Cell and biomolecule delivery for regenerative medicine
Regenerative medicine is an exciting field that aims to create regenerative alternatives to harvest tissues for transplantation. In this approach, the delivery of cells and biological molecules plays a central role. The scaffold (synthetic temporary extracellular matrix) delivers cells to the regene...
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2010-01-01
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Online Access: | http://www.iop.org/EJ/abstract/1468-6996/11/1/014102 |
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doaj-f20ce8313e1b441daa1d959be9d96fba2020-11-24T22:28:14ZengTaylor & Francis GroupScience and Technology of Advanced Materials1468-69961878-55142010-01-01111014102Cell and biomolecule delivery for regenerative medicineIan O Smith and Peter X MaRegenerative medicine is an exciting field that aims to create regenerative alternatives to harvest tissues for transplantation. In this approach, the delivery of cells and biological molecules plays a central role. The scaffold (synthetic temporary extracellular matrix) delivers cells to the regenerative site and provides three-dimensional environments for the cells. To fulfil these functions, we design biodegradable polymer scaffolds with structural features on multiple size scales. To enhance positive cell–material interactions, we design nano-sized structural features in the scaffolds to mimic the natural extracellular matrix. We also integrate micro-sized pore networks to facilitate mass transport and neo tissue regeneration. We also design novel polymer devices and self-assembled nanospheres for biomolecule delivery to recapitulate key events in developmental and wound healing processes. Herein, we present recent work in biomedical polymer synthesis, novel processing techniques, surface engineering and biologic delivery. Examples of enhanced cellular/tissue function and regenerative outcomes of these approaches are discussed to demonstrate the excitement of the biomimetic scaffold design and biologic delivery in regenerative medicine.http://www.iop.org/EJ/abstract/1468-6996/11/1/014102biomaterialsnanomaterialstissue engineeringregenerative medicinescaffoldcontrolled releasebiodegradable polymer |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Ian O Smith and Peter X Ma |
spellingShingle |
Ian O Smith and Peter X Ma Cell and biomolecule delivery for regenerative medicine Science and Technology of Advanced Materials biomaterials nanomaterials tissue engineering regenerative medicine scaffold controlled release biodegradable polymer |
author_facet |
Ian O Smith and Peter X Ma |
author_sort |
Ian O Smith and Peter X Ma |
title |
Cell and biomolecule delivery for regenerative medicine |
title_short |
Cell and biomolecule delivery for regenerative medicine |
title_full |
Cell and biomolecule delivery for regenerative medicine |
title_fullStr |
Cell and biomolecule delivery for regenerative medicine |
title_full_unstemmed |
Cell and biomolecule delivery for regenerative medicine |
title_sort |
cell and biomolecule delivery for regenerative medicine |
publisher |
Taylor & Francis Group |
series |
Science and Technology of Advanced Materials |
issn |
1468-6996 1878-5514 |
publishDate |
2010-01-01 |
description |
Regenerative medicine is an exciting field that aims to create regenerative alternatives to harvest tissues for transplantation. In this approach, the delivery of cells and biological molecules plays a central role. The scaffold (synthetic temporary extracellular matrix) delivers cells to the regenerative site and provides three-dimensional environments for the cells. To fulfil these functions, we design biodegradable polymer scaffolds with structural features on multiple size scales. To enhance positive cell–material interactions, we design nano-sized structural features in the scaffolds to mimic the natural extracellular matrix. We also integrate micro-sized pore networks to facilitate mass transport and neo tissue regeneration. We also design novel polymer devices and self-assembled nanospheres for biomolecule delivery to recapitulate key events in developmental and wound healing processes. Herein, we present recent work in biomedical polymer synthesis, novel processing techniques, surface engineering and biologic delivery. Examples of enhanced cellular/tissue function and regenerative outcomes of these approaches are discussed to demonstrate the excitement of the biomimetic scaffold design and biologic delivery in regenerative medicine. |
topic |
biomaterials nanomaterials tissue engineering regenerative medicine scaffold controlled release biodegradable polymer |
url |
http://www.iop.org/EJ/abstract/1468-6996/11/1/014102 |
work_keys_str_mv |
AT ianosmithandpeterxma cellandbiomoleculedeliveryforregenerativemedicine |
_version_ |
1725747250557091840 |