Mycosynthesis of AgNPs: mechanisms of nanoparticle formation and antimicrobial activities
暂无分享,去创建一个
[1] M. Mohammadabadi,et al. Interaction of Epigallocatechin Gallate and Quercetin with Spike Glycoprotein (S-Glycoprotein) of SARS-CoV-2: In Silico Study , 2022, Biomedicines.
[2] A. Ingle,et al. Mycosynthesis of Metal-Containing Nanoparticles—Fungal Metal Resistance and Mechanisms of Synthesis , 2022, International journal of molecular sciences.
[3] Kazem Nejati-Koshki,et al. An overview on nanoparticle-based strategies to fight viral infections with a focus on COVID-19 , 2022, Journal of Nanobiotechnology.
[4] A. Majewska,et al. Evolution of Influenza Viruses—Drug Resistance, Treatment Options, and Prospects , 2022, International journal of molecular sciences.
[5] G. Sulaiman,et al. Ciprofloxacin-Loaded Silver Nanoparticles as Potent Nano-Antibiotics against Resistant Pathogenic Bacteria , 2022, Nanomaterials.
[6] Khalid Rehman Hakeem,et al. Greener nanomaterials and their diverse applications in the energy sector , 2022, Clean Technologies and Environmental Policy.
[7] E. Gomaa. Microbial Mediated Synthesis of Zinc Oxide Nanoparticles, Characterization and Multifaceted Applications , 2022, Journal of Inorganic and Organometallic Polymers and Materials.
[8] D. Mcclements,et al. Metal and metal oxide-based antiviral nanoparticles: Properties, mechanisms of action, and applications. , 2022, Advances in colloid and interface science.
[9] N. Dizge,et al. Green Synthesis of Silver Nanoparticles Using Aqueous Citrus limon Zest Extract: Characterization and Evaluation of Their Antioxidant and Antimicrobial Properties , 2022, Nanomaterials.
[10] S. Shams,et al. Biosynthesis of Silver Nanoparticles from Cymbopogon citratus Leaf Extract and Evaluation of Their Antimicrobial Properties , 2022, Challenges.
[11] J. Pezoldt,et al. Size Dependent Properties of Reactive Materials , 2022, Inorganics.
[12] J. Michaud,et al. Optimization of silver nanoparticle biosynthesis by entomopathogenic fungi and assays of their antimicrobial and antifungal properties. , 2022, Journal of invertebrate pathology.
[13] Mehran Alavi. Bacteria and fungi as major bio-sources to fabricate silver nanoparticles with antibacterial activities , 2022, Expert review of anti-infective therapy.
[14] A. Al-Gheethi,et al. Applicability of bio-synthesized nanoparticles in fungal secondary metabolites products and plant extracts for eliminating antibiotic-resistant bacteria risks in non-clinical environments. , 2022, Environmental research.
[15] Ankush Sharma,et al. Green synthesis of silver nanoparticles and its antibacterial activity using fungus Talaromyces purpureogenus isolated from Taxus baccata Linn. , 2022, Micro and Nano Systems Letters.
[16] E. Marengo,et al. A Systematic Study of the Antibacterial Activity of Basidiomycota Crude Extracts , 2021, Antibiotics.
[17] S. Kulinich,et al. Green laser ablation-based synthesis of functional nanomaterials for generation, storage and detection of hydrogen , 2021, Current Opinion in Green and Sustainable Chemistry.
[18] A. Chaudhary,et al. Sustainable synthesis of silver nanoparticles using various biological sources and waste materials: a review , 2021, Emergent Materials.
[19] M. Govarthanan,et al. Phytotoxicological effects of engineered nanoparticles: An emerging nanotoxicology. , 2021, The Science of the total environment.
[20] A. A. Al-Homaidan,et al. Anti-oxidant, anti-fungal and cytotoxic effects of silver nanoparticles synthesized using marine fungus Cladosporium halotolerans , 2021, Applied Nanoscience.
[21] Lin Wang,et al. Fungus-mediated green synthesis of nano-silver using Aspergillus sydowii and its antifungal/antiproliferative activities , 2021, Scientific Reports.
[22] Soumya Krishnamurthy,et al. Ameliorated Antibacterial and Antioxidant Properties by Trichoderma harzianum Mediated Green Synthesis of Silver Nanoparticles , 2021, Biomolecules.
[23] G. A. Naeem,et al. Mycosynthesizing and characterizing silver nanoparticles from the mushroom Inonotus hispidus (Hymenochaetaceae), and their antibacterial and antifungal activities , 2020 .
[24] N. M. Zin,et al. A Review on Antistaphylococcal Secondary Metabolites from Basidiomycetes , 2020, Molecules.
[25] Pengcheng Fu,et al. Fungus- (Alternaria sp.) Mediated Silver Nanoparticles Synthesis, Characterization, and Screening of Antifungal Activity against Some Phytopathogens , 2020, Journal of Nanotechnology.
[26] M. Ansari,et al. Mycogenic Synthesis of Extracellular Zinc Oxide Nanoparticles from Xylaria acuta and Its Nanoantibiotic Potential , 2020, International journal of nanomedicine.
[27] J. Zhang,et al. Mycosynthesis of Silver Nanoparticles Using Screened Trichoderma Isolates and Their Antifungal Activity against Sclerotinia sclerotiorum , 2020, Nanomaterials.
[28] A. Ryo,et al. Potent antiviral effect of silver nanoparticles on SARS-CoV-2 , 2020, Biochemical and Biophysical Research Communications.
[29] M. Ansari,et al. Mycosynthesis of ZnO Nanoparticles Using Trichoderma spp. Isolated from Rhizosphere Soils and Its Synergistic Antibacterial Effect against Xanthomonas oryzae pv. oryzae , 2020, Journal of fungi.
[30] F. Khan,et al. Using Fomitopsis pinicola for bioinspired synthesis of titanium dioxide and silver nanoparticles, targeting biomedical applications , 2020, RSC advances.
[31] F. Darvishi,et al. Development and evaluation of different strategies for the clean synthesis of silver nanoparticles using Yarrowia lipolytica and their antibacterial activity , 2020, Process Biochemistry.
[32] M. Rai,et al. Topical delivery of growth factors and metal/metal oxide nanoparticles to infected wounds by polymeric nanoparticles: an overview , 2020, Expert review of anti-infective therapy.
[33] P. Dutta,et al. Nanoparticle processing: Understanding and controlling aggregation. , 2020, Advances in colloid and interface science.
[34] Xiao Zhang,et al. CoNi nanoparticles encapsulated by nitrogen-doped carbon nanotube arrays on reduced graphene oxide sheets for electromagnetic wave absorption , 2020 .
[35] R. Nisticò. A synthetic guide toward the tailored production of magnetic iron oxide nanoparticles , 2020 .
[36] Bo Zhou,et al. Transcriptome sequencing analysis reveals silver nanoparticles antifungal molecular mechanism of the soil fungi Fusarium solani species complex. , 2020, Journal of hazardous materials.
[37] G. Bardi,et al. Natural Polysaccharide Nanomaterials: An Overview of Their Immunological Properties , 2019, International journal of molecular sciences.
[38] M. Ansari,et al. Biosynthesis of Silver Nanoparticles from Oropharyngeal Candida glabrata Isolates and Their Antimicrobial Activity against Clinical Strains of Bacteria and Fungi , 2018, Nanomaterials.
[39] N. Jayaraju,et al. Mycosynthesis of silver nanoparticles and their characterization , 2018, MethodsX.
[40] Mahantesh M. Kurjogi,et al. Ganoderma applanatum-mediated green synthesis of silver nanoparticles: Structural characterization, and in vitro and in vivo biomedical and agrochemical properties , 2017, Arabian Journal of Chemistry.
[41] R. Kumar,et al. A safe, efficient and environment friendly biosynthesis of silver nanoparticles using Leucaena leucocephala seed extract and its antioxidant, antimicrobial, antifungal activities and potential in sensing , 2017 .
[42] T. Boruta. Uncovering the repertoire of fungal secondary metabolites: From Fleming's laboratory to the International Space Station , 2017, Bioengineered.
[43] Manish Dhawan,et al. Enzymatic comparison and mortality of Beauveria bassiana against cabbage caterpillar Pieris brassicae LINN , 2017, Brazilian journal of microbiology : [publication of the Brazilian Society for Microbiology].
[44] K. Yokoyama,et al. Biosynthesis of silver nanoparticles by the fungus Arthroderma fulvum and its antifungal activity against genera of Candida, Aspergillus and Fusarium , 2016, International journal of nanomedicine.
[45] D. B. Pal,et al. Green Synthesis of Silver Nanoparticles: A Review , 2016 .
[46] B. Singh,et al. Mycofabricated biosilver nanoparticles interrupt Pseudomonas aeruginosa quorum sensing systems , 2015, Scientific Reports.
[47] S. Hashemi-Najafabadi,et al. Extracellular biosynthesis of silver nanoparticles using a novel and non-pathogenic fungus, Neurospora intermedia: controlled synthesis and antibacterial activity , 2013, World Journal of Microbiology and Biotechnology.
[48] A. Ingle,et al. Antiviral activity of mycosynthesized silver nanoparticles against herpes simplex virus and human parainfluenza virus type 3 , 2013, International journal of nanomedicine.
[49] S. S. Islam,et al. Green synthesis of silver nanoparticles using glucan from mushroom and study of antibacterial activity. , 2013, International journal of biological macromolecules.
[50] H. Agut,et al. Genotypic Characterization of UL23 Thymidine Kinase and UL30 DNA Polymerase of Clinical Isolates of Herpes Simplex Virus: Natural Polymorphism and Mutations Associated with Resistance to Antivirals , 2010, Antimicrobial Agents and Chemotherapy.
[51] C. D. de Koster,et al. Of Novel Adhesin-like Wall Proteins : Differential Incorporation Candida Glabrata Supplemental Material , 2008 .
[52] Mohammad-Fata Moradali,et al. Investigation of Potential Antibacterial Properties of Methanol Extracts from Fungus Ganoderma applanatum , 2006, Chemotherapy.
[53] B. Statt,et al. Metal to insulator transition in films of molecularly linked gold nanoparticles. , 2006, Physical review letters.
[54] Microbial Nanotechnology: Green Synthesis and Applications , 2021 .
[55] M. Ansari,et al. Fungal Biogenesis of NPs and Their Limitations , 2021, Microbial Nanotechnology: Green Synthesis and Applications.
[56] Suriya Rehman,et al. Current Perspectives on Mycosynthesis of Nanoparticles and Their Biomedical application , 2021 .
[57] K. Poluri,et al. Metallothionein-and Phytochelatin-Assisted Mechanism of Heavy Metal Detoxification in Microalgae , 2021 .
[58] H. Abdelkader,et al. Biosynthesis, Characterization and Antifungal Activity of Silver Nanoparticles by Aspergillus Niger Isolate , 2019, Journal of Nanotechnology Research.
[59] Krishna Gudikandula,et al. Biogenic synthesis of silver nanoparticles from white rot fungi: Their characterization and antibacterial studies , 2017 .