In vivo study of conductive 3D printed PCL/MWCNTs scaffolds with electrical stimulation for bone tissue engineering
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P. Bártolo | Boyang Huang | G. Caetano | A. Aldalbahi | M. El-Newehy | F. Mendonça | Leonardo Bagne | Milton Santamaria-Jr | J. V. Helaehil | Edney P. e Silva | Paulo R. L. Nalesso | M. A. de Oliveira | Gabriela C. C. Albiazetti | M. El‐Newehy
[1] A. Terzic,et al. 3D-Printed Scaffolds with Carbon Nanotubes for Bone Tissue Engineering: Fast and Homogeneous One-Step Functionalization. , 2020, Acta biomaterialia.
[2] C. Park,et al. In-situ polymerized polypyrrole nanoparticles immobilized poly(ε-caprolactone) electrospun conductive scaffolds for bone tissue engineering. , 2020, Materials science & engineering. C, Materials for biological applications.
[3] P. Bártolo,et al. Aligned multi-walled carbon nanotubes with nanohydroxyapatite in a 3D printed polycaprolactone scaffold stimulates osteogenic differentiation. , 2020, Materials science & engineering. C, Materials for biological applications.
[4] L. Leppik,et al. Electrical stimulation in bone tissue engineering treatments , 2020, European Journal of Trauma and Emergency Surgery.
[5] Andi Isra Mahyuddin,et al. 3D Printing of Polycaprolactone–Polyaniline Electroactive Scaffolds for Bone Tissue Engineering , 2020, Materials.
[6] Xuesi Chen,et al. Electroactive composite scaffold with locally expressed osteoinductive factor for synergistic bone repair upon electrical stimulation. , 2019, Biomaterials.
[7] M. Tahriri,et al. Influence of conductive PEDOT:PSS in a hard tissue scaffold: In vitro and in vivo study , 2019, Journal of Bioactive and Compatible Polymers.
[8] Yuan Yuan,et al. Multicellularity-interweaved bone regeneration of BMP-2-loaded scaffold with orchestrated kinetics of resorption and osteogenesis. , 2019, Biomaterials.
[9] K. Aifantis,et al. Conductive nanostructured Si biomaterials enhance osteogeneration through electrical stimulation. , 2019, Materials science & engineering. C, Materials for biological applications.
[10] P. Bártolo,et al. Fabrication and characterisation of 3D printed MWCNT composite porous scaffolds for bone regeneration. , 2019, Materials science & engineering. C, Materials for biological applications.
[11] S. Ahadian,et al. Electrically conductive nanomaterials for cardiac tissue engineering. , 2019, Advanced drug delivery reviews.
[12] Changshun Ruan,et al. Spatial Distribution of Biomaterial Microenvironment pH and Its Modulatory Effect on Osteoclasts at the Early Stage of Bone Defect Regeneration. , 2019, ACS applied materials & interfaces.
[13] D. Lipomi,et al. Stretchable Conductive Polymers and Composites Based on PEDOT and PEDOT:PSS , 2019, Advanced materials.
[14] Marcelo Augusto Marretto Esquisatto,et al. Electrical stimulation: Complementary therapy to improve the performance of grafts in bone defects? , 2018, Journal of biomedical materials research. Part B, Applied biomaterials.
[15] M. H. Fernandes,et al. Electrically polarized PLLA nanofibers as neural tissue engineering scaffolds with improved neuritogenesis. , 2018, Colloids and surfaces. B, Biointerfaces.
[16] WangWeiguang,et al. 3D-Printed Poly(ɛ-caprolactone)/Graphene Scaffolds Activated with P1-Latex Protein for Bone Regeneration , 2018 .
[17] Chuanbin Mao,et al. Electroactive polymers for tissue regeneration: Developments and perspectives. , 2018, Progress in polymer science.
[18] L. Leppik,et al. Combining electrical stimulation and tissue engineering to treat large bone defects in a rat model , 2018, Scientific Reports.
[19] P. Ma,et al. Conductive nanofibrous composite scaffolds based on in-situ formed polyaniline nanoparticle and polylactide for bone regeneration. , 2017, Journal of colloid and interface science.
[20] B. Boyan,et al. Regulation of osteoclasts by osteoblast lineage cells depends on titanium implant surface properties. , 2017, Acta biomaterialia.
[21] Molly M. Stevens,et al. Highly porous scaffolds of PEDOT:PSS for bone tissue engineering , 2017, Acta biomaterialia.
[22] Mauro Petretta,et al. Scaffolds for Bone Tissue Engineering: State of the art and new perspectives. , 2017, Materials science & engineering. C, Materials for biological applications.
[23] W. Teughels,et al. In vivo electrical application on titanium implants stimulating bone formation , 2017, Journal of periodontal research.
[24] Susmita Mukherjee,et al. Enhanced bone regeneration with carbon nanotube reinforced hydroxyapatite in animal model. , 2016, Journal of the mechanical behavior of biomedical materials.
[25] K. Neoh,et al. Electrical stimulation of adipose-derived mesenchymal stem cells in conductive scaffolds and the roles of voltage-gated ion channels. , 2016, Acta Biomaterialia.
[26] C. Schmidt,et al. Electrical Stimulation of Human Mesenchymal Stem Cells on Conductive Nanofibers Enhances their Differentiation toward Osteogenic Outcomes. , 2015, Macromolecular rapid communications.
[27] B. Gao,et al. The Dimension of Titania Nanotubes Influences Implant Success for Osteoclastogenesis and Osteogenesis Patients. , 2015, Journal of nanoscience and nanotechnology.
[28] R. Bader,et al. Biomechanical stability of novel mechanically adapted open-porous titanium scaffolds in metatarsal bone defects of sheep. , 2015, Biomaterials.
[29] Alexander M Seifalian,et al. Carbon nanotubes leading the way forward in new generation 3D tissue engineering. , 2014, Biotechnology advances.
[30] Liguo Cui,et al. In vitro studies on regulation of osteogenic activities by electrical stimulus on biodegradable electroactive polyelectrolyte multilayers. , 2014, Biomacromolecules.
[31] Yuhei Yamamoto,et al. Controlled Release of Granulocyte Colony-Stimulating Factor Enhances Osteoconductive and Biodegradable Properties of Beta-Tricalcium Phosphate in a Rat Calvarial Defect Model , 2014, International journal of biomaterials.
[32] Nicola Maffulli,et al. Bone regenerative medicine: classic options, novel strategies, and future directions , 2014, Journal of Orthopaedic Surgery and Research.
[33] Yuki Usui,et al. Culture medium type affects endocytosis of multi-walled carbon nanotubes in BEAS-2B cells and subsequent biological response. , 2013, Toxicology in vitro : an international journal published in association with BIBRA.
[34] I. Martin,et al. Osteogenic graft vascularization and bone resorption by VEGF-expressing human mesenchymal progenitors. , 2013, Biomaterials.
[35] C. Maes. Role and Regulation of Vascularization Processes in Endochondral Bones , 2013, Calcified Tissue International.
[36] María C. Gutiérrez,et al. Osteoconductive Performance of Carbon Nanotube Scaffolds Homogeneously Mineralized by Flow‐Through Electrodeposition , 2012 .
[37] P. Bártolo,et al. Additive manufacturing of tissues and organs , 2012 .
[38] A. Bayat,et al. Electrical Stimulation in Bone Healing: Critical Analysis by Evaluating Levels of Evidence , 2011, Eplasty.
[39] B D Boyan,et al. Electrical Implications of Corrosion for Osseointegration of Titanium Implants , 2011, Journal of dental research.
[40] G. Semenza,et al. Regulation of Osteogenesis-Angiogenesis Coupling by HIFs and VEGF , 2009, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[41] N. Maalouf,et al. The Role of Receptor Activator of Nuclear Factor-κB (RANK)/RANK Ligand/Osteoprotegerin: Clinical Implications , 2007 .
[42] Casey K. Chan,et al. Self-assembly of nano-hydroxyapatite on multi-walled carbon nanotubes. , 2007, Acta biomaterialia.
[43] S. J. Kim,et al. Biphasic electric current stimulates proliferation and induces VEGF production in osteoblasts. , 2006, Biochimica et biophysica acta.
[44] D. Golan,et al. Physiologic electrical stimulation provokes intracellular calcium increase mediated by phospholipase C activation in human osteoblasts , 2004, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[45] Min Zhao,et al. Electrical stimulation directly induces pre-angiogenic responses in vascular endothelial cells by signaling through VEGF receptors , 2003, Journal of Cell Science.
[46] R. Borgens. Endogenous ionic currents traverse intact and damaged bone. , 1984, Science.
[47] Bikramjit Basu,et al. Unraveling the mechanistic effects of electric field stimulation towards directing stem cell fate and function: A tissue engineering perspective. , 2018, Biomaterials.
[48] H. Jang,et al. Biomimetic whitlockite inorganic nanoparticles-mediated in situ remodeling and rapid bone regeneration. , 2017, Biomaterials.
[49] M. Santamaria,et al. Electrical stimulation enhances tissue reorganization during orthodontic tooth movement in rats , 2016, Clinical Oral Investigations.
[50] A. L. Horovistiz,et al. Carbon nanotube-based bioceramic grafts for electrotherapy of bone. , 2014, Materials science & engineering. C, Materials for biological applications.
[51] Peter X. Ma,et al. Conductive PPY/PDLLA conduit for peripheral nerve regeneration. , 2014, Biomaterials.
[52] Přemysl Fitl,et al. Polypyrrole nanotubes: mechanism of formation , 2014 .
[53] M. Vallet‐Regí,et al. Electrical stimuli to increase cell proliferation on carbon nanotubes/mesoporous silica composites for drug delivery. , 2013, Journal of biomedical materials research. Part A.
[54] L. Xing,et al. Osteoclasts have multiple roles in bone in addition to bone resorption. , 2009, Critical reviews in eukaryotic gene expression.