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1.
Dis Model Mech ; 17(6)2024 Jun 01.
Article in English | MEDLINE | ID: mdl-38967226

ABSTRACT

Robinow syndrome is a rare disease caused by variants of seven WNT pathway genes. Craniofacial features include widening of the nasal bridge and jaw hypoplasia. We used the chicken embryo to test whether two missense human FZD2 variants (1301G>T, p.Gly434Val; 425C>T, p.Pro142Lys) were sufficient to change frontonasal mass development. In vivo, the overexpression of retroviruses with wild-type or variant human FZD2 inhibited upper beak ossification. In primary cultures, wild-type and variant human FZD2 significantly inhibited chondrogenesis, with the 425C>T variant significantly decreasing activity of a SOX9 luciferase reporter compared to that for the wild type or 1301G>T. Both variants also increased nuclear shuttling of ß-catenin (CTNNB1) and increased the expression of TWIST1, which are inhibitory to chondrogenesis. In canonical WNT luciferase assays using frontonasal mass cells, the variants had dominant-negative effects on wild-type FZD2. In non-canonical assays, the 425C>T variant failed to activate the reporter above control levels and was unresponsive to exogenous WNT5A. This is the first single amino acid change to selectively alter ligand binding in a FZD receptor. Therefore, FZD2 missense variants are pathogenic and could lead to the altered craniofacial morphogenesis seen in Robinow syndrome.


Subject(s)
Chondrogenesis , Craniofacial Abnormalities , Frizzled Receptors , Animals , Humans , Chick Embryo , Chondrogenesis/genetics , Craniofacial Abnormalities/genetics , Craniofacial Abnormalities/pathology , Frizzled Receptors/genetics , Frizzled Receptors/metabolism , beta Catenin/metabolism , Twist-Related Protein 1/metabolism , Twist-Related Protein 1/genetics , Beak , Skull/pathology , Skull/embryology , Cell Nucleus/metabolism , Wnt Signaling Pathway , Dwarfism , Urogenital Abnormalities , Limb Deformities, Congenital
2.
Cells ; 13(12)2024 Jun 12.
Article in English | MEDLINE | ID: mdl-38920652

ABSTRACT

Mesenchymal stem cells (MSCs) of placental origin hold great promise in tissue engineering and regenerative medicine for diseases affecting cartilage and bone. However, their utility has been limited by their tendency to undergo premature senescence and phenotypic drift into adipocytes. This study aimed to explore the potential involvement of a specific subset of aging and antiaging genes by measuring their expression prior to and following in vitro-induced differentiation of placental MSCs into chondrocytes and osteoblasts as opposed to adipocytes. The targeted genes of interest included the various LMNA/C transcript variants (lamin A, lamin C, and lamin A∆10), sirtuin 7 (SIRT7), and SM22α, along with the classic aging markers plasminogen activator inhibitor 1 (PAI-1), p53, and p16INK4a. MSCs were isolated from the decidua basalis of human term placentas, expanded, and then analyzed for phenotypic properties by flow cytometry and evaluated for colony-forming efficiency. The cells were then induced to differentiate in vitro into chondrocytes, osteocytes, and adipocytes following established protocols. The mRNA expression of the targeted genes was measured by RT-qPCR in the undifferentiated cells and those fully differentiated into the three cellular lineages. Compared to undifferentiated cells, the differentiated chondrocytes demonstrated decreased expression of SIRT7, along with decreased PAI-1, lamin A, and SM22α expression, but the expression of p16INK4a and p53 increased, suggesting their tendency to undergo premature senescence. Interestingly, the cells maintained the expression of lamin C, which indicates that it is the primary lamin variant influencing the mechanoelastic properties of the differentiated cells. Notably, the expression of all targeted genes did not differ from the undifferentiated cells following osteogenic differentiation. On the other hand, the differentiation of the cells into adipocytes was associated with decreased expression of lamin A and PAI-1. The distinct patterns of expression of aging and antiaging genes following in vitro-induced differentiation of MSCs into chondrocytes, osteocytes, and adipocytes potentially reflect specific roles for these genes during and following differentiation in the fully functional cells. Understanding these roles and the network of signaling molecules involved can open opportunities to improve the handling and utility of MSCs as cellular precursors for the treatment of cartilage and bone diseases.


Subject(s)
Cell Differentiation , Chondrogenesis , Mesenchymal Stem Cells , Osteogenesis , Placenta , Humans , Mesenchymal Stem Cells/metabolism , Mesenchymal Stem Cells/cytology , Female , Placenta/metabolism , Placenta/cytology , Cell Differentiation/genetics , Chondrogenesis/genetics , Pregnancy , Osteogenesis/genetics , Biomarkers/metabolism , Cellular Senescence/genetics , Chondrocytes/metabolism , Chondrocytes/cytology , Aging , Lamin Type A/metabolism , Lamin Type A/genetics
3.
Stem Cell Res Ther ; 15(1): 177, 2024 Jun 18.
Article in English | MEDLINE | ID: mdl-38886785

ABSTRACT

BACKGROUND: Cartilage is a kind of avascular tissue, and it is difficult to repair itself when it is damaged. In this study, we investigated the regulation of chondrogenic differentiation and vascular formation in human jaw bone marrow mesenchymal stem cells (h-JBMMSCs) by the long-chain noncoding RNA small nucleolar RNA host gene 1 (SNHG1) during cartilage tissue regeneration. METHODS: JBMMSCs were isolated from the jaws via the adherent method. The effects of lncRNA SNHG1 on the chondrogenic differentiation of JBMMSCs in vitro were detected by real-time fluorescence quantitative polymerase chain reaction (RT-qPCR), Pellet experiment, Alcian blue staining, Masson's trichrome staining, and modified Sirius red staining. RT-qPCR, matrix gel tube formation, and coculture experiments were used to determine the effect of lncRNA SNHG1 on the angiogenesis in JBMMSCs in vitro. A model of knee cartilage defects in New Zealand rabbits and a model of subcutaneous matrix rubber suppositories in nude mice were constructed for in vivo experiments. Changes in mitochondrial function were detected via RT-qPCR, dihydroethidium (DHE) staining, MitoSOX staining, tetramethyl rhodamine methyl ester (TMRM) staining, and adenosine triphosphate (ATP) detection. Western blotting was used to detect the phosphorylation level of signal transducer and activator of transcription 3 (STAT3). RESULTS: Alcian blue staining, Masson's trichrome staining, and modified Sirius Red staining showed that lncRNA SNHG1 promoted chondrogenic differentiation. The lncRNA SNHG1 promoted angiogenesis in vitro and the formation of microvessels in vivo. The lncRNA SNHG1 promoted the repair and regeneration of rabbit knee cartilage tissue. Western blot and alcian blue staining showed that the JAK inhibitor reduced the increase of STAT3 phosphorylation level and staining deepening caused by SNHG1. Mitochondrial correlation analysis revealed that the lncRNA SNHG1 led to a decrease in reactive oxygen species (ROS) levels, an increase in mitochondrial membrane potential and an increase in ATP levels. Alcian blue staining showed that the ROS inhibitor significantly alleviated the decrease in blue fluorescence caused by SNHG1 knockdown. CONCLUSIONS: The lncRNA SNHG1 promotes chondrogenic differentiation and angiogenesis of JBMMSCs. The lncRNA SNHG1 regulates the phosphorylation of STAT3, reduces the level of ROS, regulates mitochondrial energy metabolism, and ultimately promotes cartilage regeneration.


Subject(s)
Cell Differentiation , Chondrogenesis , Mesenchymal Stem Cells , Mitochondria , RNA, Long Noncoding , RNA, Long Noncoding/genetics , RNA, Long Noncoding/metabolism , Humans , Animals , Rabbits , Mitochondria/metabolism , Mesenchymal Stem Cells/metabolism , Mesenchymal Stem Cells/cytology , Chondrogenesis/genetics , Mice , Mice, Nude , Regeneration , Neovascularization, Physiologic , Cartilage/metabolism , STAT3 Transcription Factor/metabolism , STAT3 Transcription Factor/genetics , Angiogenesis
4.
Int J Mol Sci ; 25(11)2024 May 23.
Article in English | MEDLINE | ID: mdl-38891883

ABSTRACT

Articular cartilage damage still remains a major problem in orthopedical surgery. The development of tissue engineering techniques such as autologous chondrocyte implantation is a promising way to improve clinical outcomes. On the other hand, the clinical application of autologous chondrocytes has considerable limitations. Mesenchymal stromal cells (MSCs) from various tissues have been shown to possess chondrogenic differentiation potential, although to different degrees. In the present study, we assessed the alterations in chondrogenesis-related gene transcription rates and extracellular matrix deposition levels before and after the chondrogenic differentiation of MSCs in a 3D spheroid culture. MSCs were obtained from three different tissues: umbilical cord Wharton's jelly (WJMSC-Wharton's jelly mesenchymal stromal cells), adipose tissue (ATMSC-adipose tissue mesenchymal stromal cells), and the dental pulp of deciduous teeth (SHEDs-stem cells from human exfoliated deciduous teeth). Monolayer MSC cultures served as baseline controls. Newly formed 3D spheroids composed of MSCs previously grown in 2D cultures were precultured for 2 days in growth medium, and then, chondrogenic differentiation was induced by maintaining them in the TGF-ß1-containing medium for 21 days. Among the MSC types studied, WJMSCs showed the most similarities with primary chondrocytes in terms of the upregulation of cartilage-specific gene expression. Interestingly, such upregulation occurred to some extent in all 3D spheroids, even prior to the addition of TGF-ß1. These results confirm that the potential of Wharton's jelly is on par with adipose tissue as a valuable cell source for cartilage engineering applications as well as for the treatment of osteoarthritis. The 3D spheroid environment on its own acts as a trigger for the chondrogenic differentiation of MSCs.


Subject(s)
Cell Differentiation , Chondrocytes , Chondrogenesis , Extracellular Matrix , Mesenchymal Stem Cells , Spheroids, Cellular , Mesenchymal Stem Cells/cytology , Mesenchymal Stem Cells/metabolism , Humans , Chondrogenesis/genetics , Extracellular Matrix/metabolism , Spheroids, Cellular/cytology , Spheroids, Cellular/metabolism , Chondrocytes/cytology , Chondrocytes/metabolism , Cells, Cultured , Wharton Jelly/cytology , Adipose Tissue/cytology , Adipose Tissue/metabolism , Cell Culture Techniques/methods , Tissue Engineering/methods , Cartilage/cytology , Cartilage/metabolism , Tooth, Deciduous/cytology , Tooth, Deciduous/metabolism , Dental Pulp/cytology , Dental Pulp/metabolism
5.
JCI Insight ; 9(11)2024 Jun 10.
Article in English | MEDLINE | ID: mdl-38855864

ABSTRACT

The transcription factor SRY-related HMG box 9 (Sox9) is essential for chondrogenesis. Mutations in and around SOX9 cause campomelic dysplasia (CD) characterized by skeletal malformations. Although the function of Sox9 in this context is well studied, the mechanisms that regulate Sox9 expression in chondrocytes remain to be elucidated. Here, we have used genome-wide profiling to identify 2 Sox9 enhancers located in a proximal breakpoint cluster responsible for CD. Enhancer activity of E308 (located 308 kb 5' upstream) and E160 (located 160 kb 5' upstream) correlated with Sox9 expression levels, and both enhancers showed a synergistic effect in vitro. While single deletions in mice had no apparent effect, simultaneous deletion of both E308 and E160 caused a dwarf phenotype, concomitant with a reduction of Sox9 expression in chondrocytes. Moreover, bone morphogenetic protein 2-dependent chondrocyte differentiation of limb bud mesenchymal cells was severely attenuated in E308/E160 deletion mice. Finally, we found that an open chromatin region upstream of the Sox9 gene was reorganized in the E308/E160 deletion mice to partially compensate for the loss of E308 and E160. In conclusion, our findings reveal a mechanism of Sox9 gene regulation in chondrocytes that might aid in our understanding of the pathophysiology of skeletal disorders.


Subject(s)
Campomelic Dysplasia , Cell Differentiation , Chondrocytes , Chondrogenesis , SOX9 Transcription Factor , SOX9 Transcription Factor/metabolism , SOX9 Transcription Factor/genetics , Animals , Chondrocytes/metabolism , Mice , Campomelic Dysplasia/genetics , Campomelic Dysplasia/pathology , Campomelic Dysplasia/metabolism , Chondrogenesis/genetics , Cell Differentiation/genetics , Enhancer Elements, Genetic/genetics , Chromatin/metabolism , Chromatin/genetics , Gene Expression Regulation, Developmental , Mice, Knockout , Bone Morphogenetic Protein 2/metabolism , Bone Morphogenetic Protein 2/genetics , Humans , Bone Development/genetics
6.
Nat Commun ; 15(1): 4820, 2024 Jun 06.
Article in English | MEDLINE | ID: mdl-38844479

ABSTRACT

Chondrocyte differentiation controls skeleton development and stature. Here we provide a comprehensive map of chondrocyte-specific enhancers and show that they provide a mechanistic framework through which non-coding genetic variants can influence skeletal development and human stature. Working with fetal chondrocytes isolated from mice bearing a Col2a1 fluorescent regulatory sensor, we identify 780 genes and 2'704 putative enhancers specifically active in chondrocytes using a combination of RNA-seq, ATAC-seq and H3K27ac ChIP-seq. Most of these enhancers (74%) show pan-chondrogenic activity, with smaller populations being restricted to limb (18%) or trunk (8%) chondrocytes only. Notably, genetic variations overlapping these enhancers better explain height differences than those overlapping non-chondrogenic enhancers. Finally, targeted deletions of identified enhancers at the Fgfr3, Col2a1, Hhip and, Nkx3-2 loci confirm their role in regulating cognate genes. This enhancer map provides a framework for understanding how genes and non-coding variations influence bone development and diseases.


Subject(s)
Chondrocytes , Chondrogenesis , Enhancer Elements, Genetic , Receptor, Fibroblast Growth Factor, Type 3 , Animals , Enhancer Elements, Genetic/genetics , Humans , Chondrocytes/metabolism , Chondrocytes/cytology , Mice , Chondrogenesis/genetics , Receptor, Fibroblast Growth Factor, Type 3/genetics , Receptor, Fibroblast Growth Factor, Type 3/metabolism , Collagen Type II/genetics , Collagen Type II/metabolism , Gene Expression Regulation, Developmental , Bone Development/genetics , Extremities/embryology , Male , Cell Differentiation/genetics , Transcription Factors/genetics , Transcription Factors/metabolism , Female
7.
J Ovarian Res ; 17(1): 129, 2024 Jun 21.
Article in English | MEDLINE | ID: mdl-38907278

ABSTRACT

BACKGROUND: Teratomas are a common type of germ cell tumor. However, only a few reports on their genomic constitution have been published. The study of teratomas may provide a better understanding of their stepwise differentiation processes and molecular bases, which could prove useful for the development of tissue-engineering technologies. METHODS: In the present study, we analyzed the copy number aberrations of nine ovarian mature cystic teratomas using array comparative genomic hybridization in an attempt to reveal their genomic aberrations. RESULTS: The many chromosomal aberrations observed on array comparative genomic hybridization analysis reveal the complex genetics of this tumor. Amplifications and deletions of large DNA fragments were observed in some samples, while amplifications of EVX2 and HOXD9-HOXD13 on 2q31.1, NDUFV1 on 11q13.2, and RPL10, SNORA70, DNASE1L1, TAZ, ATP6AP1, and GDI1 on Xq28 were found in all nine mature cystic teratomas. CONCLUSIONS: Our results indicated that amplifications of these genes may play an important etiological role in teratoma formation. Moreover, amplifications of EVX2 and HOXD9-HOXD13 on 2q31.1, found on array comparative genomic hybridization, may help to explain the characteristics of teratomas in chondrogenesis and osteogenesis.


Subject(s)
Chondrogenesis , Comparative Genomic Hybridization , Homeodomain Proteins , Osteogenesis , Ovarian Neoplasms , Teratoma , Transcription Factors , Humans , Female , Teratoma/genetics , Teratoma/pathology , Ovarian Neoplasms/genetics , Ovarian Neoplasms/pathology , Transcription Factors/genetics , Transcription Factors/metabolism , Homeodomain Proteins/genetics , Osteogenesis/genetics , Chondrogenesis/genetics , Adult , Middle Aged , Neoplasm Proteins
8.
PLoS Genet ; 20(6): e1011310, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38857303

ABSTRACT

Growth deficiency is a characteristic feature of both Kabuki syndrome 1 (KS1) and Kabuki syndrome 2 (KS2), Mendelian disorders of the epigenetic machinery with similar phenotypes but distinct genetic etiologies. We previously described skeletal growth deficiency in a mouse model of KS1 and further established that a Kmt2d-/- chondrocyte model of KS1 exhibits precocious differentiation. Here we characterized growth deficiency in a mouse model of KS2, Kdm6atm1d/+. We show that Kdm6atm1d/+ mice have decreased femur and tibia length compared to controls and exhibit abnormalities in cortical and trabecular bone structure. Kdm6atm1d/+ growth plates are also shorter, due to decreases in hypertrophic chondrocyte size and hypertrophic zone height. Given these disturbances in the growth plate, we generated Kdm6a-/- chondrogenic cell lines. Similar to our prior in vitro model of KS1, we found that Kdm6a-/- cells undergo premature, enhanced differentiation towards chondrocytes compared to Kdm6a+/+ controls. RNA-seq showed that Kdm6a-/- cells have a distinct transcriptomic profile that indicates dysregulation of cartilage development. Finally, we performed RNA-seq simultaneously on Kmt2d-/-, Kdm6a-/-, and control lines at Days 7 and 14 of differentiation. This revealed surprising resemblance in gene expression between Kmt2d-/- and Kdm6a-/- at both time points and indicates that the similarity in phenotype between KS1 and KS2 also exists at the transcriptional level.


Subject(s)
Abnormalities, Multiple , Chondrocytes , Disease Models, Animal , Face , Hematologic Diseases , Histone Demethylases , Vestibular Diseases , Animals , Vestibular Diseases/genetics , Vestibular Diseases/pathology , Mice , Face/abnormalities , Histone Demethylases/genetics , Histone Demethylases/metabolism , Hematologic Diseases/genetics , Hematologic Diseases/pathology , Chondrocytes/metabolism , Abnormalities, Multiple/genetics , Abnormalities, Multiple/pathology , Cell Differentiation/genetics , Chondrogenesis/genetics , DNA-Binding Proteins/genetics , DNA-Binding Proteins/deficiency , Humans , Mice, Knockout , Phenotype , Histone-Lysine N-Methyltransferase , Myeloid-Lymphoid Leukemia Protein
9.
Cells ; 13(9)2024 Apr 28.
Article in English | MEDLINE | ID: mdl-38727293

ABSTRACT

BACKGROUND: Since cytokine receptor-like factor 1 (CRLF1) has been implicated in tissue regeneration, we hypothesized that CRLF1 released by mesenchymal stem cells can promote the repair of osteochondral defects. METHODS: The degree of a femoral osteochondral defect repair in rabbits after intra-articular injections of bone marrow-derived mesenchymal stem cells (BMSCs) that were transduced with empty adeno-associated virus (AAV) or AAV containing CRLF1 was determined by morphological, histological, and micro computer tomography (CT) analyses. The effects of CRLF1 on chondrogenic differentiation of BMSCs or catabolic events of interleukin-1beta-treated chondrocyte cell line TC28a2 were determined by alcian blue staining, gene expression levels of cartilage and catabolic marker genes using real-time PCR analysis, and immunoblot analysis of Smad2/3 and STAT3 signaling. RESULTS: Intra-articular injections of BMSCs overexpressing CRLF1 markedly improved repair of a rabbit femoral osteochondral defect. Overexpression of CRLF1 in BMSCs resulted in the release of a homodimeric CRLF1 complex that stimulated chondrogenic differentiation of BMSCs via enhancing Smad2/3 signaling, whereas the suppression of CRLF1 expression inhibited chondrogenic differentiation. In addition, CRLF1 inhibited catabolic events in TC28a2 cells cultured in an inflammatory environment, while a heterodimeric complex of CRLF1 and cardiotrophin-like Cytokine (CLC) stimulated catabolic events via STAT3 activation. CONCLUSION: A homodimeric CRLF1 complex released by BMSCs enhanced the repair of osteochondral defects via the inhibition of catabolic events in chondrocytes and the stimulation of chondrogenic differentiation of precursor cells.


Subject(s)
Cell Differentiation , Chondrocytes , Chondrogenesis , Mesenchymal Stem Cells , Animals , Rabbits , Mesenchymal Stem Cells/metabolism , Chondrogenesis/genetics , Chondrocytes/metabolism , Receptors, Cytokine/metabolism , Receptors, Cytokine/genetics , Femur/pathology , Signal Transduction , Cell Line , Mesenchymal Stem Cell Transplantation
10.
Cell Signal ; 120: 111222, 2024 Aug.
Article in English | MEDLINE | ID: mdl-38729327

ABSTRACT

BACKGROUND: Bone development involves the rapid proliferation and differentiation of osteogenic lineage cells, which makes accurate chromosomal segregation crucial for ensuring cell proliferation and maintaining chromosomal stability. However, the mechanism underlying the maintenance of chromosome stability during the rapid proliferation and differentiation of Prx1-expressing limb bud mesenchymal cells into osteoblastic precursor cells remains unexplored. METHODS: A transgenic mouse model of RanGAP1 knockout of limb and head mesenchymal progenitor cells was constructed to explore the impact of RanGAP1 deletion on bone development by histomorphology and immunostaining. Subsequently, G-banding karyotyping analysis and immunofluorescence staining were used to examine the effects of RanGAP1 deficiency on chromosome instability. Finally, the effects of RanGAP1 deficiency on chromothripsis and bone development signaling pathways were elucidated by whole-genome sequencing, RNA-sequencing, and qPCR. RESULTS: The ablation of RanGAP1 in limb and head mesenchymal progenitor cells expressing Prx1 in mice resulted in embryonic lethality, severe cartilage and bone dysplasia, and complete loss of cranial vault formation. Moreover, RanGAP1 loss inhibited chondrogenic or osteogenic differentiation of mesenchymal stem cells (MSCs). Most importantly, we found that RanGAP1 loss in limb bud mesenchymal cells triggered missegregation of chromosomes, resulting in chromothripsis of chromosomes 1q and 14q, further inhibiting the expression of key genes involved in multiple bone development signaling pathways such as WNT, Hedgehog, TGF-ß/BMP, and PI3K/AKT in the chromothripsis regions, ultimately disrupting skeletal development. CONCLUSIONS: Our results establish RanGAP1 as a critical regulator of bone development, as it supports this process by preserving chromosome stability in Prx1-expressing limb bud mesenchymal cells.


Subject(s)
Cell Differentiation , Chromosomal Instability , Limb Buds , Mesenchymal Stem Cells , Animals , Mice , Bone Development , Chondrogenesis/genetics , Homeodomain Proteins/metabolism , Homeodomain Proteins/genetics , Limb Buds/metabolism , Mesenchymal Stem Cells/metabolism , Mesenchymal Stem Cells/cytology , Mice, Knockout , Osteogenesis/genetics , Signal Transduction
11.
Elife ; 122024 May 01.
Article in English | MEDLINE | ID: mdl-38690987

ABSTRACT

Elastic cartilage constitutes a major component of the external ear, which functions to guide sound to the middle and inner ears. Defects in auricle development cause congenital microtia, which affects hearing and appearance in patients. Mutations in several genes have been implicated in microtia development, yet, the pathogenesis of this disorder remains incompletely understood. Here, we show that Prrx1 genetically marks auricular chondrocytes in adult mice. Interestingly, BMP-Smad1/5/9 signaling in chondrocytes is increasingly activated from the proximal to distal segments of the ear, which is associated with a decrease in chondrocyte regenerative activity. Ablation of Bmpr1a in auricular chondrocytes led to chondrocyte atrophy and microtia development at the distal part. Transcriptome analysis revealed that Bmpr1a deficiency caused a switch from the chondrogenic program to the osteogenic program, accompanied by enhanced protein kinase A activation, likely through increased expression of Adcy5/8. Inhibition of PKA blocked chondrocyte-to-osteoblast transformation and microtia development. Moreover, analysis of single-cell RNA-seq of human microtia samples uncovered enriched gene expression in the PKA pathway and chondrocyte-to-osteoblast transformation process. These findings suggest that auricle cartilage is actively maintained by BMP signaling, which maintains chondrocyte identity by suppressing osteogenic differentiation.


Subject(s)
Chondrocytes , Congenital Microtia , Cyclic AMP-Dependent Protein Kinases , Signal Transduction , Animals , Chondrocytes/metabolism , Congenital Microtia/genetics , Congenital Microtia/metabolism , Mice , Cyclic AMP-Dependent Protein Kinases/metabolism , Cyclic AMP-Dependent Protein Kinases/genetics , Bone Morphogenetic Proteins/metabolism , Bone Morphogenetic Proteins/genetics , Humans , Bone Morphogenetic Protein Receptors, Type I/metabolism , Bone Morphogenetic Protein Receptors, Type I/genetics , Chondrogenesis/genetics , Homeodomain Proteins/metabolism , Homeodomain Proteins/genetics
12.
Stem Cells ; 42(6): 554-566, 2024 Jun 14.
Article in English | MEDLINE | ID: mdl-38613477

ABSTRACT

Microtia is a congenital auricle dysplasia with a high incidence and tissue engineering technology provides a promising strategy to reconstruct auricles. We previously described that the engineered cartilage constructed from microtia chondrocytes exhibited inferior levels of biochemical and biomechanical properties, which was proposed to be resulted of the decreased migration ability of microtia chondrocytes. In the current study, we found that Rho GTPase members were deficient in microtia chondrocytes. By overexpressing RhoA, Rac1, and CDC42, respectively, we further demonstrated that RhoA took great responsibility for the decreased migration ability of microtia chondrocytes. Moreover, we constructed PGA/PLA scaffold-based cartilages to verify the chondrogenic ability of RhoA overexpressed microtia chondrocytes, and the results showed that overexpressing RhoA was of limited help in improving the quality of microtia chondrocyte engineered cartilage. However, coculture of adipose-derived stem cells (ADSCs) significantly improved the biochemical and biomechanical properties of engineered cartilage. Especially, coculture of RhoA overexpressed microtia chondrocytes and ADSCs produced an excellent effect on the wet weight, cartilage-specific extracellular matrix, and biomechanical property of engineered cartilage. Furthermore, we presented that coculture of RhoA overexpressed microtia chondrocytes and ADSCs combined with human ear-shaped PGA/PLA scaffold and titanium alloy stent fabricated by CAD/CAM and 3D printing technology effectively constructed and maintained auricle structure in vivo. Collectively, our results provide evidence for the essential role of RhoA in microtia chondrocytes and a developed strategy for the construction of patient-specific tissue-engineered auricular cartilage.


Subject(s)
Chondrocytes , Coculture Techniques , Congenital Microtia , Tissue Engineering , rhoA GTP-Binding Protein , Chondrocytes/metabolism , Chondrocytes/cytology , Humans , Tissue Engineering/methods , rhoA GTP-Binding Protein/metabolism , rhoA GTP-Binding Protein/genetics , Congenital Microtia/metabolism , Congenital Microtia/genetics , Ear Cartilage/cytology , Ear Cartilage/metabolism , Stem Cells/metabolism , Stem Cells/cytology , Adipose Tissue/cytology , Adipose Tissue/metabolism , Chondrogenesis/genetics , Male , Tissue Scaffolds/chemistry , Female
13.
Cell Mol Biol Lett ; 29(1): 56, 2024 Apr 20.
Article in English | MEDLINE | ID: mdl-38643083

ABSTRACT

During growth phase, antlers exhibit a very rapid rate of chondrogenesis. The antler is formed from its growth center reserve mesenchyme (RM) cells, which have been found to be the derivatives of paired related homeobox 1 (Prrx1)-positive periosteal cells. However, the underlying mechanism that drives rapid chondrogenesis is not known. Herein, the miRNA expression profiles and chromatin states of three tissue layers (RM, precartilage, and cartilage) at different stages of differentiation within the antler growth center were analyzed by RNA-sequencing and ATAC-sequencing. We found that miR-140-3p was the miRNA that exhibited the greatest degree of upregulation in the rapidly growing antler, increasing from the RM to the cartilage layer. We also showed that Prrx1 was a key upstream regulator of miR-140-3p, which firmly confirmed by Prrx1 CUT&Tag sequencing of RM cells. Through multiple approaches (three-dimensional chondrogenic culture and xenogeneic antler model), we demonstrated that Prrx1 and miR-140-3p functioned as reciprocal negative feedback in the antler growth center, and downregulating PRRX1/upregulating miR-140-3p promoted rapid chondrogenesis of RM cells and xenogeneic antler. Thus, we conclude that the reciprocal negative feedback between Prrx1 and miR-140-3p is essential for balancing mesenchymal proliferation and chondrogenic differentiation in the regenerating antler. We further propose that the mechanism underlying chondrogenesis in the regenerating antler would provide a reference for helping understand the regulation of human cartilage regeneration and repair.


Subject(s)
Antlers , Homeodomain Proteins , MicroRNAs , Animals , Cartilage/metabolism , Cell Differentiation/genetics , Chondrogenesis/genetics , Homeodomain Proteins/genetics , Homeodomain Proteins/metabolism , MicroRNAs/genetics , MicroRNAs/metabolism
14.
Dev Biol ; 512: 1-10, 2024 Aug.
Article in English | MEDLINE | ID: mdl-38657748

ABSTRACT

Precise regulation of gene expression is of utmost importance during cell fate specification. DNA methylation is a key epigenetic mechanism that plays a significant role in the regulation of cell fate by recruiting repression proteins or inhibiting the binding of transcription factors to DNA to regulate gene expression. Limb development is a well-established model for understanding cell fate decisions, and the formation of skeletal elements is coordinated through a sequence of events that control chondrogenesis spatiotemporally. It has been established that epigenetic control participates in cartilage maturation. However, further investigation is required to determine its role in the earliest stages of chondrocyte differentiation. This study investigates how the DNA methylation environment affects cell fate divergence during the early chondrogenic events. Our research has shown for the first time that inhibiting DNA methylation in interdigital tissue with 5-azacytidine results in the formation of an ectopic digit. This discovery suggested that DNA methylation dynamics could regulate the fate of cells between chondrogenesis and cell death during autopod development. Our in vitro findings indicate that DNA methylation at the early stages of chondrogenesis is integral in regulating condensation by controlling cell adhesion and proapoptotic genes. As a result, the dynamics of methylation and demethylation are crucial in governing chondrogenesis and cell death during different stages of limb chondrogenesis.


Subject(s)
Cell Differentiation , Chondrocytes , Chondrogenesis , DNA Methylation , Extremities , DNA Methylation/genetics , Chondrogenesis/genetics , Animals , Extremities/embryology , Cell Differentiation/genetics , Chondrocytes/metabolism , Chondrocytes/cytology , Azacitidine/pharmacology , Gene Expression Regulation, Developmental , Chick Embryo , Epigenesis, Genetic , Apoptosis/genetics
15.
Cell Rep ; 43(3): 113873, 2024 Mar 26.
Article in English | MEDLINE | ID: mdl-38427557

ABSTRACT

Craniofacial microsomia (CFM) is a congenital defect that usually results from aberrant development of embryonic pharyngeal arches. However, the molecular basis of CFM pathogenesis is largely unknown. Here, we employ the zebrafish model to investigate mechanisms of CFM pathogenesis. In early embryos, tet2 and tet3 are essential for pharyngeal cartilage development. Single-cell RNA sequencing reveals that loss of Tet2/3 impairs chondrocyte differentiation due to insufficient BMP signaling. Moreover, biochemical and genetic evidence reveals that the sequence-specific 5mC/5hmC-binding protein, Sall4, binds the promoter of bmp4 to activate bmp4 expression and control pharyngeal cartilage development. Mechanistically, Sall4 directs co-phase separation of Tet2/3 with Sall4 to form condensates that mediate 5mC oxidation on the bmp4 promoter, thereby promoting bmp4 expression and enabling sufficient BMP signaling. These findings suggest the TET-BMP-Sall4 regulatory axis is critical for pharyngeal cartilage development. Collectively, our study provides insights into understanding craniofacial development and CFM pathogenesis.


Subject(s)
Cartilage , Zebrafish , Animals , Zebrafish/metabolism , Cartilage/metabolism , Cell Differentiation/genetics , Zebrafish Proteins/genetics , Zebrafish Proteins/metabolism , Chondrogenesis/genetics
16.
Elife ; 132024 Mar 14.
Article in English | MEDLINE | ID: mdl-38483448

ABSTRACT

Genome-wide association studies (GWAS) identified thousands of genetic variants linked to phenotypic traits and disease risk. However, mechanistic understanding of how GWAS variants influence complex morphological traits and can, in certain cases, simultaneously confer normal-range phenotypic variation and disease predisposition, is still largely lacking. Here, we focus on rs6740960, a single nucleotide polymorphism (SNP) at the 2p21 locus, which in GWAS studies has been associated both with normal-range variation in jaw shape and with an increased risk of non-syndromic orofacial clefting. Using in vitro derived embryonic cell types relevant for human facial morphogenesis, we show that this SNP resides in an enhancer that regulates chondrocytic expression of PKDCC - a gene encoding a tyrosine kinase involved in chondrogenesis and skeletal development. In agreement, we demonstrate that the rs6740960 SNP is sufficient to confer chondrocyte-specific differences in PKDCC expression. By deploying dense landmark morphometric analysis of skull elements in mice, we show that changes in Pkdcc dosage are associated with quantitative changes in the maxilla, mandible, and palatine bone shape that are concordant with the facial phenotypes and disease predisposition seen in humans. We further demonstrate that the frequency of the rs6740960 variant strongly deviated among different human populations, and that the activity of its cognate enhancer diverged in hominids. Our study provides a mechanistic explanation of how a common SNP can mediate normal-range and disease-associated morphological variation, with implications for the evolution of human facial features.


Subject(s)
Chondrogenesis , Genome-Wide Association Study , Animals , Humans , Mice , Chondrogenesis/genetics , Face , Head , Skull
17.
FEBS Lett ; 598(8): 935-944, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38553249

ABSTRACT

Chondrocyte differentiation is crucial for cartilage formation. However, the complex processes and mechanisms coordinating chondrocyte proliferation and differentiation remain incompletely understood. Here, we report a novel function of the adaptor protein Gulp1 in chondrocyte differentiation. Gulp1 expression is upregulated during chondrogenic differentiation. Gulp1 knockdown in chondrogenic ATDC5 cells reduces the expression of chondrogenic and hypertrophic marker genes during differentiation. Furthermore, Gulp1 knockdown impairs cell growth arrest during chondrocyte differentiation and reduces the expression of the cyclin-dependent kinase inhibitor p21. The activation of the TGF-ß/SMAD2/3 pathway, which is associated with p21 expression in chondrocytes, is impaired in Gulp1 knockdown cells. Collectively, these results demonstrate that Gulp1 contributes to cell growth arrest and chondrocyte differentiation by modulating the TGF-ß/SMAD2/3 pathway.


Subject(s)
Cell Differentiation , Chondrocytes , Chondrogenesis , Cyclin-Dependent Kinase Inhibitor p21 , Signal Transduction , Smad2 Protein , Smad3 Protein , Transforming Growth Factor beta , Animals , Mice , Adaptor Proteins, Signal Transducing/metabolism , Adaptor Proteins, Signal Transducing/genetics , Cell Cycle Checkpoints/genetics , Cell Line , Cell Proliferation , Chondrocytes/metabolism , Chondrocytes/cytology , Chondrogenesis/genetics , Cyclin-Dependent Kinase Inhibitor p21/metabolism , Cyclin-Dependent Kinase Inhibitor p21/genetics , Gene Knockdown Techniques , Smad2 Protein/metabolism , Smad2 Protein/genetics , Smad3 Protein/metabolism , Smad3 Protein/genetics , Transforming Growth Factor beta/metabolism
18.
J Bone Miner Res ; 39(4): 498-512, 2024 May 02.
Article in English | MEDLINE | ID: mdl-38477756

ABSTRACT

Mutations in the Chromodomain helicase DNA-binding protein 7 - coding gene (CHD7) cause CHARGE syndrome (CS). Although craniofacial and skeletal abnormalities are major features of CS patients, the role of CHD7 in bone and cartilage development remain largely unexplored. Here, using a zebrafish (Danio rerio) CS model, we show that chd7-/- larvae display abnormal craniofacial cartilage development and spinal deformities. The craniofacial and spine defects are accompanied by a marked reduction of bone mineralization. At the molecular level, we show that these phenotypes are associated with significant reduction in the expression levels of osteoblast differentiation markers. Additionally, we detected a marked depletion of collagen 2α1 in the cartilage of craniofacial regions and vertebrae, along with significantly reduced number of chondrocytes. Chondrogenesis defects are at least in part due to downregulation of htr2b, which we found to be also dysregulated in human cells derived from an individual with CHD7 mutation-positive CS. Overall, this study thus unveils an essential role for CHD7 in cartilage and bone development, with potential clinical relevance for the craniofacial defects associated with CS.


Patients with CHARGE syndrome exhibit skeletal defects. CHARGE syndrome is primarily caused by mutations in the chromatin remodeler-coding gene CHD7. To investigate the poorly characterized role of CHD7 in cartilage and bone development, here, we examine the craniofacial and bone anomalies in a zebrafish chd7-/- mutant model. We find that zebrafish mutant larvae exhibit striking dysmorphism of craniofacial structures and spinal deformities. Notably, we find a significant reduction in osteoblast, chondrocyte, and collagen matrix markers. This work provides important insights to improve our understanding of the role of chd7 in skeletal development.


Subject(s)
Cartilage , DNA Helicases , Zebrafish Proteins , Zebrafish , Animals , Humans , Cartilage/metabolism , CHARGE Syndrome/genetics , CHARGE Syndrome/metabolism , CHARGE Syndrome/pathology , Chondrocytes/metabolism , Chondrogenesis/genetics , Collagen Type II/metabolism , Collagen Type II/genetics , DNA-Binding Proteins/metabolism , DNA-Binding Proteins/genetics , Gene Expression Regulation, Developmental , Skull/metabolism , Zebrafish/metabolism , Zebrafish/genetics , Zebrafish/embryology , Zebrafish Proteins/metabolism , Zebrafish Proteins/genetics
19.
In Vitro Cell Dev Biol Anim ; 60(4): 343-353, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38504085

ABSTRACT

MicroRNAs (miRNAs) play an important role in articular cartilage damage in osteoarthritis (OA). However, the biological role of miRNAs in the chondrogenic differentiation of bone marrow mesenchymal stem cell (BMSC) remains largely unclear. Rabbit bone marrow mesenchymal stem cells (rBMSCs) were isolated, cultured, and identified. Afterwards, rBMSCs were induced to chondrogenic differentiation, examined by Alcian Blue staining. Differentially expressed miRNAs were identified in rBMSCs between induced and non-induced groups by miRNA sequencing analysis, part of which was validated via PCR assay. Cell viability and apoptosis were assessed by CCK-8 assay and Hoechst staining. Saffron O staining was utilized to assess chondrocyte hyperplasia. The expression of specific chondrogenic markers, including COL2A1, SOX9, Runx2, MMP-13, Aggrecan, and BMP-2, were measured at mRNA and protein levels. The association between beta-transducin repeat containing E3 ubiquitin protein ligase (BTRC) and miR-10a-5p in the miRNA family from rabbit (ocu-miR-10a-5p) was determined by luciferase reporter assay. A total of 76 differentially expressed miRNAs, including 52 downregulated and 24 upregulated miRNAs, were identified in rBMSCs from the induced group. Inhibition of ocu-miR-10a-5p suppressed rBMSC viability and chondrogenic differentiation, as well as downregulated the expression of ß-catenin, SOX9, COL2A1, MMP-13, and Runx2. BTRC was predicted and confirmed as a target of ocu-miR-10a-5p. Overexpression of BTRC rescued the promoting impacts of overexpressed ocu-miR-10a-5p on chondrogenic differentiation of rBMSCs and ß-catenin expression. Taken together, our data suggested that ocu-miR-10a-5p facilitated rabbit BMSC survival and chondrogenic differentiation by activating Wnt/ß-catenin signaling through BTRC.


Subject(s)
Cell Differentiation , Chondrogenesis , Mesenchymal Stem Cells , MicroRNAs , Wnt Signaling Pathway , Animals , Rabbits , MicroRNAs/genetics , MicroRNAs/metabolism , Mesenchymal Stem Cells/metabolism , Mesenchymal Stem Cells/cytology , Cell Differentiation/genetics , Chondrogenesis/genetics , Wnt Signaling Pathway/genetics , Chondrocytes/metabolism , Chondrocytes/cytology , Ubiquitin-Protein Ligases/metabolism , Ubiquitin-Protein Ligases/genetics , Apoptosis/genetics , Cell Survival , beta Catenin/metabolism , beta Catenin/genetics , Base Sequence , Gene Expression Regulation
20.
Biochem Biophys Res Commun ; 701: 149583, 2024 Mar 15.
Article in English | MEDLINE | ID: mdl-38330731

ABSTRACT

Endochondral ossification is a developmental process in the skeletal system and bone marrow of vertebrates. During endochondral ossification, primitive cartilaginous anlages derived from mesenchymal stem cells (MSCs) undergo vascular invasion and ossification. In vitro regeneration of endochondral ossification is beneficial for research on the skeletal system and bone marrow development as well as their clinical aspects. However, to achieve the regeneration of endochondral ossification, a stem cell-based artificial cartilage (cartilage organoid, Cart-Org) that possesses an endochondral ossification phenotype is required. Here, we modified a conventional 3D culture method to create stem cell-based Cart-Org by mixing it with a basement membrane extract (BME) and further characterized its chondrogenic and ossification properties. BME enlarged and matured the bone marrow MSC-based Cart-Orgs without any shape abnormalities. Histological analysis using Alcian blue staining showed that the production of cartilaginous extracellular matrices was enhanced in Cart-Org treated with BME. Transcriptome analysis using RNA sequencing revealed that BME altered the gene expression pattern of Cart-Org to a dominant chondrogenic state. BME triggered the activation of the SMAD pathway and inhibition of the NK-κB pathway, which resulted in the upregulation of SOX9, COL2A1, and ACAN in Cart-Org. BME also facilitated the upregulation of genes associated with hypertrophic chondrocytes (IHH, PTH1R, and COL10A1) and ossification (SP7, ALPL, and MMP13). Our findings indicate that BME promotes cartilaginous maturation and further ossification of bone marrow MSC-based Cart-Org, suggesting that Cart-Org treated with BME possesses the phenotype of endochondral ossification.


Subject(s)
Mesenchymal Stem Cells , Osteogenesis , Animals , Osteogenesis/genetics , Bone Marrow , Basement Membrane , Cartilage/metabolism , Chondrocytes/metabolism , Phenotype , Chondrogenesis/genetics , Organoids , Cell Differentiation
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