nr |
titel |
auteur |
tijdschrift |
jaar |
jaarg. |
afl. |
pagina('s) |
type |
1 |
A bioink blend for rotary 3D bioprinting tissue engineered small-diameter vascular constructs
|
Freeman, Sebastian |
|
|
95 |
C |
p. 152-164 |
artikel |
2 |
Advances in bioinks and in vivo imaging of biomaterials for CNS applications
|
Oliveira, Eduarda P. |
|
|
95 |
C |
p. 60-72 |
artikel |
3 |
A microparticle approach for non-viral gene delivery within 3D human mesenchymal stromal cell aggregates
|
Khalil, Andrew S. |
|
|
95 |
C |
p. 408-417 |
artikel |
4 |
An integrated cell printing system for the construction of heterogeneous tissue models
|
Liu, Tian-kun |
|
|
95 |
C |
p. 245-257 |
artikel |
5 |
A thermoresponsive three-dimensional fibrous cell culture platform for enzyme-free expansion of mammalian cells
|
Aladdad, Afnan M. |
|
|
95 |
C |
p. 427-438 |
artikel |
6 |
Bi-layered micro-fibre reinforced hydrogels for articular cartilage regeneration
|
Castilho, Miguel |
|
|
95 |
C |
p. 297-306 |
artikel |
7 |
Bioprinting functional tissues
|
Leberfinger, Ashley N. |
|
|
95 |
C |
p. 32-49 |
artikel |
8 |
Bioprinting of stem cell expansion lattices
|
Lindsay, Christopher D. |
|
|
95 |
C |
p. 225-235 |
artikel |
9 |
Cell armor for protection against environmental stress: Advances, challenges and applications in micro- and nanoencapsulation of mammalian cells
|
Hasturk, Onur |
|
|
95 |
C |
p. 3-31 |
artikel |
10 |
Construction of multicellular aggregate by E-cadherin coated microparticles enhancing the hepatic specific differentiation of mesenchymal stem cells
|
Cao, Lei |
|
|
95 |
C |
p. 382-394 |
artikel |
11 |
Construction of sinusoid-scale microvessels in perfusion culture of a decellularized liver
|
Watanabe, Masafumi |
|
|
95 |
C |
p. 307-318 |
artikel |
12 |
3D bioprinted mammary organoids and tumoroids in human mammary derived ECM hydrogels
|
Mollica, Peter A. |
|
|
95 |
C |
p. 201-213 |
artikel |
13 |
3D bioprinting of complex channels within cell-laden hydrogels
|
Ji, Shen |
|
|
95 |
C |
p. 214-224 |
artikel |
14 |
3-D culture and endothelial cells improve maturity of human pluripotent stem cell-derived hepatocytes
|
Ardalani, Hamisha |
|
|
95 |
C |
p. 371-381 |
artikel |
15 |
Decellularized extracellular matrix bioinks and the external stimuli to enhance cardiac tissue development in vitro
|
Das, Sanskrita |
|
|
95 |
C |
p. 188-200 |
artikel |
16 |
Development and quantitative characterization of the precursor rheology of hyaluronic acid hydrogels for bioprinting
|
Kiyotake, Emi A. |
|
|
95 |
C |
p. 176-187 |
artikel |
17 |
3D printed micro-scale force gauge arrays to improve human cardiac tissue maturation and enable high throughput drug testing
|
Ma, Xuanyi |
|
|
95 |
C |
p. 319-327 |
artikel |
18 |
Editorial Board
|
|
|
|
95 |
C |
p. i |
artikel |
19 |
Editorial introduction to special issue on “Biomaterials for cell manufacturing and tissue biofabrication”
|
Dai, Guohao |
|
|
95 |
C |
p. 1-2 |
artikel |
20 |
Effective stacking and transplantation of stem cell sheets using exogenous ROS-producing film for accelerated wound healing
|
Koo, Min-Ah |
|
|
95 |
C |
p. 418-426 |
artikel |
21 |
Emerging biomaterials for downstream manufacturing of therapeutic proteins
|
Li, Yi |
|
|
95 |
C |
p. 73-90 |
artikel |
22 |
Engineering the vasculature for islet transplantation
|
Bowers, Daniel T. |
|
|
95 |
C |
p. 131-151 |
artikel |
23 |
Enhanced extracellular vesicle production and ethanol-mediated vascularization bioactivity via a 3D-printed scaffold-perfusion bioreactor system
|
Patel, Divya B. |
|
|
95 |
C |
p. 236-244 |
artikel |
24 |
Gallol-derived ECM-mimetic adhesive bioinks exhibiting temporal shear-thinning and stabilization behavior
|
Shin, Mikyung |
|
|
95 |
C |
p. 165-175 |
artikel |
25 |
Gelatin-based micro-hydrogel carrying genetically engineered human endothelial cells for neovascularization
|
Choi, Young Hwan |
|
|
95 |
C |
p. 285-296 |
artikel |
26 |
Integration of biological systems with electronic-mechanical assemblies
|
Yi, Ning |
|
|
95 |
C |
p. 91-111 |
artikel |
27 |
Kidney regeneration with biomimetic vascular scaffolds based on vascular corrosion casts
|
Huling, Jennifer |
|
|
95 |
C |
p. 328-336 |
artikel |
28 |
Laser-based 3D bioprinting for spatial and size control of tumor spheroids and embryoid bodies
|
Kingsley, David M. |
|
|
95 |
C |
p. 357-370 |
artikel |
29 |
Micro-injection molded, poly(vinyl alcohol)-calcium salt templates for precise customization of 3D hydrogel internal architecture
|
McNulty, Jason D. |
|
|
95 |
C |
p. 258-268 |
artikel |
30 |
Nanotopographical regulation of pancreatic islet-like cluster formation from human pluripotent stem cells using a gradient-pattern chip
|
Kim, Jong Hyun |
|
|
95 |
C |
p. 337-347 |
artikel |
31 |
Recent advances in high-strength and elastic hydrogels for 3D printing in biomedical applications
|
Xu, Cancan |
|
|
95 |
C |
p. 50-59 |
artikel |
32 |
Scalable MSC-derived bone tissue modules: In vitro assessment of differentiation, matrix deposition, and compressive load bearing
|
Miles, Kevin Barrett |
|
|
95 |
C |
p. 395-407 |
artikel |
33 |
Synergistic interplay between human MSCs and HUVECs in 3D spheroids laden in collagen/fibrin hydrogels for bone tissue engineering
|
Heo, Dong Nyoung |
|
|
95 |
C |
p. 348-356 |
artikel |
34 |
Tissue engineered hydrogels supporting 3D neural networks
|
Aregueta-Robles, Ulises A. |
|
|
95 |
C |
p. 269-284 |
artikel |
35 |
Upgrading prevascularization in tissue engineering: A review of strategies for promoting highly organized microvascular network formation
|
Sharma, Dhavan |
|
|
95 |
C |
p. 112-130 |
artikel |