, Gujarat, India.
Ingestible biosensors are a mix of advanced biomedical engineering, digital health and precision pharmacotherapy. These miniaturised electronic devices are encapsulated in biocompatible materials, which operate within gastrointestinal (GI) tract. This enables real-time monitoring of pharmacological and physiological parameters.
View Article and Find Full Text PDFToxicon
September 2025
Department of Toxicology and Forensic medicine, Faulty of Veterinary Medicine, Cairo University, Giza 11221, Egypt. Electronic address:
Bee venom and its principal peptide, melittin, are natural compounds with many therapeutic effects. They are also known for their hemolytic and cytotoxic properties that render their medical applications. Poly lactic-co-glycolic acid (PLGA) is a popular polymer used for different drug delivery.
View Article and Find Full Text PDFCarbohydr Polym
November 2025
Department of Kidney Transplantation, Nephropathy Hospital, The First Affiliated Hospital of Xi'an Jiaotong University, Xi'an 710061, China. Electronic address:
Islet transplantation offers a promising therapeutic strategy for type 1 diabetes patients with inadequate glycemic control or severe complications. Islet encapsulation using biocompatible materials presents a potential solution to reduce immune rejection. This study fabricated and characterized Schiff base hydrogels (CMOCs) composed of varying ratios of carboxymethyl chitosan (CMCS) and oxidized carboxymethyl starch (OCMS).
View Article and Find Full Text PDFCarbohydr Polym
November 2025
Engineering Research Center for Biomedical Materials, Anhui Key Laboratory of Modern Biomanufacturing, School of Life Sciences, Anhui University, 111 Jiulong Road, Hefei, Anhui Province 230601, PR China. Electronic address:
The primary objective of this study was to develop a nanosuspension based on orthoester compounds (OE) and carboxymethyl chitosan (CMCS) for the combined treatment of tumors. Initially, OE was synthesized as a liquid pharmaceutical excipient. Subsequently, nanoparticles were formulated using CMCS and loaded with mitoxantrone (MIT).
View Article and Find Full Text PDFAnal Chem
September 2025
State Key Laboratory of Green Chemical Synthesis and Conversion, College of Chemical Engineering, Zhejiang University of Technology, Hangzhou 310032, PR China.
Residues of organophosphorus pesticides (OPs) raise considerable concern, while achieving high enough detection sensitivity is still a challenge for on-site fluorescence techniques. Herein, we report a "double-end samplification" strategy by encapsulating a low-emission fluorescent ion probe [DCF][P] into a cetyltrimethylammonium bromide (CTAB) hydrophobic core to form ionic luminescent micelles. At the probe end, ionic liquid micelles locally concentrated the probes, achieving a 350-fold fluorescence enhancement.
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