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Biomedical subjects

K Miyazono

Publications and source records attributed to K Miyazono.

At least 73 records · Page 4Linked to original sources

Bone morphogenetic protein-2 acts synergistically with transforming growth factor-beta3 during endothelial-mesenchymal transformation in the developing chick heart.

In the early embryonic heart, endothelial cells in atrioventricular (AV) and outflow tract (OT) regions are transformed into the invasive mesenchymal cells that form endocardial cushion tissue (endothelial-mesenchymal transformation). It has been reported that bone morphogenetic proteins (BMPs) are transcribed in the AV and OT regions of the embryonic mouse heart. We previously reported that transforming growth factor beta 3 (TGFbeta3) triggers the initial phenotypic changes seen in endothelial-mesenchymal transformation. We cloned BMP2 from embryonic chick hearts and examined its functional role during endocardial cushion tissue formation. In situ hybridization showed BMP2 transcripts in the myocardium of the AV and OT regions, but not in endothelial/mesenchymal cells. Antisense oligodeoxynucleotides to BMP2 inhibited mesenchyme formation in AV endocardium cocultured with associated myocardium. This inhibitory effect was reversed by the addition of recombinant BMP2. In cultured AV endothelial monolayers, recombinant BMP2 did not induce any cellular phenotypic changes characteristic of endothelial-mesenchymal transformation. However, BMP2 enhanced the TGFbeta-induced initial phenotypic changes associated with endothelial-mesenchymal transformation. These results suggest that BMP2 1) plays an important role in the formation of endocardial cushion tissue and 2) acts synergistically with TGFbeta3 in the regulation of this developmental event.

Animals↗

Chromosomal localization of three human genes encoding bone morphogenetic protein receptors.

Bone morphogenetic proteins (BMPs) are members of the TGF-beta superfamily that play a pivotal role in bone formation during embryogenesis and fracture repair. BMP signaling occurs via hetero-oligomeric serine/threonine kinase complexes of BMP type I (BMPR-IA or BMPR-IB) and type II receptors (BMPR-II). BMPR-IA and IB are closely related receptors, with sequence differences conserved between different species, suggesting that they serve distinct functions. Here we report the cDNA cloning of human BMPR1B and the chromosomal localization of all three BMPR genes. Using somatic cell hybrid and FISH analyses, the BMPR1A, BMPR1B, and BMPR2 genes were assigned to 10q23, 4q22-24, and 2q33-34, respectively. A processed BMPR1A pseudogene was mapped to 6q23.

Bone Morphogenetic Protein Receptors↗

Immunolocalization of latent transforming growth factor-beta binding protein-1 (LTBP1) during mouse development: possible roles in epithelial and mesenchymal cytodifferentiation.

Latent transforming growth factor-beta binding protein-1 (LTBP1) is a member of the fibrillin family; it is a glycoprotein of more than 190 kDa that is characterized by its possession of 16-18 epidermal growth factor-like motifs and 8 cysteine residues. The secretion of transforming growth factor-beta involves its release from cells in a large latent complex containing LTBP1, a latency-associated peptide, and the mature region of the growth factor. Using a polyclonal antibody specific for LTBP1 (Ab39), we examined the immunohistochemical localization of this molecule during mouse embryogenesis between 8.5 and 13.5 embryonic days. An extracellular fibrillar structure containing LTBP1 was found in both the basement membrane of epithelia and mesenchymal tissue in which extensive tissue remodeling is carried out. Immunoelectron microscopy revealed Ab39 immunoreactivity on a 5- to 10-nm microfibrillar component of these basement membranes as well as in mesenchymal tissue. These results suggest that LTBP1 is one of the extracellular microfibrillar components of the basement membrane and of mesenchymal tissue, and that it may play an important role in the regulation of developmental phenomena involved in epithelial-mesenchymal interaction and epithelial differentiation, processes in which transforming growth factor-beta is required for the control of cellular differentiation.

Animals↗

Signal transduction by bone morphogenetic protein receptors: functional roles of Smad proteins.

Intracellular signals for bone morphogenetic proteins (BMPs) and other members in the transforming growth factor (TGF)-beta superfamily are mediated by Smad proteins. Receptor-regulated Smads (R-Smads) are activated by serine/threonine kinase receptors upon ligand binding. R-Smads then form hetero-oligomeric complexes with a common-mediator Smad (co-Smad) and translocate into the nucleus, where they regulate transcription of target genes. Smads 1, 5, and 8 are R-Smads activated by BMP receptors, whereas Smads 2 and 3 are activated by TGF-beta and activin receptors. Smad4 is the only co-Smad isolated in mammals, and is shared by BMP and TGF-beta/activin signaling pathways. Smads 6 and 7 are anti-Smads, which block signals by preventing the activation of R-Smads by serine/threonine kinase receptors. Anti-Smads are induced by ligand stimulation, suggesting that they constitute a negative feedback loop in the signal transduction pathways of the TGF-beta superfamily.

Animals↗

Drosophila dSmad2 and Atr-I transmit activin/TGFbeta signals.

BACKGROUND: Much is known about the three subfamilies of the TGFbeta superfamily in vertebrates-the TGFbetas, dpp/BMPs, and activins. Signalling in each subfamily is dependent on both shared and unique cell surface receptors and Smads. In invertebrates, mutants for BMP pathway components have been extensively characterized, but thus far, evidence for an activin- or TGFbeta-like pathway has been lacking, preventing the use of the extensive genetic tools available for studying several key issues of TGFbeta signalling. RESULTS: Here we report the identification of dSmad2, a new Drosophila Smad which is most related to the activin/TGFbeta-pathway Smads, Smad2 and Smad3. We show that dSmad2 induces activin responsive genes in Xenopus animal cap assays. dSMAD2 is phosphorylated by ATR-I and PUNT, but not by activated THICK VEINS, and translocates to the nucleus upon activation. Furthermore, we show that dSMAD2 complexes with MEDEA only in the presence of ATR-I and PUNT. dSmad2 is expressed in the imaginal disks and in the outer proliferation centre of the larval brain, suggesting that it may have important proliferative and patterning roles during Drosophila development. CONCLUSION: Our data provide evidence for the existence of an activin/TGFbeta pathway in Drosophila. We show that dSmad2 participates in this pathway, and that it functions with Atr-I and punt. We show that Medea also participates in this pathway, indicating the conservation of roles for Co-Smads in diverse phyla. Expression patterns of dSmad2 suggest that it functions in imaginal disks and in the brain, in tissues that undergo extensive patterning and proliferation.

Activin Receptors↗

Region between alpha-helices 3 and 4 of the mad homology 2 domain of Smad4: functional roles in oligomer formation and transcriptional activation.

BACKGROUND: Smad4 has a unique region of 35 amino acids between alpha-helices 3 and 4 (termed H3/4 loop) of the Mad homology (MH) 2 domain. In order to elucidate the functional importance of the H3/4 loop, we prepared chimeric constructs of Smad4 containing the region corresponding to the alpha-helix 3, H3/4 loop and alpha-helix 4 of different Smads, including a chimera containing that of Smad2 (Smad4-HL2). RESULTS: Smad4-HL2 constitutively induced the transcriptional activation of p3TP-Lux, a TGF-beta-responsive reporter construct. However, co-transfection of Smad2 with Smad4-HL2 did not induce a further increase in the activation of p3TP-Lux. Smad4-HL2 did not induce the activation of pAR3-Lux, which contains FAST1-binding sites and is activated by a complex composed of FAST1, Smad2 and Smad4. Smad4-HL2 formed a homo-oligomer more efficiently than wild-type Smad4 in mammalian cells. Moreover, Smad4-HL2 bound to DNA containing the Smad-binding sites with a gretaer affinity than the wild-type Smad4. CONCLUSION: Smad4-HL2 spontaneously forms a homo-oligomer, which may bind to DNA with relatively high affinity and induce transcriptional activation of p3TP-Lux. The H3/4 loop of Smad4 may thus play a role in precluding the spontaneous oligomer formation of Smad4.

Animals↗

Roles of bone morphogenetic protein type I receptors and Smad proteins in osteoblast and chondroblast differentiation.

The biological effects of type I serine/threonine kinase receptors and Smad proteins were examined using an adenovirus-based vector system. Constitutively active forms of bone morphogenetic protein (BMP) type I receptors (BMPR-IA and BMPR-IB; BMPR-I group) and those of activin receptor-like kinase (ALK)-1 and ALK-2 (ALK-1 group) induced alkaline phosphatase activity in C2C12 cells. Receptor-regulated Smads (R-Smads) that act in the BMP pathways, such as Smad1 and Smad5, also induced the alkaline phosphatase activity in C2C12 cells. BMP-6 dramatically enhanced alkaline phosphatase activity induced by Smad1 or Smad5, probably because of the nuclear translocation of R-Smads triggered by the ligand. Inhibitory Smads, i.e., Smad6 and Smad7, repressed the alkaline phosphatase activity induced by BMP-6 or the type I receptors. Chondrogenic differentiation of ATDC5 cells was induced by the receptors of the BMPR-I group but not by those of the ALK-1 group. However, kinase-inactive forms of the receptors of the ALK-1 and BMPR-I groups blocked chondrogenic differentiation. Although R-Smads failed to induce cartilage nodule formation, inhibitory Smads blocked it. Osteoblast differentiation induced by BMPs is thus mediated mainly via the Smad-signaling pathway, whereas chondrogenic differentiation may be transmitted by Smad-dependent and independent pathways.

Activin Receptors↗

Signal transduction of the TGF-beta superfamily by Smad proteins.

Members of the TGF-beta superfamily regulate the growth and differentiation of various types of cells. Smads are recently identified proteins that mediate intracellular signaling of the TGF-beta superfamily. Smads are grouped into three classes depending on their structure and functions. R-Smads are phosphorylated by type I serine-threonine kinase receptors for TGF-beta superfamily members. R-Smads then associate with Co-Smads. Smad4 is the only vertebrate Co-Smad identified thus far, and is required for the signaling pathways of different ligands. The heteromeric Smad complex translocates into the nucleus, where it activates target genes. Anti-Smads inhibit signaling by R-Smads and Co-Smads. Smads bind to DNA directly or indirectly via other DNA binding proteins. R-Smads interact with transcriptional coactivators, and have intrinsic transactivation activity. Elucidation of the functions of Smads will provide the framework for research on TGF-beta superfamily signaling.

Animals↗

Intracellular signaling of the TGF-beta superfamily by Smad proteins.

TGF-beta is a potent inhibitor of cell growth, and accumulating evidence suggests that perturbation of the TGF-beta signaling pathway leads to tumorigenesis. Smads are recently identified proteins that mediate intracellular signaling of the TGF-beta superfamily. Smads 2 and 3 are phosphorylated by the TGF-beta type I receptor. Smad4 was originally identified as a candidate tumor suppressor gene in pancreatic cancers. Smads 2 and 3 form complexes with Smad4 upon TGF-beta stimulation. The heteromeric Smad complexes translocate into the nucleus, where they activate expression of target genes. Our recent study demonstrated that Smads exist as monomers in the absence of TGF-beta. Smads 2 and 3 form homo- as well as hetero-oligomers with Smad4 upon ligand stimulation. Both homo-oligomers and hetero-oligomers directly bind to DNA, suggesting that the signaling pathway of Smads may be multiplex. Smads 2 and 3 associate with transcriptional coactivators such as p300 in a ligand-dependent manner, p300 enhances transactivation by TGF-beta, suggesting that coactivators link Smads to the basal transcriptional machinery. A missense mutation of Smad2 identified in colorectal and lung cancers was introduced to Smad3. The mutant, Smad3(DE), blocked the activation of wild-type Smad2 and Smad3. Thus, the missense mutation not only disrupts the function of the wild-type Smad but also creates a dominant-negative Smad, which could actively contribute to oncogenesis.

Animals↗

Transient gene transfer and expression of Smad7 prevents bleomycin-induced lung fibrosis in mice.

TGF-beta plays an important role in lung fibrosis, which is a major cause of suffering and death seen in pulmonary disease. Smad7 has been recently identified as an antagonist of TGF-beta signaling. To investigate whether this novel molecule can be exploited for therapy of lung fibrosis, we determined the effect of exogenous Smad7, introduced by a recombinant human type 5 adenovirus vector, on bleomycin-induced lung fibrosis in mice. C57BL/6 mice with bleomycin-induced lungs received an intratracheal injection of a recombinant adenovirus carrying mice Smad7 cDNA. These mice demonstrated suppression of type I precollagen mRNA, reduced hydroxyproline content, and no morphological fibrotic responses in the lungs when compared with mice administered adenovirus carrying Smad6 cDNA. In addition, we found that expression of Smad7 transgene blocked Smad2 phosphorylation induced by bleomycin in mouse lungs. These data indicated that gene transfer of Smad7 (but not Smad6) prevented bleomycin-induced lung fibrosis, suggesting that Smad7 may have applicability in the treatment of pulmonary fibrosis.

Adenoviridae↗

Extracellular matrix-associated bone morphogenetic proteins are essential for differentiation of murine osteoblastic cells in vitro.

Osteoblastic differentiation is an essential part of bone formation that compensates resorbed bone matrix to maintain its structural integrity. Cells in an osteoblast lineage develop differentiated phenotypes during a long-term culture in vitro. However, intrinsic mechanisms whereby these cells differentiate into mature osteoblasts are yet unclear. Bone morphogenetic proteins (BMPs) stimulate osteoblastic differentiation and bone formation. We demonstrate that mouse osteoblastic MC3T3-E 1 cells constitutively expressed messenger RNAs (mRNAs) for BMP-2 and BMP-4 and accumulated BMPs in collagen-rich extracellular matrices. BMPs associated with the extracellular matrices were involved in the induction of osteoblastic differentiation of nonosteogenic mesenchymal cells as well as cells in the osteoblast lineage. MC3T3-E1 cells constitutively expressed type IA and type II BMP receptors. When a kinase-deficient type IA BMP receptor was stably transfected to MC3T3-E 1 cells to obliterate BMP-2/4 signaling, these cells not only failed to respond to exogenous BMP-2 but lost their capability of differentiation into osteoblasts that form mineralized nodules. These observations strongly suggest that endogenous BMP-2/4 accumulated in extracellular matrices are essential for the osteoblastic differentiation of cells in the osteoblast lineage. Therefore, the regulatory mechanism of BMP-2/4 actions in osteoblastic cells is a principal issue to be elucidated for better understanding of pathogenesis of bone losing diseases such as osteoporosis.

Animals↗

Characterization of bone morphogenetic protein-6 signaling pathways in osteoblast differentiation.

Bone morphogenetic protein (BMP)-6 is a member of the transforming growth factor (TGF)-(&bgr;) superfamily, and is most similar to BMP-5, osteogenic protein (OP)-1/BMP-7, and OP-2/BMP-8. In the present study, we characterized the endogenous BMP-6 signaling pathway during osteoblast differentiation. BMP-6 strongly induced alkaline phosphatase (ALP) activity in cells of osteoblast lineage, including C2C12 cells, MC3T3-E1 cells, and ROB-C26 cells. The profile of binding of BMP-6 to type I and type II receptors was similar to that of OP-1/BMP-7 in C2C12 cells and MC3T3-E1 cells; BMP-6 strongly bound to activin receptor-like kinase (ALK)-2 (also termed ActR-I), together with type II receptors, i.e. BMP type II receptor (BMPR-II) and activin type II receptor (ActR-II). In addition, BMP-6 weakly bound to BMPR-IA (ALK-3), to which BMP-2 also bound. In contrast, binding of BMP-6 to BMPR-IB (ALK-6), and less efficiently to ALK-2 and BMPR-IA, together with BMPR-II was detected in ROB-C26 cells. Intracellular signalling was further studied using C2C12 and MC3T3-E1 cells. Among the receptor-regulated Smads activated by BMP receptors, BMP-6 strongly induced phosphorylation and nuclear accumulation of Smad5, and less efficiently those of Smad1. However, Smad8 was constitutively phosphorylated, and no further phosphorylation or nuclear accumulation of Smad8 by BMP-6 was observed. These findings indicate that in the process of differentiation to osteoblasts, BMP-6 binds to ALK-2 as well as other type I receptors, and transduces signals mainly through Smad5 and possibly through Smad1.

3T3 Cells↗

[Bone morphogenetic protein (BMP) receptors and signal transduction].

BMPs are multifunctional cytokines which regulate cellular proliferation, differentiation, apoptosis of various cell types, including osteoblasts and chondroblasts. These functions are related to various biological functions in vivo; e.g. formation of bone and cartilage, embryogenesis, and organogenesis. BMPs transduce signals through binding to type I and type II receptors with serine/threonine kinase activity. As for type I receptors, BMPs bind to BMP type IA receptor, BMP type IB receptor and activin type I receptor. As for type II receptors, BMPs bind to BMP type II receptor, activin type II receptor and activin type IIB receptor. In the receptor-ligand complexes, type II receptors phosphorylate type I receptors in the GS domain (domain rich in glycine, serine and threonine residues) to activate the latter. The activated type I receptors phosphorylate Smad family, which transduces the signals from cytoplasm into nuclei.

Animals↗

Cloning and characterization of p70(S6K beta) defines a novel family of p70 S6 kinases.

The human cDNA encoding a novel protein serine/threonine kinase most closely related to p70 S6 kinase was isolated from the human erythroleukemia cDNA library and termed p70(S6Kbeta). p70(S6Kbeta) has 67% amino acid identity in overall sequence with human p70(S6K), and the potential phosphorylation sites of p70(S6K) are conserved in p70(S6Kbeta). Northern blot analysis identified two major transcripts of p70(S6Kbeta) that are ubiquitously expressed in human adult tissues. Similar to p70(S6K), p70(S6Kbeta) was activated by serum stimulation, and the serum-induced activation was inhibited by wortmannin and rapamycin. These findings suggest that p70(S6Kbeta) is an isoform of p70(S6K) with similar regulatory mechanisms.

Amino Acid Sequence↗

Smad2 overexpression enhances Smad4 gene expression and suppresses CBFA1 gene expression in osteoblastic osteosarcoma ROS17/2.8 cells and primary rat calvaria cells.

Mothers against decapentaplegic-related proteins (Smads) are essential intracellular components for the signal transduction of transforming growth factor-beta (TGF-beta) family members. Smad1 mediates bone morphogenetic protein (BMP) signals, whereas Smad2 functions downstream of TGF-beta. TGF-beta is expressed in osteoblastic cells and acts as an autocrine and/or paracrine factor in regulation of osteoblastic functions. In this study, we examined the levels and functions of Smad2 in osteoblastic cells. Smad2 mRNA expression was hardly detectable by Northern blot analysis in an osteoblast-like cell line, ROS17/2.8, as well as in primary rat calvaria (PRC) cells. Overexpression of Smad2 gene enhanced endogenous Smad4 gene expression in both ROS17/2.8 and PRC cells, while Smad3 levels were not altered. Smad2 overexpression suppressed osteocalcin mRNA expression in ROS17/2.8 cells. Furthermore, Smad2 overexpression also suppressed transcriptional activity of the 1-kilobase pair osteocalcin gene promoter, which was linked to chloramphenicol acetyltransferase reporter gene in both ROS and PRC cells. Since core binding factor A1 (CBFA1) is involved in osteocalcin gene expression, we further examined CBFA1 expression in the Smad2-overexpressing ROS17/2.8 and PRC cells. The levels of CBFA1 mRNA were suppressed by the overexpression of Smad2 by about 50% in both ROS17/2.8 and PRC cells. TGF-beta treatment enhanced Smad4 expression in PRC cells, and this TGF-beta effect was blocked by the cotreatment with BMP, indicating that TGF-beta signaling pathway is interfered by BMP. These data indicate that Smad2 regulates Smad4 specifically and that CBFA1 gene is one of the downstream targets of Smad2.

Animals↗

Smad proteins exist as monomers in vivo and undergo homo- and hetero-oligomerization upon activation by serine/threonine kinase receptors.

Smad proteins are signal transducers for the members of the transforming growth factor-beta (TGF-beta) superfamily. Here we show that, in the absence TGF-beta stimulation, Smads exist as monomers in vivo. Smad2 and Smad3 form homo-oligomers upon phosphorylation by the constitutively active TGF-beta type I receptor, and this oligomerization does not require Smad4. Major portions of Smad4, Smad6 and Smad7 are also present as monomers in vivo. Analysis using a cross-linking reagent suggested that the Smad2 oligomer induced by receptor activation is a trimer. Studies by gel chromatography demonstrated that the Smad2-Smad4 heteromer is not larger than the Smad2 homomer. Moreover, overexpression of Smad4 prevented Smad2 from forming a homo-oligomer. These findings suggest that Smad2 may form a homotrimer, or heterotrimers with Smad4, which are probably composed of two and one, or one and two molecules of Smad2 and Smad4, respectively, depending on the amount of each protein. Gel-mobility shift assay revealed that the Smad3 homomer and Smad3-Smad4 heteromer constitute DNA-binding complexes. Transition of the Smad proteins from monomers to oligomers is thus a critical event in the signal transduction of the TGF-beta superfamily members.

Activin Receptors, Type I↗