Sehrish Jabeen, Atif Islam, Rafi Ullah Khan, Dirk W Schubert
{"title":"马来莲叶提取物注入刺槐豆胶基三元水凝胶:一种左氧氟沙星控释的绿色制备方法。","authors":"Sehrish Jabeen, Atif Islam, Rafi Ullah Khan, Dirk W Schubert","doi":"10.1002/mabi.202500266","DOIUrl":null,"url":null,"abstract":"<p><p>Smart and responsive drug delivery systems are key to next-generation biomedical therapies, offering precision and targeted action. This study reports the development of a novel biodegradable, pH-sensitive, and highly swellable hydrogel composed of locust bean gum, polyvinylpyrrolidone, chitosan, and (3-aminopropyl)triethoxysilane (APTES) as a crosslinker, incorporating Mallotus philippensis (MP) extract to enhance bioactivity. Structural, thermal, and morphological properties were characterized by FT-IR, TGA, and SEM. Swelling behaviour confirmed pH responsiveness, while gel content and biodegradation assays verified stability and degradability. Contact angle and porosity analyses showed favourable surface wettability and porous architecture. Antimicrobial activity demonstrated inhibition of bacterial strains, with cytocompatibility supported by brine shrimp lethality assay. Levofloxacin (LVX) was loaded into hydrogels with and without MP extract, achieving drug encapsulation efficiencies of 89% and 85%, respectively, with a slight decrease attributed to phytoconstituents interactions affecting network density. Drug release profiling at pH 5.5, 6.5, and 7.4 showed sustained release exceeding 80% within 3 h per USP standards. LPC-3AT and LPC-3AT-MP 400 released 87.04% and 94.5% LVX over 180 min in PBS, following a non-Fickian (anomalous) transport mechanism (diffusion exponent n = 0.62). These findings highlight the hydrogel's promise as an injectable platform for controlled drug delivery and advanced biomedical applications.</p>","PeriodicalId":18103,"journal":{"name":"Macromolecular bioscience","volume":" ","pages":"e00266"},"PeriodicalIF":4.1000,"publicationDate":"2025-07-14","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Mallotus philippensis Extract-Infused Locust Bean Gum-Based Ternary Hydrogel: A Green Fabrication Approach for the Controlled Release of Levofloxacin.\",\"authors\":\"Sehrish Jabeen, Atif Islam, Rafi Ullah Khan, Dirk W Schubert\",\"doi\":\"10.1002/mabi.202500266\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p><p>Smart and responsive drug delivery systems are key to next-generation biomedical therapies, offering precision and targeted action. This study reports the development of a novel biodegradable, pH-sensitive, and highly swellable hydrogel composed of locust bean gum, polyvinylpyrrolidone, chitosan, and (3-aminopropyl)triethoxysilane (APTES) as a crosslinker, incorporating Mallotus philippensis (MP) extract to enhance bioactivity. Structural, thermal, and morphological properties were characterized by FT-IR, TGA, and SEM. Swelling behaviour confirmed pH responsiveness, while gel content and biodegradation assays verified stability and degradability. Contact angle and porosity analyses showed favourable surface wettability and porous architecture. Antimicrobial activity demonstrated inhibition of bacterial strains, with cytocompatibility supported by brine shrimp lethality assay. Levofloxacin (LVX) was loaded into hydrogels with and without MP extract, achieving drug encapsulation efficiencies of 89% and 85%, respectively, with a slight decrease attributed to phytoconstituents interactions affecting network density. Drug release profiling at pH 5.5, 6.5, and 7.4 showed sustained release exceeding 80% within 3 h per USP standards. LPC-3AT and LPC-3AT-MP 400 released 87.04% and 94.5% LVX over 180 min in PBS, following a non-Fickian (anomalous) transport mechanism (diffusion exponent n = 0.62). 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Mallotus philippensis Extract-Infused Locust Bean Gum-Based Ternary Hydrogel: A Green Fabrication Approach for the Controlled Release of Levofloxacin.
Smart and responsive drug delivery systems are key to next-generation biomedical therapies, offering precision and targeted action. This study reports the development of a novel biodegradable, pH-sensitive, and highly swellable hydrogel composed of locust bean gum, polyvinylpyrrolidone, chitosan, and (3-aminopropyl)triethoxysilane (APTES) as a crosslinker, incorporating Mallotus philippensis (MP) extract to enhance bioactivity. Structural, thermal, and morphological properties were characterized by FT-IR, TGA, and SEM. Swelling behaviour confirmed pH responsiveness, while gel content and biodegradation assays verified stability and degradability. Contact angle and porosity analyses showed favourable surface wettability and porous architecture. Antimicrobial activity demonstrated inhibition of bacterial strains, with cytocompatibility supported by brine shrimp lethality assay. Levofloxacin (LVX) was loaded into hydrogels with and without MP extract, achieving drug encapsulation efficiencies of 89% and 85%, respectively, with a slight decrease attributed to phytoconstituents interactions affecting network density. Drug release profiling at pH 5.5, 6.5, and 7.4 showed sustained release exceeding 80% within 3 h per USP standards. LPC-3AT and LPC-3AT-MP 400 released 87.04% and 94.5% LVX over 180 min in PBS, following a non-Fickian (anomalous) transport mechanism (diffusion exponent n = 0.62). These findings highlight the hydrogel's promise as an injectable platform for controlled drug delivery and advanced biomedical applications.
期刊介绍:
Macromolecular Bioscience is a leading journal at the intersection of polymer and materials sciences with life science and medicine. With an Impact Factor of 2.895 (2018 Journal Impact Factor, Journal Citation Reports (Clarivate Analytics, 2019)), it is currently ranked among the top biomaterials and polymer journals.
Macromolecular Bioscience offers an attractive mixture of high-quality Reviews, Feature Articles, Communications, and Full Papers.
With average reviewing times below 30 days, publication times of 2.5 months and listing in all major indices, including Medline, Macromolecular Bioscience is the journal of choice for your best contributions at the intersection of polymer and life sciences.