MiRNA profiling of whole trabecular bone: identification of osteoporosis-related changes in MiRNAs in human hip bones

被引:85
作者
De-Ugarte, Laura [1 ]
Yoskovitz, Guy [1 ]
Balcells, Susana [2 ]
Gueerri-Fernandez, Robert [1 ,3 ]
Martinez-Diaz, Santos [4 ]
Mellibovsky, Leonardo [1 ,3 ]
Urreizti, Roser [2 ]
Nogues, Xavier [1 ,3 ]
Grinberg, Daniel [2 ]
Garcia-Giralt, Natalia [1 ]
Diez-Perez, Adolfo [1 ,3 ]
机构
[1] IMIM Hosp del Mar Med Res Inst, Musculoskeletal Res Grp, ISCIII, Red Temat Invest Cooperat Envejecimiento & Fragil, Barcelona, Spain
[2] Univ Barcelona, CIBERER, Dept Genet, ISCIII,IBUB, Barcelona, Spain
[3] Univ Autonoma Barcelona, Hosp del Mar, Internal Med Dept, E-08193 Barcelona, Spain
[4] Univ Autonoma Barcelona, Hosp del Mar, Orthopaed Surg & Traumatol Dept, E-08193 Barcelona, Spain
关键词
Osteoporosis; microRNAs; Osteoblast; Fracture; Epigenetic regulation; CELLS; EXPRESSION; DIFFERENTIATION; TRANSCRIPTION; HOMEOSTASIS; MICRORNAS; CARTILAGE; DISEASE; MIR-483; GENE;
D O I
10.1186/s12920-015-0149-2
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
Background: MicroRNAs (miRNAs) are important regulators of gene expression, with documented roles in bone metabolism and osteoporosis, suggesting potential therapeutic targets. Our aim was to identify miRNAs differentially expressed in fractured vs nonfractured bones. Additionally, we performed a miRNA profiling of primary osteoblasts to assess the origin of these differentially expressed miRNAs. Methods: Total RNA was extracted from (a) fresh femoral neck trabecular bone from women undergoing hip replacement due to either osteoporotic fracture (OP group, n = 6) or osteoarthritis in the absence of osteoporosis (Control group, n = 6), matching the two groups by age and body mass index, and (b) primary osteoblasts obtained from knee replacement due to osteoarthritis (n = 4). Samples were hybridized to a microRNA array containing more than 1900 miRNAs. Principal component analysis (PCA) plots and heat map hierarchical clustering were performed. For comparison of expression levels, the threshold was set at log fold change > 1.5 and a p-value < 0.05 (corrected for multiple testing). Results: Both PCA and heat map analyses showed that the samples clustered according to the presence or absence of fracture. Overall, 790 and 315 different miRNAs were detected in fresh bone samples and in primary osteoblasts, respectively, 293 of which were common to both groups. A subset of 82 miRNAs was differentially expressed (p < 0.05) between osteoporotic and control osteoarthritic samples. The eight miRNAs with the lowest p-values (and for which a validated miRNA qPCR assay was available) were assayed, and two were confirmed: miR-320a and miR-483-5p. Both were over-expressed in the osteoporotic samples and expressed in primary osteoblasts. miR-320a is known to target CTNNB1 and predicted to regulate RUNX2 and LEPR, while miR-483-5p down-regulates IGF2. We observed a reduction trend for this target gene in the osteoporotic bone. Conclusions: We identified two osteoblast miRNAs over-expressed in osteoporotic fractures, which opens novel prospects for research and therapy.
引用
收藏
页数:11
相关论文
共 30 条
[1]   WNT signaling in bone homeostasis and disease: from human mutations to treatments [J].
Baron, Roland ;
Kneissel, Michaela .
NATURE MEDICINE, 2013, 19 (02) :179-192
[2]   CONTROLLING THE FALSE DISCOVERY RATE - A PRACTICAL AND POWERFUL APPROACH TO MULTIPLE TESTING [J].
BENJAMINI, Y ;
HOCHBERG, Y .
JOURNAL OF THE ROYAL STATISTICAL SOCIETY SERIES B-STATISTICAL METHODOLOGY, 1995, 57 (01) :289-300
[3]   STAT3-dependent transactivation of miRNA genes following Toxoplasma gondii infection in macrophage [J].
Cai, Yihong ;
Chen, He ;
Jin, Lei ;
You, Yibo ;
Shen, Jilong .
PARASITES & VECTORS, 2013, 6
[4]   Alteration of the microRNA expression profile in human osteosarcoma cells transfected with APE1 siRNA [J].
Dai, N. ;
Zhong, Z. Y. ;
Cun, Y. P. ;
Qing, Y. ;
Chen, Ch. ;
Jiang, P. ;
Li, M. X. ;
Wang, D. .
NEOPLASMA, 2013, 60 (04) :384-394
[5]   Characterization of microRNA expression profiles in normal and osteoarthritic human chondrocytes [J].
Diaz-Prado, Silvia ;
Cicione, Claudia ;
Muinos-Lopez, Emma ;
Hermida-Gomez, Tamara ;
Oreiro, Natividad ;
Fernandez-Lopez, Carlos ;
Blanco, Francisco J. .
BMC MUSCULOSKELETAL DISORDERS, 2012, 13
[6]   Analysis of the Bone MicroRNome in Osteoporotic Fractures [J].
Garmilla-Ezquerra, Pablo ;
Sanudo, Carolina ;
Delgado-Calle, Jesus ;
Perez-Nunez, Maria I. ;
Sumillera, Manuel ;
Riancho, Jose A. .
CALCIFIED TISSUE INTERNATIONAL, 2015, 96 (01) :30-37
[7]   miR-30c-1*promotes natural killer cell cytotoxicity against human hepatoma cells by targeting the transcription factor HMBOX1 [J].
Gong, Jiuyu ;
Liu, Rongrong ;
Zhuang, Ran ;
Zhang, Yun ;
Fang, Liang ;
Xu, Zhuwei ;
Jin, Liang ;
Wang, Tao ;
Song, Chaojun ;
Yang, Kun ;
Wei, Yuying ;
Yang, Angang ;
Jin, Boquan ;
Chen, Lihua .
CANCER SCIENCE, 2012, 103 (04) :645-652
[8]   From Stem Cells to Bone: Phenotype Acquisition, Stabilization, and Tissue Engineering in Animal Models [J].
Gordeladze, Jan O. ;
Reseland, Janne E. ;
Duroux-Richard, Isabelle ;
Apparailly, Florence ;
Jorgensen, Christian .
ILAR JOURNAL, 2010, 51 (01) :42-61
[9]   The role of microRNAs in self-renewal and differentiation of mesenchymal stem cells [J].
Guo, Ling ;
Zhao, Robert C. H. ;
Wu, Yaojiong .
EXPERIMENTAL HEMATOLOGY, 2011, 39 (06) :608-616
[10]   microRNA-320/RUNX2 axis regulates adipocytic differentiation of human mesenchymal (skeletal) stem cells [J].
Hamam, D. ;
Ali, D. ;
Vishnubalaji, R. ;
Hamam, R. ;
Al-Nbaheen, M. ;
Chen, L. ;
Kassem, M. ;
Aldahmash, A. ;
Alajez, N. M. .
CELL DEATH & DISEASE, 2014, 5 :e1499-e1499