TY - JOUR
T1 - Angiogenic stimulation strategies in bone tissue regeneration
AU - Mahapatra, Chinmaya
AU - Kumar, Prasoon
AU - Paul, Manash K.
AU - Kumar, Awanish
N1 - Publisher Copyright:
© 2022 Elsevier Ltd
PY - 2022/12
Y1 - 2022/12
N2 - Current tissue engineering strategies in bone repair and regeneration have limitations regarding tissue rejection, insufficient blood supply, and tissue integration. Specific host response results in isolation, degeneration, and subsequent loss of function of the implanted/scaffold biomaterial. Therefore, strategies to increase the interplay between angiogenesis and complex bone tissue formation are required to develop fully functional vascularized bone tissue. Angiogenesis is essential for oxygen/nutrient supply, waste removal, endothelial/stem cell homing, and the release of mitogenic/angiogenic/osteogenic factors. Hence, the challenge lies in understanding the complex interdependence of angiogenesis with neo-bone formation. Therefore, recent bone tissue regeneration strategies have focused on biomaterial development concerning induction of neovascularization and subsequent angiogenesis. Scaffold architecture (macro/micro/nano) scales, culture conditions (3-Dimension, hypoxia, etc), stimuli-dependent delivery of angiofactors, and gene delivery may significantly modulate vascularization in tissue-engineered products. Therefore, the current review discusses the key mechanisms/steps involved in defining the relationship between angiogenic and osteogenic factors. The recent strategies incorporating the above understanding in the development of bone tissue-engineered constructs are also deliberated. Eventually, these strategies may give the potential way forward to develop a bioengineered, vascularized bone tissue construct for implant applications.
AB - Current tissue engineering strategies in bone repair and regeneration have limitations regarding tissue rejection, insufficient blood supply, and tissue integration. Specific host response results in isolation, degeneration, and subsequent loss of function of the implanted/scaffold biomaterial. Therefore, strategies to increase the interplay between angiogenesis and complex bone tissue formation are required to develop fully functional vascularized bone tissue. Angiogenesis is essential for oxygen/nutrient supply, waste removal, endothelial/stem cell homing, and the release of mitogenic/angiogenic/osteogenic factors. Hence, the challenge lies in understanding the complex interdependence of angiogenesis with neo-bone formation. Therefore, recent bone tissue regeneration strategies have focused on biomaterial development concerning induction of neovascularization and subsequent angiogenesis. Scaffold architecture (macro/micro/nano) scales, culture conditions (3-Dimension, hypoxia, etc), stimuli-dependent delivery of angiofactors, and gene delivery may significantly modulate vascularization in tissue-engineered products. Therefore, the current review discusses the key mechanisms/steps involved in defining the relationship between angiogenic and osteogenic factors. The recent strategies incorporating the above understanding in the development of bone tissue-engineered constructs are also deliberated. Eventually, these strategies may give the potential way forward to develop a bioengineered, vascularized bone tissue construct for implant applications.
UR - https://www.scopus.com/pages/publications/85137282298
UR - https://www.scopus.com/pages/publications/85137282298#tab=citedBy
U2 - 10.1016/j.tice.2022.101908
DO - 10.1016/j.tice.2022.101908
M3 - Review article
C2 - 36084409
AN - SCOPUS:85137282298
SN - 0040-8166
VL - 79
JO - Tissue and Cell
JF - Tissue and Cell
M1 - 101908
ER -