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Sohei Kitazawa

Publications and source records attributed to Sohei Kitazawa.

11 recordsLinked to original sources

Vitamin D3 supports osteoclastogenesis via functional vitamin D response element of human RANKL gene promoter.

Receptor activator of NF-kappaB ligand (RANKL) has been identified as requisite for osteoclastogenesis. To elucidate the molecular mechanism that conducts its catabolic action on bone, the effect of 1alpha,25 dihydroxyvitamin D(3) (1alpha,25(OH)(2)D(3)) on osteoclastogenesis and RANKL mRNA expression was examined by coculture, RT-PCR and nuclear run-on studies. By accelerating the transcription rate of the RANKL gene in SaOS2 osteoblastic cells, 1alpha,25(OH)(2)D(3) enhanced in vitro osteoclast formation from peripheral monocytes. Cloning and characterization of the 5'-flanking region of the human RANKL gene revealed that the basic promoter comprises inverted TATA- and CAAT-boxes flanked by RUNX2 binding sites. Both electrophoresis mobility shift assay (EMSA) and transfection studies demonstrated that 1alpha,25(OH)(2)D(3) activated human RANKL promoter through vitamin D responsive elements (VDRE) located at -1584/-1570 by binding VDR and RXRalpha heterodimers in a ligand-dependent manner. The results provide direct evidence that 1alpha,25(OH)(2)D(3) augments osteoclastogenesis by transactivating the human RANKL gene in osteoblastic cells through VDRE.

Base Sequence↗

MeCP2 and promoter methylation cooperatively regulate E-cadherin gene expression in colorectal carcinoma.

Reduced expression of E-cadherin (E-cad) owing to aberrant 5'CpG island hypermethylation has been regarded as one of the main molecular events involved in the dysfunction of the cell-cell adhesion system. The molecular mechanisms providing diversity and heterogeneity of E-cad expression in colorectal carcinoma were explored. In 29 cases of colorectal carcinoma in Indonesia, the expression of E-cad was analyzed by immunohistochemical staining, the methylation status of the E-cad promoter was determined by methylation-specific PCR, and the expression of methyl-CpG-binding protein (MeCP) 2 was studied by in situ hybridization. E-cad expression was strong, and no methylation was observed in normal colon mucosa and most of the well-differentiated adenocarcinoma. In contrast, both signet-ring cell carcinoma and mucinous adenocarcinoma showed fully methylated patterns and strong MeCP2 expression. In moderately- and poorly-differentiated adenocarcinomas, however, E-cad expression was rather heterogeneous, especially at the front of invasion and in the dissociated areas, where loss of MeCP2 expression correlated with E-cad reexpression even in the presence of E-cad promoter methylation. We conclude that both CpG methylation of the E-cad promoter and significant MeCP2 expression cooperatively and epigenetically regulate E-cad expression in colorectal cancer.

Adenocarcinoma↗

Decrease in vitamin D receptor and calcium-sensing receptor in highly proliferative parathyroid adenomas.

OBJECTIVE: A significant decrease in vitamin D receptor (VDR) and calcium-sensing receptor (CaSR) protein expression has been demonstrated recently in parathyroid (PT) adenomas. In this study, we investigated the relationships between the proliferative activity of parathyroid glands (PTGs) and the expression of VDR as well as CaSR, and compared it with the clinical severity in patients with primary hyperparathyroidism (1 degrees HPT). DESIGN: Seven patients with 1 degrees HPT were included in this study. Four patients with thyroid carcinoma served as controls. METHODS: Immunohistochemical staining was performed on serial sections of PTGs with specific antibodies against CaSR, VDR, and Ki67. Areas examined in each section were selected at random in relation to the gland size. The number of Ki67-positive cells was expressed as a labeling index (LI; positive cells per 1000 PT cells). The expression of CaSR and VDR was semi-quantitatively analyzed based on the intensity of staining. After averages of the scores from all areas were calculated, CaSR and VDR scores, and Ki67 LI were assigned to each gland for use in statistical analyses. RESULTS: In PT adenomas, scores of VDR and CaSR were markedly lower than in normal PTGs (P<0.01), while the proportion of Ki67-positive cells in PT adenomas was significantly higher than in normal PTGs (P<0.01). Single regression analyses revealed that Ki67 LI was positively correlated with serum levels of intact parathyroid hormone and Ca, and PTG weight (R=0.70, P<0.05, R=0.78, P<0.01 and R=0.84, P<0.05 respectively). Ki67 LI was negatively correlated with CaSR and VDR scores (R=-0.78, P<0.01 and R=-0.72, P<0.05 respectively). Moreover, there was a strong positive relationship between CaSR and VDR expression (R=0.95, P<0.001). CONCLUSIONS: Marked decreases in VDR and CaSR expression could, at least in part, be responsible for the high proliferation of PT cells and the pathological progression of 1 degree HPT.

Adenoma↗

Epigenetic control of mouse receptor activator of NF-kappa B ligand gene expression.

Receptor activator of NF-kappa B ligand (RANKL) is a membrane-bound signal transducer requisite for differentiation and maintenance of osteoclasts. RANKL expression on stromal/osteoblastic cells is tightly regulated to maintain physiological serum calcium levels and bone mass. These stromal/osteoblastic cells, however, comprise a rather heterogeneous population ranging from immature mesenchymal cells to mature osteoblasts and also respond differently to bone resorptive stimuli. In the mouse coculture system, we also have demonstrated the passage-dependent difference of cultured mouse stromal cells in supporting osteoclastogenesis due to altered RANKL gene expression. To address the issue of what molecular mechanism gives the diversity of RANKL gene expression to stromal/osteoblastic cells, we characterized the mouse RANKL gene promoter that contains two CpG clustering regions; one around the transcription start site, and the other downstream of the vitamin D response element (VDRE). Using earlier- and later-passage mouse ST2 cells, we analyzed the CpG methylation status by sodium bisulfite mapping and found that CpG loci around the transcription start site (-66/+246) were predominantly methylated in later-passage ST2 cells. Moreover, earlier- and later-passage ST2 cells transfected with a RANKL promoter construct showed the same steady-state level of luciferase activity and of the inducible effect of 1,25(OH)(2)D(3). Furthermore, the introduction of methylation to the promoter construct silenced promoter activity. The results suggest that CpG methylation around the transcription start site of the mouse RANKL gene is an important epigenetic event, and that its heterogeneity might cause the diversity of the stromal/osteoblastic cells in RANKL gene expression.

Animals↗

RANK ligand, RANK, and OPG expression in type II collagen-induced arthritis mouse.

Rheumatoid arthritis (RA) is a systemic disorder characterized by synovial inflammation and subsequent destruction and deformity of synovial joints. The articular lesions start with synovitis, focal erosion of unmineralized cartilage, and then culminate in the destruction of subarticular bone by pannus tissue. Periarticular osteopenia and systemic osteoporosis follow as late complications of RA. Osteoclasts, specialized cells that resorb bone, play a central role in developing these osteolytic lesions. To elucidate the mechanism of osteoclastogenesis and bone destruction in autoimmune arthritis, we investigated the expression of RANK ligand (RANKL), RANK, and osteoprotegerin (OPG) mRNA in a mouse type II collagen-induced arthritis (CIA) model by in situ hybridization. The results indicated that most of the TRAP-positive mono- and multinucleated cells in the inflamed and proliferating synovium and in the pannus were RANK-positive authentic osteoclasts and their precursors. In the inflamed synovium and pannus of the mouse CIA model, synovial fibroblastic cells around these RANK-positive cells were strongly positive for RANKL. Moreover, RANKL-positive osteoblasts on the endosteal bone surface, at a distance from the affected synovial joints, increased significantly in the mouse CIA model prior to periarticular osteopenia and systemic osteoporosis. These data indicated that the RANKL-RANK system plays an important role for osteoclastogenesis in both local and systemic osteolytic lesions in autoimmune arthritis, and can therefore be a good target for therapeutic intervention.

Animals↗

Vitamin D(3) augments osteoclastogenesis via vitamin D-responsive element of mouse RANKL gene promoter.

Receptor activator of NF-kappaB ligand (RANKL) is a membrane-bound signal transducer necessary for the induction and maintenance of osteoclasts. To clarify the molecular mechanism by which 1,25-dihydroxyvitamin D(3) (1,25-(OH)(2)D(3)) augments osteoclasts, we characterized the promoter region of the mouse RANKL gene. Mirroring in vitro osteoclastogenesis demonstrated by a coculture of bone marrow macrophages with ST2 stromal cells, Northern blot, and nuclear run-on analyses showed that 1,25-(OH)(2)D(3) upregulate RANKL gene expression at the transcriptional level. Using a series of deletion mutants of mouse RANKL promoter-luciferase reporter gene constructs, transient transfection studies revealed that the inductive effect of 1,25-(OH)(2)D(3) was abolished when the region up to -723 was deleted. An electrophoretic motility shift assay demonstrated that the VDR-RXRbeta heterodimer bound to AGGTCAGCCTGGTTCA (-937/-922), and VDRE/nuclear protein supershift complexes that bound to anti-VDR and -RXRbeta antibodies were detected in the nuclear extract of 1,25-(OH)(2)D(3)-treated ST2 cells. Furthermore, induction of mutation to the putative VDRE also diminished the inductive effect of 1,25-(OH)(2)D(3). We therefore concluded that mouse RANKL gene is one of the target genes of 1,25-(OH)(2)D(3) containing a functional VDRE in the promoter region.

Animals↗

RANK ligand is a prerequisite for cancer-associated osteolytic lesions.

Breast cancer is frequently associated with osteolytic bone metastasis, where osteoclasts play a major role in bone destruction. Recently, osteoclast differentiation factor (RANKL) has been identified as a prerequisite for the formation and maintenance of osteoclasts from haematopoietic precursors. To elucidate the mechanism of osteoclastogenesis and bone destruction in bone-residing breast cancer, PTHrP-producing (MCF-7) and -non-producing (MCF-7UP) human breast cancer cells were subcutaneously injected into the forehead of nude mice maintained without oestrogen supplement. One, two, and three weeks thereafter, the expression of RANKL and PTHrP mRNA, and osteoclastogenesis were analysed by in situ hybridization and TRAP staining. In MCF-7 cells, at early stages, spindle-shaped stromal cells and osteoblasts on the bone surface expressed RANKL, then numerous osteoclasts were induced on the periosteal bone surface. Three weeks after the transplantation, MCF-7 cancer cells migrated onto the eroded bone surface, where they survived apoptosis. At all stages, RANKL expression was confined to the stromal/osteoblastic cells, whereas PTHrP was confined to the MCF-7 breast cancer cells. On the other hand, PTHrP was negative in MCF-7UP cells at all stages, and neither induction of osteoclasts nor infiltrative growth of cancer cells was observed. Moreover, in vitro treatment with PTHrP resulted in increased RANKL mRNA expression and transcription activity in the MC3T3-E1 mouse osteoblastic cell line. Thus PTHrP induces osteoclastic bone resorption through the transactivation of the RANKL gene on stromal/osteoblastic cells, affording a bone microenvironment conducive to the survival of PTHrP-producing cancer cells.

Animals↗

Prohormone convertase furin has a role in gastric cancer cell proliferation with parathyroid hormone-related peptide in a reciprocal manner.

We investigated the expression of parathyroid hormone-related peptide (PTHrP) and the relationship between PTHrP and its endoprotease furin in gastric cancer. PTHrP was colocalized with furin in 75% of gastric cancer tissues (six of eight) from patients with high serum PTHrP levels. PTHrP mRNA expression was confirmed in 67% of gastric cancer cell lines (four of six), whereas furin mRNA was detected in all six gastric cancer cell lines. In a cultured gastric cancer cell line, MKN28, mature PTHrP protein expression was markedly increased by transfection of furin cDNA. Furin cDNA-transfected MKN28 cells grew faster than did the mock controls. Moreover, furin mRNA expression in cultured gastric cancer cells was enhanced when PTHrP was added to the culture medium. These results suggest a link between PTHrP and furin in the regulation of gastric cancer cell growth. Furin might be involved not only in the production of the mature form of PTHrP, but also in promoting growth in gastric cancer cells.

Blotting, Northern↗

Expression of parathyroid hormone-related protein (PTHrP) in multiple myeloma.

Multiple myeloma is a plasma cell neoplasia often associated with multiple skeletal lesions and hypercalcemia. Several cytokines, including interleukin (IL)-1, IL-6 and tumor necrosis factor-beta (TNF-beta), derived from myeloma cells are thought to accelerate osteoclastic bone resorption and cause hypercalcemia through a paracrine mechanism. We report on a case of a 69-year-old man with multiple myeloma associated with hypercalcemia and advanced osteolytic lesions. After bisphosphonate treatment and MP (melphalan and prednisolone) therapy, the patient's serum calcium level was successfully but transiently recovered to the normal range. Biochemical analysis showed a remarkable increase in serum parathyroid hormone-related protein (PTHrP; 3.7 pmol/L) and IL-6 (22.0 pg/mL). On the other hand, parathyroid hormone and 1alpha,25(OH)2 vitamin D3 were suppressed. By immunohistochemistry and in situ hybridization on aspiration-biopsied bone marrow clot sections, PTHrP mRNA and protein were detected in the cytoplasm of myeloma cells. The rate of PTHrP-positive myeloma cells was estimated to be at least one-third. Since PTHrP can, as an endocrine factor, systemically act on bone and kidney, hypercalcemia in this case might have been caused through both local osteolytic hypercalcemia and humoral hypercalcemia of malignancy mechanisms.

Aged↗