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.
Objetivos: Identificar microRNAs (miRNAs) diferencialmente expresados en muestras óseas con fractura osteoporótica respecto a huesos sanos.Material y métodos: Se extrajo RNA total a partir de hueso trabecular fresco del cuello femoral de mujeres sometidas a reemplazo de cadera, ya sea debido a fractura osteoporótica (n=6) o por artrosis en ausencia de osteoporosis (según la DMO) (n=6). Las muestras se hibridaron en un array de miRNAs y se realizaron diagramas de PCA y de mapa de calor. Para la comparación de los niveles de expresión, se fijó como significativo un umbral de cambio de >1,5 veces y un valor p<0,05 en la t de Student (corregido para múltiples pruebas). Resultados: Tanto los análisis de PCA como el mapa de calor mostraron una agrupación de las muestras según si eran de fractura o no. Se detectaron 790 miRNAs en las muestras de hueso, 82 de los cuales estaban alterados en las muestras osteoporóticas. Tras la validación en otro panel de 6 muestras osteoporóticas y 6 no osteoporóticas mediante PCR a tiempo real de los miRNAs más significativos, y para los que existía un ensayo disponible, se confirmaron los miRNAs miR-320a y miR-22-3p. Estos dos miRNAs se detectaron en cultivos de osteoblastos primarios, aunque no mantenían el mismo patrón de expresión que en las muestras de hueso total. Conclusiones: Hemos demostrado que existen diferencias en la expresión de miRNAs en muestras con fractura osteoporótica, lo que abre nuevas perspectivas para la investigación y diseño de nuevas terapias.
Objectives: To identify microRNAs (miRNAs) differentially expressed in bone samples with osteoporotic fracture compared with healthy bones. Methods: Total RNA was extracted from fresh trabecular bone of the femoral neck of women undergoing hip replacement surgery, either because to osteoporotic fracture (n=6) or in the absence of osteoarthritis osteoporosis (based on BMD) (n=6). The samples were hybridized on an array of miRNAs and PCA diagrams and heat map were made. To compare expression levels, > 1.5 times and a value p<0.05 Student's T test (corrected for multiple testing) was set as a threshold of significant change. Results: Both PCA analysis and the heat map showed a samples grouping whether there was fracture or not. 790 were detected miRNAs in bone samples, 82 of which were altered in the osteoporotic samples. After validation in another panel of 6 samples 6 osteoporotic and non-osteoporotic by PCR real time of the most significant miRNAs, and for which there was a test available, the miRNAs, miR-320a and miR-22-3p were confirmed. These two miRNAs were detected in cultures of primary osteoblasts, although they did not maintain the same pattern of expression in total bone samples. Conclusions: We have shown that there are differences in the expression of miRNAs in samples with osteoporotic fracture. This opens prospects for research and design of new therapies.
The aims of the study were to establish the prevalence of high bone mass (HBM) in a cohort of Spanish postmenopausal women (BARCOS) and to assess the contribution of LRP5 and DKK1 mutations and of common bone mineral density (BMD) variants to a HBM phenotype. Furthermore, we describe the expression of several osteoblast-specific and Wnt-pathway genes in primary osteoblasts from two HBM cases. A 0.6% of individuals (10/1600) displayed Z-scores in the HBM range (sum Z-score >4). While no mutation in the relevant exons of LRP5 was detected, a rare missense change in DKK1 was found (p.Y74F), which cosegregated with the phenotype in a small pedigree. Fifty-five BMD SNPs from Estrada et al. [NatGenet 44:491-501,2012] were genotyped in the HBM cases to obtain risk scores for each individual. In this small group of samples, Z-scores were found inversely related to risk scores, suggestive of a polygenic etiology. There was a single exception, which may be explained by a rare penetrant genetic variant, counterbalancing the additive effect of the risk alleles. The expression analysis in primary osteoblasts from two HBM cases and five controls suggested that IL6R, DLX3, TWIST1 and PPARG are negatively related to Z-score. One HBM case presented with high levels of RUNX2, while the other displayed very low SOX6. In conclusion, we provide evidence of lack of LRP5 mutations and of a putative HBM-causing mutation in DKK1. Additionally, we present SNP genotyping and expression results that suggest additive effects of several genes for HBM.
Searchable abstracts of presentations at key conferences on calcified tissues ISSN 2052-1219 (online)
Objetivos: El sistema RANK/RANKL/OPG está implicado en la determinación de la densidad mineral ósea (DMO) y de la microarquitectura ósea. Nuestro estudio pretende evaluar si existen SNPs en la región 3’UTR del gen RANK asociados con fenotipos osteoporóticos. Material y métodos: Se genotiparon siete variantes genéticas en 1.098 mujeres de la cohorte BARCOS, y se evaluó su asociación con la DMO y las fracturas osteoporóticas. Se testó una interacción con el SNP rs9594738 en el gen RANKL el cual fue previamente asociado con la DMO. Resultados: Ninguno de los SNPs se asoció significativamente con la DMO. El SNP rs78326403 se asoció con fracturas de muñeca/antebrazo (Modelo Log-aditivo odds ratio (OR)=3,12 [IC 95%: 1,69 ; 5,75]; p=7,16×10-4), mientras que el SNP rs884205 se asoció con fracturas de columna vertebral (OR=4,05 Recesivo; [IC 95%: 1,59 ; 10,35]; p=8,24×10-3). Por último, se detectó una interacción entre el SNP rs9594738 del RANKL y el rs78326403 del RANK sobre la prevalencia de fractura (p=0,039). El análisis del efecto de los genotipos compuestos rs9594738 y rs78326403 dio un aumento de la prevalencia de fracturas en sujetos con un mayor número de alelos desfavorables, siendo las OR 2,76 [IC 95%: 1,30 ; 5,81]; p=0,007) y 5,14 [IC 95%: 1,37 ; 15,67]; p=0,007) para 2 y ≥3 alelos desfavorables, respectivamente, en comparación con ninguno/1. Conclusiones: Dos SNPs en el 3’UTR del gen RANK predisponen a la fractura osteoporótica sitio-dependiente. Una interacción con el SNP rs9594738 del RANKL sugiere un efecto aditivo de la DMO y la resistencia ósea.
Atypical femoral fractures (AFF) associated with long-term bisphosphonates (LTB) are a growing concern. Their etiology is unknown, but bone material properties might be deteriorated. In an AFF series, we analyzed the bone material properties by microindentation. Four groups of patients were included: 6 AFF, 38 typical osteoporotic fractures, 6 LTB, and 20 controls without fracture. Neither typical osteoporotic fractures nor controls have received any antiosteoporotic medication. A general laboratory workup, bone densitometry by dual-energy X-ray absorptiometry (DXA), and microindentation testing at the tibia were done in all patients. Total indentation distance (Total ID), indentation distance increase (IDI), and creep indentation distance (Creep ID) were measured (microns). Age-adjusted analysis of covariance (ANCOVA) was used for comparisons. Controls were significantly younger than fracture groups. Bisphosphonate exposure was on average 5.5 years (range 5 to 12 years) for the AFF and 5.4 years (range 5 to 8 years) for the LTB groups. Total ID (microns) showed better material properties (lower Total ID) for controls 36 (+/- 6; mean +/- SD) than for AFF 46 (+/- 4) and for typical femoral fractures 47 (+/- 13), respectively. Patients on LTB showed values between controls and fractures, 38 (+/- 4), although not significantly different from any of the other three groups. IDI values showed a similar pattern 13 (+/- 2), 16 (+/- 6), 19 (+/- 3), and 18 (+/- 5). After adjusting by age, significant differences were seen between controls and typical (p<0.001) and atypical fractures (p = 0.03) for Total ID and for IDI (p<0.001 and p<0.05, respectively). There were no differences in Creep ID between groups. Our data suggest that patients with AFF have a deep deterioration in bone material properties at a tissue level similar to that for the osteoporotic fracture group. The LTB group shows levels that are in between controls and both type of fractures, although not statistically different. These results suggest that bisphosphonate therapy probably does not put the majority of patients at risk for AFF. (C) 2013 American Society for Bone and Mineral Research.
Searchable abstracts of presentations at key conferences on calcified tissues ISSN 2052-1219 (online)
ABSTRACT Over the past decade, many genome-wide association studies (GWAs) and meta-analyses have identified genes and regions involved in osteoporotic phenotypes. Nevertheless, the large majority of these results were not tested at any functional level. GWA-associated single-nucleotide polymorphisms (SNPs) near candidate genes such as RANK and RANKL suggest that these SNPs and/or other variants nearby may be involved in bone phenotype determination. This study focuses on SNPs along these two genes, which encode proteins with a well-established role in the bone remodeling equilibrium. Thirty-three SNPs, chosen for their location in evolutionary conserved regions or replicated from previous studies, were genotyped in the BARCOS cohort of 1061 postmenopausal women and tested for association with osteoporotic phenotypes. SNP rs9594738, which lies 184 kb upstream of the RANKL gene, was the only SNP found to be associated with a bone phenotype (dominant model: beta coefficient = –0.034, p = 1.5 × 10−4, for lumbar spine bone mineral density). Functional experiments exploring a distal region (DR) of 831 bp that harbors this SNP in a centered position (nt 470) demonstrated its capacity to inhibit the RANKL promoter in reporter gene assays. Remarkably, this DR inhibition was significantly reduced in the presence of vitamin D. In conclusion, the GWA-associated SNP rs9594738 lies in a region involved in transcription regulation through which vitamin D could be regulating RANKL expression and bone mineral density. © 2013 American Society for Bone and Mineral Research.
Our results demonstrate DR functionality in the RANKL gene context, with a vitamin D involvement. DisclosuresThe authors state that they have no conflicts of interest.Over the past decade, many GWAs and meta-analyses were performed to identify genes and regions involved in bone metabolism and in the osteoporotic phenotypes.Nevertheless, the majority of these GWAS results were not tested at any functional level.This study aims to find and study functional regions in the Receptor Activator of Nuclear Factor kappa-B (RANK) and its ligand (RANKL) genes that encode well-established proteins in the bone remodeling equilibrium.
Familial dilated cardiomyopathy is a major cause of advanced heart failure and heart transplantation. In most families, the disease-causing mutation is unknown, and relatives should therefore undergo periodic screening to facilitate early diagnosis and therapy. In the present study, we describe a novel titin truncation mutation causing adult-onset familial dilated cardiomyopathy in an Israeli Arab family. The family members underwent physical examination, electrocardiography, and Doppler echocardiography. Linkage to candidate loci was performed, followed by gene sequencing. We identified 13 clinically affected family members (8 men and 5 women, mean age 47 ± 12 years). Compared with their healthy first-degree relatives, the affected relatives had a larger end-diastolic left ventricular dimension (60 ± 10 vs 49 ± 4 mm, p <0.001), lower ejection fraction (43 ± 11% vs 60 ± 6%, p <0.001), and markedly higher end-systolic volume indexes but no difference in wall thickness or diastolic function. The linkage studies or direct sequencing excluded LMNA, MYH7, TNNT2, TNNI3, SCN5A, DES, SGCD, ACTC, PLN, and MYH6 but established linkage to the TTN locus at chromosome 2q31, yielding a maximum (2-point) LOD score of 3.44. Sequence analysis identified an insertion (c.58880insA), causing protein truncation after 19,628 amino acids (p.S19628IfsX1). No founder effect was found among the Israeli Arabs. In conclusion, titin is a giant protein with a key role in sarcomere assembly, force transmission, and maintenance of resting tension. Although some mutations result in skeletal myopathy, others cause isolated, maturity-onset cardiomyopathy.