Osteoarthritis Bone Marrow Lesions.
暂无分享,去创建一个
A. Guermazi | D. Hunter | D. Walsh | N. Sofat
[1] D. Hunter,et al. Synovitis mediates the association between bone marrow lesions and knee pain in osteoarthritis: data from the Foundation for the National Institute of Health (FNIH) Osteoarthritis Biomarkers Consortium. , 2022, Osteoarthritis and Cartilage.
[2] N. Lane,et al. Synovial inflammation in osteoarthritis progression , 2022, Nature Reviews Rheumatology.
[3] D. McWilliams,et al. The osteoarthritis bone score (OABS): a new histological scoring system for the characterisation of bone marrow lesions in osteoarthritis , 2022, Osteoarthritis and cartilage.
[4] F. Jakob,et al. Efficacy of Zoledronic Acid in the Treatment of Nonmalignant Painful Bone Marrow Lesions: A Triple‐Blind, Randomized, Placebo‐Controlled Phase III Clinical Trial (ZoMARS) , 2021, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[5] L. Laslett,et al. Intravenous bisphosphonates do not improve knee pain or bone marrow lesions in people with knee osteoarthritis: a meta-analysis. , 2021, Rheumatology.
[6] D. Felson,et al. Assessment of bone marrow oedema-like lesions using MRI in patellofemoral knee osteoarthritis: comparison of different MRI pulse sequences , 2021, The British journal of radiology.
[7] J. Jaremko,et al. The OMERACT Knee Inflammation MRI Scoring System: Validation of quantitative methodologies and tri-compartmental overlays in osteoarthritis. , 2021, Seminars in arthritis and rheumatism.
[8] C. Centeno,et al. The Treatment of Bone Marrow Lesions Associated with Advanced Knee Osteoarthritis: Comparing Intraosseous and Intraarticular Injections with Bone Marrow Concentrate and Platelet Products. , 2021, Pain physician.
[9] K. Aso,et al. Comparison of Predisposing Factors Between Pain on Walking and Pain at Rest in Patients with Knee Osteoarthritis , 2021, Journal of pain research.
[10] H. Choi,et al. The Fate of Bone Marrow Lesions After Open Wedge High Tibial Osteotomy: A Comparison Between Knees With Primary Osteoarthritis and Subchondral Insufficiency Fractures , 2021, The American journal of sports medicine.
[11] F. Eckstein,et al. Presence of Magnetic Resonance Imaging–Defined Inflammation Particularly in Overweight and Obese Women Increases Risk of Radiographic Knee Osteoarthritis: The POMA Study , 2021, Arthritis care & research.
[12] M. Henriksen,et al. The effect of exercise therapy on inflammatory activity assessed by MRI in knee osteoarthritis: Secondary outcomes from a randomized controlled trial. , 2021, The Knee.
[13] F. Cicuttini,et al. The association between change in bone marrow lesion size and change in tibiofemoral cartilage volume and knee symptoms. , 2020, Rheumatology.
[14] D. Walsh,et al. Association of subchondral bone marrow lesion localization with weight-bearing pain in people with knee osteoarthritis: data from the Osteoarthritis Initiative , 2020, Arthritis Research & Therapy.
[15] A. Guermazi,et al. Association of knee OA structural phenotypes to risk for progression: a secondary analysis from the Foundation for National Institutes of Health Osteoarthritis Biomarkers study (FNIH). , 2020, Osteoarthritis and cartilage.
[16] F. Cicuttini,et al. Effect of Intravenous Zoledronic Acid on Tibiofemoral Cartilage Volume Among Patients With Knee Osteoarthritis With Bone Marrow Lesions: A Randomized Clinical Trial. , 2020, JAMA.
[17] C. Kwoh,et al. MRI-based screening for structural definition of eligibility in clinical DMOAD trials: Rapid OsteoArthritis MRI Eligibility Score (ROAMES). , 2020, Osteoarthritis and cartilage.
[18] H. Pang,et al. Subchondroplasty for Bone Marrow Lesions in the Arthritic Knee Results in Pain Relief and Improvement in Function , 2019, The Journal of Knee Surgery.
[19] C. Cooper,et al. Central Sensitization in Knee Osteoarthritis: Relating Presurgical Brainstem Neuroimaging and PainDETECT‐Based Patient Stratification to Arthroplasty Outcome , 2019, Arthritis & rheumatology.
[20] F. Cicuttini,et al. Bone matrix microdamage and vascular changes characterize bone marrow lesions in the subchondral bone of knee osteoarthritis. , 2018, Bone.
[21] F. Howe,et al. Microarray analysis of bone marrow lesions in osteoarthritis demonstrates upregulation of genes implicated in osteochondral turnover, neurogenesis and inflammation , 2017, Annals of the rheumatic diseases.
[22] D. Walsh,et al. Pain prediction by serum biomarkers of bone turnover in people with knee osteoarthritis: an observational study of TRAcP5b and cathepsin K in OA. , 2017, Osteoarthritis and cartilage.
[23] J. Jaremko,et al. Preliminary validation of the Knee Inflammation MRI Scoring System (KIMRISS) for grading bone marrow lesions in osteoarthritis of the knee: data from the Osteoarthritis Initiative , 2017, RMD Open.
[24] L. Price,et al. Magnetic Resonance Image Sequence Influences the Relationship between Bone Marrow Lesions Volume and Pain: Data from the Osteoarthritis Initiative , 2015, BioMed research international.
[25] F. Cicuttini,et al. Association of patellar bone marrow lesions with knee pain, patellar cartilage defect and patellar cartilage volume loss in older adults: a cohort study. , 2015, Osteoarthritis and cartilage.
[26] D. M. van der Heijde,et al. Increasing synovitis and bone marrow lesions are associated with incident joint tenderness in hand osteoarthritis , 2015, Annals of the rheumatic diseases.
[27] D. Beckwée,et al. The Influence of Joint Loading on Bone Marrow Lesions in the Knee , 2015, The American journal of sports medicine.
[28] D. Felson,et al. A randomised trial of a brace for patellofemoral osteoarthritis targeting knee pain and bone marrow lesions , 2015, Annals of the rheumatic diseases.
[29] F. Cicuttini,et al. Association of obesity and systemic factors with bone marrow lesions at the knee: a systematic review. , 2014, Seminars in arthritis and rheumatism.
[30] J. Raynauld,et al. Disease-modifying effect of strontium ranelate in a subset of patients from the Phase III knee osteoarthritis study SEKOIA using quantitative MRI: reduction in bone marrow lesions protects against cartilage loss , 2013, Annals of the rheumatic diseases.
[31] Jincheng Pang,et al. Evaluation of bone marrow lesion volume as a knee osteoarthritis biomarker - longitudinal relationships with pain and structural changes: data from the Osteoarthritis Initiative , 2013, Arthritis Research & Therapy.
[32] M. Henriksen,et al. Changes in bone marrow lesions in response to weight-loss in obese knee osteoarthritis patients: a prospective cohort study , 2013, BMC Musculoskeletal Disorders.
[33] M. Nevitt,et al. Predictive validity of within-grade scoring of longitudinal changes of MRI-based cartilage morphology and bone marrow lesion assessment in the tibio-femoral joint--the MOST study. , 2012, Osteoarthritis and cartilage.
[34] Scott D. Martin,et al. The MeTeOR trial (Meniscal Tear in Osteoarthritis Research): rationale and design features. , 2012, Contemporary clinical trials.
[35] D. Walsh,et al. Mechanisms and targets of angiogenesis and nerve growth in osteoarthritis , 2012, Nature Reviews Rheumatology.
[36] L. Laslett,et al. Zoledronic acid reduces knee pain and bone marrow lesions over 1 year: a randomised controlled trial , 2012, Annals of the rheumatic diseases.
[37] C. Kwoh,et al. Semiquantitative assessment of subchondral bone marrow edema-like lesions and subchondral cysts of the knee at 3T MRI: A comparison between intermediate-weighted fat-suppressed spin echo and Dual Echo Steady State sequences , 2011, BMC musculoskeletal disorders.
[38] R. Boudreau,et al. Evolution of semi-quantitative whole joint assessment of knee OA: MOAKS (MRI Osteoarthritis Knee Score). , 2011, Osteoarthritis and cartilage.
[39] Ali Guermazi,et al. Fluctuation of knee pain and changes in bone marrow lesions, effusions, and synovitis on magnetic resonance imaging. , 2011, Arthritis and rheumatism.
[40] F. Cicuttini,et al. Bone marrow lesions in people with knee osteoarthritis predict progression of disease and joint replacement: a longitudinal study. , 2010, Rheumatology.
[41] G. Zhai,et al. Bone marrow lesions predict site-specific cartilage defect development and volume loss: a prospective study in older adults , 2010, Arthritis Research & Therapy.
[42] T. Huizinga,et al. Do knee abnormalities visualised on MRI explain knee pain in knee osteoarthritis? A systematic review , 2010, Annals of the rheumatic diseases.
[43] Johanne Martel-Pelletier,et al. Relationship between bone marrow lesions, cartilage loss and pain in knee osteoarthritis: results from a randomised controlled clinical trial using MRI , 2010, Annals of the rheumatic diseases.
[44] D. Walsh,et al. Angiogenesis and nerve growth factor at the osteochondral junction in rheumatoid arthritis and osteoarthritis , 2010, Rheumatology.
[45] S. Goldring,et al. Articular cartilage and subchondral bone in the pathogenesis of osteoarthritis , 2010, Annals of the New York Academy of Sciences.
[46] A Guermazi,et al. MRI-detected subchondral bone marrow signal alterations of the knee joint: terminology, imaging appearance, relevance and radiological differential diagnosis. , 2009, Osteoarthritis and cartilage.
[47] M. Nevitt,et al. Change in MRI-detected subchondral bone marrow lesions is associated with cartilage loss: the MOST Study. A longitudinal multicentre study of knee osteoarthritis , 2008, Annals of the rheumatic diseases.
[48] D. English,et al. The natural history of bone marrow lesions in community-based adults with no clinical knee osteoarthritis , 2008, Annals of the rheumatic diseases.
[49] J. Bloem,et al. Bone marrow edema-like lesions change in volume in the majority of patients with osteoarthritis; associations with clinical features , 2007, European Radiology.
[50] Ali Guermazi,et al. Increase in bone marrow lesions associated with cartilage loss: a longitudinal magnetic resonance imaging study of knee osteoarthritis. , 2006, Arthritis and rheumatism.
[51] L. Kazis,et al. The Association of Bone Marrow Lesions with Pain in Knee Osteoarthritis , 2001, Annals of Internal Medicine.