Active Potential of Bacterial Cellulose-Based Wound Dressing: Analysis of Its Potential for Dermal Lesion Treatment
暂无分享,去创建一个
Silmar Baptista Nunes | G. M. Gelfuso | J. Barbosa | B. Machado | K. Hodel | A. L. Godoy | B. N. Matos | Giulia da Costa Sacramento | Carine Assunção de Oliveira Maciel | Gessualdo Seixas Oliveira-Junior | C. Maciel | G. Oliveira-Junior
[1] M. Wesołowski,et al. Miscibility and Solubility of Caffeine and Theophylline in Hydroxypropyl Methylcellulose , 2021, Pharmaceutics.
[2] K. Kaewtatip,et al. Mechanical and barrier properties of starch blend films enhanced with kaolin for application in food packaging. , 2021, International journal of biological macromolecules.
[3] G. Isopencu,et al. Polyphenolics profile effects upon the antioxidant and antimicrobial activity of propolis extracts , 2021, Scientific Reports.
[4] Xiaowen Chen,et al. Marine Polysaccharides for Wound Dressings Application: An Overview , 2021, Pharmaceutics.
[5] G. Negri,et al. How diverse is the chemistry and plant origin of Brazilian propolis? , 2021, Apidologie.
[6] S. Jia,et al. Bacterial cellulose and its potential for biomedical applications. , 2021, Biotechnology advances.
[7] J. Goslings,et al. Cost-effectiveness of direct discharge from the emergency department of patients with simple stable injuries in the Netherlands , 2021, Trauma Surgery & Acute Care Open.
[8] Kun Zhang,et al. Hydrogel Preparation Methods and Biomaterials for Wound Dressing , 2021, Life.
[9] S. Ramakrishna,et al. Bioactive Agent-Loaded Electrospun Nanofiber Membranes for Accelerating Healing Process: A Review , 2021, Membranes.
[10] P. Pancorbo-Hidalgo,et al. The Role of Antioxidants on Wound Healing: A Review of the Current Evidence , 2021, Journal of clinical medicine.
[11] R. Babu,et al. Biopolymer and Synthetic Polymer-Based Nanocomposites in Wound Dressing Applications: A Review , 2021, Polymers.
[12] Mazlan Zawani,et al. Injectable Hydrogels for Chronic Skin Wound Management: A Concise Review , 2021, Biomedicines.
[13] I. Tlak Gajger,et al. Propolis Extract and Its Bioactive Compounds—From Traditional to Modern Extraction Technologies , 2021, Molecules.
[14] D. Tapia-Blácido,et al. Nopal cladode as a novel reinforcing and antioxidant agent for starch-based films: A comparison with lignin and propolis extract. , 2021, International journal of biological macromolecules.
[15] Shuai Zong,et al. Chitosan Films Functionalized with Different Hydroxycinnamic Acids: Preparation, Characterization and Application for Pork Preservation , 2021, Foods.
[16] M. Ul-Islam,et al. Ex situ Synthesis and Characterization of High Strength Multipurpose Bacterial Cellulose-Aloe vera Hydrogels , 2021, Frontiers in Bioengineering and Biotechnology.
[17] L. Stanojević,et al. Modified Biochanin A Release from Dual pH- and Thermo-Responsive Copolymer Hydrogels , 2021, Polymers.
[18] Xin Gao,et al. Biochanin A alleviates oxidative damage caused by the urban particulate matter. , 2021, Food & function.
[19] H. Mehboob,et al. Recent Advances in Biopolymeric Composite Materials for Tissue Engineering and Regenerative Medicines: A Review , 2021, Molecules.
[20] Silmar Baptista Nunes,et al. Development of Bacterial Cellulose Biocomposites Combined with Starch and Collagen and Evaluation of Their Properties , 2021, Materials.
[21] F. Mutinelli,et al. Antioxidant Activity in Bee Products: A Review , 2021, Antioxidants.
[22] A. Samadi,et al. Fabrication and Characterization of Glycerol/Chitosan/Polyvinyl Alcohol-Based Transparent Hydrogel Films Loaded with Silver Nanoparticles for Antibacterial Wound Dressing Applications , 2021, Advanced biomedical research.
[23] Lei Tao,et al. Improving Chronic Diabetic Wound Healing through an Injectable and Self-Healing Hydrogel with Platelet-Rich Plasma Release. , 2020, ACS applied materials & interfaces.
[24] O. Bobiș,et al. Baccharis dracunculifolia and Dalbergia ecastophyllum, Main Plant Sources for Bioactive Properties in Green and Red Brazilian Propolis , 2020, Plants.
[25] H. Tomás,et al. Physicochemical Properties and Cell Viability of Shrimp Chitosan Films as Affected by Film Casting Solvents. I-Potential Use as Wound Dressing , 2020, Materials.
[26] Ș. Voicu,et al. Recent advances in composites based on cellulose derivatives for biomedical applications. , 2020, Carbohydrate polymers.
[27] A. Jordão,et al. Antioxidant Effect of Standardized Extract of Propolis (EPP-AF®) in Healthy Volunteers: A “Before and After” Clinical Study , 2020, Evidence-based complementary and alternative medicine : eCAM.
[28] Xiao-qing Miao,et al. The Chemical Composition of Brazilian Green Propolis and Its Protective Effects on Mouse Aortic Endothelial Cells against Inflammatory Injury , 2020, Molecules.
[29] P. Semenyuk,et al. Natural and Synthetic Derivatives of Hydroxycinnamic Acid Modulating the Pathological Transformation of Amyloidogenic Proteins , 2020, Molecules.
[30] Wenxin Wang,et al. Chemical Modification of Bacterial Cellulose for the Development of an Antibacterial Wound Dressing , 2020, Frontiers in Bioengineering and Biotechnology.
[31] Ruth Naomi,et al. Cellulose/Collagen Dressings for Diabetic Foot Ulcer: A Review , 2020, Pharmaceutics.
[32] Jose G. Munguia-Lopez,et al. Highly absorbent antibacterial and biofilm-disrupting hydrogels from cellulose for wound dressing application. , 2020, ACS applied materials & interfaces.
[33] Ya Liu,et al. Research status of self-healing hydrogel for wound management: A review. , 2020, International journal of biological macromolecules.
[34] P. Semjonovs,et al. Production of bacterial cellulose from whey—current state and prospects , 2020, Applied Microbiology and Biotechnology.
[35] H. Shahriari,et al. Investigation on nano microbial cellulose/honey composite for medical application , 2020, Materials Research Express.
[36] M. Baesso,et al. Emulgels Containing Carbopol 934P and Different Vegetable Oils for Topical Propolis Delivery: Bioadhesion, Drug Release Profile, and Ex Vivo Skin Permeation Studies , 2020, AAPS PharmSciTech.
[37] A. Berthold-Pluta,et al. Antibacterial Activity of Biocellulose with Oregano Essential Oil against Cronobacter Strains , 2020, Polymers.
[38] M. Ferrarini,et al. Coumaric acid derivatives as tyrosinase inhibitors: Efficacy studies through in silico, in vitro and ex vivo approaches. , 2020, Bioorganic chemistry.
[39] M. Nabid,et al. Synthesis of chemically cross-linked hydrogel films based on basil seed (Ocimum basilicum L.) mucilage for wound dressing drug delivery applications. , 2020, International journal of biological macromolecules.
[40] B. Buyana,et al. Development, characterization, and in vitro evaluation of water soluble poloxamer/pluronic‐mastic gum‐gum acacia‐based wound dressing , 2019, Journal of Applied Polymer Science.
[41] K. Leung,et al. Staphylococcus aureus impairs cutaneous wound healing by activating the expression of a gap junction protein, connexin-43 in keratinocytes , 2020, Cellular and Molecular Life Sciences.
[42] Ammara Riaz,et al. Biochanin A: A novel bioactive multifunctional compound from nature. , 2020, The Science of the total environment.
[43] Shivakalyani Adepu,et al. Bacterial cellulose with microencapsulated antifungal essential oils: Novel double barrier release system , 2020, Materialia.
[44] Daniel Nogueira Cortez,et al. Costs of treating skin lesions in Primary Health Care , 2020 .
[45] Silmar Baptista Nunes,et al. Evaluation of Different Methods for Cultivating Gluconacetobacter hansenii for Bacterial Cellulose and Montmorillonite Biocomposite Production: Wound-Dressing Applications , 2020, Polymers.
[46] J. Menezes-Filho,et al. Metal Content of Nutritional and Toxic Value in Different Types of Brazilian Propolis , 2020, TheScientificWorldJournal.
[47] D. Fatouros,et al. Development of Bio-Active Patches Based on Pectin for the Treatment of Ulcers and Wounds Using 3D-Bioprinting Technology , 2020, Pharmaceutics.
[48] M. Vázquez,et al. Environmentally friendly films combining bacterial cellulose, chitosan and polyvinyl alcohol: Effect of water activity on barrier, mechanical and optical properties. , 2019, Biomacromolecules.
[49] J. Druzian,et al. Development and application starch films: PBAT with additives for evaluating the shelf life of Tommy Atkins mango in the fresh‐cut state , 2019, Journal of Applied Polymer Science.
[50] A. Chiralt,et al. Incorporation of natural antioxidants from rice straw into renewable starch films. , 2019, International journal of biological macromolecules.
[51] G. Isopencu,et al. Bacterial cellulose films with ZnO nanoparticles and propolis extracts: Synergistic antimicrobial effect , 2019, Scientific Reports.
[52] J. Trček,et al. Bacterial Cellulose: Production, Modification and Perspectives in Biomedical Applications , 2019, Nanomaterials.
[53] Marco Andrey Cipriani Frade,et al. Development, characterization and pre-clinical trials of an innovative wound healing dressing based on propolis (EPP-AF®)-containing self-microemulsifying formulation incorporated in biocellulose membranes. , 2019, International journal of biological macromolecules.
[54] Nurul Aliah Abdullah,et al. Physicochemical analyses, antioxidant, antibacterial, and toxicity of propolis particles produced by stingless bee Heterotrigona itama found in Brunei Darussalam , 2019, Heliyon.
[55] M. Khorramizadeh,et al. Antibacterial and antioxidant assessment of cellulose acetate/polycaprolactone nanofibrous mats impregnated with propolis. , 2019, International journal of biological macromolecules.
[56] Y. Boo. p-Coumaric Acid as An Active Ingredient in Cosmetics: A Review Focusing on its Antimelanogenic Effects , 2019, Antioxidants.
[57] M. Rafienia,et al. Cornstarch-based wound dressing incorporated with hyaluronic acid and propolis: In vitro and in vivo studies. , 2019, Carbohydrate polymers.
[58] F. Padilha,et al. Evaluation of the antioxidant profile and cytotoxic activity of red propolis extracts from different regions of northeastern Brazil obtained by conventional and ultrasound-assisted extraction , 2019, PloS one.
[59] M. Vázquez,et al. Composite Films with UV-Barrier Properties of Bacterial Cellulose with Glycerol and Poly(vinyl alcohol): Puncture Properties, Solubility, and Swelling Degree. , 2019, Biomacromolecules.
[60] W. Padula,et al. The national cost of hospital‐acquired pressure injuries in the United States , 2019, International wound journal.
[61] T. Karpiński,et al. Antibacterial Properties of Propolis , 2019, Molecules.
[62] C. Agyare,et al. Natural Products and/or Isolated Compounds on Wound Healing , 2019, Evidence-based complementary and alternative medicine : eCAM.
[63] Nutthapong Kantrong,et al. Fabrication and Characterization of Low Methoxyl Pectin/Gelatin/Carboxymethyl Cellulose Absorbent Hydrogel Film for Wound Dressing Applications , 2019, Materials.
[64] L. Ceseracciu,et al. Low molecular weight ε-caprolactone-p-coumaric acid copolymers as potential biomaterials for skin regeneration applications , 2019, PloS one.
[65] L. Křížová,et al. Isoflavones , 2019, Molecules.
[66] Ilker S. Bayer,et al. Combining dietary phenolic antioxidants with polyvinylpyrrolidone: transparent biopolymer films based on p-coumaric acid for controlled release. , 2019, Journal of materials chemistry. B.
[67] H. Abral,et al. Characterization of PVA/cassava starch biocomposites fabricated with and without sonication using bacterial cellulose fiber loadings. , 2019, Carbohydrate polymers.
[68] C. Sen. Human Wounds and Its Burden: An Updated Compendium of Estimates. , 2019, Advances in wound care.
[69] S. Jia,et al. Development of bacterial cellulose/chitosan based semi-interpenetrating hydrogels with improved mechanical and antibacterial properties. , 2019, International journal of biological macromolecules.
[70] M. Bačáková,et al. Versatile Application of Nanocellulose: From Industry to Skin Tissue Engineering and Wound Healing , 2019, Nanomaterials.
[71] Amitava Das,et al. Staphylococcus aureus Biofilm Infection Compromises Wound Healing by Causing Deficiencies in Granulation Tissue Collagen , 2019, Annals of surgery.
[72] S. Saboor,et al. Emerging Innovative Wound Dressings , 2018, Annals of Biomedical Engineering.
[73] B. A. Machado,et al. Chemical characterization and biological activity of six different extracts of propolis through conventional methods and supercritical extraction , 2018, PloS one.
[74] C. Luchese,et al. Polysaccharide‐based film loaded with vitamin C and propolis: A promising device to accelerate diabetic wound healing , 2018, International journal of pharmaceutics.
[75] K. Christensen,et al. Advances in biopolymer-based membrane preparation and applications , 2018, Journal of Membrane Science.
[76] R. Auras,et al. Biodegradable Rice Starch/Carboxymethyl Chitosan Films with Added Propolis Extract for Potential Use as Active Food Packaging , 2018, Polymers.
[77] R. Du,et al. Production and characterization of bacterial cellulose produced by Gluconacetobacter xylinus isolated from Chinese persimmon vinegar. , 2018, Carbohydrate polymers.
[78] Taous Khan,et al. Surface modification and evaluation of bacterial cellulose for drug delivery. , 2018, International journal of biological macromolecules.
[79] M. Scopel,et al. Hydroxypropyl‐β‐cyclodextrin‐containing hydrogel enhances skin formononetin permeation/retention , 2018, The Journal of pharmacy and pharmacology.
[80] M. Maraschin,et al. Chemical characterization, antioxidant and antimicrobial activity of propolis obtained from Melipona quadrifasciata quadrifasciata and Tetragonisca angustula stingless bees , 2018, Brazilian journal of medical and biological research = Revista brasileira de pesquisas medicas e biologicas.
[81] J. Henriques,et al. Brazilian red propolis: Chemical composition and antibacterial activity determined using bioguided fractionation. , 2018, Microbiological research.
[82] M. Ng,et al. Development of a bacterial cellulose-based hydrogel cell carrier containing keratinocytes and fibroblasts for full-thickness wound healing , 2018, Scientific Reports.
[83] Yasmine Belkaid,et al. The human skin microbiome , 2018, Nature Reviews Microbiology.
[84] Estelle M Everett,et al. Update on management of diabetic foot ulcers , 2018, Annals of the New York Academy of Sciences.
[85] M. Nunes,et al. Evaluation of bioactive compounds potential and antioxidant activity of brown, green and red propolis from Brazilian northeast region. , 2017, Food research international.
[86] D. Message,et al. New propolis type from north-east Brazil: chemical composition, antioxidant activity and botanical origin. , 2017, Journal of the science of food and agriculture.
[87] Jianbo Xiao,et al. Therapeutic Properties of Bioactive Compounds from Different Honeybee Products , 2017, Front. Pharmacol..
[88] P. L. Rosalen,et al. The use of Brazilian propolis for discovery and development of novel anti-inflammatory drugs. , 2017, European journal of medicinal chemistry.
[89] Hui‐jeong Gwon,et al. The Effect of Thickness of Resorbable Bacterial Cellulose Membrane on Guided Bone Regeneration , 2017, Materials.
[90] Jing Wang,et al. Enhancing the oral bioavailability of biochanin A by encapsulation in mixed micelles containing Pluronic F127 and Plasdone S630 , 2017, International journal of nanomedicine.
[91] A. Monte-Alto-Costa,et al. Brazilian red propolis improves cutaneous wound healing suppressing inflammation-associated transcription factor NFκB. , 2017, Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie.
[92] J. Cooke,et al. Reactive oxygen species (ROS) and wound healing: the functional role of ROS and emerging ROS‐modulating technologies for augmentation of the healing process , 2017, International wound journal.
[93] A. Oryan,et al. Burn wound healing: present concepts, treatment strategies and future directions. , 2017, Journal of wound care.
[94] A. Ito,et al. Antioxidant activities of three stingless bee propolis and green propolis types , 2017 .
[95] U. Siripatrawan,et al. Improving functional properties of chitosan films as active food packaging by incorporating with propolis , 2016 .
[96] A. Ferreira,et al. Comparative Study of Chemical Composition and Biological Activity of Yellow, Green, Brown, and Red Brazilian Propolis , 2016, Evidence-based complementary and alternative medicine : eCAM.
[97] S. Ou,et al. p-Coumaric acid and its conjugates: dietary sources, pharmacokinetic properties and biological activities. , 2016, Journal of the science of food and agriculture.
[98] J. M. Sforcin. Biological Properties and Therapeutic Applications of Propolis , 2016, Phytotherapy research : PTR.
[99] M. Nasri,et al. Structural analysis, and antioxidant and antibacterial properties of chitosan-poly (vinyl alcohol) biodegradable films , 2016, Environmental Science and Pollution Research.
[100] Weifeng He,et al. Controlled water vapor transmission rate promotes wound-healing via wound re-epithelialization and contraction enhancement , 2016, Scientific Reports.
[101] P. L. Rosalen,et al. A pharmacological perspective on the use of Brazilian Red Propolis and its isolated compounds against human diseases. , 2016, European journal of medicinal chemistry.
[102] Samantha Serra Costa,et al. Chemical Composition and Biological Activity of Extracts Obtained by Supercritical Extraction and Ethanolic Extraction of Brown, Green and Red Propolis Derived from Different Geographic Regions in Brazil , 2016, PloS one.
[103] C. Scarlett,et al. Water Sorption Isotherm of Pea Starch Edible Films and Prediction Models , 2015, Foods.
[104] V. V. Padma,et al. Wound dressings – a review , 2015, BioMedicine.
[105] I. Correia,et al. Asymmetric membranes as ideal wound dressings: An overview on production methods, structure, properties and performance relationship , 2015 .
[106] O. H. Gonçalves,et al. Physical, antimicrobial and antioxidant properties of starch-based film containing ethanolic propolis extract , 2015 .
[107] M. J. Rosique,et al. Curbing Inflammation in Skin Wound Healing: A Review , 2015, International journal of inflammation.
[108] Samantha Serra Costa,et al. Determination of Parameters for the Supercritical Extraction of Antioxidant Compounds from Green Propolis Using Carbon Dioxide and Ethanol as Co-Solvent , 2015, PloS one.
[109] J. P. Issa,et al. Herbal Mouthwash Containing Extracts of Baccharis dracunculifolia as Agent for the Control of Biofilm: Clinical Evaluation in Humans , 2015, TheScientificWorldJournal.
[110] F. Müller,et al. Active wound dressings based on bacterial nanocellulose as drug delivery system for octenidine. , 2014, International journal of pharmaceutics.
[111] M. R. D. Moura,et al. Preparação de novos nanobiocompósitos comestíveis ativos contendo nanoemulsão de canela e pectina , 2014 .
[112] S. Ribeiro,et al. Antimicrobial Brazilian Propolis (EPP-AF) Containing Biocellulose Membranes as Promising Biomaterial for Skin Wound Healing , 2013, Evidence-based complementary and alternative medicine : eCAM.
[113] Yoshiharu Ohashi,et al. The stratum corneum comprises three layers with distinct metal-ion barrier properties , 2013, Scientific Reports.
[114] P. Sobral,et al. Properties of gelatin-based films with added ethanol–propolis extract , 2013 .
[115] O. Cuesta-Rubio,et al. Cuban and Brazilian red propolis: botanical origin and comparative analysis by high-performance liquid chromatography-photodiode array detection/electrospray ionization tandem mass spectrometry. , 2011, Journal of agricultural and food chemistry.
[116] Juliano Bottura Picchi. Preparo e caracterização físico-química e biológica de um biocompósito à base de celulose associada à própolis , 2010 .
[117] M. García,et al. Composite and bi-layer films based on gelatin and chitosan , 2009 .
[118] C. Costa-Neto,et al. Chemical composition and biological activity of a new type of Brazilian propolis: red propolis. , 2007, Journal of ethnopharmacology.
[119] Wieland Peschel,et al. An industrial approach in the search of natural antioxidants from vegetable and fruit wastes , 2006 .
[120] Aline Meda,et al. Determination of the total phenolic, flavonoid and proline contents in Burkina Fasan honey, as well as their radical scavenging activity. , 2005 .
[121] M. C. Marcucci,et al. Factors that influence the yield and composition of Brazilian propolis extracts , 2004 .
[122] Lúcio Flávio,et al. Validação em métodos cromatográficos e eletroforéticos , 2004 .
[123] Yong-Kun Park,et al. Botanical origin and chemical composition of Brazilian propolis. , 2002, Journal of agricultural and food chemistry.
[124] L. Yang,et al. Mechanical and water vapour barrier properties of edible gellan films , 2000 .
[125] P. Calder,et al. The effect of propolis and its components on eicosanoid production during the inflammatory response. , 1996, Prostaglandins, leukotrienes, and essential fatty acids.
[126] K. Vadodaria,et al. Synthesis of bacterial cellulose and herbal extract for the development of wound dressing , 2019, Materials Today: Proceedings.
[127] Katarzyna Pobiega,et al. Application of propolis in antimicrobial and antioxidative protection of food quality – A review , 2019, Trends in Food Science & Technology.
[128] Marcia Nusgart,et al. An Economic Evaluation of the Impact, Cost, and Medicare Policy Implications of Chronic Nonhealing Wounds. , 2018, Value in health : the journal of the International Society for Pharmacoeconomics and Outcomes Research.
[129] Luís Antonio Pinheiro,et al. Propriedades físicas, químicas e de barreira em filme formados por blenda de celulose bacteriana e fécula de batata , 2013 .
[130] R. Kaomongkolgit,et al. Growth of Human Keratinocytes and Fibroblasts on Bacterial Cellulose Film , 2006, Biotechnology progress.
[131] Philip Molyneux,et al. THE USE OF THE STABLE FREE RADICAL DIPHENYLPICRYLHYDRAZYL (DPPH) FOR ESTIMATING ANTIOXIDANT ACTIVITY , 2004 .
[132] M. C. Marcucci,et al. Propolis: recent advances in chemistry and plant origin , 2000 .
[133] Mary Jane Ferraro,et al. Methods for dilution antimicrobial susceptibility tests for bacteria that grow aerobically : approved standard , 2000 .
[134] R. Lamuela-Raventós,et al. Analysis of total phenols and other oxidation substrates and antioxidants by means of Folin-Ciocalteu reagent , 1999 .
[135] Y. Park,et al. Preparation of Water and Ethanolic Extracts of Propolis and Evaluation of the Preparations. , 1998, Bioscience, biotechnology, and biochemistry.
[136] C. Berset,et al. Use of a Free Radical Method to Evaluate Antioxidant Activity , 1995 .
[137] V. L. Singleton,et al. Colorimetry of Total Phenolics with Phosphomolybdic-Phosphotungstic Acid Reagents , 1965, American Journal of Enology and Viticulture.