Results 211 to 220 of about 177,216 (256)
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Tissue engineering of bone

Minimally Invasive Therapy & Allied Technologies, 2002
Despite well-established bone-grafting techniques, large bone defects still represent a challenge for orthopaedic and reconstructive surgeons. Efforts have therefore been made to develop osteoconductive, osteoinductive and osteogenic bone-replacement systems.
Kneser, Ulrich   +5 more
openaire   +3 more sources

Tissue-engineered bone regeneration

Nature Biotechnology, 2000
Bone lesions above a critical size become scarred rather than regenerated, leading to nonunion. We have attempted to obtain a greater degree of regeneration by using a resorbable scaffold with regeneration-competent cells to recreate an embryonic environment in injured adult tissues, and thus improve clinical outcome.
H, Petite   +8 more
openaire   +2 more sources

Electrospinning for Bone Tissue Engineering

Recent Patents on Nanotechnology, 2008
Bone tissue engineering is a field of significant research interest owing to the large number of bone defects and the limitations in the present techniques to effectively reconstitute the defects. Cell-based bone graft technique has shown promise in overcoming the limitations of the other bone graft techniques currently used.
Koushik, Ramachandran   +1 more
openaire   +2 more sources

Peptides for bone tissue engineering

Journal of Controlled Release, 2016
Molecular signals in the form of growth factors are the main modulators of cell behavior. However, the use of growth factors in tissue engineering has several drawbacks, including their costs, difficult production, immunogenicity and short half-life. Furthermore, many of them are pleiotropic and, since a single growth factor can have different active ...
Rick, Visser   +3 more
openaire   +2 more sources

Perspectives on Tissue Engineering of Bone

Clinical Orthopaedics and Related Research, 1999
The normal repair and regeneration of bone occurs through an ordered and regulated sequence of cellular events. Successful replacement of bone through tissue engineering likely will be dependent on the recapitulation of this cascade of events. This report presents some of the principles to be considered in the design of engineered bone constructs.
S A, Goldstein, P V, Patil, M R, Moalli
openaire   +2 more sources

An Overview of Tissue Engineered Bone

Clinical Orthopaedics and Related Research, 1999
Numerous important developments in tissue engineering of new bone during the last 10 years are reviewed. Early efforts to combine cells with biocompatible materials are described and applications of this technology are presented with particular focus on uses in orthopaedics and maxillofacial surgery.
C A, Vacanti, L J, Bonassar
openaire   +2 more sources

Bone Marrow Tissue Engineering

Tissue Engineering, 2002
The creation of mixed hematopoietic chimerism has become an important clinical strategy for tolerance induction for cellular and organ transplantation, and for the treatment of numerous hematopoietic diseases. Clinical success has been limited however, by host immune response and by competition from host hematopoiesis. Recent data suggests that limited
Alexander S, Krupnick   +3 more
openaire   +2 more sources

Osteoblasts in bone tissue engineering

Proceedings of the Institution of Mechanical Engineers, Part H: Journal of Engineering in Medicine, 2010
Osteoblasts are integral to the development, growth, function, repair and maintenance of bone. The osteoblast forms organic, non-mineralized bone matrix and is involved in complex interactions with a variety of factors, mediators and cell types. Degeneration, pathology, and trauma cause disruption and destruction of the normal skeletal environment and ...
Jayakumar, P., Di Silvio, L.
openaire   +3 more sources

Craniofacial Bone Tissue Engineering

Dental Clinics of North America, 2006
Repair and reconstruction of the craniofacial skeleton represents a significant biomedical burden, with thousands of procedures per-formed annually secondary to injuries and congenital malformations. Given the multitude of current approaches, the need for more effective strategies to repair these bone deficits is apparent.
Derrick C, Wan   +2 more
openaire   +2 more sources

Bioreactors for Bone Tissue Engineering

The International Journal of Artificial Organs, 2011
Bone tissue engineering is a promising solution for patients with bone defects that require reconstruction. This regenerative therapy consists in culturing osteogenic cells on a biodegradable substrate to obtain a bio-hybrid construct that will stimulate bone healing after implantation.
Benoît, Carpentier   +2 more
openaire   +2 more sources

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