meniscus cell
Recently Published Documents


TOTAL DOCUMENTS

21
(FIVE YEARS 0)

H-INDEX

8
(FIVE YEARS 0)

Author(s):  
Benjamin Andress ◽  
Jason H. Kim ◽  
Hattie C. Cutcliffe ◽  
Annunziato Amendola ◽  
Adam P. Goode ◽  
...  
Keyword(s):  

2020 ◽  
Author(s):  
Boao Xia ◽  
Dong-Hwa Kim ◽  
Sonia Bansal ◽  
Yongho Bae ◽  
Robert L. Mauck ◽  
...  

ABSTRACTThe meniscus plays a critical role in knee mechanical function but is commonly injured given its central load bearing role. In the adult, meniscus repair is limited, given the low number of endogenous cells, the density of the matrix, and the limited vascularity. Menisci are fibrocartilaginous tissues composed of a micro-/nano-fibrous extracellular matrix (ECM) and a mixture of chondrocyte-like and fibroblast-like cells. Here, we developed a fibrous scaffold system that consists of bioactive components (decellularized meniscus ECM (dME) within a poly(e-caprolactone) material) fashioned into a biomimetic morphology (via electrospinning) to support and enhance meniscus cell function and matrix production. This work supports that the incorporation of dME into synthetic nanofibers increased hydrophilicity of the scaffold, leading to enhanced meniscus cell spreading, proliferation, and fibrochondrogenic gene expression. This work identifies a new biomimetic scaffold for therapeutic strategies to substitute or replace injured meniscus tissue.STATEMENT OF SIGNIFICANCEIn this study, we show that a scaffold electrospun from a combination of synthetic materials and bovine decellularized meniscus ECM provides appropriate signals and a suitable template for meniscus fibrochondrocyte spreading, proliferation, and secretion of collagen and proteoglycans. Material characterization and in vitro cell studies support that this new bioactive material is susceptible to enzymatic digestion and supports meniscus-like tissue formation.


2020 ◽  
Vol 12 (567) ◽  
pp. eaan7967
Author(s):  
Kwang Il Lee ◽  
Ramya Gamini ◽  
Merissa Olmer ◽  
Yasunari Ikuta ◽  
Joe Hasei ◽  
...  

Meniscus tears are common knee injuries and a major osteoarthritis (OA) risk factor. Knowledge gaps that limit the development of therapies for meniscus injury and degeneration concern transcription factors that control the meniscus cell phenotype. Analysis of RNA sequencing data from 37 human tissues in the Genotype-Tissue Expression database and RNA sequencing data from meniscus and articular cartilage showed that transcription factor Mohawk (MKX) is highly enriched in meniscus. In human meniscus cells, MKX regulates the expression of meniscus marker genes, OA-related genes, and other transcription factors, including Scleraxis (SCX), SRY Box 5 (SOX5), and Runt domain-related transcription factor 2 (RUNX2). In mesenchymal stem cells (MSCs), the combination of adenoviral MKX (Ad-MKX) and transforming growth factor–β3 (TGF-β3) induced a meniscus cell phenotype. When Ad-MKX–transduced MSCs were seeded on TGF-β3–conjugated decellularized meniscus scaffold (DMS) and inserted into experimental tears in meniscus explants, they increased glycosaminoglycan content, extracellular matrix interconnectivity, cell infiltration into the DMS, and improved biomechanical properties. Ad-MKX injection into mouse knee joints with experimental OA induced by surgical destabilization of the meniscus suppressed meniscus and cartilage damage, reducing OA severity. Ad-MKX injection into human OA meniscus tissue explants corrected pathogenic gene expression. These results identify MKX as a previously unidentified key transcription factor that regulates the meniscus cell phenotype. The combination of Ad-MKX with TGF-β3 is effective for differentiation of MSCs to a meniscus cell phenotype and useful for meniscus repair. MKX is a promising therapeutic target for meniscus tissue engineering, repair, and prevention of OA.


2019 ◽  
Vol 79 (3) ◽  
pp. 408-417 ◽  
Author(s):  
Hao Sun ◽  
Xingzhao Wen ◽  
Hongyi Li ◽  
Peihui Wu ◽  
Minghui Gu ◽  
...  

ObjectivesThe heterogeneity of meniscus cells and the mechanism of meniscus degeneration is not well understood. Here, single-cell RNA sequencing (scRNA-seq) was used to identify various meniscus cell subsets and investigate the mechanism of meniscus degeneration.MethodsscRNA-seq was used to identify cell subsets and their gene signatures in healthy human and degenerated meniscus cells to determine their differentiation relationships and characterise the diversity within specific cell types. Colony-forming, multi-differentiation assays and a mice meniscus injury model were used to identify meniscus progenitor cells. We investigated the role of degenerated meniscus progenitor (DegP) cell clusters during meniscus degeneration using computational analysis and experimental verification.ResultsWe identified seven clusters in healthy human meniscus, including five empirically defined populations and two novel populations. Pseudotime analysis showed endothelial cells and fibrochondrocyte progenitors (FCP) existed at the pseudospace trajectory start. Melanoma cell adhesion molecule ((MCAM)/CD146) was highly expressed in two clusters. CD146+ meniscus cells differentiated into osteoblasts and adipocytes and formed colonies. We identified changes in the proportions of degenerated meniscus cell clusters and found a cluster specific to degenerative meniscus with progenitor cell characteristics. The reconstruction of four progenitor cell clusters indicated that FCP differentiation into DegP was an aberrant process. Interleukin 1β stimulation in healthy human meniscus cells increased CD318+ cells, while TGFβ1 attenuated the increase in CD318+ cells in degenerated meniscus cells.ConclusionsThe identification of meniscus progenitor cells provided new insights into cell-based meniscus tissue engineering, demonstrating a novel mechanism of meniscus degeneration, which contributes to the development of a novel therapeutic strategy.


2016 ◽  
Vol 32 (6) ◽  
pp. 1106-1116 ◽  
Author(s):  
Undine Freymann ◽  
Sebastian Metzlaff ◽  
Jan-Philipp Krüger ◽  
Glen Hirsh ◽  
Michaela Endres ◽  
...  

2014 ◽  
Vol 22 ◽  
pp. S18
Author(s):  
K.S. Vanderman ◽  
R. Loeser ◽  
S. Chubinskaya ◽  
C.M. Ferguson

2013 ◽  
Vol 19 (11) ◽  
pp. 892-899 ◽  
Author(s):  
Veronica K. Gonzales ◽  
Eric L.W. de Mulder ◽  
Trix de Boer ◽  
Gerjon Hannink ◽  
Tony G. van Tienen ◽  
...  

2013 ◽  
Vol 29 (10) ◽  
pp. e53-e55 ◽  
Author(s):  
Hélder Miguel Duarte Pereira ◽  
Joana Silva-Correia ◽  
Le-Ping Yan ◽  
Sofia G. Caridade ◽  
Ana M. Frias ◽  
...  

Sign in / Sign up

Export Citation Format

Share Document