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Self-Oxygenation of Tissues Orchestrates Full-Thickness Vascularization of Living Implants
- Source :
- Advanced functional materials, 31(42):2100850. Wiley-VCH Verlag, Advanced Functional Materials, 31(42):2100850. Wiley-VCH Verlag
- Publication Year :
- 2021
-
Abstract
- Bioengineering of tissues and organs has the potential to generate functional replacement organs. However, achieving the full-thickness vascularization that is required for long-term survival of living implants has remained a grand challenge, especially for clinically sized implants. During the pre-vascular phase, implanted engineered tissues are forced to metabolically rely on the diffusion of nutrients from adjacent host-tissue, which for larger living implants results in anoxia, cell death, and ultimately implant failure. Here it is reported that this challenge can be addressed by engineering self-oxygenating tissues, which is achieved via the incorporation of hydrophobic oxygen-generating micromaterials into engineered tissues. Self-oxygenation of tissues transforms anoxic stresses into hypoxic stimulation in a homogenous and tissue size-independent manner. The in situ elevation of oxygen tension enables the sustained production of high quantities of angiogenic factors by implanted cells, which are offered a metabolically protected pro-angiogenic microenvironment. Numerical simulations predict that self-oxygenation of living tissues will effectively orchestrate rapid full-thickness vascularization of implanted tissues, which is empirically confirmed via in vivo experimentation. Self-oxygenation of tissues thus represents a novel, effective, and widely applicable strategy to enable the vascularization living implants, which is expected to advance organ transplantation and regenerative medicine applications. ispartof: ADVANCED FUNCTIONAL MATERIALS vol:31 issue:42 ispartof: location:Germany status: published
- Subjects :
- Technology
VEGF receptors
Chemistry, Multidisciplinary
UT-Hybrid-D
HYPOXIA
02 engineering and technology
calcium peroxide
Regenerative medicine
SCAFFOLDS
ANGIOGENESIS
oxygen generation
Electrochemistry
0303 health sciences
biology
Chemistry, Physical
Physics
DEATH
Implant failure
implant survival
021001 nanoscience & nanotechnology
Condensed Matter Physics
VEGF
3. Good health
Electronic, Optical and Magnetic Materials
Oxygen tension
Chemistry
Physics, Condensed Matter
Physical Sciences
Science & Technology - Other Topics
Full thickness
0210 nano-technology
EXPRESSION
hydrophobic micromaterials
Materials science
Materials Science
GRADIENTS
Materials Science, Multidisciplinary
Physics, Applied
Biomaterials
03 medical and health sciences
DELIVERY
In vivo
Nanoscience & Nanotechnology
030304 developmental biology
Cellular metabolism
Science & Technology
Oxygenation
ENDOTHELIAL-CELLS
biology.protein
cellular metabolism
Biomedical engineering
Subjects
Details
- ISSN :
- 1616301X
- Volume :
- 31
- Issue :
- 42
- Database :
- OpenAIRE
- Journal :
- Advanced functional materials
- Accession number :
- edsair.doi.dedup.....0257d29228d3ddfe9ab39b7e6f7b7b8c