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Biomedical subjects

M Dziadek

Publications and source records attributed to M Dziadek.

At least 37 records · Page 2Linked to original sources

Role of laminin-nidogen complexes in basement membrane formation during embryonic development.

Laminin and nidogen (entactin) are major glycoprotein components of basement membranes. At least seven different isoforms of laminin have been identified. Laminin and nidogen form high affinity complexes in basement membranes by specific binding between the laminin gamma 1 chain and the G3 globule of nidogen. Additional interactions between nidogen and collagen IV, perlecan and other basement membrane components result in the formation of ternary complexes between these matrix components. Nidogen is highly susceptible to proteolytic cleavage, and binding to laminin protects nidogen from degradation. Nidogen is considered to have a crucial role as a link protein in the assembly of basement membranes. Basement membrane components are synthesized at high levels during tissue growth and development, and sites of morphogenesis correlate with localized remodelling of basement membranes. The formation of distinct basement membrane matrices in the developing embryo is influenced by the laminin isoforms produced and by whether laminin and nidogen are co-expressed and secreted as a complex or are produced by cooperation between two cell layers. The potential roles of laminin-nidogen complexes, cell-matrix interactions, and other intermolecular interactions within the matrix in basement membrane assembly and stability are discussed in this review.

Animals↗

Developmental analysis of the Hba(th-J) mouse mutation: effects on mouse peri-implantation development and identification of two candidate genes.

The Hba(th-J) mouse mutation is a deletion on chromosome 11 that spans the alpha-globin complex and causes alpha-thalassemia in heterozygous animals and in utero death of embryos homozygous for the deletion. We hypothesised that one or more genes closely linked to the Hba locus are also deleted in these mutant mice and that deletion of these additional genes is responsible for the embryo lethality. We have analysed the developmental profile of mutant embryos using a PCR assay to distinguish homozygous embryos from wild-type and heterozygous embryos. No homozygous embryos are detectable on Day 6.5 of gestation and morphological analysis of embryos on Day 5.5 shows that both the embryonic and extraembryonic ectoderm of the egg cylinder are reduced in size and contain degenerate cells. Preimplantation homozygous embryos are morphologically normal with the same proportion developing to the blastocyst stage as control embryos. However, the cell number of homozygous embryos on Day 4.5 is significantly reduced due predominantly to a decrease in the cell number of the trophectoderm and not the inner cell mass. When homozygous blastocysts are plated in vitro, outgrowth of giant trophectoderm cells appears similar to that of wild-type embryos but outgrowth of the inner cell mass is affected. Cells from the inner cell mass of homozygous embryos appear to undergo necrosis and dissociate from the trophectoderm outgrowth after 3 to 4 days in culture. These studies demonstrate that the development of both the inner cell mass and the trophectoderm of embryos homozygous for the Hbath-J deletion is affected by the mutation. We have used quantitative Southern blotting to show that 3-methyladenine glycosylase (mpg) and dist1, two genes closely linked to the Hba locus on chromosome 11, are also deleted in this mutation. Reverse transcriptase-polymerase chain reaction analyses demonstrate that mpg and dist1 are normally expressed by preimplantation and early postimplantation embryos, whereas alpha-globin transcripts from the Hba locus are not detected until Day 7.5 of gestation. These studies demonstrate that deletion of the mpg or dist1 genes is likely to be responsible for the homozygote embryo lethality and the potential roles of these gene products in early embryogenesis are discussed.

Animals↗

SPARC gene expression is reduced in early diabetes-related kidney growth.

Renal enlargement is a characteristic feature of diabetes in humans and experimental animals that may predict subsequent renal disease. The biological processes involved in diabetes-related kidney growth are complex and involve changes in extracellular matrix, cell hypertrophy and hyperplasia. Secreted protein acidic and rich in cysteine (SPARC) is an extracellular matrix protein with anti-adhesive, antiproliferative and matrix remodeling properties. We examined kidney SPARC gene expression and protein content in early experimental diabetes. By Northern blot analysis, kidney SPARC mRNA fell in diabetic animals at day 1 to 40 +/- 15% of controls levels (mean +/- SEM, P < 0.01) to 42% +/- 11% on day 3 (P < 0.01) with a further decrease at day 7 to 29 +/- 7% (P < 0.001). In situ hybridization demonstrated SPARC mRNA within glomeruli renal interstitial cells and in blood vessels but not in tubular epithelial cells. SPARC mRNA was decreased in diabetic rats within a change in the pattern of distribution. By immunofluorescence, SPARC protein was detected in glomeruli and tubular basement membrane. Diabetes was associated with a decrease in SPARC protein at both sites. These data demonstrate that the onset of diabetes-related kidney growth is associated with a reduction in SPARC mRNA and protein. In the context of the known biological actions of SPARC, the findings in the present study implicate this matrix protein in the pathogenesis of diabetes related kidney growth.

Animals↗

Expression of collagen alpha 1(VI), alpha 2(VI), and alpha 3(VI) chains in the pregnant mouse uterus.

The alpha 1, alpha 2, and alpha 3 chains of collagen VI and mRNAs for these chains were localized in the female mouse reproductive tract by immunofluorescence and in situ hybridization. High levels of collagen VI protein and mRNAs were present in the endometrium and myometrium of the uterus up to Day 4.5 of pregnancy. After embryo implantation, reduction in collagen VI protein within the decidualizing endometrium correlated with significantly reduced steady-state levels of alpha 1(VI), alpha 2(VI), and alpha 3(VI) mRNAs, indicating either transcriptional down-regulation of collagen VI gene expression or decreased stability of transcripts. High levels of alpha 1(V1) and alpha 2(VI) mRNAs, but not alpha 3(VI) mRNA, in cells surrounding the uterine epithelium in the mesometrial region did not correlate with deposition of collagen VI protein in this region. These data are consistent with an important role of alpha 3(VI) in assembly of collagen VI heterotrimers. However, distinct immunostaining with antiserum to alpha 2(VI) chains in the extracellular matrix immediately beneath the uterine epithelium may indicate that alpha 2(VI) chains are deposited without the alpha 1(VI) or alpha 3(VI) collagen chains. No collagen VI protein or mRNAs were detected in any tissue layers of the embryo on Days 5.5 or 6.5 of gestation.

Animals↗

Effects on neonatal growth of the Hba(th-j) deletion on mouse chromosome 11 are not due to genomic imprinting.

The Hba(th-j) deletion is found proximally on mouse chromosome 11 in a region of the genome that contains imprinted sequences important for neonatal growth regulation. This study has examined the effect of genomic imprinting on neonatal growth of offspring heterozygous for the Hba(th-j) deletion. Transmission of the deletion through both the male and female germ lines has shown that offspring heterozygous for the deletion are growth retarded when compared to wild type litter mates. This growth retardation is associated with the heterozygous genotype regardless from which parent the deletion is inherited. Growth of both wild type and Hba(th-j)/+ neonates born from Hba(th-j)/+ mothers is compromised when compared to offspring from wild type mothers indicating a maternal effect of the deletion on neonatal growth. These data demonstrate that sequences present in the Hba(th-j) deletion are important for growth regulation but that the expression of these sequences is not regulated by genomic imprinting.

Animals↗

Expression of collagen alpha 1(IV), laminin and nidogen genes in the embryonic mouse lung: implications for branching morphogenesis.

The patterns of laminin A, B1, B2, nidogen and collagen alpha 1(IV) gene expression in the embryonic mouse lung were determined using in situ hybridization histochemistry at a stage when branching morphogenesis is taking place. Collagen alpha 1(IV), laminin B1 and B2 genes were expressed throughout the mesenchyme and epithelium. Nidogen gene expression was uniform throughout the mesenchyme but was not detected in epithelial cells. Laminin A mRNA was localized to cells closely associated with a basement membrane at the epithelial-mesenchymal interface. However, expression of the laminin A gene was limited to the mesenchymal cells in bronchial regions and to epithelial cells in distal terminal lobules. We propose that the pattern of laminin A gene expression in different regions of the developing lung will influence the structure of the basement membrane at the epithelial-mesenchymal interface and thus have a role in branching morphogenesis.

Animals↗

Preovulatory administration of clomiphene citrate to mice causes fetal growth retardation and neural tube defects (exencephaly) by an indirect maternal effect.

Clomiphene citrate was administered to female mice at different doses and different times prior to ovulation, in the preimplantation period after ovulation, and after implantation. Pregnancy outcome was determined on day 15 of gestation, when the number of implantations and resorptions were calculated relative to the number of ovulations, and fetuses were assessed for size and stage of development and morphological abnormalities. Preovulatory administration of clomiphene citrate caused decreased implantation rates and growth retardation of surviving fetuses, the degree of the effect being dependent on the dose and the time of drug injection relative to ovulation. The implantation rate was lowest, and the degree of fetal growth retardation highest, when clomiphene citrate was administered immediately before ovulation. An increased incidence of exencephaly was found in the fetuses of females injected with clomiphene citrate prior to ovulation. Transfer of blastocysts from treated mice to untreated fosters showed the effect of clomiphene citrate on implantation and fetal growth to be predominantly mediated through the female reproductive tract, rather than a direct effect on the embryo itself. Administration of clomiphene citrate in the preimplantational period resulted in complete inhibition of implantation, while the only effect when administration was after implantation was a slight reduction in fetal weight. These results indicate that preovulatory clomiphene citrate impairs uterine function, which has an indirect effect on the growth and development of the postimplantation embryo.

Animals↗

Genes coding for basement membrane glycoproteins laminin, nidogen, and collagen IV are differentially expressed in the nervous system and by epithelial, endothelial, and mesenchymal cells of the mouse embryo.

The pattern of laminin A, B1, B2, nidogen, and collagen alpha 1 (IV) gene expression in the 12.5-day mouse embryo was determined by in situ hybridization. Laminin B1, B2, and collagen alpha 1 (IV) mRNAs were present in many epithelial and mesenchymal compartments. Laminin A mRNA had a more restricted distribution, being present in cells closely associated with basement membranes and also in the ependymal layer of the neural tube. Nidogen was not produced by any epithelium, but was abundant in mesenchymal and endothelial cells. These results demonstrate that mesenchymal cells contribute significantly to basement membrane production, and that many cells not associated with typical basement membranes produced high levels of mRNAs coding for basement membrane components. Very few cell types produced all five gene products, and some tissues preferentially expressed only one or two of the five genes. This study shows that basement membranes at the epithelial-mesenchymal interface in the majority of mouse embryonic tissues are assembled from components derived from both cell types, and that heterogeneous matrix structures containing different laminin subunits and/or nidogen are likely to be present in the central nervous system and other tissues of the midgestation mouse embryo.

Animals↗

Expression of laminin and nidogen genes during the postimplantation development of the mouse placenta.

The expression patterns of laminin A, B1, B2, and nidogen genes were identified by in situ hybridization in postimplantation mouse extraembryonic tissues and maternal decidua during the period when the chorioallantoic placenta is established. Laminin and nidogen genes were not coordinately expressed either in the decidua or in trophoblast cells, indicating that these genes are regulated independently in these cell types during the establishment of the placenta. Laminin A mRNA was absent from the decidua except in the outer layer of cells adjacent to the myometrium and in the central decidual zone adjacent to the remnant of the uterine epithelium on Day 9. At this stage laminin B1, B2, and nidogen genes were strongly expressed in these cells and also in other regions of the decidua. Laminin B1 mRNA was present at higher levels in the decidua capsularis than in the decidua basalis, while nidogen mRNA showed highest expression in the decidua basalis. Laminin B2 mRNA was produced uniformly throughout the decidua at very high levels, suggesting that laminin B2 chains may be an important component of the decidual matrix. By Day 11, the nidogen gene was expressed only in endothelial cells lining the maternal blood spaces within the decidua. Laminin B1 and nidogen mRNAs were found at high levels within trophoblast giant cells at all stages, while laminin A mRNA was detected in trophoblast giant cells at later stages and laminin B2 mRNA was not produced in high levels by these cells. The patterns of gene expression show a very high degree of regional specialization, suggesting that the extracellular matrices in different regions of the decidua and extraembryonic membranes are likely to be composed of quite different ratios of laminin and nidogen polypeptides.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Capacity to form choroid plexus-like cells in vitro is restricted to specific regions of the mouse neural ectoderm.

Neural ectoderm was dissected from 9.5-day and 8.5-day gestation mouse embryos and divided into forebrain, midbrain, hindbrain and spinal cord regions. Forebrain and hindbrain material from 9.5-day neural ectoderm was further divided into presumptive choroid plexus regions and regions that would normally form nervous tissue in vivo. All tissues were plated onto a basement membrane substratum for culture in vitro. It was found that explants of neural ectoderm that would normally form choroid plexus in vivo, readily differentiated to form choroid plexus-like cells in culture. Cells from hindbrain segments and forebrain regions, which would normally form nervous tissue, also had the potential to differentiate into cells resembling the choroid plexus epithelium in culture, provided that the normal cell-cell interactions were disrupted. Cells from the midbrain neuromeres of 9.5-day embryos, which do not form a choroid plexus in vivo, did not form this lineage in vitro. However, cells cultured from the earlier head-fold stage midbrain neural ectoderm could develop into choroid plexus epithelium. There was no evidence that neural ectoderm from the spinal cord had the developmental potential to form choroid plexus epithelial cells at either of these two developmental stages. These studies show that the restrictions in the potential of neural ectoderm stem cells to form different lineages proceeds according to morphological divisions that appear along the anterior-posterior axis during the early stages of brain development. These results suggest that the division of neural ectoderm into segments which contain discrete stem cell populations may be a general feature of the early phase of development of the central nervous system.

Animals↗

Effects of the extracellular matrix on fetal choroid plexus epithelial cells: changes in morphology and multicellular organization do not affect gene expression.

We have developed a primary culture system for fetal mouse choroid plexus epithelial cells which maintains their differentiated phenotype. When grown on a reconstituted basement membrane substrate (Matrigel) epithelial cells formed aggregates which became embedded in the matrix and developed into characteristic and highly reproducible multicellular vesicular structures. These vesicles consisted of a squamous layer of epithelial cells with extensive attachment to the matrix substrate, surrounding a fluid-filled lumen. Electron microscopy showed that cells comprising these vesicles had a high degree of membrane specialization and polarized morphology which in many respects mimicked the in vivo morphology. Biochemical analyses demonstrated that under these culture conditions the tissue-specific pattern of gene expression of fetal choroid plexus epithelium was maintained. After 6 days in culture these cells contained approximately the same amount of transthyretin mRNA as the 12.5-day choroid plexus in vivo, and the level of total RNA per cell, which is proportional to the protein synthetic capability of the cells, was also maintained. The pattern of protein secretion was also very similar to that generated by fetal mouse choroid plexus cells in vivo. In contrast choroid plexus epithelial cells attached poorly to collagen I gels. Heterogeneous aggregates were formed in which cell-cell interactions were more extensive than cell-substrate interactions, and in no cases was a central lumen observed. Cells on the surface of large aggregates showed some evidence of membrane polarization, while the majority of cells in the cultures exhibited little evidence of polarized morphology. Despite the striking difference in morphology and multicellular organization these cells still expressed high levels of transthyretin mRNA and maintained the same pattern of protein synthesis as cells cultured on Matrigel. These results indicate that the basement membrane is important for the organization of choroid plexus epithelial cells into a functional epithelium in vitro and thus presumably the maintenance of the integrity of the blood-brain barrier in vivo. In contrast to several other epithelial systems which have been studied, the type of extracellular matrix does not appear to directly influence tissue-specific gene expression by choroid plexus epithelial cells. Thus the level of gene expression is not dependent on the cytoarchitecture and multicellular organization of this cell type.

Animals↗

Functional and morphological changes induced by tunicamycin in dividing and confluent endothelial cells.

Cultured bovine aortic endothelial cells treated with tunicamycin, an inhibitor of glycoprotein synthesis, developed a concentration-dependent inhibition of N-acetylglucosamine-1-phosphate transferase activity, and this inhibition was correlated with a substantial decrease in [3H]mannose incorporation by the cells. Endothelial cells were very sensitive to tunicamycin, and changes in their morphology occurred as a result of the inhibition of glycoprotein synthesis. The cells became elongated, the surface irregular, roughened, and granular, and there was an increase in the interstitial space between the cells. Electron dense material was accumulated within and dilated the rough endoplasmic reticulum, and the distribution of the glycoproteins laminin and fibronectin throughout the endothelial cell monolayer was modified. These morphological changes coincided with functional impairment with the permeability of endothelial cell monolayers to both 125I-albumin and [3H]inulin being increased by treatment with tunicamycin (10(-6) M) for 24 h. These results indicate that the synthesis of glycoproteins is crucial for cell-cell adhesion and the functional properties of the endothelial lining of blood vessels.

Albumins↗

Characterization of a novel calcium-binding 90-kDa glycoprotein (BM-90) shared by basement membranes and serum.

The protein BM-90 was solubilized from the mouse Engelbreth-Holm-Swarm tumor with neutral buffers in molar yields lower (15-30%) than found for other basement membrane proteins (e.g. laminin, BM-40). The purified protein was shown to be rich in cysteine (5 mol%) and to change in SDS electrophoresis from an 84-kDa position to a 95-kDa one upon reduction. BM-90 was also shown to be a calcium-binding protein. The N-terminal sequence of BM-90, as well as those of several internal peptides, showed no identity with any known protein sequences, indicating that it is a new protein. Specific radioimmunoassays showed no or only minor cross-reactions with other known basement membrane proteins. Immunological assays demonstrated BM-90 to be present in neutral salt extracts from mouse heart and kidney, in serum (20-40 micrograms/ml) and in the medium of various cultured cells (0.1-1 microgram/ml). The protein in these samples was identical in size to BM-90 purified from the tumor, indicating that negligible degradation occurs during purification. An extracellular matrix localization of BM-90 was shown by immunofluorescence for Reichert's membrane, lens capsules and other basement membranes. Thus, BM-90 appears to be a novel basement membrane protein whose functions remain to be studied.

Amino Acid Sequence↗

In vitro production of Reichert's membrane by mouse embryo-derived parietal endoderm cell lines.

We report the isolation of eight independent cell lines from preimplantation mouse embryos, which have a parietal endoderm phenotype. When grown as aggregates, these cell lines produce large amounts of a basement membrane matrix, that contains laminin, nidogen, heparan sulfate proteoglycan, collagen IV, and BM-40. The biosynthetic profiles of all eight cell lines are very similar to parietal endoderm cells in vivo which synthesize Reichert's membrane. The structure of the matrix produced by the parietal endoderm cell lines (PEC lines) resembles more closely Reichert's membrane than the Engelbreth-Holm-Swarm (EHS) tumor in susceptibility to proteolytic degradation. Since these cell lines produce large quantities of basement membrane they will be useful for structural and functional comparison of a Reichert's membrane matrix with the basement membrane produced by the EHS tumor.

Animals↗

Developmental capacity of mechanically bisected mouse morulae and blastocysts.

Mouse embryos were mechanically bisected at the morula, early blastocyst or expanded blastocyst stages of development and cultured in vitro to the expanded blastocyst stage. Their capacity for postimplantation development was assessed after transfer to pseudopregnant foster mice. Embryos bisected at blastocyst stages had a higher survival rate in vitro than those bisected at the morula stage. Half-embryos had approximately half the number of cells at the blastocyst stage as control embryos, but the proportion of cells in the inner cell mass (ICM) was unaltered. The implantation rate of blastocysts derived from bisected embryos was only slightly lower than that of control embryos, but bisected embryos had a significantly reduced capacity to form fetuses. Histological analyses showed that failure to form a fetus is due to the absence of egg cylinder development, which correlates with the reduced number of cells in the ICM of bisected embryos. Postimplantation viability of half-embryos was significantly higher when blastocysts were transferred to Day-3 rather than Day-4 pseudopregnant recipients, presumably because of an increase in cell number in vivo prior to implantation.

Animals↗

Examination for platelet-activating factor production by preimplantation mouse embryos using a specific radioimmunoassay.

A specific and highly sensitive radioimmunoassay was used to measure platelet-activating factor (PAF) production by preimplantation mouse embryos in vitro. Levels of PAF greater than 1 pg per embryo were not observed in 24-h culture medium from 2-cell embryos, compacted morulae or blastocysts, or in extracts from these embryos. Synthetic PAF added to embryos at the start of culture could be almost totally recovered after the incubation period, indicating negligible degradation of PAF during culture. PAF was also not detected in embryo samples using a washed rabbit-platelet aggregation assay. It can be concluded that mouse embryos do not produce substantial levels of PAF, or any of the biologically active analogues of PAF detected by the assay.

Animals↗

Differences in the solubility and susceptibility to proteolytic degradation of basement-membrane components in adult and embryonic mouse tissues.

We have studied susceptibility of basement membranes in a variety of tissues to solubility in guanidine hydrochloride and to proteolytic degradation by trypsin and thermolysin. Unfixed sections from embryonic and adult mouse tissues and the EHS tumor were subjected to solvent buffers or digested with enzymes. The retention or disappearance of the basement-membrane components nidogen, laminin, collagen IV, and heparan sulfate proteoglycan was subsequently assayed by immunofluorescence. Our data showed that in all tissues nidogen was the most readily solubilized component and the most susceptible to proteolytic degradation. With few exceptions, nidogen in embryonic tissues was more susceptible to degradation than that in adult tissues, and this correlated well with the susceptibility of the other basement-membrane components to be degraded. We conclude that basement membranes differ quite markedly in their solubility and their susceptibility to proteolytic degradation and that these properties reflect differences in their molecular structure.

Animals↗