Page last updated: 2024-08-25

chitosan and acrolein

chitosan has been researched along with acrolein in 26 studies

Research

Studies (26)

TimeframeStudies, this research(%)All Research%
pre-19900 (0.00)18.7374
1990's0 (0.00)18.2507
2000's0 (0.00)29.6817
2010's12 (46.15)24.3611
2020's14 (53.85)2.80

Authors

AuthorsStudies
Kannan, S; Nipun Babu, V1
Badawy, ME; Rabea, EI1
Bai, J; Ference, C; Narciso, J; Sun, X; Wang, Z; Zhou, K1
Rieger, KA; Schiffman, JD1
Castell-Perez, E; Gomes, C; Loquercio, A; Moreira, RG1
Birch, NP; Rieger, KA; Schiffman, JD1
Collins, MN; Eldin, MSM; Hassan, MA; Omer, AM; Šoltés, L; Tamer, TM; Valachová, K1
Goycoolea, FM; Kräft, T; Qin, X1
Brown, S; Chen, CH; Upadhayay, A; Venkitanarayanan, K; Yin, HB1
Gomes, CL; Medeiros, EAA; Moraes, ARF; Pola, CC; Soares, NFF; Teófilo, RF1
Eldin, MSM; Elmeligy, MA; Kenawy, E; Omer, AM; Tamer, TM1
Alagirusamy, R; Ali, W; Das, A; Gadkari, RR; Suwalka, S; Yogi, MR1
Campana-Filho, SP; Ferreira, IM; Fiamingo, A; Porto, ALM1
Chen, L; Guo, X; Li, Q; Sun, X; Wang, J; Wu, J; Zhu, W1
Chen, H; Gong, A; Hu, J; Huang, C; Li, B; Li, Y; Liu, S1
Arnon-Rips, H; Cohen, Y; Porat, R; Poverenov, E; Saidi, L1
Bazzi, L; Chauhan, DS; El Mouaden, K; Hilali, M; Quraishi, MA1
Barrera-Martínez, CL; Cortez-Mazatan, GY; Liakos, I; Meléndez-Ortiz, HI; Padilla-Vaca, F; Peralta-Rodríguez, RD1
Cheng, F; Feng, T; Wang, X; Xia, S; Zhang, X1
Babaei, S; Hosseini, SMH; Mousavi, Z; Naseri, M; Shekarforoush, SS1
Chen, Y; Guo, M; Li, J; Wang, Y; Yang, X; Ye, B1
Ganguly, J; Jana, B; Pan, D; Parshi, N; Prasad, K1
Elsherbiny, AS; Galal, A; Ghoneem, KM; Salahuddin, NA1
Cui, H; Julian McClements, D; Li, B; Li, Y; Liu, S; Tang, C; Wu, S1
Li, Y; Liu, Z; Qu, G; Wan, X; Wang, B; Xie, L; Zhang, H; Zhang, YF; Zhao, S1
Chen, H; Li, Y; Liu, Y; Liu, Z; Wan, X; Zhang, YF; Zhong, J1

Other Studies

26 other study(ies) available for chitosan and acrolein

ArticleYear
Enhanced delivery of baicalein using cinnamaldehyde cross-linked chitosan nanoparticle inducing apoptosis.
    International journal of biological macromolecules, 2012, Volume: 51, Issue:5

    Topics: Acrolein; Antineoplastic Agents; Apoptosis; Biomarkers, Tumor; Cell Line, Tumor; Chitosan; Drug Carriers; Emulsions; Flavanones; Humans; Nanoparticles; Oils; Particle Size; Surface Properties; Water

2012
Synthesis and structure-activity relationship of N-(cinnamyl) chitosan analogs as antimicrobial agents.
    International journal of biological macromolecules, 2013, Volume: 57

    Topics: Acrolein; Agrobacterium tumefaciens; Anti-Infective Agents; Chitosan; Fungi; Mycelium; Pectobacterium carotovorum; Spores, Fungal

2013
Effects of chitosan-essential oil coatings on safety and quality of fresh blueberries.
    Journal of food science, 2014, Volume: 79, Issue:5

    Topics: Acrolein; Anti-Infective Agents; Bacteria; Blueberry Plants; Chitosan; Cymenes; Food Handling; Food Microbiology; Food Preservation; Food Storage; Fruit; Fungi; Hardness; Humans; Monoterpenes; Oils, Volatile

2014
Electrospinning an essential oil: cinnamaldehyde enhances the antimicrobial efficacy of chitosan/poly(ethylene oxide) nanofibers.
    Carbohydrate polymers, 2014, Nov-26, Volume: 113

    Topics: Acrolein; Anti-Infective Agents; Chitosan; Escherichia coli; Microscopy, Electron, Scanning; Nanofibers; Oils, Volatile; Polyethylene Glycols

2014
Preparation of Chitosan-Alginate Nanoparticles for Trans-cinnamaldehyde Entrapment.
    Journal of food science, 2015, Volume: 80, Issue:10

    Topics: Acrolein; Alginates; Antioxidants; Calcium Chloride; Chemistry, Pharmaceutical; Chitosan; Gels; Glucuronic Acid; Hexuronic Acids; Nanocapsules; Nanoparticles; Particle Size

2015
Electrospinning chitosan/poly(ethylene oxide) solutions with essential oils: Correlating solution rheology to nanofiber formation.
    Carbohydrate polymers, 2016, Mar-30, Volume: 139

    Topics: Acrolein; Alcohols; Chitosan; Hydrophobic and Hydrophilic Interactions; Molecular Weight; Nanofibers; Oils, Volatile; Polyethylene Glycols; Rheology; Solutions; Technology, Pharmaceutical; Viscosity

2016
Antibacterial and antioxidative activity of O-amine functionalized chitosan.
    Carbohydrate polymers, 2017, Aug-01, Volume: 169

    Topics: Acrolein; Amines; Anti-Bacterial Agents; Antioxidants; Bacillus cereus; Chitosan; Escherichia coli; Microbial Sensitivity Tests; Pseudomonas aeruginosa; Staphylococcus aureus

2017
Chitosan encapsulation modulates the effect of trans-cinnamaldehyde on AHL-regulated quorum sensing activity.
    Colloids and surfaces. B, Biointerfaces, 2018, 09-01, Volume: 169

    Topics: Acrolein; Carboxylic Ester Hydrolases; Chitosan; Nanocapsules; Quorum Sensing

2018
Efficacy of plant-derived antimicrobials for controlling Salmonella Schwarzengrund on dry pet food.
    International journal of food microbiology, 2019, May-02, Volume: 296

    Topics: Acrolein; Animal Feed; Animals; Anti-Bacterial Agents; Chitosan; Cymenes; Disease Outbreaks; Eugenol; Food Microbiology; Glycine max; Humans; Monoterpenes; Pets; Plant Oils; Salmonella enterica; Salmonella Food Poisoning; Salmonella Infections

2019
Development and optimization of pH-responsive PLGA-chitosan nanoparticles for triggered release of antimicrobials.
    Food chemistry, 2019, Oct-15, Volume: 295

    Topics: Acrolein; Anti-Infective Agents; Calorimetry, Differential Scanning; Chitosan; Drug Carriers; Drug Liberation; Hydrogen-Ion Concentration; Microbial Sensitivity Tests; Nanoparticles; Particle Size; Polylactic Acid-Polyglycolic Acid Copolymer; Salmonella; Staphylococcus aureus

2019
Fabrication of biodegradable gelatin/chitosan/cinnamaldehyde crosslinked membranes for antibacterial wound dressing applications.
    International journal of biological macromolecules, 2019, Oct-15, Volume: 139

    Topics: Acrolein; Anti-Bacterial Agents; Bandages; Biocompatible Materials; Chemical Phenomena; Chitosan; Gelatin; Mechanical Phenomena; Spectrum Analysis; Wound Healing

2019
Green synthesis of chitosan-cinnamaldehyde cross-linked nanoparticles: Characterization and antibacterial activity.
    Carbohydrate polymers, 2019, Dec-15, Volume: 226

    Topics: Acrolein; Anti-Bacterial Agents; Chitosan; Escherichia coli; Nanoparticles; Staphylococcus aureus

2019
Biotransformation of (E)-2-Methyl-3-Phenylacrylaldehyde Using Mycelia of Penicillium citrinum CBMAI 1186, Both Free and Immobilized on Chitosan.
    Marine biotechnology (New York, N.Y.), 2020, Volume: 22, Issue:3

    Topics: Acrolein; Biotransformation; Chitosan; Mycelium; Penicillium; Stereoisomerism

2020
Development and physicochemical characterization of chitosan hydrochloride/sulfobutyl ether-β-cyclodextrin nanoparticles for cinnamaldehyde entrapment.
    Journal of food biochemistry, 2020, Volume: 44, Issue:6

    Topics: Acrolein; beta-Cyclodextrins; Chitosan; Ethers; Nanoparticles

2020
Influence of pH on property and lipolysis behavior of cinnamaldehyde conjugated chitosan-stabilized emulsions.
    International journal of biological macromolecules, 2020, Oct-15, Volume: 161

    Topics: Acrolein; Chitosan; Emulsions; Hydrogen-Ion Concentration; Lipolysis; Particle Size; Viscosity; Water

2020
Covalent linkage of bioactive volatiles to a polysaccharide support as a potential approach for preparing active edible coatings and delivery systems for food products.
    Food chemistry, 2021, Feb-15, Volume: 338

    Topics: Acrolein; Acyclic Monoterpenes; Anti-Infective Agents; Benzaldehydes; Chitosan; Citrus; Cucurbitaceae; Edible Films; Food Microbiology; Food Preservation; Food Quality; Food Storage; Fruit; Fruit and Vegetable Juices; Hydrophobic and Hydrophilic Interactions; Polysaccharides

2021
Cinnamaldehyde-modified chitosan as a bio-derived corrosion inhibitor for acid pickling of copper: Microwave synthesis, experimental and computational study.
    International journal of biological macromolecules, 2020, Dec-01, Volume: 164

    Topics: Acrolein; Adsorption; Chitosan; Computational Biology; Copper; Corrosion; Electrochemical Techniques; Hydrochloric Acid; Microscopy, Electron, Scanning; Microwaves; Schiff Bases; Steel; Surface Properties

2020
Chitosan microparticles as entrapment system for trans- cinnamaldehyde: Synthesis, drug loading, and in vitro cytotoxicity evaluation.
    International journal of biological macromolecules, 2021, Jan-01, Volume: 166

    Topics: Acrolein; Animals; Antineoplastic Agents, Phytogenic; Cell Proliferation; Chitosan; Cross-Linking Reagents; Dogs; Drug Liberation; HeLa Cells; Humans; Hydrogels; Madin Darby Canine Kidney Cells; Microspheres

2021
Chitosan decoration improves the rapid and long-term antibacterial activities of cinnamaldehyde-loaded liposomes.
    International journal of biological macromolecules, 2021, Jan-31, Volume: 168

    Topics: Acrolein; Anti-Bacterial Agents; Cell Membrane; Chitosan; Escherichia coli; Liposomes; Microbial Sensitivity Tests; Particle Size; Staphylococcus aureus

2021
The effect of cross-linker type on structural, antimicrobial and controlled release properties of fish gelatin-chitosan composite films incorporated with ε-poly-l-lysine.
    International journal of biological macromolecules, 2021, Jul-31, Volume: 183

    Topics: Acrolein; Anti-Bacterial Agents; Bacillus subtilis; Chitosan; Cross-Linking Reagents; Delayed-Action Preparations; Escherichia coli; Food Microbiology; Food Packaging; Gelatin; Glutaral; Permeability; Polylysine; Salmonella typhimurium; Solubility; Spectroscopy, Fourier Transform Infrared; Staphylococcus aureus

2021
Preparation of biological sustained-release nanocapsules and explore on algae-killing properties.
    Journal of advanced research, 2021, Volume: 31

    Topics: Acrolein; Acylation; Alginates; Benzimidazoles; Carboxymethylcellulose Sodium; Chitosan; Chlorophyta; Delayed-Action Preparations; Drug Compounding; Environmental Pollution; Herbicides; Magnetic Resonance Spectroscopy; Nanocapsules; Particle Size

2021
Optimization of the spontaneous adsorption of food colors from aqueous medium using functionalized Chitosan/Cinnamaldehyde hydrogel.
    International journal of biological macromolecules, 2021, Dec-15, Volume: 193, Issue:Pt A

    Topics: Acetic Acid; Acrolein; Adsorption; Antineoplastic Agents, Phytogenic; Chitosan; Color; Coloring Agents; Hydrogels; Hydrogen-Ion Concentration; Kinetics; Naphthalenesulfonates; Spectroscopy, Fourier Transform Infrared; Tartrazine; Thermodynamics; Water; Water Pollution

2021
Novel chitosan-based nanocomposites as ecofriendly pesticide carriers: Synthesis, root rot inhibition and growth management of tomato plants.
    Carbohydrate polymers, 2022, Apr-15, Volume: 282

    Topics: Acrolein; Adsorption; Aniline Compounds; Antioxidants; Bentonite; Benzaldehydes; Biological Control Agents; Chitosan; Drug Liberation; Fusarium; Nanocomposites; Plant Diseases; Plant Roots; Pythium; Solanum lycopersicum

2022
Fabrication of chitosan-cinnamaldehyde-glycerol monolaurate bigels with dual gelling effects and application as cream analogs.
    Food chemistry, 2022, Aug-01, Volume: 384

    Topics: Acrolein; Chitosan; Hydrogels; Laurates; Monoglycerides

2022
Efficiently ion-enhanced adsorption of anion dyes by acrolein crosslinked polyethylenimine/chitosan hydrogel with excellent recycling stability.
    International journal of biological macromolecules, 2022, Dec-01, Volume: 222, Issue:Pt B

    Topics: Acrolein; Adsorption; Anions; Chitosan; Coloring Agents; Hydrogels; Hydrogen-Ion Concentration; Kinetics; Polyethyleneimine; Spectroscopy, Fourier Transform Infrared; Water Pollutants, Chemical

2022
Efficient selective recycle of acid blue 93 by NaOH activated acrolein/chitosan adsorbent via size-matching effect.
    Carbohydrate polymers, 2023, Feb-01, Volume: 301, Issue:Pt A

    Topics: Acrolein; Chitosan; Coloring Agents; Kinetics; Sodium Hydroxide; Water Pollutants, Chemical

2023