PubMed HealthSearch

Biomedical subjects

K Yoshizato

Publications and source records attributed to K Yoshizato.

At least 19 recordsLinked to original sources

Possible involvement of the interaction of the alpha 5 subunit of alpha 5 beta 1 integrin with the synergistic region of the central cell-binding domain of fibronectin in cells to fibronectin binding.

The interaction between the central cell-binding domain (CBD) of fibronectin (FN) and its receptor integrin alpha 5 beta 1 was analyzed by both ligand-binding and cell adhesion assays. The ligands used were a CBD fragment (pCBD) of human plasma fibronectin and its recombinant versions including wild type CBD (wtCBD) and its two mutants (CBD-I, lacking the integrin recognition sequence Arg-Gly-Asp from wtCBD and CBD-II, missing the synergistic regions). The ligand-binding assay showed that CBD-I and CBD-II bind to the receptor, although the binding ability of the former was weaker than that of the latter. The affinity of pCBD to the receptor was much higher than the two mutants. The cell adhesion assay also revealed that cells were able to attach and spread on CBD-I to the same extent as on CBD-II, although the extent of spreading on the two mutant polypeptides was less than 4.1% of pCBD or wtCBD. On the other hand, beta 1-dependent cell spreading on CBD-II was not inhibited by the monoclonal antibody specific for the alpha 5 subunit, while that on CBD-I, wtCBD, or pCBD was inhibited by the same antibody. The present study suggests that the alpha 5 subunit does not participate in direct binding to the Arg-Gly-Asp site in CBD when cells adhere to FN through the integrin alpha 5 beta 1, but that it is involved in the interaction with the synergistic regions of CBD, which then enhances the binding of the beta 1 subunit to the Arg-Gly-Asp sequence containing CBD.

Amino Acid Sequence

Characterizations of sea urchin fibrillar collagen and its cDNA clone.

Collagens were isolated from the adult test of the sea urchin species, Hemicentrotus pulcherrimus and Strongylocentrotus purpuratus, and their molecular properties were compared with those of Asthenosoma ijimai collagen. Collagens from H. pulcherrimus and S. purpuratus comprised two major alpha-chains (alpha 120 and alpha 90) and a minor chain (alpha 140), while collagen from A. ijimai contained four alpha-chains (alpha 1, alpha 2, alpha 3 and alpha 4). Based on their molecular and immunological properties, the alpha 90 chain of H. pulcherrimus and S. purpuratus, and the alpha 2 and alpha 4 chains of A. ijimai are grouped together, while the alpha 120 and alpha 140 chains of H. pulcherrimus and S. purpuratus, and the alpha 1 and alpha 3 chains of A. ijimai are classified into another group. It is likely that collagen molecules of sea urchins are heterotrimers composed of these two types of alpha-chains. A cDNA of collagen was cloned from the cDNA library prepared from mRNA of H. pulcherrimus test and denoted as Hpcol1. This clone contained sequences for uninterrupted triple helical domain (378 amino acids), carboxyl telopeptide (28 amino acids) and carboxyl propeptide (225 amino acids). This structure is characteristic for fibril-forming collagens and was shown to encode alpha 120 and alpha 140 chains of H. pulcherrimus collagen. Hpcol1-mRNA was expressed in embryos as early as the prism stage.

Amino Acid Sequence

A three-step mechanism of action of thyroid hormone and mesenchyme in metamorphic changes in anuran larval skin.

The mesenchyme of the anuran tadpole has been known to induce the regional specificity of epidermis which is expressed during metamorphosis as a body (head and trunk)-or a tail-specific change: the former epidermis transforms into the adult-type, while the latter commits programmed cell death. The inductive activity of the mesenchyme was characterized in relation to both its premetamorphic structural change and the action of thyroid hormone (TH). The epidermis and the mesenchyme were obtained from the body and the tail of tadpoles of the bullfrog Rana catesbeiana at stages IV or X defined by Taylor and Kollros (1946), recombined heterotypically, and were autografted to see the mesenchymal effect on the characteristics of the epidermis. The mesenchyme at stage IV showed inductive activity toward the epidermis and changed its inherent characteristics, while the mesencheme at stage X lost it. The skin at stage IV showed uniformity in its structure over the entire surface of the animal. The histology of stage X skin was region-dependent. The connective tissue was newly developed between the skin basement membrane and thick collagen lamella in the body but not in the tail. A trace of TH was suggested to be involved in inducing these mesenchymal changes, because the treatment of tadpoles at stage IV with thiourea inhibited the appearance of new connective tissue. A three-step mechanism in the metamorphic changes of the tadpole skin is proposed: (1) TH-independent early premetamorphic induction; (2) premetamorphic remodeling induced by a trace of TH; and (3) metamorphic remodeling triggered by a high dose of TH.

Animals

Establishment and characterization of stromal cell lines that support differentiation of murine hematopoietic blast cells into osteoclast-like cells.

This study aimed to establish and characterize a new stromal cell line that supports the proliferation of hematopoietic blast cells and their differentiation into osteoclast-like cells. Cells isolated from the calvaria of neonatal Balb/c mice were subcultured every 2 to 4 days at 1.2 x 10(4) cells/cm2. After 18 passages the cells had become immortalized and were designated as MCHT-1. MCHT-1 cells were found to support the proliferation of hematopoietic blast cells and their differentiation into osteoclast-like cells when these two cells were co-cultured in the presence of 1 alpha,25(OH)2D3 and dexamethasone. However, because the MCHT-1 cells showed heterogeneity, cloning was performed and each clone was characterized. All the clones obtained supported the proliferation of hematopoietic blast cells and their differentiation into osteoclast-like cells irrespective of their obvious differences in growth capacities and cytochemical characteristics. However, the time-course of the appearance of osteoclast-like cells differed among clones. The supportive effect of these clonal stromal cells on differentiation of hematopoietic blast cells into osteoclast-like cells was completely dependent on the presence of 1 alpha,25(OH)2D3 and dexamethasone. These clonal MCHT-1 cells are expected to be useful for precise analysis of the proliferation and differentiation of osteoclasts.

Animals

Collagen-induced changes in the pattern of protein synthesis of fibroblasts.

Cells were cultured on plastic, collagen fibrils or gelatin. General protein synthetic activity of cells did not show any significant difference among the three substrates, whereas the pattern of protein synthesis was substrate-dependent. Profiles of protein synthesis (polypeptide maps) were obtained by subjecting two-dimensional autoradiograms of polyacrylamide gel electrophoresis to a computer-assisted image analyzer. Major polypeptide spots expressed on gelatin were rather like those on plastic. Collagen fibrils caused significant changes in the polypeptides map. Fibroblasts on collagen fibrils produced 364 spots of polypeptides, 26% of which were synthesized specifically on collagen fibrils. The remaining was shared by cells on plastic and was categorized into three groups: (1) polypeptides whose synthesis was up-regulated by collagen fibrils (26% of the total); (2) polypeptides that were expressed equally on both plastic and collagen fibrils (51%); and (3) polypeptides down-regulated by collagen fibrils (23%). A protein with molecular weight of 150 K and an isoelectric point (pI) of 7.3 was one of the collagen-induced and worthy of further analysis. This protein was found to change its pI depending upon the amounts of collagen fibrils and was shown to be located in the mitochondrial fraction.

Amino Acids

Regionally and hormonally regulated expression of genes of collagen and collagenase in the anuran larval skin.

The skin of an anuran tadpole undergoes region-dependent metamorphic changes: the body (head and body trunk) transforms into the adult type, while the tail falls into programmed cell death. The present study was undertaken to investigate the regional specificity of metamorphosis at a molecular level, focusing on genes of collagen and collagenase that are known to be activated in their synthesis at metamorphosis. A cDNA probe utilized for collagen was Hf677 (a clone of human type I collagen alpha 1 chain). A probe for collagenase gene was cloned in the present study from a cDNA library of bullfrog tadpole skin, characterized and named Tc1. Tc1 contained the consensus sequence of zinc-metalloproteinases and showed a high homology to mammalian collagenases. Using these recombinant DNAs as probes, RNA blot analyses were performed for the body and tail skin of tadpoles that had been in spontaneous metamorphosis, induced to metamorphosis by the injection of thyroid hormone, or had been induced to grow by prolactin treatment. Collagenase gene was activated irrespective of regions of the skin, body or tail at the early metamorphic climax stage, although the extent of activation was region-dependent. In contrast, metamorphic changes of collagen gene expression showed a clear regional dependency. The transcription level in body skin was enhanced at the onset of metamorphosis while that in tail skin was markedly suppressed. Thyroid hormone was shown to be responsible for this region-dependent expression of collagen genes at metamorphosis. Prolactin, a suppressor hormone of amphibian metamorphosis, enhanced the transcription of collagen genes and suppressed that of collagenase.(ABSTRACT TRUNCATED AT 250 WORDS)

Amino Acid Sequence

Quantitative study of monocyte chemoattractant protein-1 (MCP-1) in cerebrospinal fluid and cyst fluid from patients with malignant glioma.

BACKGROUND: Monocyte chemoattractant protein-1 (MCP-1) is a 76-amino acid protein that attracts monocytes. In vitro studies have reported high levels of MCP-1 messenger RNA expression, as well as the presence of MCP-1, in malignant glioma cells. PURPOSE: Our purpose was to determine whether an MCP-1 assay could be used in a clinical setting 1) to differentiate malignant from benign gliomas and from nontumor disorders of the central nervous system and 2) to detect subarachnoid dissemination of glioma cells. METHODS: MCP-1 levels in cerebrospinal fluid (CSF) and cyst fluid were measured with a sandwich enzyme-linked immunosorbent assay (ELISA) that we had previously developed. We measured MCP-1 levels in CSF samples from 19 patients with malignant glioma (glioblastoma, 10; anaplastic astrocytoma, six; anaplastic oligodendroglioma, two; and ependymoblastoma, one), nine patients with benign glioma, and seven patients with nontumor disorders of the central nervous system. Cyst fluids from four patients with malignant glioma (anaplastic astrocytoma) were also tested. The correlation between MCP-1 concentration in the CSF and subarachnoid dissemination of malignant glioma cells was also studied. RESULTS: The MCP-1 concentration (mean +/- SE) in CSF samples from patients with malignant glioma (2.3 +/- 0.4 ng/mL) was significantly higher than that from patients with benign glioma (0.6 +/- 0.1 ng/mL) (P < .01) or from patients with no tumor (0.5 +/- 0.1 ng/mL) (P < .01). Furthermore, CSF samples from patients with subarachnoid dissemination of malignant glioma contained significantly higher amounts of MCP-1 than those from patients without dissemination (P < .05). Cyst fluids from four of the patients with malignant glioma contained high concentrations of MCP-1. CONCLUSIONS: These results indicate that MCP-1 is produced by malignant glioma in vivo as well as in vitro and suggest that testing for MCP-1 in CSF may be useful in the clinic to differentiate malignant glioma from benign glioma and to detect subarachnoid dissemination of the tumor cells. IMPLICATIONS: The MCP-1 ELISA in CSF may lead to more accurate diagnosis of malignant glioma and detection of subarachnoid dissemination of tumor cells, facilitating selection of patients with these conditions for appropriate therapy.

Adolescent

Morphological and immuno-cytochemical characterization of a hetero-spheroid composed of fibroblasts and hepatocytes.

A novel method for the preparation of spheroids containing two types of cells (hetero-spheroid) has been successfully developed by utilizing a collagen-conjugated thermo-responsive polymer, poly-N-isopropyl acrylamide (PNIPAAm), as a cell substratum. PNIPAAm solidifies above its lower critical solution temperature (LCST, about 30 degrees C), and instantly dissolves into the culture medium below its LCST. We firstly seeded and cultured human dermal fibroblasts on the substratum up to a confluent state and then seeded rat primary hepatocytes onto the fibroblast monolayer. The heterospheroid was prepared by detaching the hepatocyte-attached fibroblast monolayer at a temperature below LCST and culturing it on the non-adhesive substratum. The surface area of the substratum and the seeding population ratio of each cell precisely and reproducibly regulated the size and the cell composition of the resulting hetero-spheroid, respectively. Histological and immuno-cytochemical observations of spheroids revealed characteristic organizations of fibroblasts and hepatocytes within a spheroid because the latter cells expressed albumin for up to at least 3 weeks. TEM study of the hetero-spheroid showed the presence of structures morphologically similar to the Disse's space and the bile canaliculus, which are features characteristic of liver. These findings suggest that the method described above is useful for making a hetero-spheroid that morphologically and functionally resembles tissues or organs in vivo, i.e. an organoid.

Animals

Recognition of collagen by fibroblasts through cell surface glycoproteins reactive with Phaseolus vulgaris agglutinin.

The role of glycochains of cell surface glycoproteins in the cell to collagen interaction was examined by studying the effect of lectins on the fibroblast-mediated collagen gel contraction. Lectins of Phaseolus vulgaris agglutinin (PHA), concanavalin A (ConA), lentil seed agglutinin (LCA), pea agglutinin (PSA), Ricinus communis agglutinin-60 (RCA), and wheat germ agglutinin (WGA) dose-dependently inhibited gel contraction, while lectins of mushroom agglutinin (ABA), peanut agglutinin (PNA), pokeweed mitogen (PWM), and soybean agglutinin (SBA) did not. Of these lectins, PHA seemed to be worthy of further analysis, because PHA, but not other lectins, inhibited spreading of fibroblasts on collagen fibrils but not on plastic or gelatin, suggesting that cell-surface glycoproteins responsive to the lectin are involved in the specific binding of fibroblasts to native collagen fibrils. The inhibitory effect of PHA-E4, an isolectin of PHA, was more intense than that of PHA-L4, another isolectin of PHA. The collagen gel contraction was also inhibited by tunicamycin and monensin in a concentration-dependent and reversible manner. These results strongly suggest that PHA-E4-reactive glycoproteins of the fibroblast surface play an important role in cell to collagen binding during the gel contraction. Five membrane proteins including beta 1 subunits of the integrin family were obtained by affinity chromatography with PHA-E4.

Cell Movement

Collagen gel contraction by fibroblasts requires cellular fibronectin but not plasma fibronectin.

Fibroblasts embedded in three-dimensional lattices of collagen fibrils have been known to require serum constituents to induce a cell-mediated contraction of collagen gels. The gel contraction was studied with human skin fibroblasts cultured in the presence of fetal bovine serum (FBS). Removal of bovine serum fibronectin (sFN) from FBS did not affect the extent of gel contraction. Gel contraction occurred in serum-free defined media. Therefore, it is concluded that sFN is not required for gel contraction. That cellular FN (cFN) synthesized and secreted by fibroblasts plays a crucial role in gel contraction was suggested by the following experiments: (1) We obtained monoclonal antibodies (mAb A3A5) against fibroblast surface antigens, which suppressed the fibroblast-mediated gel contraction. Immunoblot analyses showed that mAb A3A5 recognizes cFN secreted by human fibroblasts and human plasma FN (pFN), but not bovine sFN in FBS used for culture. (2) Addition of rabbit antisera, which recognize human cFN, to a serum-free gel culture inhibited contraction. Uninvolvement of human pFN in gel contraction was further confirmed by the fact that neither pretreatment of fibroblasts with excess amounts of human pFN nor the presence of excess amounts of human pFN in gels affected the extent of gel contraction. This study seems to be the first demonstration of functional difference between cFN and pFN (or sFN) and proposes a novel mode of binding of fibroblasts with collagen fibrils via cFN during cell-mediated collagen morphogenesis.

Antibodies, Monoclonal

Effect of tretinoin on collagen gel contraction induced by mouse 3T3 fibroblasts.

Balb/3T3 fibroblasts were cultured in type I collagen gel and the effects of tretinoin (all-trans-retinoic acid) were examined on cell growth and the gel contraction produced by cells. Cell proliferation was suppressed and the degree of gel contraction was enhanced by the addition of 10(-7) and 10(-6) M tretinoin. Growth and gel contractility of transformed cells derived from the Balb/3T3 cells were not influenced by this agent. Addition of 12-O-tetradecanoylphorbol ester, which is known to antagonize tretinoin in several biological processes, enhanced gel contraction synergistically with tretinoin. These results suggest that tretinoin influences cell-to-collagen interactions.

Animals

Biochemical and immunological characterization of collagen molecules from echinothurioid sea urchin Asthenosoma ijimai.

Collagens collected from the test (the external hard covering of invertebrates) of the sea urchin, Asthenosoma ijimai, were characterized biochemically and immunologically. The amino-acid composition was typical of that of mammalian collagens. Crystals of segment-long-spacing showed that the molecules of sea urchin collagen were 300 nm long. Selective salt precipitation revealed that the collagen has the same solubility characteristics as type I collagen. The collagen was denatured at 23.1 degrees C. Anti-sea urchin collagen antisera were immunologically cross-reacted with collagens of the same species and the starfish Asterina pectinifera. However, the antisera showed no or slight responses to collagens of bovine type I, II, III, IV and V. The collagen molecules contained four alpha-chains, named alpha 1(SU), alpha 2(SU), alpha 3(SU) and alpha 4(SU), respectively. All of the four alpha-chains were eluted in the same fraction on gel filtration chromatography. Chains of alpha 1(SU) and alpha 2(SU) were extracted earlier than alpha 3(SU) and alpha 4(SU) during pepsin digestion. Other biochemical and immunological analyses clearly demonstrated that test of sea urchins contains two genetically different, but biochemically similar, species of collagens, one of which is composed of alpha 1(SU) and alpha 2(SU) chains, and the other of alpha 3(SU) and alpha 4(SU).

Animals

Cell cycle analysis of human dermal fibroblasts cultured on or in hydrated type I collagen lattices.

The proliferation and cell cycle phase composition of human dermal fibroblasts cultured on or in type I collagen lattices (reconstituted dermis model) were examined. On collagen lattices, as compared with conventional cultures on plastic dishes, the proliferation of human dermal fibroblasts was suppressed, being arrested at about one-half the saturation density after 10 days of culture. In collagen lattices, proliferation was further suppressed, being nearly arrested within 4-7 days of culture. Cells were analyzed for cell cycle phases by two-color flow cytometry using DNA staining and S phase cell staining with FITC-conjugated antibromodeoxyuridine antibody. After 5 days of culture, the number of S phase cells on collagen lattices was 49.3% of that on plastic dishes, with an increase in G0G1 phase cells of 79.8%. In collagen lattices, the number of S phase cells was very small (4.3% of all cells), and most of the cells accumulated in G0G1 phase. These findings suggest that the cell cycle of fibroblasts is arrested at G0G1 phase by their interaction with collagen. On the basis of these results, the reconstituted dermis model using collagen lattice is considered to be analogous to the dermis in vivo with respect to cell growth and cell cycle phase composition.

Cell Cycle

Cell culture on a thermo-responsive polymer surface.

We have used a thermo-responsive polymer, poly-N-isopropyl acrylamide (PNI-PAAm), as a substratum for the culture of human dermal fibroblasts by conjugating it with collagen. The cells attached well, spread, and grew on the substratum, indicating that the polymer has no toxicity towards the cells. PNIPAAm is insoluble in water over the lower critical solution temperature (LCST; about 32 degrees C) and reversibly solubilized below the LCST. Taking advantage of this conversion, monolayered fibroblasts cultured on the substratum containing the PNIPAAm over the LCST, were completely detachable from the substratum by simply lowering the temperature below the LCST, without the use of conventional detaching agents such as trypsin and EDTA. The detached cell sheet gradually aggregated and finally formed a multicellular spheroid. This polymer may provide a convenient and potentially useful technology for cell culture.

Acrylic Resins

Parallel arrangement, growth inhibition and cell cycle phase analysis of human dermal fibroblasts cultured in collagen lattice.

Human dermal fibroblasts were cultured in a hydrated type I collagen lattice. When collagen fibers were arranged in one direction, fibroblasts were arranged in the same direction. Cell proliferation was markedly suppressed in the collagen lattice as compared with that on plastic, with growth being arrested after day 5. No differences in proliferation were observed between aligned cells and randomly oriented cells. Flow cytometry with DNA staining was performed to analyze each phase of the cell cycle of fibroblasts. Among the 10,000 cell population, S phase cells on day 2 of culture accounted for 43% on plastic but were markedly inhibited to 25% in the lattice. On day 4, S phase cells accounted for 33% on plastic but only for 10% in the lattice. These findings suggest that cell advancement to the S phase is markedly inhibited in the collagen lattice, resulting in accumulation of most of cells in the G0G1 phase. The present study clearly showed that culture in the collagen lattice allowed alignment of fibroblasts with a definite orientation as observed in vivo and produced a status resembling that in vivo in terms of proliferation and cell cycle phase composition.

Adult

Correlation of contractility and proliferative potential with the extent of differentiation in mouse fibroblastic cell lines cultured in collagen lattices.

Four types of fibroblastic cell lines at various stage of differentiation, which had been derived from syngeneic mice, were cultured in collagen lattices (reconstituted dermis model). Lattice contraction, growth in the lattice, and cell morphology were compared. The following cell lines were used: [I] precrisis cells within several subcultures derived from the skin of Balb/c mice, [II] an established normal cell line derived from syngeneic mice (Balb/3T3 clone A31), and [III] two transformed lines (Balb/3T12-3, 3T3-B-SV40) originating from [II]. The cells adopted a bipolar spindle form in the collagen lattice. Lattice contraction was the most marked with cell type [I] followed in order by [II] and [III]. Relative growth in the lattice occurred in the reverse order (III greater than II greater than I). These findings suggested a correlation between lattice contraction and growth in the lattice and also between the extent of differentiation and lattice contraction.

Animals

Cell death in the anuran tadpole tail: thyroid hormone induces keratinization and tail-specific growth inhibition of epidermal cells.

The mechanism of thyroid hormone-induced and glucocorticoid-modulated death of tail epidermal cells from tadpoles of bullfrog, Rana catesbeiana, was investigated by comparing tail epidermal cells with dorsal body epidermal cells. From morphological and biochemical criteria, there were two types of epidermal cells: basal cells and skein cells. The abundance of these cells was different between the tail and the body skin. Fifty percent of body cells and more than 95% of tail cells were skein cells. Effects of 3,3',5-triiodo-L-thyronine (T3, 10(-8) M) and cortisol (5 X 10(-7) M) were investigated with cultured epidermal cells. T3 differently regulated the keratinization of the tail and body cells. The keratinization of the tail epidermal cells was not observed without T3. T3 induced the keratinization dramatically. On the other hand, body epidermal cells were constantly undergoing keratinization without the hormone: T3 merely accelerated the rate of keratinization. Cortisol generally did not show any significant effect on keratinization. T3 showed opposite effects on DNA synthesis of the tail and body cells: suppression of tail cells and stimulation of body cells. Cortisol weakened the inhibitory effect of T3 on DNA synthesis in tail cells. Immunofluorescent micrographs with anti-BrdU showed that T3 decreased the number of cells in the S phase of the cell cycle in the case of tail cells but not of body cells. Thus, thyroid hormone plays dual roles for the tadpole epidermal cells: one is an induction and a promotion of keratinization in tail and body cells, respectively, and the other is an opposite regulation for the proliferation of both epidermal cells. These roles seem to have crucial connections to a tail-specific cell death induced by thyroid hormone.

Animals