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1.
J Mol Med (Berl) ; 102(5): 693-707, 2024 05.
Article in English | MEDLINE | ID: mdl-38492027

ABSTRACT

Physical therapy is extensively employed in clinical settings. Nevertheless, the absence of suitable animal models has resulted in an incomplete understanding of the in vivo mechanisms and cellular distribution that respond to physical stimuli. The objective of this research was to create a mouse model capable of indicating the cells affected by physical stimuli. In this study, we successfully established a mouse line based on the heat shock protein 70 (Hsp70) promoter, wherein the expression of CreERT2 can be induced by physical stimuli. Following stimulation of the mouse tail, ear, or cultured calvarias with heat shock (generated by heating, ultrasound, or laser), a distinct Cre-mediated excision was observed in cells stimulated by these physical factors with minimal occurrence of leaky reporter expression. The application of heat shock to Hsp70-CreERT2; FGFR2-P253R double transgenic mice or Hsp70-CreERT2 mice infected with AAV-BMP4 at calvarias induced the activation of Cre-dependent mutant FGFR2-P253R or BMP4 respectively, thereby facilitating the premature closure of cranial sutures or the repair of calvarial defects. This novel mouse line holds significant potential for investigating the underlying mechanisms of physical therapy, tissue repair and regeneration, lineage tracing, and targeted modulation of gene expression of cells in local tissue stimulated by physical factor at the interested time points. KEY MESSAGES: In the study, an Hsp70-CreERT2 transgenic mouse was generated for heat shock-induced gene modulation. Heat shock, ultrasound, and laser stimulation effectively activated Cre expression in Hsp70-CreERT2; reporter mice, which leads to deletion of floxed DNA sequence in the tail, ear, and cultured calvaria tissues of mice. Local laser stimuli on cultured calvarias effectively induce Fgfr2-P253R expression in Hsp70-mTmG-Fgfr2-P253R mice and result in accelerated premature closure of cranial suture. Heat shock activated AAV9-FLEX-BMP4 expression and subsequently promoted the repair of calvarial defect of Hsp70-CreERT2; Rosa26-mTmG mice.


Subject(s)
Bone Morphogenetic Protein 4 , HSP70 Heat-Shock Proteins , Mice, Transgenic , Promoter Regions, Genetic , Animals , HSP70 Heat-Shock Proteins/genetics , HSP70 Heat-Shock Proteins/metabolism , Mice , Bone Morphogenetic Protein 4/metabolism , Bone Morphogenetic Protein 4/genetics , Heat-Shock Response/genetics , Skull/metabolism , Gene Expression Regulation , Integrases/metabolism , Integrases/genetics
2.
Osteoporos Int ; 35(6): 1007-1017, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38430243

ABSTRACT

The study, using data from Chongqing, China, and employing Mendelian randomization along with bioinformatics, establishes a causal link between asthma and osteoporosis, beyond glucocorticoid effects. Asthma may contribute to osteoporosis by accelerating bone turnover through inflammatory factors, disrupting the coupling between osteoblasts and osteoclasts, ultimately leading to osteoporosis. INTRODUCTION: Asthma and osteoporosis are prevalent health conditions with substantial public health implications. However, their potential interplay and the underlying mechanisms have not been fully elucidated. Previous research has primarily focused on the impact of glucocorticoids on osteoporosis, often overlooking the role of asthma itself. METHODS: We conducted a multi-stage stratified random sampling in Chongqing, China and excluded individuals with a history of glucocorticoid use. Participants underwent comprehensive health examinations, and their clinical data, including asthma status, were recorded. Logistic regression and Mendelian randomization were employed to investigate the causal link between asthma and osteoporosis. Furthermore, bioinformatics analyses and serum biomarker assessments were conducted to explore potential mechanistic pathways. RESULTS: We found a significant association between asthma and osteoporosis, suggesting a potential causal link. Mendelian Randomization analysis provided further support for this causal link. Bioinformatics analyses revealed that several molecular pathways might mediate the impact of asthma on bone health. Serum alkaline phosphatase levels were significantly elevated in the asthma group, suggesting potential involvement in bone turnover. CONCLUSION: Our study confirms a causal link between asthma and osteoporosis and highlights the importance of considering asthma in osteoporosis prediction models. It also suggests that asthma may accelerate osteoporosis by increasing bone turnover through inflammatory factors, disrupting the coupling between osteoblasts and osteoclasts, ultimately leading to bone loss.


Subject(s)
Asthma , Computational Biology , Mendelian Randomization Analysis , Osteoporosis , Humans , Mendelian Randomization Analysis/methods , Asthma/genetics , Asthma/physiopathology , Asthma/epidemiology , Osteoporosis/genetics , Osteoporosis/etiology , Osteoporosis/epidemiology , Osteoporosis/physiopathology , Female , Middle Aged , Computational Biology/methods , Male , Cross-Sectional Studies , Aged , Bone Remodeling/physiology , Bone Remodeling/genetics , Adult , Biomarkers/blood , Polymorphism, Single Nucleotide , China/epidemiology , Genetic Predisposition to Disease , Osteoclasts , Bone Density/genetics , Bone Density/physiology
3.
Adv Sci (Weinh) ; 11(7): e2306143, 2024 Feb.
Article in English | MEDLINE | ID: mdl-38083984

ABSTRACT

Macrophages are heterogenic phagocytic cells that play distinct roles in physiological and pathological processes. Targeting different types of macrophages has shown potent therapeutic effects in many diseases. Although many approaches are developed to target anti-inflammatory macrophages, there are few researches on targeting pro-inflammatory macrophages, which is partially attributed to their non-s pecificity phagocytosis of extracellular substances. In this study, a novel recombinant protein is constructed that can be anchored on an exosome membrane with the purpose of targeting pro-inflammatory macrophages via antigen recognition, which is named AnCar-ExoLaIMTS . The data indicate that the phagocytosis efficiencies of pro-inflammatory macrophages for different AnCar-ExoLaIMTS show obvious differences. The AnCar-ExoLaIMTS3 has the best targeting ability for pro-inflammatory macrophages in vitro and in vivo. Mechanically, AnCar-ExoLaIMTS3 can specifically recognize the leucine-rich repeat domain of the TLR4 receptor, and then enter into pro-inflammatory macrophages via the TLR4-mediated receptor endocytosis pathway. Moreover, AnCar-ExoLaIMTS3 can efficiently deliver therapeutic cargo to pro-inflammatory macrophages and inhibit the synovial inflammatory response via downregulation of HIF-1α level, thus ameliorating the severity of arthritis in vivo. Collectively, the work established a novel gene/drug delivery system that can specifically target pro-inflammatory macrophages, which may be beneficial for the treatments of arthritis and other inflammatory diseases.


Subject(s)
Arthritis , Macrophages , Humans , Macrophages/metabolism , Arthritis/drug therapy , Phagocytosis , Anti-Inflammatory Agents/therapeutic use , Cell Communication
4.
Exp Mol Med ; 55(11): 2376-2389, 2023 11.
Article in English | MEDLINE | ID: mdl-37907740

ABSTRACT

Osteoarthritis (OA) is a full-joint, multifactorial, degenerative and inflammatory disease that seriously affects the quality of life of patients due to its disabling and pain-causing properties. ER stress has been reported to be closely related to the progression of OA. The inositol-requiring enzyme 1α/X-box-binding protein-1 spliced (IRE1α/XBP1s) pathway, which is highly expressed in the chondrocytes of OA patients, promotes the degradation and refolding of abnormal proteins during ER stress and maintains the stability of the ER environment of chondrocytes, but its function and the underlying mechanisms of how it contributes to the progression of OA remain unclear. This study investigates the role of IRE1α/ERN1 in OA. Specific deficiency of ERN1 in chondrocytes spontaneously resulted in OA-like cartilage destruction and accelerated OA progression in a surgically induced arthritis model. Local delivery of AdERN1 relieved degradation of the cartilage matrix and prevented OA development in an ACLT-mediated model. Mechanistically, progranulin (PGRN), an intracellular chaperone, binds to IRE1α, promoting its phosphorylation and splicing of XBP1u to generate XBP1s. XBP1s protects articular cartilage through TNF-α/ERK1/2 signaling and further maintains collagen homeostasis by regulating type II collagen expression. The chondroprotective effect of IRE1α/ERN1 is dependent on PGRN and XBP1s splicing. ERN1 deficiency accelerated cartilage degeneration in OA by reducing PGRN expression and XBP1s splicing, subsequently decreasing collagen II expression and triggering collagen structural abnormalities and an imbalance in collagen homeostasis. This study provides new insights into OA pathogenesis and the UPR and suggests that IRE1α/ERN1 may serve as a potential target for the treatment of joint degenerative diseases, including OA.


Subject(s)
Cartilage, Articular , Osteoarthritis , Humans , Protein Serine-Threonine Kinases/genetics , Protein Serine-Threonine Kinases/metabolism , Progranulins/metabolism , Endoribonucleases/genetics , Endoribonucleases/metabolism , Quality of Life , Osteoarthritis/metabolism , Chondrocytes/metabolism , Cartilage, Articular/metabolism , Collagen/metabolism , Homeostasis , X-Box Binding Protein 1/genetics , X-Box Binding Protein 1/metabolism
5.
Stem Cell Res Ther ; 13(1): 227, 2022 06 03.
Article in English | MEDLINE | ID: mdl-35659742

ABSTRACT

BACKGROUND: Intervertebral disc degeneration (IVDD) can cause low back pain, a major public health concern. IVDD is characterized with loss of cells especially those in nucleus pulposus (NP), due to the limited proliferative potential and regenerative ability. Few studies, however, have been carried out to investigate the in vivo proliferation events of NP cells and the cellular contribution of a specific subpopulation of NP during postnatal growth or regeneration. METHODS: We generated FGFR3-3*Flag-IRES-GFP mice and crossed FGFR3-CreERT2 mice with Rosa26-mTmG, Rosa26-DTA and Rosa26-Confetti mice, respectively, to perform inducible genetic tracing studies. RESULTS: Expression of FGFR3 was found in the outer region of NP with co-localized expressions of proliferating markers. By fate mapping studies, FGFR3-positive (FGFR3+) NP cells were found proliferate from outer region to inner region of NP during postnatal growth. Clonal lineage tracing by Confetti mice and ablation of FGFR3·+ NP cells by DTA mice further revealed that the expansion of the FGFR3+ cells was required for the morphogenesis and homeostasis of postnatal NP. Moreover, in degeneration and regeneration model of mouse intervertebral disc, FGFR3+ NP cells underwent extensive expansion during the recovery stage. CONCLUSION: Our present work demonstrates that FGFR3+ NP cells are novel subpopulation of postnatal NP with long-existing proliferative capacity shaping the adult NP structure and participating in the homeostasis maintenance and intrinsic repair of NP. These findings may facilitate the development of new therapeutic approaches for IVD regeneration.


Subject(s)
Intervertebral Disc Degeneration , Intervertebral Disc , Low Back Pain , Nucleus Pulposus , Animals , Cells, Cultured , Intervertebral Disc Degeneration/therapy , Mice , Nucleus Pulposus/metabolism
6.
Bone Res ; 10(1): 2, 2022 Jan 05.
Article in English | MEDLINE | ID: mdl-34983922

ABSTRACT

The intervertebral disc (IVD) is the largest avascular tissue. Hypoxia-inducible factors (HIFs) play essential roles in regulating cellular adaptation in the IVD under physiological conditions. Disc degeneration disease (DDD) is one of the leading causes of disability, and current therapies are ineffective. This study sought to explore the role of HIFs in DDD pathogenesis in mice. The findings of this study showed that among HIF family members, Hif1α was significantly upregulated in cartilaginous endplate (EP) and annulus fibrosus (AF) tissues from human DDD patients and two mouse models of DDD compared with controls. Conditional deletion of the E3 ubiquitin ligase Vhl in EP and AF tissues of adult mice resulted in upregulated Hif1α expression and age-dependent IVD degeneration. Aberrant Hif1α activation enhanced glycolytic metabolism and suppressed mitochondrial function. On the other hand, genetic ablation of the Hif1α gene delayed DDD pathogenesis in Vhl-deficient mice. Administration of 2-methoxyestradiol (2ME2), a selective Hif1α inhibitor, attenuated experimental IVD degeneration in mice. The findings of this study show that aberrant Hif1α activation in EP and AF tissues induces pathological changes in DDD, implying that inhibition of aberrant Hif1α activity is a potential therapeutic strategy for DDD.

7.
Int J Biol Sci ; 17(15): 4140-4153, 2021.
Article in English | MEDLINE | ID: mdl-34803488

ABSTRACT

Systemic application of glucocorticoids is an essential anti-inflammatory and immune-modulating therapy for severe inflammatory or autoimmunity conditions. However, its long-term effects on articular cartilage of patients' health need to be further investigated. In this study, we studied the effects of dexamethasone (Dex) on the homeostasis of articular cartilage and the progress of destabilization of medial meniscus (DMM)-induced osteoarthritis (OA) in adult mice. Long-term administration of Dex aggravates the proteoglycan loss of articular cartilage and drastically accelerates cartilage degeneration under surgically induced OA conditions. In addition, Dex increases calcium content in calcified cartilage layer of mice and the samples from OA patients with a history of long-term Dex treatment. Moreover, long term usage of Dex results in decrease subchondral bone mass and bone density. Further studies showed that Dex leads to calcification of extracellular matrix of chondrocytes partially through activation of AKT, as well as promotes apoptosis of chondrocytes in calcified cartilage layer. Besides, Dex weakens the stress-response autophagy with the passage of time. Taken together, our data indicate that long-term application of Dex may predispose patients to OA and or even accelerate the OA disease progression development of OA patients.


Subject(s)
Apoptosis/drug effects , Chondrocytes/drug effects , Chondrocytes/physiology , Dexamethasone/adverse effects , Extracellular Matrix/drug effects , Osteoarthritis/etiology , Animals , Calcinosis , Dexamethasone/administration & dosage , Drug Administration Schedule , Glucocorticoids/administration & dosage , Glucocorticoids/adverse effects , Homeostasis , Male , Mice , Mice, Inbred C57BL , Osteoarthritis/pathology
8.
ACS Nano ; 15(10): 15874-15891, 2021 10 26.
Article in English | MEDLINE | ID: mdl-34586802

ABSTRACT

The clinical application of small interfering RNA (siRNA) drugs provides promising opportunities to develop treatment strategies for autoimmune inflammatory diseases. In this study, siRNAs targeting the endoplasmic reticulum to nucleus signaling 1 (ERN1) gene (siERN1) were screened. Two cationic polymers, polyethylenimine (PEI) and poly(ß-amino amine) (PBAA), which can improve the efficiency of the siRNA transfection, were used as siERN1 delivery carriers. They were implemented to construct a nanodrug delivery system with macrophage-targeting ability and dual responsiveness for the treatment of autoimmune inflammatory diseases. In terms of the mechanism, siERN1 can regulate the intracellular calcium ion concentration by interfering with the function of inositol 1,4,5-trisphosphate receptor 1/3 (IP3R1/3) and thus inducing M2 polarization of macrophages. Furthermore, siERN1-nanoprodrug [FA (folic acid)-PEG-R(RKKRRQRRR)-NPs(ss-PBAA-PEI)@siERN1] acts as a conductor of macrophage polarization by controlling the calcium ion concentration and is an inhibitor of MyD88-dependent Toll-like receptor signaling. The results revealed that the FA-PEG-R-NPs@siERN1 has universal biocompatibility, long-term drug release responsiveness, superior targeting properties, and therapeutic effects in mouse collagen-induced arthritis and inflammatory bowel disease models. In conclusion, this study reveals a potential strategy to treat autoimmune inflammatory disorders.


Subject(s)
Polyethyleneimine , Toll-Like Receptors , Animals , Macrophages , Mice , RNA, Small Interfering , Transfection
9.
Nat Commun ; 12(1): 4391, 2021 07 19.
Article in English | MEDLINE | ID: mdl-34282140

ABSTRACT

Acquired heterotopic ossification (HO) is the extraskeletal bone formation after trauma. Various mesenchymal progenitors are reported to participate in ectopic bone formation. Here we induce acquired HO in mice by Achilles tenotomy and observe that conditional knockout (cKO) of fibroblast growth factor receptor 3 (FGFR3) in Col2+ cells promote acquired HO development. Lineage tracing studies reveal that Col2+ cells adopt fate of lymphatic endothelial cells (LECs) instead of chondrocytes or osteoblasts during HO development. FGFR3 cKO in Prox1+ LECs causes even more aggravated HO formation. We further demonstrate that FGFR3 deficiency in LECs leads to decreased local lymphatic formation in a BMPR1a-pSmad1/5-dependent manner, which exacerbates inflammatory levels in the repaired tendon. Local administration of FGF9 in Matrigel inhibits heterotopic bone formation, which is dependent on FGFR3 expression in LECs. Here we uncover Col2+ lineage cells as an origin of lymphatic endothelium, which regulates local inflammatory microenvironment after trauma and thus influences HO development via FGFR3-BMPR1a pathway. Activation of FGFR3 in LECs may be a therapeutic strategy to inhibit acquired HO formation via increasing local lymphangiogenesis.


Subject(s)
Bone Morphogenetic Protein Receptors, Type I/genetics , Bone Morphogenetic Protein Receptors, Type I/metabolism , Lymphatic Vessels/metabolism , Ossification, Heterotopic/metabolism , Receptor, Fibroblast Growth Factor, Type 3/genetics , Receptor, Fibroblast Growth Factor, Type 3/metabolism , Achilles Tendon , Animals , Disease Models, Animal , Endothelial Cells/metabolism , Endothelium, Lymphatic/metabolism , Gene Knockdown Techniques , Lymphangiogenesis , Male , Mesenchymal Stem Cells , Mice , Tenotomy
10.
J Cell Physiol ; 236(7): 5278-5292, 2021 07.
Article in English | MEDLINE | ID: mdl-33452687

ABSTRACT

Osteoarthritis (OA) is the most common joint disease. The surface of joint cartilage is a defensive and first affected structure of articular cartilage (AC) during the pathogenesis of OA. Alk5 signaling is critical for maintaining AC homeostasis, however, the role and underlying mechanism for the involvement of Alk5 signaling in the phenotypes of articular cartilage stem cells (ACSCs) at the surface of AC is still unclear. The role of Alk5 in OA development was explored using an ACSCs-specific Alk5-deficient (cKO) mouse model. Alterations in cartilage structure were evaluated histologically. Senescence was detected by SA-ß-gal, while reactive oxygen species (ROS), MitoTracker, and LysoTracker staining were used to detect changes related to senescence. In addition, mice were injected intra-articularly with ganciclovir to limit the detrimental roles of senescent cells (SnCs). Alk5 cKO mice showed a decreased number of the slow-cell cycle cells and less lubricant secretion at the surface accompanied with drastically accelerated cartilage degeneration under ageing and surgically induced OA conditions. Further studies showed that Alk5 deficient ACSCs exhibited senescence-like manifestations including decreased proliferation and differentiation, more SA-ß-gal-positive cells and ROS production, as well as significantly swollen mitochondria and lysosome breakdown. We further found that local limitation of the detrimental roles of SnCs can attenuate the development of posttraumatic OA. Taken together, our findings suggest that Alk5 signaling acts as an important regulator of the SnCs in the superficial layer during AC maintenance and OA initiation.


Subject(s)
Cartilage, Articular/metabolism , Cellular Senescence/physiology , Osteoarthritis/metabolism , Receptor, Transforming Growth Factor-beta Type I/metabolism , Stem Cells/metabolism , Animals , Arthritis, Experimental/metabolism , Arthritis, Experimental/pathology , Cartilage, Articular/pathology , Mice , Mice, Knockout , Osteoarthritis/pathology , Signal Transduction/physiology , Transforming Growth Factor beta/metabolism
11.
Signal Transduct Target Ther ; 5(1): 181, 2020 09 02.
Article in English | MEDLINE | ID: mdl-32879300

ABSTRACT

Growing evidences suggest that the fibroblast growth factor/FGF receptor (FGF/FGFR) signaling has crucial roles in a multitude of processes during embryonic development and adult homeostasis by regulating cellular lineage commitment, differentiation, proliferation, and apoptosis of various types of cells. In this review, we provide a comprehensive overview of the current understanding of FGF signaling and its roles in organ development, injury repair, and the pathophysiology of spectrum of diseases, which is a consequence of FGF signaling dysregulation, including cancers and chronic kidney disease (CKD). In this context, the agonists and antagonists for FGF-FGFRs might have therapeutic benefits in multiple systems.


Subject(s)
Embryonic Development/genetics , Fibroblast Growth Factors/genetics , Homeostasis/genetics , Receptors, Fibroblast Growth Factor/genetics , Apoptosis/genetics , Cell Differentiation/genetics , Cell Proliferation , Humans , Neoplasms/genetics , Signal Transduction/genetics
12.
Theranostics ; 10(16): 7111-7130, 2020.
Article in English | MEDLINE | ID: mdl-32641982

ABSTRACT

CATSHL syndrome, characterized by camptodactyly, tall stature and hearing loss, is caused by loss-of-function mutations of fibroblast growth factor receptors 3 (FGFR3) gene. Most manifestations of patients with CATSHL syndrome start to develop in the embryonic stage, such as skeletal overgrowth, craniofacial abnormalities, however, the pathogenesis of these phenotypes especially the early maldevelopment remains incompletely understood. Furthermore, there are no effective therapeutic targets for this skeleton dysplasia. Methods: We generated fgfr3 knockout zebrafish by CRISPR/Cas9 technology to study the developmental mechanisms and therapeutic targets of CATSHL syndrome. Several zebrafish transgenic lines labeling osteoblasts and chondrocytes, and live Alizarin red staining were used to analyze the dynamical skeleton development in fgfr3 mutants. Western blotting, whole mount in situ hybridization, Edu labeling based cell proliferation assay and Wnt/ß-catenin signaling antagonist were used to explore the potential mechanisms and therapeutic targets. Results: We found that fgfr3 mutant zebrafish, staring from early development stage, showed craniofacial bone malformation with microcephaly and delayed closure of cranial sutures, chondroma-like lesion and abnormal development of auditory sensory organs, partially resembling the clinical manifestations of patients with CATSHL syndrome. Further studies showed that fgfr3 regulates the patterning and shaping of pharyngeal arches and the timely ossification of craniofacial skeleton. The abnormal development of pharyngeal arch cartilage is related to the augmented hypertrophy and disordered arrangement of chondrocytes, while decreased proliferation, differentiation and mineralization of osteoblasts may be involved in the delayed maturation of skull bones. Furthermore, we revealed that deficiency of fgfr3 leads to enhanced IHH signaling and up-regulated canonical Wnt/ß-catenin signaling, and pharmacological inhibition of Wnt/ß-catenin could partially alleviate the phenotypes of fgfr3 mutants. Conclusions: Our study further reveals some novel phenotypes and underlying developmental mechanism of CATSHL syndrome, which deepens our understanding of the pathogenesis of CATSHL and the role of fgfr3 in skeleton development. Our findings provide evidence that modulation of Wnt/ß-catenin activity could be a potential therapy for CATSHL syndrome and related skeleton diseases.


Subject(s)
Bone Diseases, Developmental/genetics , Chondrocytes/pathology , Chondrogenesis/genetics , Hand Deformities, Congenital/genetics , Hearing Loss/genetics , Receptor, Fibroblast Growth Factor, Type 3/genetics , Skull/embryology , Zebrafish Proteins/genetics , Animals , Animals, Genetically Modified , Bone Diseases, Developmental/pathology , CRISPR-Cas Systems/genetics , Cell Differentiation/genetics , Cell Proliferation/genetics , Disease Models, Animal , Embryo, Nonmammalian , Gene Knockout Techniques , Hand Deformities, Congenital/pathology , Hearing Loss/pathology , Hedgehog Proteins/metabolism , Humans , Mutation , Wnt Signaling Pathway/genetics , Zebrafish
13.
Nat Commun ; 11(1): 479, 2020 01 24.
Article in English | MEDLINE | ID: mdl-31980602

ABSTRACT

Congenital scoliosis (CS) is a complex genetic disorder characterized by vertebral malformations. The precise etiology of CS is not fully defined. Here, we identify that mutation in dual serine/threonine and tyrosine protein kinase (dstyk) lead to CS-like vertebral malformations in zebrafish. We demonstrate that the scoliosis in dstyk mutants is related to the wavy and malformed notochord sheath formation and abnormal axial skeleton segmentation due to dysregulated biogenesis of notochord vacuoles and notochord function. Further studies show that DSTYK is located in late endosomal/lysosomal compartments and is involved in the lysosome biogenesis in mammalian cells. Dstyk knockdown inhibits notochord vacuole and lysosome biogenesis through mTORC1-dependent repression of TFEB nuclear translocation. Inhibition of mTORC1 activity can rescue the defect in notochord vacuole biogenesis and scoliosis in dstyk mutants. Together, our findings reveal a key role of DSTYK in notochord vacuole biogenesis, notochord morphogenesis and spine development through mTORC1/TFEB pathway.


Subject(s)
Receptor-Interacting Protein Serine-Threonine Kinases/genetics , Scoliosis/genetics , Zebrafish Proteins/genetics , Zebrafish/abnormalities , Zebrafish/genetics , Active Transport, Cell Nucleus , Animals , Basic Helix-Loop-Helix Leucine Zipper Transcription Factors/metabolism , Disease Models, Animal , Gene Knockdown Techniques , Humans , Models, Biological , Mutation , Notochord/abnormalities , Notochord/metabolism , Notochord/ultrastructure , Receptor-Interacting Protein Serine-Threonine Kinases/antagonists & inhibitors , Receptor-Interacting Protein Serine-Threonine Kinases/metabolism , Scoliosis/congenital , Scoliosis/metabolism , Signal Transduction , Spine/abnormalities , Spine/metabolism , Transcription Factors/metabolism , Vacuoles/metabolism , Zebrafish/metabolism , Zebrafish Proteins/antagonists & inhibitors , Zebrafish Proteins/metabolism
14.
Ann Rheum Dis ; 79(1): 112-122, 2020 01.
Article in English | MEDLINE | ID: mdl-31662319

ABSTRACT

OBJECTIVES: This study aims to investigate the role and mechanism of FGFR3 in macrophages and their biological effects on the pathology of arthritis. METHODS: Mice with conditional knockout of FGFR3 in myeloid cells (R3cKO) were generated. Gait behaviours of the mice were monitored at different ages. Spontaneous synovial joint destruction was evaluated by digital radiographic imaging and µCT analysis; changes of articular cartilage and synovitis were determined by histological analysis. The recruitment of macrophages in the synovium was examined by immunostaining and monocyte trafficking assay. RNA-seq analysis, Western blotting and chemotaxis experiment were performed on control and FGFR3-deficient macrophages. The peripheral blood from non-osteoarthritis (OA) donors and patients with OA were analysed. Mice were treated with neutralising antibody against CXCR7 to investigate the role of CXCR7 in arthritis. RESULTS: R3cKO mice but not control mice developed spontaneous cartilage destruction in multiple synovial joints at the age of 13 months. Moreover, the synovitis and macrophage accumulation were observed in the joints of 9-month-old R3cKO mice when the articular cartilage was not grossly destructed. FGFR3 deficiency in myeloid cells also aggravated joint destruction in DMM mouse model. Mechanically, FGFR3 deficiency promoted macrophage chemotaxis partly through activation of NF-κB/CXCR7 pathway. Inhibition of CXCR7 could significantly reverse FGFR3-deficiency-enhanced macrophage chemotaxis and the arthritic phenotype in R3cKO mice. CONCLUSIONS: Our study identifies the role of FGFR3 in synovial macrophage recruitment and synovitis, which provides a new insight into the pathological mechanisms of inflammation-related arthritis.


Subject(s)
Cartilage, Articular/pathology , Chemokine CXCL12/metabolism , Macrophages/metabolism , Osteoarthritis/genetics , Receptor, Fibroblast Growth Factor, Type 3/genetics , Receptors, CXCR/genetics , Synovitis/genetics , Animals , Chemotaxis/genetics , Gait , Gene Expression Regulation , Humans , Joints/metabolism , Joints/pathology , Mice , Mice, Knockout , Monocytes/metabolism , Myeloid Cells , NF-kappa B/metabolism , Osteoarthritis/metabolism , Receptor, Fibroblast Growth Factor, Type 3/metabolism , Receptors, CXCR/metabolism , Synovial Membrane/metabolism , Synovial Membrane/pathology , Synovitis/pathology
15.
J Orthop Translat ; 17: 103-111, 2019 Apr.
Article in English | MEDLINE | ID: mdl-31194037

ABSTRACT

OBJECTIVE: Scoliosis is a common disease characterized by spinal curvature with variable severities. There is no generally accepted theory about the physical origin of the spinal deformation of scoliosis. The aim of this study was to explore a new hypothesis suggesting that the curvatures in scoliosis may be associated with the imbalance growth between thoracic vertebral column and sternum. METHODS: We undertook a comparative computed tomography (CT) based morphology study of thoracic vertebrae and sternum of patients with adolescent idiopathic scoliosis (AIS) and age-gender matched normal subjects. We further measured the ratios between the lengths of the sternum and thoracic vertebra of mice with deficiency of fibroblast growth factor receptor 3 (FGFR3), which exhibit scoliosis. Three-week-old C57BL/6J mice were used to generate bipedal and sternal growth plate injury model. Radiographs and histological images were obtained to observe the presence of sternal and spinal deformity. RESULTS: There was a significant correlation between the severities of scoliosis and the ratios of the sternum to thoracic vertebral lengths. We also found that FGFR3 deficient mice showed smaller ratio of the sternum to thoracic vertebra lengths than that of the wild-type mice, which were similar with that of the AIS patients. Surgery-induced injuries of sternal growth plates can accelerate and aggravate the scoliosis in bipedal mice and imbalanced development of anterior and posterior thoracic occurred before the appearance of scoliosis. CONCLUSIONS: Our findings suggest that the imbalanced growth between the thoracic vertebral column and the sternum is an important causative factor for the pathogenesis of scoliosis including AIS. THE TRANSLATIONAL POTENTIAL OF THIS ARTICLE: Imbalanced growth between the thoracic vertebral column and the sternum is associated with scoliosis. Surgical or rehabilitation intervention for scoliosis should focus on all components involved in the pathogenesis of curvature to obtain better outcome.

16.
J Bone Miner Res ; 34(11): 2101-2116, 2019 11.
Article in English | MEDLINE | ID: mdl-31237961

ABSTRACT

Cartilage-hair hypoplasia (CHH) is an autosomal recessive metaphyseal chondrodysplasia characterized by bone dysplasia and many other highly variable features. The gene responsible for CHH is the RNA component of the mitochondrial RNA-processing endoribonuclease (RMRP) gene. Currently, the pathogenesis of osteochondrodysplasia and extraskeletal manifestations in CHH patients remains incompletely understood; in addition, there are no viable animal models for CHH. We generated an rmrp KO zebrafish model to study the developmental mechanisms of CHH. We found that rmrp is required for the patterning and shaping of pharyngeal arches. Rmrp mutation inhibits the intramembranous ossification of skull bones and promotes vertebrae ossification. The abnormalities of endochondral bone ossification are variable, depending on the degree of dysregulated chondrogenesis. Moreover, rmrp mutation inhibits cell proliferation and promotes apoptosis through dysregulating the expressions of cell-cycle- and apoptosis-related genes. We also demonstrate that rmrp mutation upregulates canonical Wnt/ß-catenin signaling; the pharmacological inhibition of Wnt/ß-catenin could partially alleviate the chondrodysplasia and increased vertebrae mineralization in rmrp mutants. Our study, by establishing a novel zebrafish model for CHH, partially reveals the underlying mechanism of CHH, hence deepening our understanding of the role of rmrp in skeleton development.


Subject(s)
Chondrogenesis/genetics , Hair/abnormalities , Hirschsprung Disease , Mutation , Osteochondrodysplasias/congenital , Osteogenesis/genetics , Primary Immunodeficiency Diseases , RNA, Long Noncoding , Wnt Signaling Pathway/genetics , Zebrafish/metabolism , Animals , Disease Models, Animal , Hair/metabolism , Hair/pathology , Hirschsprung Disease/genetics , Hirschsprung Disease/metabolism , Hirschsprung Disease/pathology , Humans , Osteochondrodysplasias/genetics , Osteochondrodysplasias/metabolism , Osteochondrodysplasias/pathology , Primary Immunodeficiency Diseases/genetics , Primary Immunodeficiency Diseases/metabolism , Primary Immunodeficiency Diseases/pathology , RNA, Long Noncoding/genetics , RNA, Long Noncoding/metabolism , Skull/metabolism , Skull/pathology , Spine/metabolism , Spine/pathology
17.
Mol Ther Nucleic Acids ; 13: 291-302, 2018 Dec 07.
Article in English | MEDLINE | ID: mdl-30321816

ABSTRACT

Apert syndrome (AS), the most severe form of craniosynostosis, is caused by missense mutations including Pro253Arg(P253R) of fibroblast growth factor receptor 2 (FGFR2), which leads to enhanced FGF/FGFR2-signaling activity. Surgical correction of the deformed skull is the typical treatment for AS. Because of constant maldevelopment of sutures, the corrective surgery is often executed several times, resulting in increased patient challenge and complications. Biological therapies targeting the signaling of mutant FGFR2 allele, in combination with surgery, may bring better outcome. Here we screened and found a small interfering RNA (siRNA) specifically targeting the Fgfr2-P253R allele, and we revealed that it inhibited osteoblastic differentiation and matrix mineralization by reducing the signaling of ERK1/2 and P38 in cultured primary calvarial cells and calvarial explants from Apert mice (Fgfr2+/P253R). Furthermore, AAV9 carrying short hairpin RNA (shRNA) (AAV9-Fgfr2-shRNA) against mutant Fgfr2 was delivered to the skulls of AS mice. Results demonstrate that AAV9-Fgfr2-shRNA attenuated the premature closure of coronal suture and the decreased calvarial bone volume of AS mice. Our study provides a novel practical biological approach, which will, in combination with other therapies, including surgeries, help treat patients with AS while providing experimental clues for the biological therapies of other genetic skeletal diseases.

18.
J Biol Chem ; 293(23): 8761-8774, 2018 06 08.
Article in English | MEDLINE | ID: mdl-29691281

ABSTRACT

Temporomandibular joint osteoarthritis (TMJ OA) is a common degenerative disease with few effective disease-modifying treatments in the clinic. Fibroblast growth factor (FGF) signaling is implicated in articular cartilage homeostasis, but the functional roles of FGFR1 in TMJ OA remain largely unknown. In this study, we report that deletion of Fgfr1 in TMJ chondrocytes delayed TMJ OA progression in the age-associated spontaneous OA model and the abnormal dental occlusion OA model. Immunohistochemical staining revealed that Fgfr1 deficiency decreased the expressions of MMP13 (matrix metalloproteinase-13), ADAMTS5 (a disintegrin and metalloproteinase with thrombospondin motifs 5), and COL10A1 but increased aggrecan expression level in two TMJ OA models. Furthermore, our data show that inactivation of FGFR1 signaling may promote autophagic activity in TMJ. FGFR1 inhibitor decreased the expressions of Mmp13, Adamts5, and Runx2 in IL-1ß-stimulated condylar chondrocytes, whereas autophagy inhibitors abrogated the protective effects of the FGFR1 inhibitor. Thus, our study indicates inactivated FGFR1 signaling ameliorates TMJ OA progression partially by promoting autophagic activity. Manipulation of this signaling may be a potential therapeutic approach to modify TMJ OA.


Subject(s)
Autophagy , Chondrocytes/pathology , Gene Deletion , Osteoarthritis/genetics , Receptor, Fibroblast Growth Factor, Type 1/genetics , Temporomandibular Joint/pathology , Animals , Cartilage, Articular/metabolism , Cartilage, Articular/pathology , Chondrocytes/metabolism , Male , Mice, Inbred C57BL , Mice, Knockout , Osteoarthritis/pathology , Temporomandibular Joint/metabolism
19.
Int J Biol Sci ; 13(8): 1029-1037, 2017.
Article in English | MEDLINE | ID: mdl-28924384

ABSTRACT

Bone fracture healing is processed through multiple biological stages that partly recapitulates the skeletal development process. FGFR3 is a negative regulator of chondrogenesis during embryonic stage and plays an important role in both chondrogenesis and osteogenesis. We have investigated the role of FGFR3 in fracture healing using unstabilized fracture model and found that gain-of-function mutation of FGFR3 inhibits the initiation of chondrogenesis during cartilage callus formation. Here, we created closed, stabilized proximal tibia fractures with an intramedullary pin in Fgfr3-/-mice and their littermate wild-type mice. Fracture healing was evaluated by radiography, micro-CT, histology, and real-time polymerase chain reaction (RT-PCR) analysis. The fractured Fgfr3-/- mice had increased formation of cartilaginous callus, more fracture callus, and more rapid endochondral ossification in fracture sites with up-regulated expressions of chondrogenesis related gene. The fractures of Fgfr3-/- mice healed faster with accelerated fracture callus mineralization and up-regulated expression of osteoblastogenic genes. The healing of fractures in Fgfr3-/- mice was accelerated in the stage of formation of cartilage and endochondral ossification. Downregulation of FGFR3 activity can be considered as a potential bio-therapeutic strategy for fracture treatment.


Subject(s)
Fracture Healing/physiology , Receptor, Fibroblast Growth Factor, Type 3/metabolism , Animals , Cells, Cultured , Chondrogenesis/genetics , Chondrogenesis/physiology , Fracture Healing/genetics , Male , Mice , Osteogenesis/genetics , Osteogenesis/physiology , Real-Time Polymerase Chain Reaction , Receptor, Fibroblast Growth Factor, Type 3/deficiency , Receptor, Fibroblast Growth Factor, Type 3/genetics , Reverse Transcriptase Polymerase Chain Reaction , Tibial Fractures/genetics , Tibial Fractures/metabolism , X-Ray Microtomography
20.
J Bone Miner Res ; 32(11): 2194-2206, 2017 Nov.
Article in English | MEDLINE | ID: mdl-28650109

ABSTRACT

Apert syndrome is one of the most severe craniosynostoses, resulting from gain-of-function mutations in fibroblast growth factor receptor 2 (FGFR2). Previous studies have shown that gain-of-function mutations of FGFR2 (S252W or P253R) cause skull malformation of human Apert syndrome by affecting both chondrogenesis and osteogenesis, underscoring the key role of FGFR2 in bone development. However, the effects of FGFR2 on bone formation at the adult stage have not been fully investigated. To investigate the role of FGFR2 in bone formation, we generated mice with tamoxifen-inducible expression of mutant FGFR2 (P253R) at the adult stage. Mechanical bone marrow ablation (BMX) was performed in both wild-type and Fgfr2 mutant (MT) mice. Changes in newly formed trabecular bone were assessed by micro-computed tomography and bone histomorphometry. We found that MT mice exhibited increased trabecular bone formation and decreased bone resorption after BMX accompanied with a remarkable increase in bone marrow stromal cell recruitment and proliferation, osteoblast proliferation and differentiation, and enhanced Wnt/ß-catenin activity. Furthermore, pharmacologically inhibiting Wnt/ß-catenin signaling can partially reverse the increased trabecular bone formation and decreased bone resorption in MT mice after BMX. Our data demonstrate that gain-of-function mutation in FGFR2 exerts a Wnt/ß-catenin-dependent anabolic effect on trabecular bone by promoting bone formation and inhibiting bone resorption at the adult stage. © 2017 American Society for Bone and Mineral Research.


Subject(s)
Aging/metabolism , Bone Marrow/metabolism , Osteogenesis , Receptor, Fibroblast Growth Factor, Type 2/metabolism , Animals , Bone Resorption/metabolism , Bone Resorption/pathology , Cancellous Bone/metabolism , Cancellous Bone/pathology , Cell Differentiation , Cell Proliferation , Gain of Function Mutation/genetics , Mesenchymal Stem Cells/metabolism , Mice, Inbred C57BL , Mice, Transgenic , Phenotype , Receptor, Fibroblast Growth Factor, Type 2/genetics , Up-Regulation , Wnt Signaling Pathway
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