Javascript must be enabled to continue!
Bio-inspired mineralization collagen induce fibrocartilage regeneration after tendon-bone injury by activating Gli1+Dkk3+ progenitor cells
View through CrossRef
Summary
A fibrocartilaginous connection between the tendon and bone, plays a critical role in transferring force from muscle to bone to enable joint movement. However, due to the high mechanical stress it experiences, the enthesis is vulnerable to injury and incapable of regenerating. The spatial relationship and functional basis of the principal components of the fibrocartilage - mineral and collagen - have not been clearly elucidated, which is a significant remaining gap in reconstructing complex architectures for promoting interface tissue regeneration. Here, using three-dimensional electron tomography imaging and high-resolution two-dimensional electron microscopy, we discover that mineral particles form a continuous cross-fibrillar phase within the fibrocartilage region. By developing a “floating mineralization” system, we fabricate a three-layer hydrogel that mimics the hierarchical nano- to micro-scale structure of tendon-bone interface (TBI). The middle layer is noteworthy for its resemblance to the nanostructure of fibrocartilage and its superior ability to induce mineralized fibrochondrogenesis
in vitro
. Based on motor function analysis, imaging diagnosis, histological staining, immunofluorescence staining, and biomechanics performance, we demonstrate that in situ transplantation of the gradient hydrogel achieved tendon-fibrocartilage-bone synchronous regeneration and result in 68% maximum mechanical recovery at 8-week postoperation. Single-cell RNA sequencing analysis reveals that a unique atlas of in situ stem/progenitor cells is generated during the TBI healing
in vivo
. Notably, the bio-inspired hydrogel microenvironment drived endogenous Gli1
+
Dkk3
+
progenitor cells, playing a key role in TBI regeneration. Therefore, we have successfully decoded and reconstructed the nanostructure of fibrocartilage, which has great potential in TBI regeneration.
Title: Bio-inspired mineralization collagen induce fibrocartilage regeneration after tendon-bone injury by activating Gli1+Dkk3+ progenitor cells
Description:
Summary
A fibrocartilaginous connection between the tendon and bone, plays a critical role in transferring force from muscle to bone to enable joint movement.
However, due to the high mechanical stress it experiences, the enthesis is vulnerable to injury and incapable of regenerating.
The spatial relationship and functional basis of the principal components of the fibrocartilage - mineral and collagen - have not been clearly elucidated, which is a significant remaining gap in reconstructing complex architectures for promoting interface tissue regeneration.
Here, using three-dimensional electron tomography imaging and high-resolution two-dimensional electron microscopy, we discover that mineral particles form a continuous cross-fibrillar phase within the fibrocartilage region.
By developing a “floating mineralization” system, we fabricate a three-layer hydrogel that mimics the hierarchical nano- to micro-scale structure of tendon-bone interface (TBI).
The middle layer is noteworthy for its resemblance to the nanostructure of fibrocartilage and its superior ability to induce mineralized fibrochondrogenesis
in vitro
.
Based on motor function analysis, imaging diagnosis, histological staining, immunofluorescence staining, and biomechanics performance, we demonstrate that in situ transplantation of the gradient hydrogel achieved tendon-fibrocartilage-bone synchronous regeneration and result in 68% maximum mechanical recovery at 8-week postoperation.
Single-cell RNA sequencing analysis reveals that a unique atlas of in situ stem/progenitor cells is generated during the TBI healing
in vivo
.
Notably, the bio-inspired hydrogel microenvironment drived endogenous Gli1
+
Dkk3
+
progenitor cells, playing a key role in TBI regeneration.
Therefore, we have successfully decoded and reconstructed the nanostructure of fibrocartilage, which has great potential in TBI regeneration.
Related Results
Abstract 1729: Connecting Gli1 with chemoresistance in small cell lung cancer
Abstract 1729: Connecting Gli1 with chemoresistance in small cell lung cancer
Abstract
Background. Small-cell lung cancer (SCLC) accounts for ∼15% of all lung cancers, and is the most aggressive form of lung cancer. Drug resistance to chemothe...
Frequency of Common Chromosomal Abnormalities in Patients with Idiopathic Acquired Aplastic Anemia
Frequency of Common Chromosomal Abnormalities in Patients with Idiopathic Acquired Aplastic Anemia
Objective: To determine the frequency of common chromosomal aberrations in local population idiopathic determine the frequency of common chromosomal aberrations in local population...
Abstract 2200: Identification of GLI1 binding partners that regulate transactivation or cell transformation
Abstract 2200: Identification of GLI1 binding partners that regulate transactivation or cell transformation
Abstract
Activation of the GLI1 transcription factor and oncogene appears to play a role in the genesis of desmoplastic medulloblastomas, basal cell carcinomas, and ...
Abstract 2350: Inhibition of Gli1 as a novel therapeutic target for lung squamous cell carcinoma
Abstract 2350: Inhibition of Gli1 as a novel therapeutic target for lung squamous cell carcinoma
Abstract
Purpose: It is clear that Hedgehog (Hh) signaling pathway can promote small cell lung cancer development but is not sufficient to drive tumor formation. How...
Poster 107: The Use of Coacervate Sustained Release System to Identify the Most Potent BMP for Bone Regeneration
Poster 107: The Use of Coacervate Sustained Release System to Identify the Most Potent BMP for Bone Regeneration
Objectives:
Bone morphogenetic proteins (BMPs) belong to the transforming growth factor superfamily that were first discovered by Marshall Urist. There are 14 B...
Data from Noncanonical Regulation of the Hedgehog Mediator <i>GLI1</i> by c-MYC in Burkitt Lymphoma
Data from Noncanonical Regulation of the Hedgehog Mediator <i>GLI1</i> by c-MYC in Burkitt Lymphoma
<div>Abstract<p>Although Hedgehog signaling plays a major role in <i>GLI1</i> transcription, there is now evidence suggesting that other pathways/genes, suc...
Data from Noncanonical Regulation of the Hedgehog Mediator <i>GLI1</i> by c-MYC in Burkitt Lymphoma
Data from Noncanonical Regulation of the Hedgehog Mediator <i>GLI1</i> by c-MYC in Burkitt Lymphoma
<div>Abstract<p>Although Hedgehog signaling plays a major role in <i>GLI1</i> transcription, there is now evidence suggesting that other pathways/genes, suc...
Abstract 1416: Defining the mechanisms of cancer specific transcription factor, tGLI1
Abstract 1416: Defining the mechanisms of cancer specific transcription factor, tGLI1
Abstract
Glioblastoma (GBM) is the most common malignant central nervous system tumor in adults with a five-year survival rate of less than 7%. First identified in G...

