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1.
Biomed Mater ; 13(3): 034111, 2018 03 21.
Article de Anglais | MEDLINE | ID: mdl-29442069

RÉSUMÉ

Studies of electrical stimulation therapies for the treatment of neurological disorders, such as deep brain stimulation, have almost exclusively been performed using animal-models. However, because animal-models can only approximate human brain disorders, these studies should be supplemented with an in vitro human cell-culture based model to substantiate the results of animal-based studies and further investigate therapeutic benefit in humans. This study presents a novel approach to analyze the effect of electrical stimulation on the neurogenesis of patient-induced pluripotent stem cell (iPSC) derived neural progenitor cell (NPC) lines, in vitro using a 3D graphene scaffold system. The iPSC-derived hNPCs used to demonstrate the system were collected from patients with Rett syndrome, a debilitating neurodevelopmental disorder. The graphene scaffold readily supported both the wild-type and Rett NPCs. Electrical stimulation parameters were optimized to accommodate both wild-type and Rett cells. Increased cell maturation and improvements in cell morphology of the Rett cells was observed after electrical stimulation. The results of the pilot study of electrical stimulation to enhance Rett NPCs neurogenesis were promising and support further investigation of the therapy. Overall, this system provides a valuable tool to study electrical stimulation as a potential therapy for neurological disorders using patient-specific cells.


Sujet(s)
Différenciation cellulaire , Cellules souches pluripotentes induites/cytologie , Cellules souches neurales/cytologie , Neurones/cytologie , Syndrome de Rett/métabolisme , Structures d'échafaudage tissulaires/composition chimique , Adhérence cellulaire , Techniques de culture cellulaire/méthodes , Stimulation électrique , Fibroblastes/cytologie , Graphite , Humains , Microscopie électronique à balayage , Neurogenèse , Neurones/métabolisme , Cellules souches/cytologie
2.
ACS Nano ; 11(2): 2033-2044, 2017 02 28.
Article de Anglais | MEDLINE | ID: mdl-28157329

RÉSUMÉ

Compression studies on three-dimensional foam-like graphene and h-BN (3D-C and 3D-BN) revealed their high cross-plane thermal conductivity (62-86 W m-1 K-1) and excellent surface conformity, characteristics essential for thermal management needs. Comparative studies to state-of-the-art materials and other materials currently under research for heat dissipation revealed 3D-foam's improved performance (20-30% improved cooling, temperature decrease by ΔT of 44-24 °C).

3.
Adv Healthc Mater ; 5(10): 1177-91, 2016 05.
Article de Anglais | MEDLINE | ID: mdl-26946189

RÉSUMÉ

Owing to its high porosity, specific surface area and three-dimensional structure, three-dimensional graphene (3D-C) is a promising scaffold material for tissue engineering, regenerative medicine as well as providing a more biologically relevant platform for living organisms in vivo studies. Recently, its differentiation effects on cells growth and anti-inflammation properties have also been demonstrated. Here, we report a complete study of 3D-C as a fully adequate scaffold for tissue engineering and systematically analyze its biocompatibility and biodegradation mechanism. The metabolic activities of liver cells (HepG2 hepatocarcinoma cells) on 3D-C are studied and our findings show that cell growth on 3D-C has high cell viability (> 90%), low lactate production (reduced by 300%) and its porous structure also provides an excellent oxygenation platform. 3D-C is also biodegradable via a 2-step oxidative biodegradation process by first, disruption of domains and lift off of smaller graphitic particles from the surface of the 3D-C and subsequently, the decomposition of these graphitic flakes. In addition, the speed of the biodegradation can be tuned with pretreatment of O2 plasma.


Sujet(s)
Matériaux biocompatibles/composition chimique , Graphite/composition chimique , Oxygène/composition chimique , Structures d'échafaudage tissulaires/composition chimique , Implant résorbable , Techniques de culture cellulaire/méthodes , Différenciation cellulaire/effets des médicaments et des substances chimiques , Lignée cellulaire tumorale , Prolifération cellulaire/effets des médicaments et des substances chimiques , Survie cellulaire/effets des médicaments et des substances chimiques , Cellules HepG2 , Humains , Test de matériaux/méthodes , Porosité , Médecine régénérative/méthodes , Ingénierie tissulaire/méthodes
4.
Small ; 11(48): 6425-34, 2015 Dec 22.
Article de Anglais | MEDLINE | ID: mdl-26479496

RÉSUMÉ

Polyimides (PIs) have been praised for their high thermal stability, high modulus of elasticity and tensile strength, ease of fabrication, and moldability. They are currently the standard choice for both substrates for flexible electronics and space shielding, as they render high temperature and UV stability and toughness. However, their poor thermal conductivity and completely electrically insulating characteristics have caused other limitations, such as thermal management challenges for flexible high-power electronics and spacecraft electrostatic charging. In order to target these issues, a hybrid of PI with 3D-graphene (3D-C), 3D-C/PI, is developed here. This composite renders extraordinary enhancements of thermal conductivity (one order of magnitude) and electrical conductivity (10 orders of magnitude). It withstands and keeps a stable performance throughout various bending and thermal cycles, as well as the oxidative and aggressive environment of ground-based, simulated space environments. This makes this new hybrid film a suitable material for flexible space applications.

5.
Small ; 10(15): 2992-9, 2014 Aug 13.
Article de Anglais | MEDLINE | ID: mdl-24789084

RÉSUMÉ

Recent developments of 3D-graphene and 3D-boron-nitride have become of great interest owing to their potential for ultra-light flexible electronics. Here we demonstrate the first synthesis of novel 3D-BNC hybrids. By specifically controlling the compositions of C and BN, new fascinating properties are observed, such as highly tunable electrical conductivity, controllable EMI shielding properties, and stable thermal conductivity. This ultra-light hybrid opens up many new applications such as for electronic packaging and thermal interface materials (TIMs).

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