Research progress of polyphenols in nanoformulations for antibacterial application
Tài liệu tham khảo
Sierra, 2017, An overview of antimicrobial peptides and the latest advances in their development, Expet Opin. Biol. Ther., 17, 663, 10.1080/14712598.2017.1315402
Ayaz, 2019, Synergistic interactions of phytochemicals with antimicrobial agents: potential strategy to counteract drug resistance, Chem. Biol. Interact., 308, 294, 10.1016/j.cbi.2019.05.050
Watkins, 2015, Natural product-based nanomedicine: recent advances and issues, Int. J. Nanomed., 10, 6055
Mierziak, 2014, Flavonoids as important molecules of plant interactions with the environment, Molecules, 19, 16240, 10.3390/molecules191016240
Stanisavljevic, 2016, Identification of phenolic compounds from seed coats of differently colored european varieties of pea (Pisum sativum L.) and characterization of their antioxidant and in vitro anticancer activities, Nutr. Cancer, 68, 998, 10.1080/01635581.2016.1190019
Poti, 2019, Polyphenol health effects on cardiovascular and neurodegenerative disorders: a review and meta-analysis, Int. J. Mol. Sci., 20, 351, 10.3390/ijms20020351
Zheng, 2020, Antibacterial mechanism of curcumin: a review, Chem. Biodivers., 17, 10.1002/cbdv.202000171
Ibrahim, 2018, Wound healing properties of selected natural products, Int. J. Environ. Res. Publ. Health, 15, 2360, 10.3390/ijerph15112360
Rothenberg, 2019, Mechanisms underlying the anti-depressive effects of regular tea consumption, Nutrients, 11, 1361, 10.3390/nu11061361
Jubair, 2021, Review on the antibacterial mechanism of plant-derived compounds against multidrug-resistant bacteria (MDR), Evid-Based Compl. Alt., 2021, 10.1155/2021/3663315
Barbieri, 2017, Phytochemicals for human disease: an update on plant-derived compounds antibacterial activity, Microbiol. Res., 196, 44, 10.1016/j.micres.2016.12.003
Murthy, 2021, Polyphenols against infectious diseases: controlled release nano-formulations, Eur. J. Pharm. Biopharm., 161, 66, 10.1016/j.ejpb.2021.02.003
Li, 2015, A review: using nanoparticles to enhance absorption and bioavailability of phenolic phytochemicals, Food Hydrocolloids, 43, 153, 10.1016/j.foodhyd.2014.05.010
Ou, 2012, Transport of cranberry A-type procyanidin dimers, trimers, and tetramers across monolayers of human intestinal epithelial Caco-2 cells, Food Chem., 60, 1390, 10.1021/jf2040912
Grgic, 2020, Role of the encapsulation in bioavailability of phenolic compounds, Antioxidants, 9, 923, 10.3390/antiox9100923
Modica, 2019, Strategies to improve resveratrol systemic and topical bioavailability: an update, Antioxidants, 8, 244, 10.3390/antiox8080244
Fang, 2010, Encapsulation of polyphenols-a review, Trends Food Sci. Technol., 21, 510, 10.1016/j.tifs.2010.08.003
Bartosz, 2016, Polyphenols encapsulation-application of innovation technologies to improve stability of natural products, Phys. Sci. Rev., 1
Guzman-Villanueva, 2013, Design and in vitro evaluation of a new nano-microparticulate system for enhanced aqueous-phase solubility of curcumin, BioMed Res. Int., 2013, 10.1155/2013/724763
Dai, 2020, Bioavailability enhancement of EGCG by structural modification and nano-delivery: a review, J. Funct.Foods, 65, 10.1016/j.jff.2019.103732
Song, 2022, Antioxidant activity, storage stability and in vitro release of epigallocatechin-3-gallate (EGCG) encapsulated in hordein nanoparticles, Food Chem., 388, 10.1016/j.foodchem.2022.132903
Shababdoust, 2020, Controlled curcumin release from nanofibers based on amphiphilic-block segmented polyurethanes, Int. J. Pharm., 575, 10.1016/j.ijpharm.2019.118947
Aljelehawy, 2023, Antimicrobial, anticancer, antidiabetic, antineurodegenerative, and antirheumatic activities of thymol: clarification of mechanisms, Micro Nano Bio Aspect, 2, 1
S.A. Adefegha, A. Salawi, A. Bumrungpert, S. Khorasani, S. Torkaman, M.R. Mozafari, E. Taghavi, Encapsulation of polyphenolic compounds for health promotion and disease prevention: Challenges and opportunities, Nano Micro Biosystem 1 (2) 2022 1-202212, http://doi.org/10.22034/NMBJ.2023.163756.
Alibi, 2021, Plant-derivatives small molecules with antibacterial activity, Antibiotics, 10, 231, 10.3390/antibiotics10030231
Aljelehawy, 2023, Anticancer, antineurodegenerative, antimicrobial, and antidiabetic activities of carvacrol: recent advances and limitations for effective formulations, Nano Micro Biosystems, 2, 1
Rahaiee, 2020, Application of nano/microencapsulated phenolic compounds against cancer, Adv. Colloid. Interfac., 279, 10.1016/j.cis.2020.102153
Teng, 2019, Polyphenols and bioavailability: an update, Crit. Rev. Food Sci., 59, 2040, 10.1080/10408398.2018.1437023
Yin, 2020, Nanotechnology improves delivery efficiency and bioavailability of tea polyphenols, J. Food Biochem., 44, 10.1111/jfbc.13380
Zou, 2014, Characterization and bioavailability of tea polyphenol nanoliposome prepared by combining an ethanol injection method with dynamic high-pressure microfluidization, J. Agric. Food Chem., 62, 934, 10.1021/jf402886s
Durazzo, 2019, Polyphenols: a concise overview on the chemistry, occurrence, and human health, Phytother Res., 33, 2221, 10.1002/ptr.6419
Santana-Galvez, 2017, Chlorogenic acid: recent advances on its dual role as a food additive and a nutraceutical against metabolic syndrome, Molecules, 22, 358, 10.3390/molecules22030358
Tajik, 2017, The potential effects of chlorogenic acid, the main phenolic components in coffee, on health: a comprehensive review of the literature, Eur. J. Nutr., 56, 2215, 10.1007/s00394-017-1379-1
Petersen, 2013, Rosmarinic acid: new aspects, Phytochemistry Rev., 12, 207, 10.1007/s11101-013-9282-8
Nadeem, 2019, Therapeutic potential of rosmarinic acid: a comprehensive review, Appl. Sci., 9, 3139, 10.3390/app9153139
Yang, 2020, Impact of gallic acid on gut health: focus on the gut microbiome, immune response, and mechanisms of action, Front. Immunol., 11
Lin, 2022, Effects of gallic acid on capsular polysaccharide biosynthesis in Klebsiella pneumoniae, J. Microbiol. Immunol., 55, 1255
Chen, 2021, Multifaceted role of phyto-derived polyphenols in nanodrug delivery systems, Adv. Drug Deliv. Rev., 176, 10.1016/j.addr.2021.113870
Dvorakova, 2017, Anti-inflammatory activity of natural stilbenoids: a review, Pharmacol. Res., 124, 126, 10.1016/j.phrs.2017.08.002
Vestergaard, 2019, Antibacterial and antifungal properties of resveratrol, Int. J. Antimicrob. Agents, 53, 716, 10.1016/j.ijantimicag.2019.02.015
Guo, 2021, Tannic acid-based metal phenolic networks for bio-applications: a review, J. Mater. Chem. B, 9, 4098, 10.1039/D1TB00383F
Zhang, 2020, A biocompatible bacterial cellulose/tannic acid composite with antibacterial and anti-biofilm activities for biomedical application, Mat. Sci. Eng. C-mater., 106, 10.1016/j.msec.2019.110249
Xie, 2015, Antibacterial activities of flavonoids: structure-activity relationship and mechanism, Curr. Med. Chem., 22, 132, 10.2174/0929867321666140916113443
Farhadi, 2019, Antibacterial activity of flavonoids and their structure-activity relationship: an update review, Phytother Res., 33, 13, 10.1002/ptr.6208
Alvarez-Martínez, 2021, Antibacterial plant compounds, extracts and essential oils: an updated review on their effects and putative mechanisms of action, Phytomedicine, 90, 10.1016/j.phymed.2021.153626
Huang, 2020, Enhanced antibacterial and antibiofilm functions of the curcumin-mediated photodynamic inactivation against Listeria monocytogenes, Food Control, 108, 10.1016/j.foodcont.2019.106886
Renzetti, 2020, Antibacterial green tea catechins from a molecular perspective: mechanisms of action and structure-activity relationships, Food Funct., 11, 9370, 10.1039/D0FO02054K
Efenberger-Szmechtyk, 2021, Plant extracts rich in polyphenols: antibacterial agents and natural preservatives for meat and meat products, Crit. Rev. Food Sci. Nutr., 61, 149, 10.1080/10408398.2020.1722060
Gorniak, 2019, Comprehensive review of antimicrobial activities of plant flavonoids, Phytochemistry Rev., 18, 241, 10.1007/s11101-018-9591-z
Gayani, 2019, Effect of natural curcuminoids-intercalated layered double hydroxide nanohybrid against Staphylococcus aureus, Pseudomonas aeruginosa, and Enterococcus faecalis: a bactericidal, antibiofilm, and mechanistic study, Microbiology Open, 8, 10.1002/mbo3.723
Memar, 2020, The central role of the SOS DNA repair system in antibiotics resistance: a new target for a new infectious treatment strategy, Life Sci., 262, 10.1016/j.lfs.2020.118562
Oda, 1995, Inhibitory effect of curcumin on SOS functions induced by UV irradiation, Mutat. Res., 348, 67, 10.1016/0165-7992(95)00048-8
Koh, 2013, Rapid bactericidal action of alpha-mangostin against MRSA as an outcome of membrane targeting, Biochim. Biophys. Acta, 1828, 834, 10.1016/j.bbamem.2012.09.004
Mahmud, 2020, Controlled release of curcumin from electrospun fiber mats with antibacterial activity, J. Drug Deliv. Sci. Technol., 55
Tyagi, 2015, Bactericidal activity of curcumin I is associated with damaging of bacterial membrane, PLoS One, 10, 10.1371/journal.pone.0121313
Alvarez-Martinez, 2020, Antimicrobial capacity of plant polyphenols against gram-positive bacteria: a comprehensive review, Curr. Med. Chem., 27, 2576, 10.2174/0929867325666181008115650
Qin, 2021, Discovery of novel antibacterial agents: recent developments in D-alanyl-D-alanine ligase inhibitors, Chem. Biol. Drug Des., 98, 305, 10.1111/cbdd.13899
Yang, 2019, Antimicrobial activities of tea polyphenol on phytopathogens: a review, Molecules, 24, 816, 10.3390/molecules24040816
Li, 2018, Curcumin as a promising antibacterial agent: effects on metabolism and biofilm formation in S. mutans, BioMed Res. Int., 2018
Cushnie, 2005, Antimicrobial activity of flavonoids, Int. J. Antimicrob. Agents, 26, 343, 10.1016/j.ijantimicag.2005.09.002
Selmani, 2022, Nanoparticles: from synthesis to applications and beyond, Adv. Colloid Interface Sci., 303, 10.1016/j.cis.2022.102640
Liang, 2017, Applications of chitosan nanoparticles to enhance absorption and bioavailability of tea polyphenols: a review, Food Hydrocolloids, 69, 286, 10.1016/j.foodhyd.2017.01.041
Guo, 2021, Polyphenol-containing nanoparticles: synthesis, properties, and therapeutic delivery, Adv. Mater., 33, 10.1002/adma.202007356
Nunes, 2017, Solid lipid nanoparticles as oral delivery systems of phenolic compounds: overcoming pharmacokinetic limitations for nutraceutical applications, Crit. Rev. Food Sci. Nutr., 57, 1863
Borges, 2020, Solid lipid nanoparticles as carriers of natural phenolic compounds, Antioxidants, 9, 998, 10.3390/antiox9100998
Mehnert, 2012, Solid lipid nanoparticles: production, characterization and applications, Adv. Drug Deliv. Rev., 64, 83, 10.1016/j.addr.2012.09.021
Shtay, 2019, Encapsulation of (-)-epigallocatechin-3-gallate (EGCG) in solid lipid nanoparticles for food applications, J. Food Eng., 244, 91, 10.1016/j.jfoodeng.2018.09.008
Santonocito, 2020, Curcumin containing PEGylated solid lipid nanoparticles for systemic administration: a preliminary study, Molecules, 25, 2991, 10.3390/molecules25132991
Jourghanian, 2016, M. Sustained release curcumin loaded solid lipid nanoparticles, Pharm. Bull., 6, 17, 10.15171/apb.2016.04
He, 2019, Carvacrol loaded solid lipid nanoparticles of propylene glycol monopalmitate and glyceryl monostearate: preparation, characterization, and synergistic antimicrobial activity, Nanomaterials, 9, 1162, 10.3390/nano9081162
Luan, 2019, Chinese white wax solid lipid nanoparticles as a novel nanocarrier of curcumin for inhibiting the formation of Staphylococcus aureus biofilms, Nanomaterials, 9, 763, 10.3390/nano9050763
Sabir, 2021, An efficient approach for development and optimisation of curcumin-loaded solid lipid nanoparticles' patch for transdermal delivery, J. Microencapsul., 38, 233, 10.1080/02652048.2021.1899321
Hazzah, 2015, Gelucire-based nanoparticles for curcumin targeting to oral mucosa: preparation, characterization, and antimicrobial activity assessment, J. Pharm. Sci., 104, 3913, 10.1002/jps.24590
Sandreschi, 2016, Perspectives on polymeric nanostructures for the therapeutic application of antimicrobial peptides, Nanomedicine, 11, 1729, 10.2217/nnm-2016-0057
Santo, 2020, Biocompatibility analysis of high molecular weight chitosan obtained from Pleoticus muelleri shrimps. evaluation in prokaryotic and eukaryotic cells, Biochem. Biophys. Rep., 24
Puligundla, 2017, Nanotechnological approaches to enhance the bioavailability and therapeutic efficacy of green tea polyphenols, J. Funct.Foods, 34, 139, 10.1016/j.jff.2017.04.023
Yanat, 2021, Preparation methods and applications of chitosan nanoparticles; with an outlook toward reinforcement of biodegradable packaging, React. Funct. Polym., 161, 10.1016/j.reactfunctpolym.2021.104849
Quinones, 2018, Chitosan based self-assembled nanoparticles in drug delivery, Polymers, 10, 235, 10.3390/polym10030235
Divya, 2017, Chitosan nanoparticles preparation and applications, Environ. Chem. Lett., 16, 101, 10.1007/s10311-017-0670-y
Hu, 2021, Chitosan-based nanocarriers for encapsulation and delivery of curcumin: a review, Int. J. Biol. Macromol., 179, 125, 10.1016/j.ijbiomac.2021.02.216
Ma, 2020, Preparation and antibiofilm studies of curcumin loaded chitosan nanoparticles against polymicrobial biofilms of Candida Albicans and Staphylococcus Aureus, Carbohydr. Polym., 241, 10.1016/j.carbpol.2020.116254
Zhao, 2023, Preparation and characterization of curcumin/chitosan conjugate as an efficient photodynamic antibacterial agent, Carbohyd. Polym., 313, 10.1016/j.carbpol.2023.120852
Ta, 2021, Electrosprayed mucoadhesive alginate-chitosan microcapsules for gastrointestinal delivery of probiotics, Int. J. Pharmaceuts., 597
Tm, 2018, Chitosan and its derivatives for application in mucoadhesive drug delivery systems, Polymers, 10, 267, 10.3390/polym10030267
Madureira, 2015, Current state on the development of nanoparticles for use against bacterial gastrointestinal pathogens. Focus on chitosan nanoparticles loaded with phenolic compounds, Carbohyd. Polym., 130, 429, 10.1016/j.carbpol.2015.05.030
Lin, 2014, Preparation of epigallocatechin gallate-loaded nanoparticles and characterization of their inhibitory effects on Helicobacter pylori growth in vitro and in vivo, Sci. Technol. Adv. Mater., 10.1088/1468-6996/15/4/045006
Costa, 2017, Insights into chitosan antibiofilm activity against methicillin-resistant Staphylococcus aureus, J. Appl. Microbiol., 122, 1547, 10.1111/jam.13457
Confederat, 2021, Preparation and antimicrobial activity of chitosan and its derivatives: a concise review, Molecules, 26, 3694, 10.3390/molecules26123694
Zhang, 2016, Preparation, characterization and evaluation of antibacterial activity of catechins and catechins-Zn complex loaded β-chitosan nanoparticles of different particle sizes, Carbohyd. Polym., 137, 82, 10.1016/j.carbpol.2015.10.036
Madureira, 2015, Production of antimicrobial chitosan nanoparticles against food pathogens, J. Food Eng., 167, 210, 10.1016/j.jfoodeng.2015.06.010
Sun, 2019, Construction and multifunctionalization of chitosan-based three-phase nano-delivery system, Food Hydrocolloids, 96, 402, 10.1016/j.foodhyd.2019.05.040
Shetta, 2019, Comparative study of encapsulated peppermint and green tea essential oils in chitosan nanoparticles: encapsulation, thermal stability, in-vitro release, Nand antibacterial activities, Int. J. Biol. Macromol., 126, 731, 10.1016/j.ijbiomac.2018.12.161
Pattnaik, 2018, Ferulic acid encapsulated chitosan-tripolyphosphate nanoparticles attenuate quorum sensing regulated virulence and biofilm formation in Pseudomonas aeruginosa PAO1, IET Nanobiotechnol., 12, 1056, 10.1049/iet-nbt.2018.5114
Li, 2018, Q. The simultaneous loading of catechin and quercetin on chitosan-based nanoparticles as effective antioxidant and antibacterial agent, Food Res. Int., 111, 351, 10.1016/j.foodres.2018.05.038
Zhang, 2021, Preparation of chitosan/lignosulfonate for effectively removing Pb (II) in water, Polym. Adv. Technol., 228
Sharma, 2016, PLGA-based nanoparticles: a new paradigm in biomedical applications, Trac. trend Anal. Chem., 80, 30, 10.1016/j.trac.2015.06.014
Duranoglu, 2018, Synthesis of hesperetin-loaded PLGA nanoparticles by two different experimental design methods and biological evaluation of optimized nanoparticles, Nanotechnology, 29, 10.1088/1361-6528/aad111
Arasoğlu, 2017, Preparation, characterization, and enhanced antimicrobial activity: quercetin-loaded PLGA nanoparticles against foodborne pathogens, Turk. J. Biol., 41, 127, 10.3906/biy-1604-80
ElHammadi, 2022, Recent advances in the surface functionalization of PLGA-based nanomedicines, Nanomaterials, 12, 354, 10.3390/nano12030354
Danhier, 2012, PLGA-based nanoparticles: an overview of biomedical applications, J. Contr. Release, 161, 505, 10.1016/j.jconrel.2012.01.043
Ghitman, 2020, Review of hybrid PLGA nanoparticles: future of smart drug delivery and theranostics medicine, Mater. Des., 193, 10.1016/j.matdes.2020.108805
Pereira, 2015, Nanoencapsulation of hydrophobic phytochemicals using poly (dl-lactide-co-glycolide) (PLGA) for antioxidant and antimicrobial delivery applications: guabiroba fruit (Campomanesia xanthocarpa O. Berg) study, LWT--Food Sci. Technol., 63, 100, 10.1016/j.lwt.2015.03.062
Zhi, 2021, PLGA nanoparticle-based formulations to cross the blood-brain barrier for drug delivery: from R&D to cGMP, Pharmaceutics, 13, 500, 10.3390/pharmaceutics13040500
Liu, 2019, Nanoparticle-based nanomedicines to promote cancer immunotherapy: recent advances and future directions, Small, 15, 10.1002/smll.201900262
Deepika, 2019, Co-delivery of diverse therapeutic compounds using PEG-PLGA nanoparticle cargo against drug-resistant bacteria: an improved anti-biofilm strategy, ACS Appl. Bio Mater., 3, 385, 10.1021/acsabm.9b00850
Anbari, 2022, Acceleration of antibacterial activity of curcumin loaded biopolymers against methicillin-resistant Staphylococcus aureus: synthesis, optimization, and evaluation Eng, Life Sci., 22, 58
Trigo Gutierrez, 2017, Mima, Encapsulation of curcumin in polymeric nanoparticles for antimicrobial photodynamic therapy, PLoS One, 12, 10.1371/journal.pone.0187418
Gu, 2021, Preparation and antibacterial properties of gold nanoparticles: a review, Environ. Chem. Lett., 19, 167, 10.1007/s10311-020-01071-0
Meena, 2020, Inorganic nanoparticles for natural product delivery: a review, Environ. Chem. Lett., 18, 2107, 10.1007/s10311-020-01061-2
Jaiswal, 2018, Antimicrobial and antibiofilm activity of curcumin-silver nanoparticles with improved stability and selective toxicity to bacteria over mammalian cells, Immunology, 207, 39
Song, 2019, Synergistic antibacterial effects of curcumin modified silver nanoparticles through ROS-mediated pathways, Mater. Sci. Eng. C Mater. Biol. Appl., 99, 255, 10.1016/j.msec.2018.12.053
Kim, 2016, Tannic acid-mediated green synthesis of antibacterial silver nanoparticles, Arch Pharm. Res. (Seoul), 39, 465, 10.1007/s12272-016-0718-8
Fei, 2014, One-pot ultrafast self-assembly of autofluorescent polyphenol-based core@shell nanostructures and their selective antibacterial applications, ACS Nano, 8, 8529, 10.1021/nn504077c
Kim, 2017, Cytotoxicity and antibacterial assessment of gallic acid capped gold nanoparticles, Colloids Surf., B, 149, 162, 10.1016/j.colsurfb.2016.10.017
Park, 2016, Park, Antibacterial nanocarriers of resveratrol with gold and silver nanoparticles, Mater. Sci. Eng. C. Mater. Biol. Appl., 58, 1160, 10.1016/j.msec.2015.09.068
Onitsuka, 2019, Preparation of antimicrobial gold and silver nanoparticles from tea leaf extracts, Colloids Surf., B, 173, 242, 10.1016/j.colsurfb.2018.09.055
Liao, 2018, Enhanced antibacterial activity of curcumin by combination with metal ions, Colloid Interface Sci., 25, 1, 10.1016/j.colcom.2018.04.009
Li, 2022, Crosslinking and functionalization of acellular patches via the self-assembly of copper@tea polyphenol nanoparticles, Regen. Biomater., 9, 10.1093/rb/rbac030
Sadani, 2021, Polyphenol stabilized copper nanoparticle formulations for rapid disinfection of bacteria and virus on diverse surfaces, Nanotechnology, 33, 10.1088/1361-6528/ac2e77
Park, 2016, Antibacterial nanocarriers of resveratrol with gold and silver nanoparticles, Mater. Sci. Eng. C. Mater. Biol. Appl., 58, 1160, 10.1016/j.msec.2015.09.068
Panahi, 2017, Preparation, surface properties, and therapeutic applications of gold nanoparticles in biomedicine, Drug Res., 67, 77
Yadi, 2018, Current developments in green synthesis of metallic nanoparticles using plant extracts: a review, Artif. Cells, Nanomed. Biotechnol., 46, S336, 10.1080/21691401.2018.1492931
Wigginton, 2010, Binding of silver nanoparticles to bacterial proteins depends on surface modifications and inhibits enzymatic activity, Environ. Sci. Technol., 44, 2163, 10.1021/es903187s
Podstawczyk, 2019, Reactivity of (+)-catechin with copper (II) ions: the green synthesis of size-controlled Sub-10 nm copper nanoparticles, ACS Sustainable Chem. Eng., 7, 17535, 10.1021/acssuschemeng.9b05078
Liao, 2018, Enhanced antibacterial activity of curcumin by combination with metal ions, Colloid Interface Sci., 25, 1, 10.1016/j.colcom.2018.04.009
Li, 2022, Recent advances in the development and antimicrobial applications of metal-phenolic networks, Adv. Sci.
Zhang, 2020, A biocompatible bacterial cellulose/tannic acid composite with antibacterial and anti-biofilm activities for biomedical applications, Mater. Sci. Eng. C. Mater. Biol. Appl., 106, 10.1016/j.msec.2019.110249
Qin, 2019, Self-assembly of metal-phenolic networks as functional coatings for preparation of antioxidant, antimicrobial, and pH-sensitive-modified starch nanoparticles, ACS Sustainable Chem. Eng., 7, 17379, 10.1021/acssuschemeng.9b04332
Li, 2023, Dually crosslinked copper-poly (tannic acid) nanoparticles with microenvironment-responsiveness for infected wound treatment, Adv. Healthc. Mater., 12, 10.1002/adhm.202203063
Wang, 2023, Neighboring carboxylic acid boosts peroxidase-like property of metal-phenolic nano-networks in eradicating streptococcus mutans biofilms, Small, 19, 10.1002/smll.202206657
Hussain, 2021, Core size optimized silver coated gold nanoparticles for rapid screening of tricyclazole and thiram residues in pear extracts using SERS, Food Chem., 350, 10.1016/j.foodchem.2021.129025
Zhang, 2022, Interfacing metal-polyphenolic networks upon photothermal gold nanorods for triplex-evolved biocompatible bactericidal activity, Hazard. Mater., 426, 10.1016/j.jhazmat.2021.127824
Zhou, 2021, DNA functionalized metal and metal oxide nanoparticles: principles and recent advances in food safety detection, Crit. Rev. Food Sci. Nutr., 61, 2277, 10.1080/10408398.2020.1809343
Yu, 2019, Multifunctional and recyclable photothermally responsive cryogels as efficient platforms for wound healing, Adv. Funct. Mater., 29, 10.1002/adfm.201904402
Ahmed, 2021, Bioinspired green synthesis of zinc oxide nanoparticles from a native Bacillus cereus strain RNT6: characterization and antibacterial activity against rice panicle blight pathogens Burkholderia glumae and B. gladioli, Nanomaterials, 11, 884, 10.3390/nano11040884
Gudkov, 2021, A mini review of antibacterial properties of ZnO nanoparticles, Front.Phys., 9, 10.3389/fphy.2021.641481
Lee, 2017, Functionalized ZnO nanoparticles with gallic acid for antioxidant and antibacterial activity against methicillin-resistant S. aureus, Nanomaterials, 7, 365, 10.3390/nano7110365
Ghaffari, 2020, A pH-sensitive delivery system based on N-succinyl chitosan-ZnO nanoparticles for improving antibacterial and anticancer activities of curcumin, Int. J. Biol. Macromol., 151, 428, 10.1016/j.ijbiomac.2020.02.141
Narayan, 2018, Mesoporous silica nanoparticles: a comprehensive review on synthesis and recent advances, Pharmaceutics, 10, 118, 10.3390/pharmaceutics10030118
Dessai, 2022, Bioflavonoid mediated synthesis of TiO2 nanoparticles: characterization and their biomedical applications, Mater. Lett., 311, 10.1016/j.matlet.2021.131639
Gudkov, 2021, Do iron oxide nanoparticles have significant antibacterial properties?, Antibiotics, 10, 884, 10.3390/antibiotics10070884
Aliya, 2023, Phytogenic fabrication of iron oxide nanoparticles and evaluation of their in vitro antibacterial and cytotoxic activity, Arab. J. Chem., 16, 10.1016/j.arabjc.2023.104703
Ke, 2022, A silk fibroin based bioadhesive with synergistic photothermal-reinforced antibacterial activity, Int. J. Biol. Macromol., 209, 608, 10.1016/j.ijbiomac.2022.03.136
Florek, 2017, Evaluation of mesoporous silica nanoparticles for oral drug delivery-current status and perspective of MSNs drug carriers, Nanoscale, 9, 15252, 10.1039/C7NR05762H
Vico, 2016, Two choices for the functionalization of silica nanoparticles with gallic acid: characterization of the nanomaterials and their antimicrobial activity against Paenibacillus larvae, J. Nanopart. Res., 18, 1, 10.1007/s11051-016-3652-2
Petrisor, 2022, Mesoporous silica materials loaded with gallic acid with antimicrobial potential, Nanomaterials, 12, 1648, 10.3390/nano12101648
Alswieleh, 2020, Modification of mesoporous silica surface by immobilization of functional groups for controlled drug release, J. Chem., 2020, 10.1155/2020/9176257
Shabana, 2021, Preparation and evaluation of mesoporous silica nanoparticles loaded quercetin against bacterial infections in Oreochromis niloticus, Aquacult Rep, 21
Yang, 2018, Antimicrobial hydrogels: promising materials for medical application, Int. J. Nanomed., 13, 2217, 10.2147/IJN.S154748
Liu, 2022, pH responsive antibacterial hydrogel utilizing catechol-boronate complexation chemistry, Chem. Eng. J., 441, 10.1016/j.cej.2022.135808
Raghuwanshi, 2019, Characterisation of hydrogels: linking the nano to the microscale, Adv. Colloid Interfac., 274, 10.1016/j.cis.2019.102044
George, 2019, Synergic formulation of onion peel quercetin loaded chitosan-cellulose hydrogel with green zinc oxide nanoparticles towards controlled release, biocompatibility, antimicrobial and anticancer activity, Int. J. Biol. Macromol., 132, 784, 10.1016/j.ijbiomac.2019.04.008
Cao, 2021, Biodegradable hydrogel with thermo-response and hemostatic effect for photothermal enhanced anti-infective therapy, Nano Today, 39, 10.1016/j.nantod.2021.101165
Tao, 2021, Near infrared light-triggered on-demand Cur release from Gel-PDA@Cur composite hydrogel for antibacterial wound healing, Chem. Eng. J., 403, 10.1016/j.cej.2020.126182
Ninan, 2016, Antibacterial and anti-inflammatory pH-responsive tannic acid-carboxylated agarose composite hydrogels for wound healing, ACS Appl. Mater. Interfaces, 8, 28511, 10.1021/acsami.6b10491
Hu, 2018, Polyphenol-binding amyloid fibrils self-assemble into reversible hydrogels with antibacterial activity, ACS Nano, 12, 3385, 10.1021/acsnano.7b08969
Wang, 2021, Inflammation-responsive drug-loaded hydrogels with sequential hemostasis, antibacterial, and anti-inflammatory behavior for chronically infected diabetic wound treatment, ACS Appl. Mater. Interfaces, 13, 33584, 10.1021/acsami.1c09889
Ni, 2022, Multistage ros-responsive and natural polyphenol-driven prodrug hydrogels for diabetic wound healing, ACS Appl. Mater. Interfaces, 14, 52643, 10.1021/acsami.2c15686
Wu, 2022, A spatiotemporal release platform based on pH/ROS stimuli-responsive hydrogel in wound repairing, J. Contr. Release, 341, 147, 10.1016/j.jconrel.2021.11.027
El-Aassar, 2021, Biotechnological applications of polymeric nanofiber platforms loaded with diverse bioactive materials, Polym. Adv. Technol., 13, 3734
Huesca-Uriostegui, 2022, Nanofiber systems as herbal bioactive compounds carriers: current applications in healthcare, Pharmaceutics, 14, 191, 10.3390/pharmaceutics14010191
Rahmati, 2021, Electrospinning for tissue engineering applications, Prog. Mater. Sci., 117, 10.1016/j.pmatsci.2020.100721
Xu, 2020, large-scale preparation of polymer nanofibers for air filtration by a new multineedle electrospinning device, J. Nanomater., 2020, 10.1155/2020/4965438
Hammami, 2014, Centrifugal force spinning of PA6 nanofibers-processability and morphology of solution-spun fibers, J. Text. Inst., 105, 637, 10.1080/00405000.2013.842680
Daristotle, 2016, A review of the fundamental principles and applications of solution blow spinning, ACS Appl. Mater. Interfaces, 8, 34951, 10.1021/acsami.6b12994
Suzuki, 2019, Poly (l-lactic acid) twisted nanofiber yarn prepared by carbon dioxide laser supersonic multi-drawing, Eur. Polym. J., 110, 145, 10.1016/j.eurpolymj.2018.11.028
Wang, 2017, Release kinetics and antibacterial activity of curcumin loaded zein fibers, Food Hydrocolloids, 63, 437, 10.1016/j.foodhyd.2016.09.028
Perumal, 2017, Synthesis and characterization of curcumin loaded PLA-Hyperbranched polyglycerol electrospun blend for wound dressing applications, Mater. Sci. Eng. C. Mater. Biol. Appl., 76, 1196, 10.1016/j.msec.2017.03.200
Chouhan, 2018, Functionalized PVA-silk blended nanofibrous mats promote diabetic wound healing via regulation of extracellular matrix and tissue remodelling, J. Tissue Eng. Regen. M., 12, e1559, 10.1002/term.2581
Ghosal, 2017, Structural and surface compatibility study of modified electrospun poly (ε-caprolactone) (PCL) composites for skin tissue engineering, AAPS PharmSciTech, 18, 72, 10.1208/s12249-016-0500-8
Zhang, 2020, Fully green poly (vinyl alcohol)/tea polyphenol composites and super anti-ultraviolet and -bacterial properties, Macromol. Mater. Eng., 305, 10.1002/mame.201900669
Fallah, 2016, Fabrication and characterization of PCL/gelatin/curcumin nanofibers and their antibacterial properties, J. Ind. Text., 46, 562, 10.1177/1528083715594978
Wang, 2019, Preparation, characterization and properties of porous PLA/PEG/curcumin composite nanofibers for antibacterial application, Nanomaterials, 9, 508, 10.3390/nano9040508
Wang, 2018, Preparation and characterization of porous core-shell fibers for slow release of tea polyphenols, Polymers, 10, 144, 10.3390/polym10020144
Sebe, 2015, Incorporating small molecules or biologics into nanofibers for optimized drug release: a review, Int. J. Pharm., 494, 516, 10.1016/j.ijpharm.2015.08.054
Wu, 2023, Long-term antibacterial activity by synergistic release of biosafe lysozyme and chitosan from LBL-structured nanofibers, Carbohyd. polym
Wutticharoenmongkol, 2019, Gallic acid-loaded electrospun cellulose acetate nanofibers as potential wound dressing materials, Polym. Adv. Technol., 30, 1135, 10.1002/pat.4547
Lohith Kumar, 2018, Encapsulation of bioactive compounds using nanoemulsions, Environ. Chem. Lett., 16, 59, 10.1007/s10311-017-0663-x
Garavand, 2021, Encapsulation of phenolic compounds within nano/microemulsion systems: a review, Food Chem., 364, 10.1016/j.foodchem.2021.130376
Jiang, 2013, Preparation and characteristics of lipid nanoemulsion formulations loaded with doxorubicin, Int. J. Nanomed., 8, 3141
Hwang, 2013, Antimicrobial activity of nanoemulsion in combination with cetylpyridinium chloride in multidrug-resistant Acinetobacter Baumannii, Antimicrob. Agents Ch., 57, 3568, 10.1128/AAC.02109-12
Ghosh, 2014, Eugenol-loaded antimicrobial nanoemulsion preserves fruit juice against, microbial spoilage, Colloid. Surface B, 114, 392, 10.1016/j.colsurfb.2013.10.034
McClements, 2012, Potential biological fate of ingested nanoemulsions: influence of particle characteristics, Food Funct., 3, 202, 10.1039/C1FO10193E
Joung, 2016, Development of food-grade curcumin nanoemulsion and its potential application to food beverage system: antioxidant property and in vitro digestion, J. Food Sci., 81, N745, 10.1111/1750-3841.13224
Kaur, 2019, Nanoemulsions of green tea catechins and other natural compounds for the treatment of urinary tract infection: antibacterial analysis, Adv. Pharm. Bull., 9, 401, 10.15171/apb.2019.047
Letsididi, 2018, Antimicrobial and antibiofilm effects of trans-cinnamic acid nanoemulsion and its potential application on lettuce, LWT--Food Sci. Technol., 94, 25, 10.1016/j.lwt.2018.04.018
Singh, 2017, Nanoemulsion: concepts, development and applications in drug delivery, J. Contr. Release, 252, 28, 10.1016/j.jconrel.2017.03.008
Kour, 2022, Effect of nanoemulsion-loaded hybrid biopolymeric hydrogel beads on the release kinetics, antioxidant potential and antibacterial activity of encapsulated curcumin, Food Chem., 376, 10.1016/j.foodchem.2021.131925
Y. Wang, Y. Yang, Y. Shi, H. Song, C. Yu, Antibiotic-free antibacterial strategies enabled by nanomaterials: progress and perspectives, Adv. Mater. 32 (18) 1904106, https://doi.org/10.1080/14712598.2017.1315402.