F.M. Aldosari , Roba M.S. Attar , Mohammed A. Imam , Rami Pashameah , Awatif R.Z. Almotairy , Aisha Hossan , Ameena M. Al-Bonayan , Nashwa M. El-Metwaly
{"title":"通过合成后修饰修饰金属-有机骨架(MIL-68-NH2)中的生物杀灭连接剂,提高生物活性","authors":"F.M. Aldosari , Roba M.S. Attar , Mohammed A. Imam , Rami Pashameah , Awatif R.Z. Almotairy , Aisha Hossan , Ameena M. Al-Bonayan , Nashwa M. El-Metwaly","doi":"10.1016/j.ica.2025.122799","DOIUrl":null,"url":null,"abstract":"<div><div>Conventional antibiotics are ineffective against the growing number of multidrug-resistant bacteria that are posing a high risk to public health. Although traditional nanoparticles like metal and metal oxides have potent antibacterial properties, their excessive release of metal ions into human tissues as well as bacteria might have detrimental health effects. As a result, looking for alternative material becomes essential. Metal-organic frameworks (MOFs) are gaining interest, due to they combine two distinct areas—an organic part that exhibits intense and rapid bacterial activity and an inorganic part that contains broad-spectrum antibacterial agents. Additionally, MOFs' appropriate size enables them to either break through the bacterial membrane and degrade it or enter biofilm walls and start acting as an antibacterial agent. The ions for metal release, biocidal linkers, or even biocidal compounds enclosed in MOFs may be the source of MOFs' biological activity. MOFs are attractive prospects for biological and pharmaceutical applications because of these characteristics. Organic linkers of MOFs can be altered through solid-liquid reactions without compromising the characteristics of MOFs, the post-synthetic modification (PSM) technique is suited for bio active MOF synthesis because biocidal linkers are difficult to synthesis and can damaged before MOF formation. Here, 3-(2-hydroxyphenyl)-3-oxopropanal, methyl vinyl ketone, glyoxylic acid, and phthalaldehyde were used to synthesis and post-synthetically modify the metal organic framework based on indium ions (MIL-68-NH<sub>2</sub>), yielding MIL-68-HP, MIL-68-VK, MIL-68-GA, and MIL-68-PA in 40, 80, 87, and 92 %, respectively. The comprehensive study, involving synthesis, characterization, and detailed biological activity testing of the modified MOFs was investigated. The findings suggest that the PSM MOFs exhibit greater biological activity than commercial antibiotics against several tested microbial species. The obtained results showed the importance of MOFs used as an alternative to conventional antibiotics, and the PSM approach to tailor their properties was a valid strategy.</div></div>","PeriodicalId":13599,"journal":{"name":"Inorganica Chimica Acta","volume":"586 ","pages":"Article 122799"},"PeriodicalIF":2.7000,"publicationDate":"2025-06-02","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Amendment of the biocidal linkers in the metal-organic framework (MIL-68-NH2) through post-synthetic modification to increase biological activity\",\"authors\":\"F.M. Aldosari , Roba M.S. Attar , Mohammed A. Imam , Rami Pashameah , Awatif R.Z. Almotairy , Aisha Hossan , Ameena M. Al-Bonayan , Nashwa M. El-Metwaly\",\"doi\":\"10.1016/j.ica.2025.122799\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<div><div>Conventional antibiotics are ineffective against the growing number of multidrug-resistant bacteria that are posing a high risk to public health. Although traditional nanoparticles like metal and metal oxides have potent antibacterial properties, their excessive release of metal ions into human tissues as well as bacteria might have detrimental health effects. As a result, looking for alternative material becomes essential. Metal-organic frameworks (MOFs) are gaining interest, due to they combine two distinct areas—an organic part that exhibits intense and rapid bacterial activity and an inorganic part that contains broad-spectrum antibacterial agents. Additionally, MOFs' appropriate size enables them to either break through the bacterial membrane and degrade it or enter biofilm walls and start acting as an antibacterial agent. The ions for metal release, biocidal linkers, or even biocidal compounds enclosed in MOFs may be the source of MOFs' biological activity. MOFs are attractive prospects for biological and pharmaceutical applications because of these characteristics. Organic linkers of MOFs can be altered through solid-liquid reactions without compromising the characteristics of MOFs, the post-synthetic modification (PSM) technique is suited for bio active MOF synthesis because biocidal linkers are difficult to synthesis and can damaged before MOF formation. Here, 3-(2-hydroxyphenyl)-3-oxopropanal, methyl vinyl ketone, glyoxylic acid, and phthalaldehyde were used to synthesis and post-synthetically modify the metal organic framework based on indium ions (MIL-68-NH<sub>2</sub>), yielding MIL-68-HP, MIL-68-VK, MIL-68-GA, and MIL-68-PA in 40, 80, 87, and 92 %, respectively. The comprehensive study, involving synthesis, characterization, and detailed biological activity testing of the modified MOFs was investigated. The findings suggest that the PSM MOFs exhibit greater biological activity than commercial antibiotics against several tested microbial species. 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Amendment of the biocidal linkers in the metal-organic framework (MIL-68-NH2) through post-synthetic modification to increase biological activity
Conventional antibiotics are ineffective against the growing number of multidrug-resistant bacteria that are posing a high risk to public health. Although traditional nanoparticles like metal and metal oxides have potent antibacterial properties, their excessive release of metal ions into human tissues as well as bacteria might have detrimental health effects. As a result, looking for alternative material becomes essential. Metal-organic frameworks (MOFs) are gaining interest, due to they combine two distinct areas—an organic part that exhibits intense and rapid bacterial activity and an inorganic part that contains broad-spectrum antibacterial agents. Additionally, MOFs' appropriate size enables them to either break through the bacterial membrane and degrade it or enter biofilm walls and start acting as an antibacterial agent. The ions for metal release, biocidal linkers, or even biocidal compounds enclosed in MOFs may be the source of MOFs' biological activity. MOFs are attractive prospects for biological and pharmaceutical applications because of these characteristics. Organic linkers of MOFs can be altered through solid-liquid reactions without compromising the characteristics of MOFs, the post-synthetic modification (PSM) technique is suited for bio active MOF synthesis because biocidal linkers are difficult to synthesis and can damaged before MOF formation. Here, 3-(2-hydroxyphenyl)-3-oxopropanal, methyl vinyl ketone, glyoxylic acid, and phthalaldehyde were used to synthesis and post-synthetically modify the metal organic framework based on indium ions (MIL-68-NH2), yielding MIL-68-HP, MIL-68-VK, MIL-68-GA, and MIL-68-PA in 40, 80, 87, and 92 %, respectively. The comprehensive study, involving synthesis, characterization, and detailed biological activity testing of the modified MOFs was investigated. The findings suggest that the PSM MOFs exhibit greater biological activity than commercial antibiotics against several tested microbial species. The obtained results showed the importance of MOFs used as an alternative to conventional antibiotics, and the PSM approach to tailor their properties was a valid strategy.
期刊介绍:
Inorganica Chimica Acta is an established international forum for all aspects of advanced Inorganic Chemistry. Original papers of high scientific level and interest are published in the form of Articles and Reviews.
Topics covered include:
• chemistry of the main group elements and the d- and f-block metals, including the synthesis, characterization and reactivity of coordination, organometallic, biomimetic, supramolecular coordination compounds, including associated computational studies;
• synthesis, physico-chemical properties, applications of molecule-based nano-scaled clusters and nanomaterials designed using the principles of coordination chemistry, as well as coordination polymers (CPs), metal-organic frameworks (MOFs), metal-organic polyhedra (MPOs);
• reaction mechanisms and physico-chemical investigations computational studies of metalloenzymes and their models;
• applications of inorganic compounds, metallodrugs and molecule-based materials.
Papers composed primarily of structural reports will typically not be considered for publication.