Engineered hybrid cardiac patches with multifunctional electronics for online monitoring and regulation of tissue function.
about
Advancing cardiovascular tissue engineeringMechanical assembly of complex, 3D mesostructures from releasable multilayers of advanced materials.Solid organ fabrication: comparison of decellularization to 3D bioprintingOne-volt-driven superfast polymer actuators based on single-ion conductorsBioinspired Mechano-Sensitive Macroporous Ceramic Sponge for Logical Drug and Cell Delivery.Modular assembly of thick multifunctional cardiac patches.Monolithic and Flexible ZnS/SnO2 Ultraviolet Photodetectors with Lateral Graphene Electrodes.Recent advances in electrospun nanofibers for wound healing.From Microscale Devices to 3D Printing: Advances in Fabrication of 3D Cardiovascular Tissues.Bioinspired Helical Microfibers from Microfluidics.Regulation of the microenvironment for cardiac tissue engineering.High-Content Assessment of Cardiac Function Using Heart-on-a-Chip Devices as Drug Screening Model.Cardiac tissue engineering: from matrix design to the engineering of bionic hearts.Organ-on-a-chip devices advance to market.An electromechanical hug for the failing heart.Multiscale technologies for treatment of ischemic cardiomyopathy.Injectable Carbon Nanotube-Functionalized Reverse Thermal Gel Promotes Cardiomyocytes Survival and Maturation.Highly scalable multichannel mesh electronics for stable chronic brain electrophysiology.Organ-On-A-Chip Platforms: A Convergence of Advanced Materials, Cells, and Microscale Technologies.Mesh Nanoelectronics: Seamless Integration of Electronics with Tissues.Tough adhesives for diverse wet surfaces.Mechanically-Guided Deterministic Assembly of 3D Mesostructures Assisted by Residual Stresses.Tissue engineering: Signals from within.Multifunctional degradable electronic scaffolds for cardiac tissue engineering.Nanoparticles for diagnosis and therapy of atherosclerosis and myocardial infarction: evolution toward prospective theranostic approachesA Platform for Mechano(-Electrical) Characterization of Free-Standing Micron-Sized Structures and Interconnectscardiac regeneration by using neuropeptide substance P and IGF-1C peptide eluting heart patchesThe Use of a Water Soluble Flexible Substrate to Embed Electronics in Additively Manufactured Objects: From Tattoo to Water Transfer Printed ElectronicsA three-dimensional hybrid pacemaker electrode seamlessly integrates into engineered, functional human cardiac tissue in vitro
P2860
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P2860
Engineered hybrid cardiac patches with multifunctional electronics for online monitoring and regulation of tissue function.
description
2016 nî lūn-bûn
@nan
2016 թուականի Մարտին հրատարակուած գիտական յօդուած
@hyw
2016 թվականի մարտին հրատարակված գիտական հոդված
@hy
2016年の論文
@ja
2016年論文
@yue
2016年論文
@zh-hant
2016年論文
@zh-hk
2016年論文
@zh-mo
2016年論文
@zh-tw
2016年论文
@wuu
name
Engineered hybrid cardiac patc ...... regulation of tissue function
@nl
Engineered hybrid cardiac patc ...... regulation of tissue function.
@ast
Engineered hybrid cardiac patc ...... regulation of tissue function.
@en
type
label
Engineered hybrid cardiac patc ...... regulation of tissue function
@nl
Engineered hybrid cardiac patc ...... regulation of tissue function.
@ast
Engineered hybrid cardiac patc ...... regulation of tissue function.
@en
prefLabel
Engineered hybrid cardiac patc ...... regulation of tissue function
@nl
Engineered hybrid cardiac patc ...... regulation of tissue function.
@ast
Engineered hybrid cardiac patc ...... regulation of tissue function.
@en
P2093
P2860
P3181
P356
P1433
P1476
Engineered hybrid cardiac patc ...... regulation of tissue function.
@en
P2093
Assaf Shapira
Leeya Engel
Maayan Malki
Ron Feiner
Sharon Fleischer
P2860
P2888
P304
P3181
P356
10.1038/NMAT4590
P407
P577
2016-03-14T00:00:00Z
P5875
P6179
1044482424