Biopolymers & Essential Oils for Antimicrobial

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Biopolymers & Essential Oils for Antimicrobial i Current Organic Chemistry, 2018, Vol. 22, No. 12 Graphical Abstracts Graphical Abstracts Current Organic Chemistry; Vol. 22, No. 12, 2018, 1141 Biopolymers Carrying Essential Oils, or their Compounds, for Food Antimicrobial Packaging Raquel Requena, Maria Vargas, Lorena Atarés and Amparo Chiralt* *Institute of Food Engineering for Development, Universitat Politècnica de València, P.O. Box 46022, Valencia, Spain Biopolymers & essential oils for antimicrobial packaging (AP) Essential oil or their active compounds Z Direct addition into the polymer blend Z MIC for the target microorganism Z Previously encapsulated in different supports Z Concentration to exceed the MIC. Design of the Selection of Z Anchored to nanomaterials Z Losses during film processing the active and incorporation Z Multilayer films: Z Potential synergistic effects method & % Electrospun active layers Biopolymers: functional properties as biopolymer material % Coating with active layers packaging material % Incorporation of actives between layers Industrial AP Antimicrobial scale-up DEVELOPMENT packaging material Z APPLICATION IN REAL FOODS Validation, Z FUNCTIONAL PROPERTIES AS AP % PRODUCT SHELF LIFE Demonstration Z MIGRATION. RELEASE KINETICS % Migration Z MIGRATION STUDIES of the efficiency IN VITRO ANTIMICROBIAL TESTS % ANTIMICROBIAL ACTIVITY Stability Z IN VIVO TESTS IN REAL FOODS % MATERIAL STABILITY Current Organic Chemistry; Vol. 22, No. 12, 2018, 1157 Drug Delivery Systems for Chemotherapeutics through Selected Polysaccharidic Vehicles Daniele Merli, Antonella Profumo, Paolo Quadrelli*, Carla Renata Arciola and Livia Visai *Department of Chemistry, University of Pavia, Viale Taramelli 12, 27100 Pavia, Italy OH OH O OH O O O O HO O HO n OH OH O m O O OH OH OH OH OH H HO OOO O O O O OH O O HO HO HO OH NH2 NH2 NH2 n OH NH2 Polysaccharides Sources Delivery systems to cancerous cells Graphical Abstracts Current Organic Chemistry, 2018, Vol. 22, No. 12 ii Current Organic Chemistry; Vol. 22, No. 12, 2018, 1193 Nanostructured Biopolymer-based Materials for Regenerative Medicine Applications Ilaria Armentano*, Luigi Tarpani, Francesco Morena, Sabata Martino, Loredana Latterini and Luigi Torre *Department of Ecological and Biological Sciences (DEB), Tuscia University, Viale dell'Università, snc, 01100 Viterbo, Italy Stem Cells Regenerative Tissue Medicine Growth Approach Stem Cells+Biomaterials Nanostructured Biomaterials Current Organic Chemistry; Vol. 22, No. 12, 2018, 1205 Lignocellulosic Based Bionanocomposites for Different Industrial Applications Weijun Yang, Elena Fortunati, Francesca Luzi, José M. Kenny, Luigi Torre and Debora Puglia* * Civil and Environmental Engineering Department, Materials Engineering Center, University of Perugia, UdR INSTM, Terni, Italy Linocellulosic Biopolymer Bionanocomposites nanofillers Nanocellulose Plant (wood, cotton etc.) Bacteria Cellulose nanocrystals from Pulping Culture in specific medium Posidonia Oceanica Plant cellulose pulp Bacterial cellulose Transparency Overall Migration Test 120 Acid Retining and ) hydrolization 100 homogenization Acid -1 hydrolization g kg m 80 MFCs or NFCs NCC or CNC Mechanical response 60 Ethanol 10% v/v (MPa) 40 Formulations sb Cb (%) Eroung Isoctane 20 Over all migration ( Over all migration 100 nm (MPa) 0 Chemical and Acid mechanical hydrolization Acid PLA 16.5+3.1_ 277.9+33.6_ 1205+100_ PLA isolation hydrolization Microfibril or PLA_KNC Filter paper _ _ _ PLA_3CNC nanofibril PLA_1CNC 27.1+6.3 200.1+53.3 1330+90 PLA_1S-CNC PLA_3S-CNC PLA_1s-CNC 22.9+1.2_ 286.1+25.2_ 993+190_ PLA_3CNC 21.9+3.5_ 100.9+27.9_ 1930+170_ 200 nm 10mm 2000- MAG. 0.0 Phase 3.0 mm PLA_3s-CNC 20.2+1.9_ 210.4+48.1_ 800+100_ a) Lignin nanoparticles WG/OLNP WG/1LNP WG/3LNP 500 nm 100 nm Transparency Optical properties 100 80% 80 WG/GLNP 72% WG/1LNP WG/3LNP 60 100 50% Mechanical response 80 0.06g/L 40 60 E 500 nm 100 nm Formulation roung 20 40 s (MPa) Cb(%) (%) Transferrence S b (MPa) 20 0 0 WG/OLNP 180.5+57.9_ 296.6+10.7_ 5.5+0.0_ 300 400 500 300 400 500 600 700 800 900 1000 Wavelength(nm) WG/1 LNP 243.2+46.9_ 104.4+22.6_ 6.4+1.0_ WG/3LNP 553.2+56.3_ 27.5+9.6_ 13.3+1.6_ b) iii Current Organic Chemistry, 2018, Vol. 22, No. 12 Graphical Abstracts Current Organic Chemistry; Vol. 22, No. 12, 2018, 1222 Design of Multifunctional Polysaccharides for Biomedical Applications: A Critical Review Daniela P. Pacheco, Elena Marcello, Nora Bloise, Alessandro Sacchetti, Elisabetta Brenna, Livia Visai* and Paola Petrini *Department of Chemistry, University of Bath, Claverton Down, Bath, UK Current Organic Chemistry; Vol. 22, No. 12, 2018, 1237 Recent Trends in Microencapsulation for Smart and Active Innovative Textile Products Arantzazu Valdés, Marina Ramos, Ana Beltrán and María Carmen Garrigós* *Analytical Chemistry, Nutrition & Food Sciences Department, Faculty of Sciences, University of Alicante, Campus San Vicente, 03690, San Vicente del Raspeig (Alicante), Spain MICROENCAPSULATION RELEASE TECHNOLOGIES MECHANISMS SMART TEXTILES ACTIVE TEXTILE PRODUCTS Graphical Abstracts Current Organic Chemistry, 2018, Vol. 22, No. 12 iv Current Organic Chemistry; Vol. 22, No. 12, 2018, 1249 -Glucan, a Promising Polysaccharide for Bio-based Films Developments for Food Contact Materials and Medical Applications Mercedes Peltzer*, Juan F. Delgado, Andrés G. Salvay and Jorge R. Wagner *Department of Science and Technology, National University of Quilmes, P.O. Box: B1876BXD, Bernal, Argentina CH2OH CH2OH O O O O CH2 CH OH 2 OH O O O O OH OH OH OH OH m n OH OH OH m n b-1,3 b-1,6 b-1,3 b-1,4 Bio-based Films.
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