about
Triggering cell death by nanographene oxide mediated hyperthermia.Nano-graphene oxide: a potential multifunctional platform for cancer therapy.Nanocrystallinity effects on osteoblast and osteoclast response to silicon substituted hydroxyapatite.Influence of the covalent immobilization of graphene oxide in poly(vinyl alcohol) on human osteoblast response.Response of osteoblasts and preosteoblasts to calcium deficient and Si substituted hydroxyapatites treated at different temperatures.In vitro evaluation of graphene oxide nanosheets on immune function.Early in vitro response of macrophages and T lymphocytes to nanocrystalline hydroxyapatites.Evaluation of the in vitro biocompatibility of PMMA/high-load HA/carbon nanostructures bone cement formulations.In vitro biocompatibility and antimicrobial activity of poly(ε-caprolactone)/montmorillonite nanocomposites.Cell uptake survey of pegylated nanographene oxide.In vitro evaluation of glass-glass ceramic thermoseed-induced hyperthermia on human osteosarcoma cell line.Inhibition of bacterial adhesion on biocompatible zwitterionic SBA-15 mesoporous materials.L929 fibroblast and Saos-2 osteoblast response to hydroxyapatite-betaTCP/agarose biomaterial.In vitro positive biocompatibility evaluation of glass-glass ceramic thermoseeds for hyperthermic treatment of bone tumors.Effect of bile acids on butyrate-sensitive and -resistant human colon adenocarcinoma cells.Transitory oxidative stress in L929 fibroblasts cultured on poly(epsilon-caprolactone) films.Nitric oxide production by endothelial cells derived from blood progenitors cultured on NaOH-treated polycaprolactone films: A biofunctionality study.High glucose alters the secretome of mechanically stimulated osteocyte-like cells affecting osteoclast precursor recruitment and differentiation.Endothelial cells derived from circulating progenitors as an effective source to functional endothelialization of NaOH-treated poly(epsilon-caprolactone) films.Subacute Tissue Response to 3D Graphene Oxide Scaffolds Implanted in the Injured Rat Spinal Cord.Action of E. coli endotoxin, IL-1beta and TNF-alpha on antioxidant status of cultured hepatocytes.Multifunctional pH sensitive 3D scaffolds for treatment and prevention of bone infection.Effects of bleaching on osteoclast activity and their modulation by osteostatin and fibroblast growth factor 2.Differential effects of graphene oxide nanosheets on Candida albicans phagocytosis by murine peritoneal macrophages.MC3T3-E1 pre-osteoblast response and differentiation after graphene oxide nanosheet uptake.Mitochondrial membrane potential and reactive oxygen species content of endothelial and smooth muscle cells cultured on poly(epsilon-caprolactone) films.Vascular endothelial and smooth muscle cell culture on NaOH-treated poly(epsilon-caprolactone) films: a preliminary study for vascular graft development.The effects of graphene oxide nanosheets localized on F-actin filaments on cell-cycle alterations.Endocytic mechanisms of graphene oxide nanosheets in osteoblasts, hepatocytes and macrophages.Hepatic response to the oxidative stress induced by E. coli endotoxin: glutathione as an index of the acute phase during the endotoxic shock.Alkaline-treated poly(ε-caprolactone) films: Degradation in the presence or absence of fibroblastsProgenitor-derived endothelial cell response, platelet reactivity and haemocompatibility parameters indicate the potential of NaOH-treated polycaprolactone for vascular tissue engineeringImmobilization and bioactivity evaluation of FGF-1 and FGF-2 on powdered silicon-doped hydroxyapatite and their scaffolds for bone tissue engineeringBinding studies and localization ofEscherichia coli lipopolysaccharide in cultured hepatocytes by an immunocolloidal-gold techniqueThe binding of Escherichia coli endotoxin to isolated rat hepatocytesEffect of Escherichia coli lipopolysaccharide on the glucagon and insulin binding to isolated rat hepatocytesEscherichia coli lipopolysaccharide effects on proliferating rat liver cells in culture: a morphological and functional study
P50
Q35068899-7564E644-FCF2-4491-81B2-F364B30369B8Q38092811-C39D65E2-FD4D-4585-A150-931D7D8015DFQ38753484-B954E12C-9626-4C78-BF3C-44CDE8A9430CQ38813181-4700F535-90F9-4ADA-9B84-AE86800797B2Q38858773-288DCC10-C82C-4DA7-A917-6E4378144392Q38969313-BF71F427-2B22-41E0-9241-DBEB06CB7F75Q39039733-899360AD-44F0-4C12-A66C-2CC2668C9050Q39107412-4F6FA7E8-FEA3-43A8-9D4F-62D7B1278A41Q39244536-5170323D-471C-4B63-B4EB-51FFC3168328Q39254338-E4EB4671-44BF-47B5-8352-5AD6E98E817DQ39463163-32BA6854-E65B-493C-B217-297315D0D86EQ39578022-44CB8482-CD2F-4D46-A93D-5D1DC6F368E9Q39988167-11865EEF-8F1A-430B-BFD6-FF280F1FA73FQ39993692-C436C3AC-5EEC-435F-8916-F31E26CEA4D9Q40298145-6C5061F9-98C5-4DFB-AFCF-79C6E1FB3EE0Q40411210-C942E94D-4058-48F8-9011-BC45A2FE5DD1Q42451580-ADB26FF5-75ED-4BE8-9580-2F832FE3AE63Q42504968-844243B4-EE2C-48DC-8726-BF951A417279Q42524491-F3E549A9-C46C-4D34-85DA-E0BD3EBA3B22Q43335156-16884298-6561-4D1D-BF0C-046F10EB5B3CQ43958492-6E2A6755-3FE8-4D02-91FA-07FE2D1A0FE7Q46263650-F17034F4-BB45-458F-91E9-886DE607554AQ46664101-DE2F99F4-2144-4BDF-A185-37DE14B12A27Q47376710-DFD6BEF6-60C7-46DE-AEBE-0B3717D7DB6EQ47974146-55F64DF1-D99B-4262-AFE1-6B5D147230C8Q51191851-F51B61AE-F4EB-405E-A89C-2DA751F217EEQ51466041-82557485-FE99-429A-89C3-1E3AAFD385D3Q53132732-BA5375DB-A2AC-4291-A7DF-890E71139AB8Q53513332-E15B0156-3669-4617-9508-4422FA7AA482Q54586778-5983BFBD-B2BF-4BA8-8882-0025E6A92B50Q59509442-21071587-7548-45AF-8B74-01D5152D6A9CQ60180710-CC585735-DDF5-4A9B-BA90-E3C0486F517FQ60195613-770A5360-7B4A-4362-B752-A664C41FEFC2Q62398816-14BEAF08-0B10-422B-8C0F-AC250821400AQ70181800-4EF77FAB-4665-4B08-8994-104588AC67C4Q72409419-726317CD-7005-483F-BDDE-5AA4E53C65FBQ77882414-7B6BD1A3-5B86-442F-A1A1-ADC1B4999873
P50
description
Forscher
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chercheur
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investigador
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researcher
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ricercatore
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wetenschapper
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研究者
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name
M T Portolés
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M T Portolés
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M T Portolés
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M T Portolés
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M T Portolés
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M T Portolés
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M T Portolés
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M T Portolés
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M T Portolés
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M T Portolés
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M T Portolés
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M T Portolés
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P31
P496
0000-0002-9681-0184