Antibacterial anti-oxidant electroactive injectable hydrogel as self-healing wound dressing with hemostasis and adhesiveness for cutaneous wound healing.
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Baolin Guo | Yusheng Qiu | Ruonan Dong | Xin Zhao | Haoliang Wu | P. Ma
[1] P. Ma,et al. Stretchable degradable and electroactive shape memory copolymers with tunable recovery temperature enhance myogenic differentiation. , 2016, Acta biomaterialia.
[2] Peter X. Ma,et al. Mussel-inspired injectable supramolecular and covalent bond crosslinked hydrogels with rapid self-healing and recovery properties via a facile approach under metal-free conditions. , 2016, Journal of materials chemistry. B.
[3] Ling Wang,et al. Self-healing supramolecular bioelastomers with shape memory property as a multifunctional platform for biomedical applications via modular assembly. , 2016, Biomaterials.
[4] Xiguang Chen,et al. Biomaterials based on N,N,N-trimethyl chitosan fibers in wound dressing applications. , 2016, International journal of biological macromolecules.
[5] Baolin Guo,et al. Self-Healing Conductive Injectable Hydrogels with Antibacterial Activity as Cell Delivery Carrier for Cardiac Cell Therapy. , 2016, ACS applied materials & interfaces.
[6] P. Ma,et al. Electroactive biodegradable polyurethane significantly enhanced Schwann cells myelin gene expression and neurotrophin secretion for peripheral nerve tissue engineering. , 2016, Biomaterials.
[7] Zhengfang Yi,et al. Preparation of copper-containing bioactive glass/eggshell membrane nanocomposites for improving angiogenesis, antibacterial activity and wound healing. , 2016, Acta biomaterialia.
[8] D. Brooks,et al. Reversible hemostatic properties of sulfabetaine/quaternary ammonium modified hyperbranched polyglycerol. , 2016, Biomaterials.
[9] P. Ma,et al. Electroactive degradable copolymers enhancing osteogenic differentiation from bone marrow derived mesenchymal stem cells. , 2016, Journal of materials chemistry. B.
[10] Jing Chen,et al. Biocompatible, Biodegradable, and Electroactive Polyurethane-Urea Elastomers with Tunable Hydrophilicity for Skeletal Muscle Tissue Engineering. , 2015, ACS applied materials & interfaces.
[11] S. G. Harroun,et al. Self‐Assembly of Antimicrobial Peptides on Gold Nanodots: Against Multidrug‐Resistant Bacteria and Wound‐Healing Application , 2015 .
[12] Y. E. Chen,et al. Ductile electroactive biodegradable hyperbranched polylactide copolymers enhancing myoblast differentiation. , 2015, Biomaterials.
[13] Hamid Yeganeh,et al. Stimulation of Wound Healing by Electroactive, Antibacterial, and Antioxidant Polyurethane/Siloxane Dressing Membranes: In Vitro and in Vivo Evaluations. , 2015, ACS applied materials & interfaces.
[14] Peng Li,et al. Antibacterial and conductive injectable hydrogels based on quaternized chitosan-graft-polyaniline/oxidized dextran for tissue engineering. , 2015, Acta biomaterialia.
[15] Peter X Ma,et al. Rapid Self‐Integrating, Injectable Hydrogel for Tissue Complex Regeneration , 2015, Advanced healthcare materials.
[16] L. Xia,et al. Benzaldehyde Schiff bases regulation to the metabolism, hemolysis, and virulence genes expression in vitro and their structure-microbicidal activity relationship. , 2015, European journal of medicinal chemistry.
[17] Lei Tao,et al. An Injectable, Self‐Healing Hydrogel to Repair the Central Nervous System , 2015, Advanced materials.
[18] M. Grinstaff,et al. The chemistry and engineering of polymeric hydrogel adhesives for wound closure: a tutorial. , 2015, Chemical Society reviews.
[19] P. Ma,et al. Strong electroactive biodegradable shape memory polymer networks based on star-shaped polylactide and aniline trimer for bone tissue engineering. , 2015, ACS applied materials & interfaces.
[20] Yoshihito Osada,et al. Novel Biocompatible Polysaccharide‐Based Self‐Healing Hydrogel , 2015 .
[21] Hongbo Zeng,et al. Novel Mussel‐Inspired Injectable Self‐Healing Hydrogel with Anti‐Biofouling Property , 2015, Advanced materials.
[22] Zhihui Yao,et al. Novel bilayer wound dressing composed of silicone rubber with particular micropores enhanced wound re-epithelialization and contraction. , 2015, Biomaterials.
[23] P. Ma,et al. Injectable Electroactive Hydrogels Formed via Host-Guest Interactions. , 2014, ACS macro letters.
[24] Jinqing Wang,et al. A Novel Wound Dressing Based on Ag/Graphene Polymer Hydrogel: Effectively Kill Bacteria and Accelerate Wound Healing , 2014 .
[25] Baolin Guo,et al. Injectable biodegradable hydrogels and microgels based on methacrylated poly(ethylene glycol)-co-poly(glycerol sebacate) multi-block copolymers: synthesis, characterization, and cell encapsulation. , 2014, Journal of materials chemistry. B.
[26] Wenxin Wang,et al. Performance of an in situ formed bioactive hydrogel dressing from a PEG-based hyperbranched multifunctional copolymer. , 2014, Acta biomaterialia.
[27] P. Ma,et al. Synthetic biodegradable functional polymers for tissue engineering: a brief review , 2014, Science China Chemistry.
[28] Yen Wei,et al. In vitro study of electroactive tetraaniline-containing thermosensitive hydrogels for cardiac tissue engineering. , 2014, Biomacromolecules.
[29] Liguo Cui,et al. In situ electroactive and antioxidant supramolecular hydrogel based on cyclodextrin/copolymer inclusion for tissue engineering repair. , 2014, Macromolecular bioscience.
[30] A. Albertsson,et al. Biodegradable and electrically conducting polymers for biomedical applications , 2013 .
[31] Qinjie Wu,et al. A biodegradable hydrogel system containing curcumin encapsulated in micelles for cutaneous wound healing. , 2013, Biomaterials.
[32] Jessica D. Schiffman,et al. Designing electrospun nanofiber mats to promote wound healing - a review. , 2013, Journal of materials chemistry. B.
[33] Yaling Zhang,et al. Facilely prepared inexpensive and biocompatible self-healing hydrogel: a new injectable cell therapy carrier , 2012 .
[34] Kyung Min Park,et al. Rapidly curable chitosan-PEG hydrogels as tissue adhesives for hemostasis and wound healing. , 2012, Acta biomaterialia.
[35] Sook Hee Ku,et al. Synergic effects of nanofiber alignment and electroactivity on myoblast differentiation. , 2012, Biomaterials.
[36] Xuesi Chen,et al. Synthesis of biodegradable and electroactive tetraaniline grafted poly(ester amide) copolymers for bone tissue engineering. , 2012, Biomacromolecules.
[37] Jiaxi Cui,et al. Multivalent H-bonds for self-healing hydrogels. , 2012, Chemical communications.
[38] Shantikumar V. Nair,et al. Flexible and microporous chitosan hydrogel/nano ZnO composite bandages for wound dressing: in vitro and in vivo evaluation. , 2012, ACS applied materials & interfaces.
[39] Shaoyi Jiang,et al. A Thermoresponsive Antimicrobial Wound Dressing Hydrogel Based on a Cationic Betaine Ester , 2011 .
[40] Ki Dong Park,et al. In situ forming and rutin-releasing chitosan hydrogels as injectable dressings for dermal wound healing. , 2011, Biomacromolecules.
[41] Tae Gwan Park,et al. Catechol-functionalized chitosan/pluronic hydrogels for tissue adhesives and hemostatic materials. , 2011, Biomacromolecules.
[42] S. Nair,et al. Biomaterials based on chitin and chitosan in wound dressing applications. , 2011, Biotechnology advances.
[43] A. Albertsson,et al. Degradable and Electroactive Hydrogels with Tunable Electrical Conductivity and Swelling Behavior , 2011 .
[44] M. Fischbach,et al. Antibiotics for Emerging Pathogens , 2009, Science.
[45] Heungsoo Shin,et al. The stimulation of myoblast differentiation by electrically conductive sub-micron fibers. , 2009, Biomaterials.
[46] Olivera Stojadinovic,et al. PERSPECTIVE ARTICLE: Growth factors and cytokines in wound healing , 2008, Wound repair and regeneration : official publication of the Wound Healing Society [and] the European Tissue Repair Society.
[47] D. Santos,et al. Interaction of chitosan with cell membrane models at the air-water interface. , 2007, Biomacromolecules.
[48] H. Ge,et al. Synthesis and antimicrobial activities of Schiff bases derived from 5-chloro-salicylaldehyde. , 2007, European journal of medicinal chemistry.
[49] R. Jayakumar,et al. A therapeutic approach for diabetic wound healing using biotinylated GHK incorporated collagen matrices. , 2007, Life sciences.
[50] Nicholas C. Spitzer,et al. Electrical activity in early neuronal development , 2006, Nature.
[51] Chien-Ho Chen,et al. Development of N,O-(carboxymethyl)chitosan/collagen matrixes as a wound dressing. , 2006, Biomacromolecules.
[52] Jadranka Travas-Sejdic,et al. Free radical scavenging and antioxidant properties of conducting polymers examined using EPR and NMR spectroscopies , 2005 .
[53] A. Domb,et al. Chitosan chemistry and pharmaceutical perspectives. , 2004, Chemical reviews.
[54] Zbigniew Ruszczak,et al. Effect of collagen matrices on dermal wound healing. , 2003, Advanced drug delivery reviews.
[55] R. Waddington,et al. Comparison of the antioxidant properties of wound dressing materials--carboxymethylcellulose, hyaluronan benzyl ester and hyaluronan, towards polymorphonuclear leukocyte-derived reactive oxygen species. , 2003, Biomaterials.
[56] M. Peters,et al. Estimation of the electrical conductivity of human tissue , 2001 .
[57] A. Singer,et al. Cutaneous wound healing. , 1999, The New England journal of medicine.
[58] R. Mohan,et al. Expression of HGF, KGF, EGF and receptor messenger RNAs following corneal epithelial wounding. , 1999, Experimental eye research.
[59] R. Gamelli,et al. Vascular endothelial growth factor mediates angiogenic activity during the proliferative phase of wound healing. , 1998, The American journal of pathology.
[60] J. El Benna,et al. Intracellular pool of vascular endothelial growth factor in human neutrophils. , 1997, Blood.
[61] Wei Hu,et al. Sp1 Is Required for the Early Response of α2(I) Collagen to Transforming Growth Factor-β1* , 1997, The Journal of Biological Chemistry.
[62] R. Raghow,et al. The role of extracellular matrix in postinflammatory wound healing and fibrosis , 1994, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[63] J. F. Woessner,et al. The determination of hydroxyproline in tissue and protein samples containing small proportions of this imino acid. , 1961, Archives of biochemistry and biophysics.
[64] J. Barralet,et al. Genipin-crosslinked catechol-chitosan mucoadhesive hydrogels for buccal drug delivery. , 2015, Biomaterials.
[65] Gregory Schultz,et al. A study on the ability of quaternary ammonium groups attached to a polyurethane foam wound dressing to inhibit bacterial attachment and biofilm formation , 2015, Wound repair and regeneration : official publication of the Wound Healing Society [and] the European Tissue Repair Society.
[66] K. Christman,et al. Antibacterial and cell-adhesive polypeptide and poly(ethylene glycol) hydrogel as a potential scaffold for wound healing. , 2012, Acta biomaterialia.
[67] L. Modolo,et al. Schiff bases: A short review of their antimicrobial activities , 2011 .
[68] S. Davis,et al. Sedimentation analysis of potential interactions between mucins and a putative bioadhesive polymer , 1994 .
[69] R. Diegelmann,et al. Growth factors in wound healing. , 1994, Clinics in dermatology.
[70] Francis A. Duck,et al. Physical properties of tissue : a comprehensive reference book , 1990 .