Cargando…

The Role of HIF-1α in Bone Regeneration: A New Direction and Challenge in Bone Tissue Engineering

The process of repairing significant bone defects requires the recruitment of a considerable number of cells for osteogenesis-related activities, which implies the consumption of a substantial amount of oxygen and nutrients. Therefore, the limited supply of nutrients and oxygen at the defect site is...

Descripción completa

Detalles Bibliográficos
Autores principales: You, Jiaqian, Liu, Manxuan, Li, Minghui, Zhai, Shaobo, Quni, Sezhen, Zhang, Lu, Liu, Xiuyu, Jia, Kewen, Zhang, Yidi, Zhou, Yanmin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10179302/
https://www.ncbi.nlm.nih.gov/pubmed/37175732
http://dx.doi.org/10.3390/ijms24098029
_version_ 1785041065845194752
author You, Jiaqian
Liu, Manxuan
Li, Minghui
Zhai, Shaobo
Quni, Sezhen
Zhang, Lu
Liu, Xiuyu
Jia, Kewen
Zhang, Yidi
Zhou, Yanmin
author_facet You, Jiaqian
Liu, Manxuan
Li, Minghui
Zhai, Shaobo
Quni, Sezhen
Zhang, Lu
Liu, Xiuyu
Jia, Kewen
Zhang, Yidi
Zhou, Yanmin
author_sort You, Jiaqian
collection PubMed
description The process of repairing significant bone defects requires the recruitment of a considerable number of cells for osteogenesis-related activities, which implies the consumption of a substantial amount of oxygen and nutrients. Therefore, the limited supply of nutrients and oxygen at the defect site is a vital constraint that affects the regenerative effect, which is closely related to the degree of a well-established vascular network. Hypoxia-inducible factor (HIF-1α), which is an essential transcription factor activated in hypoxic environments, plays a vital role in vascular network construction. HIF-1α, which plays a central role in regulating cartilage and bone formation, induces vascular invasion and differentiation of osteoprogenitor cells to promote and maintain extracellular matrix production by mediating the adaptive response of cells to changes in oxygen levels. However, the application of HIF-1α in bone tissue engineering is still controversial. As such, clarifying the function of HIF-1α in regulating the bone regeneration process is one of the urgent issues that need to be addressed. This review provides insight into the mechanisms of HIF-1α action in bone regeneration and related recent advances. It also describes current strategies for applying hypoxia induction and hypoxia mimicry in bone tissue engineering, providing theoretical support for the use of HIF-1α in establishing a novel and feasible bone repair strategy in clinical settings.
format Online
Article
Text
id pubmed-10179302
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-101793022023-05-13 The Role of HIF-1α in Bone Regeneration: A New Direction and Challenge in Bone Tissue Engineering You, Jiaqian Liu, Manxuan Li, Minghui Zhai, Shaobo Quni, Sezhen Zhang, Lu Liu, Xiuyu Jia, Kewen Zhang, Yidi Zhou, Yanmin Int J Mol Sci Review The process of repairing significant bone defects requires the recruitment of a considerable number of cells for osteogenesis-related activities, which implies the consumption of a substantial amount of oxygen and nutrients. Therefore, the limited supply of nutrients and oxygen at the defect site is a vital constraint that affects the regenerative effect, which is closely related to the degree of a well-established vascular network. Hypoxia-inducible factor (HIF-1α), which is an essential transcription factor activated in hypoxic environments, plays a vital role in vascular network construction. HIF-1α, which plays a central role in regulating cartilage and bone formation, induces vascular invasion and differentiation of osteoprogenitor cells to promote and maintain extracellular matrix production by mediating the adaptive response of cells to changes in oxygen levels. However, the application of HIF-1α in bone tissue engineering is still controversial. As such, clarifying the function of HIF-1α in regulating the bone regeneration process is one of the urgent issues that need to be addressed. This review provides insight into the mechanisms of HIF-1α action in bone regeneration and related recent advances. It also describes current strategies for applying hypoxia induction and hypoxia mimicry in bone tissue engineering, providing theoretical support for the use of HIF-1α in establishing a novel and feasible bone repair strategy in clinical settings. MDPI 2023-04-28 /pmc/articles/PMC10179302/ /pubmed/37175732 http://dx.doi.org/10.3390/ijms24098029 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Review
You, Jiaqian
Liu, Manxuan
Li, Minghui
Zhai, Shaobo
Quni, Sezhen
Zhang, Lu
Liu, Xiuyu
Jia, Kewen
Zhang, Yidi
Zhou, Yanmin
The Role of HIF-1α in Bone Regeneration: A New Direction and Challenge in Bone Tissue Engineering
title The Role of HIF-1α in Bone Regeneration: A New Direction and Challenge in Bone Tissue Engineering
title_full The Role of HIF-1α in Bone Regeneration: A New Direction and Challenge in Bone Tissue Engineering
title_fullStr The Role of HIF-1α in Bone Regeneration: A New Direction and Challenge in Bone Tissue Engineering
title_full_unstemmed The Role of HIF-1α in Bone Regeneration: A New Direction and Challenge in Bone Tissue Engineering
title_short The Role of HIF-1α in Bone Regeneration: A New Direction and Challenge in Bone Tissue Engineering
title_sort role of hif-1α in bone regeneration: a new direction and challenge in bone tissue engineering
topic Review
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10179302/
https://www.ncbi.nlm.nih.gov/pubmed/37175732
http://dx.doi.org/10.3390/ijms24098029
work_keys_str_mv AT youjiaqian theroleofhif1ainboneregenerationanewdirectionandchallengeinbonetissueengineering
AT liumanxuan theroleofhif1ainboneregenerationanewdirectionandchallengeinbonetissueengineering
AT liminghui theroleofhif1ainboneregenerationanewdirectionandchallengeinbonetissueengineering
AT zhaishaobo theroleofhif1ainboneregenerationanewdirectionandchallengeinbonetissueengineering
AT qunisezhen theroleofhif1ainboneregenerationanewdirectionandchallengeinbonetissueengineering
AT zhanglu theroleofhif1ainboneregenerationanewdirectionandchallengeinbonetissueengineering
AT liuxiuyu theroleofhif1ainboneregenerationanewdirectionandchallengeinbonetissueengineering
AT jiakewen theroleofhif1ainboneregenerationanewdirectionandchallengeinbonetissueengineering
AT zhangyidi theroleofhif1ainboneregenerationanewdirectionandchallengeinbonetissueengineering
AT zhouyanmin theroleofhif1ainboneregenerationanewdirectionandchallengeinbonetissueengineering
AT youjiaqian roleofhif1ainboneregenerationanewdirectionandchallengeinbonetissueengineering
AT liumanxuan roleofhif1ainboneregenerationanewdirectionandchallengeinbonetissueengineering
AT liminghui roleofhif1ainboneregenerationanewdirectionandchallengeinbonetissueengineering
AT zhaishaobo roleofhif1ainboneregenerationanewdirectionandchallengeinbonetissueengineering
AT qunisezhen roleofhif1ainboneregenerationanewdirectionandchallengeinbonetissueengineering
AT zhanglu roleofhif1ainboneregenerationanewdirectionandchallengeinbonetissueengineering
AT liuxiuyu roleofhif1ainboneregenerationanewdirectionandchallengeinbonetissueengineering
AT jiakewen roleofhif1ainboneregenerationanewdirectionandchallengeinbonetissueengineering
AT zhangyidi roleofhif1ainboneregenerationanewdirectionandchallengeinbonetissueengineering
AT zhouyanmin roleofhif1ainboneregenerationanewdirectionandchallengeinbonetissueengineering