Osteoclast-derived exosomal let-7a-5p targets Smad2 to promote the hypertrophic differentiation of chondrocytes.
暂无分享,去创建一个
Yun Bai | S. Dong | Z. Hou | Rui Dong | Jingjin Dai | Fanchun Zeng | F. Kang | Mengmeng Liang | Jianmei Li | Xiaoshan Gong | X. Han
[1] E. Domany,et al. Author Correction: c-Met activation leads to the establishment of a TGFβ-receptor regulatory network in bladder cancer progression , 2019, Nature Communications.
[2] Hui Lin,et al. MicroRNA-212-3p inhibits the Proliferation and Invasion of Human Hepatocellular Carcinoma Cells by Suppressing CTGF expression , 2019, Scientific Reports.
[3] Shouan Zhu,et al. Macrophage-lineage TRAP+ cells recruit periosteum-derived cells for periosteal osteogenesis and regeneration. , 2019, The Journal of clinical investigation.
[4] R. Gómez,et al. DNA hypomethylation during MSC chondrogenesis occurs predominantly at enhancer regions , 2019, Scientific Reports.
[5] Yun Bai,et al. IL-11 is essential in promoting osteolysis in breast cancer bone metastasis via RANKL-independent activation of osteoclastogenesis , 2019, Cell Death & Disease.
[6] Jinmin Zhao,et al. Pulsed Magnetic Field Stimuli Can Promote Chondrogenic Differentiation of Superparamagnetic Iron Oxide Nanoparticles-Labeled Mesenchymal Stem Cells in Rats. , 2018, Journal of biomedical nanotechnology.
[7] Zhi-yu Huang,et al. Exosomes derived from miR-92a-3p-overexpressing human mesenchymal stem cells enhance chondrogenesis and suppress cartilage degradation via targeting WNT5A , 2018, Stem Cell Research & Therapy.
[8] Feihu Chen,et al. The role of Ca2+ in acid-sensing ion channel 1a-mediated chondrocyte pyroptosis in rat adjuvant arthritis , 2018, Laboratory Investigation.
[9] X. An,et al. Regulation and function of runt-related transcription factors (RUNX1 and RUNX2) in goat granulosa cells , 2018, The Journal of Steroid Biochemistry and Molecular Biology.
[10] Yun Bai,et al. LncRNA-AK131850 Sponges MiR-93-5p in Newborn and Mature Osteoclasts to Enhance the Secretion of Vascular Endothelial Growth Factor a Promoting Vasculogenesis of Endothelial Progenitor Cells , 2018, Cellular Physiology and Biochemistry.
[11] S. Dong,et al. Cyanidin suppresses autophagic activity regulating chondrocyte hypertrophic differentiation , 2018, Journal of cellular physiology.
[12] T. Denning,et al. Macrophage-derived IL-10 mediates mucosal repair by epithelial WISP-1 signaling. , 2017, The Journal of clinical investigation.
[13] Yi-Ping Li,et al. TGF-β and BMP signaling in osteoblast, skeletal development, and bone formation, homeostasis and disease , 2016, Bone Research.
[14] Shu Zhang,et al. miR-33-5p, a novel mechano-sensitive microRNA promotes osteoblast differentiation by targeting Hmga2 , 2016, Scientific Reports.
[15] Xiaojuan He,et al. Osteoclast-derived exosomal miR-214-3p inhibits osteoblastic bone formation , 2016, Nature Communications.
[16] S. Dong,et al. Dual Effect of Cyanidin on RANKL‐Induced Differentiation and Fusion of Osteoclasts , 2016, Journal of cellular physiology.
[17] K. Mchugh,et al. Characterization of Regulatory Extracellular Vesicles from Osteoclasts , 2016, Journal of dental research.
[18] Yan Wang,et al. miR-105/Runx2 axis mediates FGF2-induced ADAMTS expression in osteoarthritis cartilage , 2016, Journal of Molecular Medicine.
[19] A. Purushothaman,et al. Fibronectin on the Surface of Myeloma Cell-derived Exosomes Mediates Exosome-Cell Interactions* , 2015, The Journal of Biological Chemistry.
[20] S. Yeh,et al. Tumor microenvironment B cells increase bladder cancer metastasis via modulation of the IL-8/androgen receptor (AR)/MMPs signals , 2015, Oncotarget.
[21] N. Baldini,et al. Human bone marrow- and adipose-mesenchymal stem cells secrete exosomes enriched in distinctive miRNA and tRNA species , 2015, Stem cell research & therapeutics.
[22] Marc N. Wein,et al. MicroRNA‐140 Provides Robustness to the Regulation of Hypertrophic Chondrocyte Differentiation by the PTHrP‐HDAC4 Pathway , 2015, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[23] A. Fertala,et al. Mechanisms of aberrant organization of growth plates in conditional transgenic mouse model of spondyloepiphyseal dysplasia associated with the R992C substitution in collagen II. , 2015, The American journal of pathology.
[24] Richard J Simpson,et al. A protocol for exosome isolation and characterization: evaluation of ultracentrifugation, density-gradient separation, and immunoaffinity capture methods. , 2015, Methods in molecular biology.
[25] V. Vives,et al. The mineral dissolution function of osteoclasts is dispensable for hypertrophic cartilage degradation during long bone development and growth. , 2014, Developmental biology.
[26] Emma Leah. Osteoarthritis: TGF-β overload at bones of cartilage degeneration , 2013, Nature Reviews Rheumatology.
[27] Xiaogang Wang,et al. miR-214 targets ATF4 to inhibit bone formation , 2012, Nature Medicine.
[28] A. Giaccia,et al. VEGF‐independent cell‐autonomous functions of HIF‐1α regulating oxygen consumption in fetal cartilage are critical for chondrocyte survival , 2012, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[29] E. Mackie,et al. The skeleton: a multi-functional complex organ: the growth plate chondrocyte and endochondral ossification. , 2011, The Journal of endocrinology.
[30] B. Song,et al. Smad signaling in skeletal development and regeneration. , 2009, Cytokine & growth factor reviews.
[31] Kozo Nakamura,et al. Krüppel-like Factor 5 Causes Cartilage Degradation through Transactivation of Matrix Metalloproteinase 9* , 2008, Journal of Biological Chemistry.
[32] Koichi Matsuo,et al. Osteoclast-osteoblast communication. , 2008, Archives of biochemistry and biophysics.
[33] Rocky S Tuan,et al. Functional characterization of hypertrophy in chondrogenesis of human mesenchymal stem cells. , 2008, Arthritis and rheumatism.
[34] E. Mackie,et al. Endochondral ossification: how cartilage is converted into bone in the developing skeleton. , 2008, The international journal of biochemistry & cell biology.
[35] Z. Werb,et al. Role of Matrix Metalloproteinase 13 in Both Endochondral and Intramembranous Ossification during Skeletal Regeneration , 2007, PloS one.
[36] M. Cohen Jr.,et al. The new bone biology: pathologic, molecular, and clinical correlates. , 2006, American journal of medical genetics. Part A.
[37] T. Cawston,et al. Understanding the role of tissue degrading enzymes and their inhibitors in development and disease. , 2006, Best practice & research. Clinical rheumatology.
[38] R. Kitazawa,et al. Expression profile of genes related to osteoclastogenesis in mouse growth plate and articular cartilage , 2006, Histochemistry and Cell Biology.
[39] Véronique Lefebvre,et al. Transcriptional control of chondrocyte fate and differentiation. , 2005, Birth defects research. Part C, Embryo today : reviews.
[40] Mahboob Rahman,et al. Critical roles for collagenase-3 (Mmp13) in development of growth plate cartilage and in endochondral ossification. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[41] Z. Werb,et al. Altered endochondral bone development in matrix metalloproteinase 13-deficient mice , 2004, Development.
[42] H. Ma,et al. Characterization of and osteoarthritis susceptibility in ADAMTS-4-knockout mice. , 2004, Arthritis and rheumatism.
[43] R. Serra,et al. Unique and redundant roles of Smad3 in TGF‐β–mediated regulation of long bone development in organ culture , 2004, Developmental dynamics : an official publication of the American Association of Anatomists.
[44] B. Hall,et al. The membranous skeleton: the role of cell condensations in vertebrate skeletogenesis , 1992, Anatomy and Embryology.
[45] A. Wetterwald,et al. Dissociation of Angiogenesis and Osteoclastogenesis During Endochondral Bone Formation in Neonatal Mice , 2002, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[46] E. Wagner,et al. Genetic control of skeletal development. , 2001, Current opinion in genetics & development.
[47] E. Schwarz,et al. Smad2 and 3 Mediate Transforming Growth Factor-β1-Induced Inhibition of Chondrocyte Maturation* *The work was supported by National Health Services Grant AR-38945 (to R.J.O.) and an Orthopaedic Research Education Foundation Award (to C.M.F.). , 2000, Endocrinology.
[48] A. Psarra,et al. Expression of the glucocorticoid receptor in early and late passage C-6 glioma cells and in normal astrocytes derived from aged mouse cerebral hemispheres , 2000, International Journal of Developmental Neuroscience.
[49] M. Kumegawa,et al. Vascular endothelial growth factor (VEGF) directly enhances osteoclastic bone resorption and survival of mature osteoclasts , 2000, FEBS letters.
[50] M. Egerbacher,et al. Bones in the heart skeleton of the otter (Lutra lutra) , 2000, Journal of anatomy.
[51] E. Schwarz,et al. Smad2 and 3 Mediate Transforming Growth Factor-β1-Induced Inhibition of Chondrocyte Maturation* *The work was supported by National Health Services Grant AR-38945 (to R.J.O.) and an Orthopaedic Research Education Foundation Award (to C.M.F.). , 2000, Endocrinology.
[52] D. Spiro,et al. CARTILAGE RESORPTION IN THE TIBIAL EPIPHYSEAL PLATE OF GROWING RATS , 1967, The Journal of cell biology.