Role of non‑coding RNAs in cartilage endplate (Review)
暂无分享,去创建一个
Tao Li | Xiaokun Zhao | Xigao Cheng | Tianlong Wu | Jian Zhang | Hui Wu | Jingyu Jia | Jinghong Yuan | Bin Li | Zhiwen Wu | Xinxin Miao | Jiahao Liu | Qi Chen | Xin-Xin Miao
[1] KE Rong,et al. Polydopamine Nanoparticles Targeting Ferroptosis Mitigate Intervertebral Disc Degeneration Via Reactive Oxygen Species Depletion, Iron Ions Chelation, and GPX4 Ubiquitination Suppression , 2023, Advanced science.
[2] Jiacan Su,et al. Bone/cartilage targeted hydrogel: Strategies and applications , 2022, Bioactive materials.
[3] Jiacan Su,et al. Exosome-based bone-targeting drug delivery alleviates impaired osteoblastic bone formation and bone loss in inflammatory bowel diseases , 2022, Cell reports. Medicine.
[4] S. Ferguson,et al. Toward the Next Generation of Spine Bioreactors: Validation of an Ex Vivo Intervertebral Disc Organ Model and Customized Specimen Holder for Multiaxial Loading , 2022, ACS biomaterials science & engineering.
[5] Jianguo Chen,et al. Congenital microtia patients: the genetically engineered exosomes released from porous gelatin methacryloyl hydrogel for downstream small RNA profiling, functional modulation of microtia chondrocytes and tissue-engineered ear cartilage regeneration , 2022, Journal of Nanobiotechnology.
[6] Mingliang Zhong,et al. miR-637 Inhibits Osteogenic Differentiation of Human Intervertebral Disc Cartilage Endplate Stem Cells by Targeting WNT5A , 2022, Journal of investigative surgery : the official journal of the Academy of Surgical Research.
[7] D. Wang,et al. LncRNA-mediated DNA methylation: an emerging mechanism in cancer and beyond , 2022, Journal of experimental & clinical cancer research : CR.
[8] X. Yang,et al. Prussian Blue Nanoparticles Stabilize SOD1 from Ubiquitination‐Proteasome Degradation to Rescue Intervertebral Disc Degeneration , 2022, Advanced science.
[9] Lingjuan Zhu,et al. Designing strategies of small-molecule compounds for modulating non-coding RNAs in cancer therapy , 2022, Journal of Hematology & Oncology.
[10] U. Kikkawa,et al. HDAC6 involves in regulating the lncRNA-microRNA-mRNA network to promote the proliferation of glioblastoma cells , 2022, Journal of Experimental & Clinical Cancer Research.
[11] Xin Jiang,et al. Exosomes-derived miR-125-5p from cartilage endplate stem cells regulates autophagy and ECM metabolism in nucleus pulposus by targeting SUV38H1. , 2022, Experimental cell research.
[12] S. Wong,et al. Circular RNAs in Intervertebral Disc Degeneration: An Updated Review , 2022, Frontiers in Molecular Biosciences.
[13] Tianshu Shi,et al. METTL3-mediated m6A modification of ATG7 regulates autophagy-GATA4 axis to promote cellular senescence and osteoarthritis progression , 2021, Annals of the Rheumatic Diseases.
[14] Yu Zhang,et al. Circ_0022382 ameliorated intervertebral disc degeneration by regulating TGF-β3 expression through sponge adsorption of miR-4726-5p. , 2021, Bone.
[15] D. Xing,et al. LncRNAs as a new regulator of chronic musculoskeletal disorder , 2021, Cell proliferation.
[16] Wei Liu,et al. 3' untranslated region of Ckip-1 inhibits cardiac hypertrophy independently of its cognate protein. , 2021, European heart journal.
[17] Xigao Cheng,et al. CircSNHG5 Sponges Mir-495-3p and Modulates CITED2 to Protect Cartilage Endplate From Degradation , 2021, Frontiers in Cell and Developmental Biology.
[18] Xiaohong Wang,et al. Mesenchymal stem cell-derived extracellular vesicles prevent the development of osteoarthritis via the circHIPK3/miR-124-3p/MYH9 axis , 2021, Journal of Nanobiotechnology.
[19] Bo Yang,et al. Roles of long non-coding RNA in osteoarthritis (Review) , 2021, International journal of molecular medicine.
[20] J. Xue,et al. miR-142-3p and HMGB1 Are Negatively Regulated in Proliferation, Apoptosis, Migration, and Autophagy of Cartilage Endplate Cells , 2021, Cartilage.
[21] Xiangyu Chu,et al. Recombinant adeno-associated virus-based gene therapy combined with tissue engineering for musculoskeletal regenerative medicine , 2021, Biomaterials translational.
[22] Feng Li,et al. miR-142-3p and HMGB1 Are Negatively Regulated in Proliferation, Apoptosis, Migration and Autophagy of Cartilage Endplate Cells , 2021 .
[23] Lovorka Stojic,et al. Long Noncoding RNAs at the Crossroads of Cell Cycle and Genome Integrity. , 2021, Trends in genetics : TIG.
[24] Jiacan Su,et al. Exosome-guided bone targeted delivery of Antagomir-188 as an anabolic therapy for bone loss , 2021, Bioactive materials.
[25] M. Syed,et al. Long non-coding RNA: An immune cells perspective. , 2021, Life sciences.
[26] A. Kourtidis,et al. LNCcation: lncRNA localization and function , 2021, The Journal of cell biology.
[27] T. Lan,et al. New insights into the interplay between miRNAs and autophagy in the aging of intervertebral discs , 2020, Ageing Research Reviews.
[28] Zhong-yuan Wan,et al. Emerging evidence on noncoding-RNA regulatory machinery in intervertebral disc degeneration: a narrative review , 2020, Arthritis Research & Therapy.
[29] Xigao Cheng,et al. Comprehensive evaluation of differential long non-coding RNA and gene expression in patients with cartilaginous endplate degeneration of cervical vertebra , 2020, Experimental and therapeutic medicine.
[30] Qingxin Wang,et al. CircCDK14 protects against Osteoarthritis by sponging miR-125a-5p and promoting the expression of Smad2 , 2020, Theranostics.
[31] Li Li,et al. LEF1 mediates osteoarthritis progression through circRNF121/miR-665/MYD88 axis via NF-кB signaling pathway , 2020, Cell Death & Disease.
[32] Haoying Yu,et al. Circular RNAs: Promising Molecular Biomarkers of Human Aging-Related Diseases via Functioning as an miRNA Sponge , 2020, Molecular therapy. Methods & clinical development.
[33] Ling-Ling Chen. The expanding regulatory mechanisms and cellular functions of circular RNAs , 2020, Nature Reviews Molecular Cell Biology.
[34] Jiasheng Xu,et al. Combining Bioinformatics Techniques to Study Diabetes Biomarkers and Related Molecular Mechanisms , 2020, Frontiers in Genetics.
[35] Wei-Yu Lu,et al. Long non-coding RNA MALAT1 promotes high glucose-induced rat cartilage endplate cell apoptosis via the p38/MAPK signalling pathway , 2020, Molecular medicine reports.
[36] Mei-Sheng Xiao,et al. Biogenesis and Functions of Circular RNAs Come into Focus. , 2020, Trends in cell biology.
[37] Yiping Zhu,et al. miR-223-3p promotes cell proliferation and invasion by targeting Arid1a in gastric cancer. , 2020, Acta biochimica et biophysica Sinica.
[38] Liang Xiao,et al. circRNA_0058097 promotes tension‐induced degeneration of endplate chondrocytes by regulating HDAC4 expression through sponge adsorption of miR‐365a‐5p , 2020, Journal of cellular biochemistry.
[39] B. Minghelli. Musculoskeletal spine pain in adolescents: Epidemiology of non-specific neck and low back pain and risk factors. , 2019, Journal of orthopaedic science : official journal of the Japanese Orthopaedic Association.
[40] Lihua Jiang,et al. Immunity-associated long non-coding RNA and expression in response to bacterial infection in large yellow croaker (Larimichthys crocea). , 2019, Fish & shellfish immunology.
[41] Liao-Jun Sun,et al. Inhibition of EZH2 ameliorates cartilage endplate degeneration and attenuates the progression of intervertebral disc degeneration via demethylation of Sox-9 , 2019, EBioMedicine.
[42] Wenjie Gao,et al. lncRNA/circRNA-miRNA-mRNA ceRNA network in lumbar intervertebral disc degeneration , 2019, Molecular medicine reports.
[43] Jianping Chen,et al. The Role of Exosomal MicroRNAs in the Tumor Microenvironment of Breast Cancer , 2019, International journal of molecular sciences.
[44] Ming Zhang,et al. Inhibition of both endplate nutritional pathways results in intervertebral disc degeneration in a goat model , 2019, Journal of Orthopaedic Surgery and Research.
[45] A. Belli,et al. Small Non-coding RNAs: New Class of Biomarkers and Potential Therapeutic Targets in Neurodegenerative Disease , 2019, Front. Genet..
[46] Pui Yan Yeung,et al. Revealing lncRNA Structures and Interactions by Sequencing-Based Approaches. , 2019, Trends in biochemical sciences.
[47] Xiao-Tao Wu,et al. Preclinical development of a microRNA-based therapy for intervertebral disc degeneration , 2018, Nature Communications.
[48] Wei Lu,et al. High glucose‐induced excessive reactive oxygen species promote apoptosis through mitochondrial damage in rat cartilage endplate cells , 2018, Journal of orthopaedic research : official publication of the Orthopaedic Research Society.
[49] Liang Xiao,et al. TGF‐β/SMAD signaling inhibits intermittent cyclic mechanical tension‐induced degeneration of endplate chondrocytes by regulating the miR‐455‐5p/RUNX2 axis , 2018, Journal of cellular biochemistry.
[50] Xiang Li,et al. The Biogenesis, Functions, and Challenges of Circular RNAs. , 2018, Molecular cell.
[51] Yan Peng,et al. Melatonin‐mediated miR‐526b‐3p and miR‐590‐5p upregulation promotes chondrogenic differentiation of human mesenchymal stem cells , 2018, Journal of pineal research.
[52] W. Wu,et al. Long non‐coding RNAs in nucleus pulposus cell function and intervertebral disc degeneration , 2018, Cell proliferation.
[53] Cristina Maria Nunes Cabral,et al. Cost-effectiveness of exercise therapy in the treatment of non-specific neck pain and low back pain: a systematic review with meta-analysis , 2018, British Journal of Sports Medicine.
[54] Wei Chen,et al. [Long non-coding RNA for metabolism of bone tissue]. , 2018, Zhongguo gu shang = China journal of orthopaedics and traumatology.
[55] Joseph S. Cheng,et al. Degenerative Cervical Myelopathy: A Clinical Review , 2018, The Yale journal of biology and medicine.
[56] Yue Zhou,et al. Intermittent cyclic mechanical tension altered the microRNA expression profile of human cartilage endplate chondrocytes , 2018, Molecular medicine reports.
[57] W. Lu,et al. Long non‑coding RNA FAF1 promotes intervertebral disc degeneration by targeting the Erk signaling pathway. , 2017, Molecular medicine reports.
[58] D. Krakow,et al. Genes uniquely expressed in human growth plate chondrocytes uncover a distinct regulatory network , 2017, BMC Genomics.
[59] B. Liu,et al. Protective effect of estrogen against intervertebral disc degeneration is attenuated by miR-221 through targeting estrogen receptor , 2017 .
[60] David R. Kelley,et al. lncRNA requirements for mouse acute myeloid leukemia and normal differentiation , 2017, eLife.
[61] Fang He,et al. MiR‐29b‐3p promotes chondrocyte apoptosis and facilitates the occurrence and development of osteoarthritis by targeting PGRN , 2017, Journal of cellular and molecular medicine.
[62] G. Giannelli,et al. Non-coding RNAs, the Trojan horse in two-way communication between tumor and stroma in colorectal and hepatocellular carcinoma , 2017, Oncotarget.
[63] Wei Yang,et al. lncRNAs: novel players in intervertebral disc degeneration and osteoarthritis , 2016, Cell proliferation.
[64] D. Corey,et al. Non-coding RNAs as drug targets , 2016, Nature Reviews Drug Discovery.
[65] A. Morillon,et al. History, Discovery, and Classification of lncRNAs. , 2017, Advances in experimental medicine and biology.
[66] B. Erman,et al. Long noncoding RNA (lincRNA), a new paradigm in gene expression control , 2016, Functional & Integrative Genomics.
[67] R. Härtl,et al. Biological Treatment Approaches for Degenerative Disc Disease: A Review of Clinical Trials and Future Directions , 2016, Cureus.
[68] A. Fatica,et al. Non-coding RNAs in muscle differentiation and musculoskeletal disease. , 2016, The Journal of clinical investigation.
[69] You-hong Cui,et al. Matrix stiffness promotes cartilage endplate chondrocyte calcification in disc degeneration via miR-20a targeting ANKH expression , 2016, Scientific Reports.
[70] R. Agius,et al. Bone mineral density and intervertebral disc height in type 2 diabetes. , 2016, Journal of diabetes and its complications.
[71] Caiguo Zhang,et al. Molecular mechanisms of cell death in intervertebral disc degeneration (Review) , 2016, International journal of molecular medicine.
[72] I. Han,et al. Transplantation of human Wharton’s jelly-derived mesenchymal stem cells highly expressing TGFβ receptors in a rabbit model of disc degeneration , 2015, Stem Cell Research & Therapy.
[73] E. Irvin,et al. Massage for low-back pain. , 2015, The Cochrane database of systematic reviews.
[74] Steven J. M. Jones,et al. MEG3 long noncoding RNA regulates the TGF-β pathway genes through formation of RNA–DNA triplex structures , 2015, Nature Communications.
[75] Stephanie L. Miller,et al. Alterations in intervertebral disc composition, matrix homeostasis and biomechanical behavior in the UCD‐T2DM rat model of type 2 diabetes , 2015, Journal of orthopaedic research : official publication of the Orthopaedic Research Society.
[76] Xi-lei Li,et al. Establishment of intervertebral disc degeneration model induced by ischemic sub-endplate in rat tail. , 2015, The spine journal : official journal of the North American Spine Society.
[77] W. Yuan,et al. MiR-34a promotes Fas-mediated cartilage endplate chondrocyte apoptosis by targeting Bcl-2 , 2015, Molecular and Cellular Biochemistry.
[78] G. Brüggemann,et al. Effects of Cyclic Tensile Strain on Chondrocyte Metabolism: A Systematic Review , 2015, PloS one.
[79] Xiang-Yang Wang,et al. Effects of shear force on intervertebral disc: an in vivo rabbit study , 2015, European Spine Journal.
[80] Alexander F. Palazzo,et al. Non-coding RNA: what is functional and what is junk? , 2015, Front. Genet..
[81] L. Patrushev,et al. Functions of noncoding sequences in mammalian genomes , 2014, Biochemistry (Moscow).
[82] W. Gu,et al. Simulation of the Progression of Intervertebral Disc Degeneration Due to Decreased Nutritional Supply , 2014, Spine.
[83] Zhen Sun,et al. Aberrantly expressed long noncoding RNAs in human intervertebral disc degeneration: a microarray related study , 2014, Arthritis Research & Therapy.
[84] E. de Nadal,et al. A novel role for lncRNAs in cell cycle control during stress adaptation , 2014, Current Genetics.
[85] N. Sharpless,et al. Detecting and characterizing circular RNAs , 2014, Nature Biotechnology.
[86] J. Niinimäki,et al. Vertebral endplate change as a feature of intervertebral disc degeneration: a heritability study , 2014, European Spine Journal.
[87] Steffen Ringgaard,et al. Interference in the endplate nutritional pathway causes intervertebral disc degeneration in an immature porcine model , 2014, International Orthopaedics.
[88] Y. Toyama,et al. Prevalence and characteristics of chronic musculoskeletal pain in Japan: A second survey of people with or without chronic pain , 2014, Journal of orthopaedic science : official journal of the Japanese Orthopaedic Association.
[89] Xia Li,et al. Acid-sensing ion channel 1a-mediated calcium influx regulates apoptosis of endplate chondrocytes in intervertebral discs , 2014, Expert opinion on therapeutic targets.
[90] Lu Cao,et al. Ovarian Cancer G protein‐Coupled Receptor 1 Is Involved in Acid‐Induced Apoptosis of Endplate Chondrocytes in Intervertebral Discs , 2014, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[91] A. Fatica,et al. Long non-coding RNAs: new players in cell differentiation and development , 2013, Nature Reviews Genetics.
[92] J. Yang,et al. Profiling circulating microRNA expression in a mouse model of nerve allotransplantation , 2013, Journal of Biomedical Science.
[93] G. Calin,et al. MicroRNAs and cancer therapy - from bystanders to major players. , 2013, Current medicinal chemistry.
[94] M. Kitagawa,et al. Cell cycle regulation by long non-coding RNAs , 2013, Cellular and Molecular Life Sciences.
[95] F. Guilak,et al. Mechanical regulation of chondrogenesis , 2013, Stem Cell Research & Therapy.
[96] M. Battié,et al. ISSLS Prize Winner: Lumbar Vertebral Endplate Lesions Associations With Disc Degeneration and Back Pain History , 2012, Spine.
[97] S. Lawler,et al. Micro-RNA dysregulation in multiple sclerosis favours pro-inflammatory T-cell-mediated autoimmunity. , 2011, Brain : a journal of neurology.
[98] Yongjun Wang,et al. Prolonged Upright Posture Induces Calcified Hypertrophy in the Cartilage End Plate in Rat Lumbar Spine , 2011, Spine.
[99] J. García-Sancho,et al. Intervertebral Disc Repair by Autologous Mesenchymal Bone Marrow Cells: A Pilot Study , 2011, Transplantation.
[100] Y. Toyama,et al. Prevalence and characteristics of chronic musculoskeletal pain in Japan , 2011, Journal of orthopaedic science : official journal of the Japanese Orthopaedic Association.
[101] T. Spector,et al. Lumbar disc degeneration and genetic factors are the main risk factors for low back pain in women: the UK Twin Spine Study , 2011, Annals of the rheumatic diseases.
[102] W. Assendelft,et al. Spinal Manipulative Therapy for Chronic Low-Back Pain: An Update of a Cochrane Review , 2011, Spine.
[103] K. Cheung,et al. A population-based study of juvenile disc degeneration and its association with overweight and obesity, low back pain, and diminished functional status. , 2011, The Journal of bone and joint surgery. American volume.
[104] W. Filipowicz,et al. The widespread regulation of microRNA biogenesis, function and decay , 2010, Nature Reviews Genetics.
[105] Anita Gross,et al. Manual therapy and exercise for neck pain: a systematic review. , 2010, Manual therapy.
[106] Bart W. Koes,et al. A systematic review on the effectiveness of physical and rehabilitation interventions for chronic non-specific low back pain , 2010, European Spine Journal.
[107] S. Tregear,et al. Long-term opioid management for chronic noncancer pain. , 2010, The Cochrane database of systematic reviews.
[108] M. Ravenek,et al. A systematic review of multidisciplinary outcomes in the management of chronic low back pain. , 2010, Work.
[109] L. Nordholm,et al. Responsibility for managing musculoskeletal disorders – A cross-sectional postal survey of attitudes , 2008, BMC musculoskeletal disorders.
[110] C. McCabe,et al. Does aquatic exercise relieve pain in adults with neurologic or musculoskeletal disease? A systematic review and meta-analysis of randomized controlled trials. , 2008, Archives of physical medicine and rehabilitation.
[111] H. Sprott,et al. Multidisciplinary treatment for chronic pain: a systematic review of interventions and outcomes. , 2008, Rheumatology.
[112] R. Bank,et al. Adipose stem cells for intervertebral disc regeneration: current status and concepts for the future , 2008, Journal of cellular and molecular medicine.
[113] J. Caro,et al. A systematic review of low back pain cost of illness studies in the United States and internationally. , 2008, The spine journal : official journal of the North American Spine Society.
[114] C. V. van Donkelaar,et al. Inhibition of vertebral endplate perfusion results in decreased intervertebral disc intranuclear diffusive transport , 2007, Journal of anatomy.
[115] Roger Chou,et al. Medications for Acute and Chronic Low Back Pain: A Review of the Evidence for an American Pain Society/American College of Physicians Clinical Practice Guideline , 2007, Annals of Internal Medicine.
[116] J. Keating,et al. Unloaded movement facilitation exercise compared to no exercise or alternative therapy on outcomes for people with nonspecific chronic low back pain: a systematic review. , 2007, Journal of manipulative and physiological therapeutics.
[117] V. Ambros,et al. The regulation of genes and genomes by small RNAs , 2007, Development.
[118] J. V. van Eijk,et al. The Long-term Effect of Multidisciplinary Back Training: A Systematic Review , 2007, Spine.
[119] D. Knol,et al. Changes in the incidence of occupational disability as a result of back and neck pain in the Netherlands , 2006, BMC public health.
[120] S. A. Shirazi-Adl,et al. Nutrient supply and intervertebral disc metabolism. , 2006, The Journal of bone and joint surgery. American volume.
[121] S. M. Haufe,et al. Intradiscal injection of hematopoietic stem cells in an attempt to rejuvenate the intervertebral discs. , 2006, Stem cells and development.
[122] H. Mitani,et al. Stepwise mechanical stretching inhibits chondrogenesis through cell-matrix adhesion mediated by integrins in embryonic rat limb-bud mesenchymal cells. , 2005, European journal of cell biology.
[123] P. Roughley. Biology of Intervertebral Disc Aging and Degeneration: Involvement of the Extracellular Matrix , 2004, Spine.
[124] S. Rajasekaran,et al. ISSLS Prize Winner: A Study of Diffusion in Human Lumbar Discs: A Serial Magnetic Resonance Imaging Study Documenting the Influence of the Endplate on Diffusion in Normal and Degenerate Discs , 2004, Spine.
[125] R. Moore,et al. Topical NSAIDs for chronic musculoskeletal pain: systematic review and meta-analysis , 2004, BMC musculoskeletal disorders.
[126] W. Hutton,et al. The Effect of Blocking a Nutritional Pathway to the Intervertebral Disc in the Dog Model , 2004, Journal of spinal disorders & techniques.
[127] J. Mattick. Non‐coding RNAs: the architects of eukaryotic complexity , 2001, EMBO reports.
[128] A. Dillner,et al. Analgesic effectiveness of subcutaneous carbon-dioxide insufflations as an adjunct treatment in patients with non-specific neck or low back pain. , 2001, Complementary therapies in medicine.
[129] R. Deyo,et al. Nonsteroidal Anti-Inflammatory Drugs for Low Back Pain: An Updated Cochrane Review , 2008, The Cochrane database of systematic reviews.
[130] A. Gray,et al. The economic burden of back pain in the UK , 1999, Pain.
[131] B. Peng,et al. [The relationship between cartilage end-plate calcification and disc degeneration: an experimental study]. , 1999, Zhonghua wai ke za zhi [Chinese journal of surgery].
[132] Lex M Bouter,et al. Cost-of-illness of neck pain in The Netherlands in 1996 , 1999, Pain.
[133] M. Ares,et al. Synthesis of circular RNA in bacteria and yeast using RNA cyclase ribozymes derived from a group I intron of phage T4. , 1994, Proceedings of the National Academy of Sciences of the United States of America.
[134] Peter Goodfellow,et al. Circular transcripts of the testis-determining gene Sry in adult mouse testis , 1993, Cell.
[135] W. Cats-Baril,et al. An overview of the incidences and costs of low back pain. , 1991, The Orthopedic clinics of North America.
[136] H. Schellekens,et al. The hepatitis delta (delta) virus possesses a circular RNA. , 1986, Nature.
[137] K. Ogata,et al. Nutritional Pathways of the Intervertebral Disc: An Experimental Study Using Hydrogen Washout Technique , 1981, Spine.
[138] T. Cech,et al. The intervening sequence of the ribosomal RNA precursor is converted to a circular RNA in isolated nuclei of tetrahymena , 1981, Cell.
[139] M. Coca-Prados,et al. Electron microscopic evidence for the circular form of RNA in the cytoplasm of eukaryotic cells , 1979, Nature.
[140] A. Maroudas,et al. Diffusion of small solutes into the intervertebral disc: as in vivo study. , 1978, Biorheology.
[141] D. Riesner,et al. Viroids are single-stranded covalently closed circular RNA molecules existing as highly base-paired rod-like structures. , 1976, Proceedings of the National Academy of Sciences of the United States of America.