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Matrix stiffening by self-mineralizable guided bone regeneration

  • Jing Li
    ,
  • Jian Fei Yan
    ,
  • Qian Qian Wan
    ,
  • Min Juan Shen
    ,
  • Yu Xuan Ma
    ,
  • Jun Ting Gu
*Corresponding author for this work
  • Air Force Medical University
    ,
  • Xinxiang Medical College
    ,
  • Kunming Medical College
    ,
Scholary Output:
Contribution to journal
Article
Peer-review

Abstract

Collagen membranes produced in vitro with different degrees of intrafibrillar mineralization are potentially useful for guided bone regeneration (GBR). However, highly-mineralized collagen membranes are brittle and difficult for clinical manipulation. The present study aimed at developing an intrafibrillar self-mineralization strategy for GBR membrane by covalently conjugating high-molecular weight polyacrylic acid (HPAA) on Bio-Gide® membranes (BG). The properties of the self-mineralizable membranes (HBG) and their potential to induce bone regeneration were investigated. The HBG underwent the progressive intrafibrillar mineralization as well as the increase in stiffness after immersed in supersaturated calcium phosphate solution, osteogenic medium, or after being implanted into a murine calvarial bone defect. The HBG promoted in-situ bone regeneration via stimulating osteogenic differentiation of mesenchymal stromal cells (MSCs). Hippo signaling was inhibited when MSCs were cultured on the self-mineralized HBG, and in HBG-promoted MSC osteogenesis during in-situ bone regeneration. This resulted in translocation of the transcription co-activators Yes-associated protein (YAP) and transcriptional coactivator with PDZ-binding motif (TAZ) into the nucleus to induce transcription of genes promoting osteogenic differentiation of MSCs. Taken together, these findings indicated that HBG possessed the ability to self-mineralize in situ via intrafibrillar mineralization. The increase in stiffness of the extracellular matrix expedited in-situ bone regeneration by inactivating the Hippo-YAP/TAZ signaling cascade. Statement of significance: Guided bone regeneration (GBR) membranes made of naturally derived collagen have been widely used in the bone defect restoration. However, application of collagen GBR membranes run into the bottleneck with the challenges like insufficient stress strength, relatively poor dimensional stability and unsatisfactory osteoinductivity. This study develops a modified GBR membrane that can undergo progressive self-mineralization and matrix stiffening in situ. Increase in extracellular matrix stiffness provides the mechanical cues required for MSCs differentiation and expedites in-situ bone regeneration by inactivating the Hippo-YAP/TAZ signaling cascade.

Publication Information

Output type

Scholary Output:
Contribution to journal
Article
Peer-review

Original language

English (US)

Pages from-to (Number of pages)

Pages 112-125 (14 pages)

Journal (Volume, Issue Number)

Acta biomaterialia (Volume 125)

Publication milestones

  • Accepted/In press - 2021
  • Published - 04/15/2021

Publication status

Published - 04/15/2021

ISSN

1742-7061

Publication IDs

  • Scopus: 85101126486
  • PubMed: 33582360

Publication metrics

Metrics

SciVal
FWCI
2.37
SciVal
Author count
13
SciVal
Paper percentile
92
SciVal
citations
1
SciVal
Top percentile
10
Fractional count
1
Fractional count
0.08
Fractional count
12
Fractional count
0.92
Fractional count
1
Fractional count
1
Scopus
citations

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Captures
33
Citation count
77

Funding Details

This work was supported by grants 81722015 , 81870805 , 81870787 , 81671012 and 81720108011 from National Nature Science Foundation of China , grant 2020TD-033 from the Shaanxi Key Scientific and Technological Innovation Team and by the Youth Innovation Team of Shaanxi Universities.
FundersFunding number
Shaanxi Key Scientific and Technological Innovation Team
-
Youth Innovation Team of Shaanxi Universities
-
NSFC
2020TD-033