Inhibition of CRY2 by STAT3/miRNA-7-5p Promotes Osteoblast Differentiation through Upregulation of CLOCK/BMAL1/P300 Expression
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[1] Gong Yang,et al. MicroRNA-1251-5p Promotes Carcinogenesis and Autophagy via Targeting the Tumor Suppressor TBCC in Ovarian Cancer Cells. , 2019, Molecular therapy : the journal of the American Society of Gene Therapy.
[2] Lihua Li,et al. hsa_circRNA_0006528 as a competing endogenous RNA promotes human breast cancer progression by sponging miR‐7‐5p and activating the MAPK/ERK signaling pathway , 2018, Molecular carcinogenesis.
[3] M. Meyerson,et al. Circulating Tumor DNA Provides a Sneak Peek into Treatment Responses in Non-Small Cell Lung Cancer. , 2019, Cancer research.
[4] Qingdong Guo,et al. MiR-7-5p suppresses stemness and enhances temozolomide sensitivity of drug-resistant glioblastoma cells by targeting Yin Yang 1. , 2019, Experimental cell research.
[5] D. Ray,et al. The circadian regulator Bmal1 in joint mesenchymal cells regulates both joint development and inflammatory arthritis , 2019, Arthritis Research & Therapy.
[6] A. Goldbeter,et al. The positive circadian regulators CLOCK and BMAL1 control G2/M cell cycle transition through Cyclin B1 , 2018, Cell cycle.
[7] S. Khosla,et al. miR‐219a‐5p Regulates Rorβ During Osteoblast Differentiation and in Age‐related Bone Loss , 2018, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[8] A. Zannettino,et al. miRNA-376c-3p Mediates TWIST-1 Inhibition of Bone Marrow-Derived Stromal Cell Osteogenesis and Can Reduce Aberrant Bone Formation of TWIST-1 Haploinsufficient Calvarial Cells. , 2018, Stem cells and development.
[9] R. Trivedi,et al. Glucose dependent miR-451a expression contributes to parathyroid hormone mediated osteoblast differentiation. , 2018, Bone.
[10] G. Kay,et al. Smchd1 Targeting to the Inactive X Is Dependent on the Xist-HnrnpK-PRC1 Pathway. , 2018, Cell reports.
[11] Xiangxiang Sun,et al. The small molecule NSM00191 specifically represses the TNF-α/NF-кB axis in foot and ankle rheumatoid arthritis , 2018, International journal of biological sciences.
[12] C. Lengner,et al. The microRNA-23a cluster regulates the developmental HoxA cluster function during osteoblast differentiation , 2018, The Journal of Biological Chemistry.
[13] Linlin Sui,et al. Osteopontin Promotes Bone Destruction in Periapical Periodontitis by Activating the NF-κB Pathway , 2018, Cellular Physiology and Biochemistry.
[14] Zeng Zhang,et al. miR-383 negatively regulates osteoblastic differentiation of bone marrow mesenchymal stem cells in rats by targeting Satb2. , 2018, Bone.
[15] Jiake Xu,et al. MiR‐214 is an important regulator of the musculoskeletal metabolism and disease , 2018, Journal of cellular physiology.
[16] Ce Li,et al. Long non‐coding RNA UCA1 upregulation promotes the migration of hypoxia‐resistant gastric cancer cells through the miR‐7–5p/EGFR axis , 2018, Experimental cell research.
[17] Amarjot Singh,et al. Role of osteopontin in bone remodeling and orthodontic tooth movement: a review , 2018, Progress in Orthodontics.
[18] H. Taipaleenmäki,et al. Targeting the Metastatic Bone Microenvironment by MicroRNAs , 2018, Front. Endocrinol..
[19] Hairong Liang,et al. miR-7-5p overexpression suppresses cell proliferation and promotes apoptosis through inhibiting the ability of DNA damage repair of PARP-1 and BRCA1 in TK6 cells exposed to hydroquinone. , 2018, Chemico-biological interactions.
[20] Huazi Xu,et al. Coupling factors and exosomal packaging microRNAs involved in the regulation of bone remodelling , 2018, Biological reviews of the Cambridge Philosophical Society.
[21] Yasir Arfat,et al. miR-208a-3p Suppresses Osteoblast Differentiation and Inhibits Bone Formation by Targeting ACVR1 , 2017, Molecular therapy. Nucleic acids.
[22] P. Leedman,et al. A microRNA‐7/growth arrest specific 6/TYRO3 axis regulates the growth and invasiveness of sorafenib‐resistant cells in human hepatocellular carcinoma , 2017, Hepatology.
[23] V. Fendrich,et al. Overexpression of MicroRNA miR-7-5p Is a Potential Biomarker in Neuroendocrine Neoplasms of the Small Intestine , 2017, Neuroendocrinology.
[24] R. Evans,et al. Circadian repressors CRY1 and CRY2 broadly interact with nuclear receptors and modulate transcriptional activity , 2017, Proceedings of the National Academy of Sciences.
[25] R. Evans,et al. CRY1/2 Selectively Repress PPARδ and Limit Exercise Capacity. , 2017, Cell metabolism.
[26] Xinya Hong,et al. miR-181d and c-myc-mediated inhibition of CRY2 and FBXL3 reprograms metabolism in colorectal cancer , 2017, Cell Death and Disease.
[27] N. I. Nieden,et al. microRNA Regulation of Skeletal Development , 2017, Current Osteoporosis Reports.
[28] Cairu Wang,et al. Peroxisome Proliferator-Activated Receptor α Facilitates Osteogenic Differentiation in MC3T3-E1 Cells via the Sirtuin 1-Dependent Signaling Pathway , 2017, Molecules and cells.
[29] H. Guan,et al. Bystander autophagy mediated by radiation-induced exosomal miR-7-5p in non-targeted human bronchial epithelial cells , 2016, Scientific Reports.
[30] S. Takeda,et al. Circadian Clock Regulates Bone Resorption in Mice , 2016, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[31] R. Midura,et al. Deficiency of circadian clock protein BMAL1 in mice results in a low bone mass phenotype. , 2016, Bone.
[32] Y. Hong,et al. Association of osteoporosis with genetic variants of circadian genes in Chinese geriatrics , 2016, Osteoporosis International.
[33] P. Sassone-Corsi,et al. CRY Drives Cyclic CK2-Mediated BMAL1 Phosphorylation to Control the Mammalian Circadian Clock , 2015, PLoS biology.
[34] Peng Li,et al. miR-7-5p suppresses cell proliferation and induces apoptosis of breast cancer cells mainly by targeting REGγ. , 2015, Cancer letters.
[35] Yool Lee,et al. Coactivation of the CLOCK–BMAL1 complex by CBP mediates resetting of the circadian clock , 2010, Journal of Cell Science.
[36] Minnkyong Lee,et al. Parathyroid Hormone Activation of Matrix Metalloproteinase-13 Transcription Requires the Histone Acetyltransferase Activity of p300 and PCAF and p300-dependent Acetylation of PCAF* , 2010, The Journal of Biological Chemistry.
[37] H. Ryoo,et al. BMP2-activated Erk/MAP Kinase Stabilizes Runx2 by Increasing p300 Levels and Histone Acetyltransferase Activity* , 2010, The Journal of Biological Chemistry.
[38] Dmitri A. Nusinow,et al. Cryptochrome Mediates Circadian Regulation of cAMP Signaling and Hepatic Gluconeogenesis , 2010, Nature Medicine.
[39] A. Schilling,et al. The Clock Genes Period 2 and Cryptochrome 2 Differentially Balance Bone Formation , 2010, PloS one.
[40] Farshid Guilak,et al. Circadian Oscillation of Gene Expression in Murine Calvarial Bone , 2007, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[41] Minoru Yoshida,et al. Bone Morphogenetic Protein-2 Stimulates Runx2 Acetylation* , 2006, Journal of Biological Chemistry.
[42] E. Wagner,et al. The Molecular Clock Mediates Leptin-Regulated Bone Formation , 2005, Cell.
[43] Gabriel Acevedo-Bolton,et al. Intracardiac fluid forces are an essential epigenetic factor for embryonic cardiogenesis , 2003, Nature.