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I Caniggia

Publications and source records attributed to I Caniggia.

36 records · Page 2Linked to original sources

Fetal lung fibroblasts selectively down-regulate proteoglycan synthesis in response to elevated oxygen.

Cell proliferation is in part regulated by extracellular matrix. Therefore, it is possible that elevated O2 may indirectly affect lung fibroblast growth via modulation of extracellular matrix. In the present study, we investigated the effect of elevated O2 on the synthesis of glycosaminoglycans (GAGs) and proteoglycans (PGs) by fetal lung fibroblasts. A 48-h exposure to >/=50% O2 reduced the incorporation of [3H]glucosamine and 35SO4 into GAGs by fetal lung fibroblasts. The relative proportion of the individual GAG molecules was not altered by elevated O2. Fibroblasts exposed to 50% O2 secreted less [35S]proteoglycans into the medium than controls. Specifically, the synthesis of the small soluble PG, biglycan, was decreased by exposure to 50% O2. Fetal lung fibroblasts did not synthesize the small chondroitin/dermatan sulfate PG, decorin. Elevated O2 concentrations also reduced the synthesis of membrane- and matrix-associated PGs. Furthermore, exposure of fetal lung fibroblasts to >/=50% O2 resulted in a decreased mRNA expression for biglycan and versican core protein sequences. In contrast, elevated O2 increased the message for type I collagen and fibronectin without affecting that of beta-actin. The inhibitory effect of elevated O2 on biglycan mRNA and protein expression was overcome by incubating the cells in 3% O2 after the 48-h exposure to 50% O2. The latter treatment also reversed the increased mRNA expression of type I collagen associated with elevated O2 but not that of fibronectin. These results demonstrate that fetal lung fibroblasts, in response to elevated oxygen concentrations, selectively down-regulate their GAG and PG synthesis and that this O2 effect is reversible.

Animals↗

Identification of receptors binding fibronectin and laminin on fetal rat lung cells.

Fibronectin and laminin have been implicated in regulating lung morphogenesis. In the present study, the cell surface receptors involved in fetal lung cell binding to laminin and fibronectin were identified. Messages for alpha5- and beta1-integrin subunits were detected in both fetal lung epithelial cells and fibroblasts. The presence of alpha5 beta1 -integrin on both cell types was demonstrated by immunocytochemistry and confirmed by cell adhesion experiments with fibronectin and RGD-containing peptides. Epithelial cells adhered more readily to laminin than fibroblasts. The alpha4 beta1-integrin, and RGD-independent fibronectin receptor, was weakly expressed on either cell type. Both cell types expressed alpha6-integrin subunit mRNA and stained immunopositive for the alpha6-subunit. Although either cell type expressed nonintegrin 67-kDa laminin-elastin receptor mRNA, no positive immunoreactivity for this laminin-elastin binding protein was detected. None of these findings explain the enhanced attachment of distal fetal lung epithelial cells to laminin compared with fibroblasts. Previously, we have reported that epithelial cells were enriched in alpha3-integrin subunit mRNA and protein expression. Herein, we found that epithelial cell attachment to laminin was nearly completely inhibited by alpha3- but only partially by alpha6 -monoclonal antibodies. A peptide near the globular region at the long arm of the laminin A-chain, which contained the IKVAV sequence, and the laminin A-chain amino acid sequence representing the alpha3 beta1 -integrin binding site, inhibited the adherence of epithelial cells to laminin. Fetal lung epithelial cells attached to substrata coated with the alpha3 beta1-integrin binding site peptide and the peptide containing the IKVAV sequence. These data suggest that both fetal lung cell types bind to fibronectin via the fibronectin receptor, alpha5 beta1, and fetal lung epithelial cells interact with laminin via alpha3 beta1 and proteins that recognize the IKVAV-containing sequence on the laminin A-chain.

Amino Acid Sequence↗

Mechanical strain induces constitutive and regulated secretion of glycosaminoglycans and proteoglycans in fetal lung cells.

We have previously shown that an intermittent strain regimen, which simulates fetal breathing movements, enhanced mixed fetal rat lung cell proliferation in organotypic culture. As glycosaminoglycans (GAGs) and proteoglycans (PGs) may modulate growth factor activities, we investigated the effect of intermittent strain on the formation and secretion of GAGs and PGs. Mechanical strain increased the incorporation of [3H]glucosamine and 35SO4 into GAGs and promoted the release of GAGs into the medium. The composition of the individual GAG molecules was not altered by strain. Mixed fetal lung cells subjected to strain secreted more [35S]biglycan into the medium than static controls but biglycan mRNA expression was not significantly altered. As mechanical strain primarily affected the secretion of GAGs and PGs, we then investigated which secretory pathways were stimulated by strain. Fetal lung cells secreted GAGs mainly through a constitutive (basal) pathway which was stimulated by strain. In contrast to static cultures, strain-induced constitutive secretion was partially blocked by the cytoskeletal disruptors colchicine and cytochalasin B, but not by the small G-protein inhibitors N-acetyl-S-farnesyl-L-cysteine and perillic acid. This result suggests that strain-induced constitutive export of GAGs depends on the functional integrity of the cytoskeleton. Strain also triggered the regulated secretion of GAGs. The strain-induced regulatory pathway in fetal lung cells was blocked by ionomycin, BAPTA/AM and gadolinium, suggesting that strain stimulated the regulatory pathway by inducing a rapid calcium influx via a stretch-activated ion channel. We conclude that mechanical strain of mixed fetal lung cells stimulates GAG and PG exocytosis via activation of both the regulated and constitutive pathways.

Animals↗

Differential expression of collagen-binding receptors in fetal rat lung cells.

Interactions of cells with molecules of the extracellular matrix (ECM) are mediated via specific cell surface receptors. Because collagen is an important ECM component in the developing lung, we investigated the expression of collagen receptors by distal fetal lung epithelial cells and fibroblasts. Cell attachment experiments revealed that fibroblasts but not epithelial cells adhered to various types of collagen. With the use of subunit-specific antibodies, we demonstrated the presence of the collagen integrins alpha 1 beta 1, alpha 2 beta 1, and alpha 3 beta 1 at the fibroblast surface but only the integrin alpha 3 beta 1 on epithelial cells. Affinity chromatography on collagen-Sepharose identified only alpha 1 beta 1 and alpha 2 beta 1 as collagen-binding integrins in extracts of 125I surface-labeled fibroblasts. No collagen-binding receptors were detected in extracts of surface-iodinated epithelial cells. Message for alpha 1- and alpha 2-integrin was readily demonstrated for fibroblasts, but both mRNAs were hardly detectable in epithelial cells. In contrast, epithelial cells expressed significantly greater alpha 3 mRNA levels than fibroblasts. These data demonstrate that alpha 1 beta 1- and alpha 2 beta 1-integrins function as collagen-binding receptors in fetal lung fibroblasts. Distal fetal lung epithelial cells do not express the alpha 1 beta 1- and alpha 2 beta 1-integrins and do not adhere to collagen. The alpha 3 beta 1-integrin, which is expressed by both cell types, does not function as a collagen receptor.

Animals↗

Delivery of superoxide dismutase to pulmonary epithelium via pH-sensitive liposomes.

Respiratory insufficiency, when treated with oxygen supplementation, or exposure to diverse pulmonary toxins can cause lung damage as a result of increased oxygen radical production. Enzymes such as superoxide dismutase (SOD) may attenuate this pathological process, but the intracellular delivery and antioxidant action of SOD is impeded by its inability to cross cellular membranes. One approach for facilitating intracellular delivery of macromolecules is to entrap SOD into liposomes. The delivery of SOD to lung cells was accomplished using pH-sensitive liposomes, made with 1,2-dioleoyl-sn-glycero-3-phosphoethanolamine (DOPE) and 1-oleoyl-2-oleoyl-sn-glycero-3-succinate (DOSG), added to cultured fetal rat lung distal epithelial (FRLE) cells. FRLE cells, obtained from fetuses at day 19 gestation, expressed a high-affinity receptor for surfactant protein A (SP-A) with an apparent dissociation constant (Kd) = 3.6 +/- 0.2 micrograms/ml (5.5 x 10(-9) M) and a capacity of 130 +/- 3 ng/10(6) cells (125,000 +/- 3,000 binding sites/cell). This receptor was utilized for targeting liposomes to cells, after incorporating SP-A during liposome membrane formation. Liposomes were uniformly small (180 +/- 77 nm; mean +/- SD) and stable at 4 degrees C for 1 wk, entrapping 10 +/- 4% of initially added SOD. After incubation of pH-sensitive liposomes containing entrapped SOD with cultured FRLE cells, cell-associated SOD activity was increased 5.1-fold from 7.8 +/- 2.5 to 40.1 +/- 3.3 U SOD/mg cell protein. Incorporation of SP-A into liposomes increased by 6.2-fold the delivery of liposomal SOD to cells.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Pulmonary alveolar epithelial inducible NO synthase gene expression: regulation by inflammatory mediators.

Nitric oxide (.NO) is a short-lived mediator that can be induced by different cytokines and lipopolysaccharide (LPS) in a variety of cell types and produces many physiological and metabolic changes in target cells. In the current study, we show that a combination of cytokines, LPS, and zymosan-activated serum (ZAS; called for convenience cytomix Z) induces production of high concentrations of the NO oxidation products nitrite (NO2-) and nitrate (NO3-) by cultured rat fetal lung epithelial type II cells in a time-dependent fashion. Interferon-gamma and tumor necrosis factor-alpha alone did not significantly affect .NO synthesis, whereas ZAS, LPS, and interleukin-1 beta caused only a modest increase in formation of .NO oxidation products. Production of NO2- and NO3- was inhibited by NG-monomethyl-L-arginine and cyclohexmide. After exposure of these cells to a combination of the above cytokines, Escherichia coli LPS, and ZAS (cytomix Z), enhanced inducible nitric oxide synthase (iNOS) expression was indicated by an elevation in steady-state mRNA specific for iNOS (via Northern blot analysis) and increased immunofluorescence for iNOS after cell permeabilization, incubation with anti-iNOS antibody, and treatment with Cy3.18-conjugated rabbit-specific antibody. The extent of inflammatory mediator-induced.NO production by alveolar epithelium, which exceeds that of other lung cell types, reveals new insight into mechanisms of pulmonary host defense and pathways of free radical-mediated lung injury.

Amino Acid Oxidoreductases↗

Inhibition of fibroblast growth by epithelial cells in fetal rat lung.

The canalicular and saccular stages of rat lung development are marked by thinning of mesenchymal tissue. Because cell-cell interactions are important for normal fetal lung development, we investigated whether this regression of mesenchymal tissue is controlled by fibroblast-epithelial cell interactions. Using flow cytometry, thymidine uptake into DNA, and cell doubling time, we observed an increase in the proportion of lung fibroblasts in the G0/G1 phase of the cell cycle with advancing gestation. Conditioned medium of epithelial cells from the canalicular stage of lung development, but not from the pseudoglandular and saccular stages, inhibited fetal lung fibroblast proliferation. Fetal lung epithelial cell growth was not affected by the epithelial cell-conditioned medium. The response of fibroblasts to this epithelial cell-derived growth-inhibitory activity was organ specific but not gestation dependent. The inhibitory effect of epithelial cell-conditioned medium on fibroblast proliferation was overcome by the addition of > 2% fetal bovine serum. The inhibition was not mediated by prostaglandins because 50 microM ibuprofen, a prostaglandin synthase inhibitor, did not block the elaboration of the inhibitory activity by fetal lung epithelial cells. Partial characterization of the fibroblast growth-inhibitory activity in epithelial cell-conditioned medium showed that it was trypsin labile, heat and acid insensitive, and lipid extractable. Its molecular weight appears to be > 3.5 and < 12.5 kD. Transforming growth factor-beta 1 and surfactant proteins B and C did not mimic the inhibitory effect of epithelial cell-conditioned medium. These data suggest that fetal lung epithelial cells elaborate a hydrophobic polypeptide that inhibits fetal lung fibroblast proliferation in vitro.(ABSTRACT TRUNCATED AT 250 WORDS)

Age Factors↗

Fetal lung epithelial cells express receptors for platelet-derived growth factor.

There is increasing evidence to suggest that platelet-derived growth factor (PDGF) or PDGF-like molecules play a role in fetal lung morphogenesis. Our previous studies demonstrated that fetal lung epithelial cells respond mitogenically to exogenous PDGF, while fetal lung fibroblasts respond with increased glycosaminoglycan synthesis. To further study the target cells of PDGF in fetal rat lung, we investigated the presence and nature of PDGF receptors in fetal lung cells. Functional PDGF receptors were expressed on normal epithelial cells of fetal rat lung. All three isoforms of PDGF (AA, AB, and BB) were mitogenic for quiescent epithelial cells. Northern blot and protein analysis demonstrated the presence of PDGF alpha-receptor and PDGF beta-receptor. All isoforms of PDGF enhanced tyrosine kinase activity and stimulated receptor autophosphorylation. In contrast, fetal lung fibroblasts expressed only the PDGF beta-receptor. PDGF-AB and PDGF-BB, but not PDGF-AA, stimulated tyrosine kinase activity. No PDGF isoform was mitogenic for quiescent fibroblasts. However, PDGF-BB stimulated fibroblast proliferation on a collagen type I substratum in the presence of transferrin. Binding experiments with [125I]PDGF-AA and [125I]-PDGF-BB to epithelial cells and fibroblasts confirmed these observations.

Animals↗

Temporal and spatial differences in glycosaminoglycan synthesis by fetal lung fibroblasts.

In studies of the ontogeny of fibroblast-epithelial interactions during late fetal lung rat lung development, we have identified two subpopulations of fibroblasts which differed in their ability to promote epithelial cell proliferation or differentiation. As glycosaminoglycans (GAGs) have been implicated in the regulation of these processes we have tested whether the two fibroblast populations synthesize different GAGs and whether the GAG pattern changes with development. Fibroblasts incorporate more [3H]glucosamine and Na2 35SO4 into GAGs than epithelial cells. Both cell types deposited a significant amount of newly synthesized GAGs in the cell-matrix layer. GAGs were lost faster from the cell-matrix layer of fibroblasts (t1/2 = 12 h) than from that of epithelial cells (t1/2 = 48 h). Total GAG synthesis by fibroblasts did not change with advancing gestation, but synthesis of sulfated GAGs by epithelial cells declined with advancing gestation. Independent of gestational age epithelial cells synthesized predominantly heparan sulfate. Depending on their proximity to the epithelium, fibroblasts differed in their production of GAGs. Fibroblasts in close proximity to the epithelium mainly produced and secreted hyaluronan. More distant fibroblasts, from the pseudoglandular stage of lung development synthesized primarily heparan sulfate and chondroitin sulfate. This same population of fibroblasts from the canalicular stage of lung development, produced more hyaluronan. As the shift to hyaluronan occurs with the thinning of the alveolar septal wall, this finding suggests that developmentally regulated GAG production by fibroblasts may facilitate epithelial-fibroblast interaction, thus influencing fetal lung growth and differentiation.

Animals↗

Differential effect of platelet-derived growth factor on glycosaminoglycan synthesis by fetal rat lung cells.

Lung morphogenesis is in part regulated by extracellular matrix (ECM), and cytokines may indirectly control lung development via modulation of ECM. In the present study, we investigated the effect of different platelet-derived growth factor (PDGF) isoforms AA, AB, and BB on the synthesis of glycosaminoglycans (GAG) by fetal rat lung cells. Independent of gestational age, PDGF-BB, but not PDGF-AA or -AB, stimulated GAG synthesis of fetal lung fibroblasts. In contrast, GAG synthesis by epithelial cells was not affected by any of the PDGF molecules. The stimulatory effect of PDGF-BB on fibroblast GAG biosynthesis was dose (> 10 ng/ml) and time (> 8 h) dependent. The relative proportion of the individual GAG molecules was not altered by PDGF-BB exposure. Blockage of tyrosine kinase activity with staurosporine did abolish the effect of PDGF-BB on fibroblast GAG formation. Actinomycin D and cycloheximide did not abrogate the PDGF-BB effect, suggesting that no new RNA or protein synthesis is required. The proteoglycan synthesis blocker, beta-D-xyloside, also did not inhibit the PDGF-BB action on fibroblast GAG synthesis. These data suggest that the effect of PDGF on GAG synthesis is cell type and isoform specific and is most likely a direct effect on the GAG chain elongation enzymes.

Alkaloids↗

Growth of distal fetal rat lung epithelial cells in a defined serum-free medium.

Fetal rat distal lung epithelial cells, in contrast to adult type II pneumocytes, will divide readily in culture in the presence of 10% (vol:vol) fetal bovine serum. The presence of serum makes purification of uncontaminated cell-derived growth factors difficult and modifies cellular responses to oxidant injury. We report the development of a defined serum-free medium that will support growth of fetal distal lung epithelial cells in primary culture. Initial studies used a low-serum (2%; vol:vol) to determine the effect of basal media, substrata, and various additives. Subsequent studies demonstrated growth on a poly-D-lysine substratum under serum-free culture conditions in Dulbecco's modified minimal essential medium with insulin (50 micrograms/ml), endothelial cell growth supplement (20 micrograms/ml), bovine pituitary extract (100 micrograms/ml), bovine serum albumin (50 micrograms/ml), selenous acid (4 ng/ml), reduced glutathione (500 ng/ml), soybean trypsin inhibitor (100 micrograms/ml), transferrin (5 micrograms/ml), HEPES buffer (2.6 mg/ml), and cholera toxin (5 micrograms/ml). Growth was enhanced by reducing the gas phase oxygen concentration from 21 to 3%. The undefined components of this medium, bovine pituitary extract and endothelial cell growth supplement, could be replaced by platelet-derived growth factor (20 ng/ml) with prostaglandin E1 (25 nM). The response of fetal distal lung epithelial cells to known growth factors differs substantially from that observed with type II pneumocytes from adult lung and is similar in many, though not all, respects to the responses reported for proximal airway cells from adult lung.

Animals↗

Spatial and temporal differences in fibroblast behavior in fetal rat lung.

Fibroblast-epithelial interactions were investigated in cells from late-gestation fetal rat lung. Fibroblasts from the pseudoglandular stage of lung development stimulated epithelial cell proliferation, whereas fibroblasts from the saccular stage promoted epithelial cell differentiation. The developmental switch from proliferation to differentiation seemed to be controlled by both cell types. Fibroblast-derived epithelial cell growth-promoting activity, evident in cells from the pseudoglandular period, decreased during development and almost disappeared in cells from the saccular stage. Interestingly, the response of epithelial cells to this growth-promoting activity declined with advancing gestational age as epithelial cells became more responsive to fibroblast-derived differentiation factor(s). Production of differentiation factor(s) by fibroblasts increased during the canalicular stage of lung development. Platelet-derived growth factor (PDGF) and low concentrations of transforming growth factor-beta (TGF-beta) stimulated epithelial cell proliferation. PDGF did not affect differentiation, whereas TGF-beta was inhibitory. Dependent on their proximity to the epithelium, two subpopulations of fibroblasts that differed in their ability to promote epithelial cell proliferation or differentiation were isolated. Fibroblasts in close proximity to the epithelium mainly produced differentiation factors, whereas more distant fibroblasts primarily stimulated proliferation.

Animals↗

Oxygen and placental development during the first trimester: implications for the pathophysiology of pre-eclampsia.

During early pregnancy, placentation occurs in a relatively hypoxic environment which is essential for appropriate embryonic development. Intervillous blood flow increases at around 10-12 weeks of gestation and results in exposure of the trophoblast to increased oxygen tension (PO2). Prior to this time, low oxygen appears to prevent trophoblast differentiation towards an invasive phenotype. In other mammalian systems, oxygen tension effects are mediated by hypoxia inducible factor-1 (HIF-1). We found that the ontogeny of HIF-1alpha subunit expression during the first trimester of gestation parallels that of transforming growth factor-beta3 (TGFbeta3), an inhibitor of early trophoblast differentiation. Expression of both molecules is high in early pregnancy and falls at around 10 weeks of gestation when placental PO2 levels are believed to increase. Antisense-induced inhibition of HIF-1alpha inhibited the expression of TGFbeta3, and stimulated extravillous trophoblast (EVT) outgrowth and invasion. Of clinical significance we found that TGFbeta3 expression was increased in pre-eclamptic placentae when compared to age-matched controls. Significantly, inhibition of TGFbeta3 by antisense oligonucleotides or antibodies restored the invasive capability to the trophoblast cells in pre-eclamptic explants. We speculate that if oxygen tension fails to increase, or trophoblasts do not detect this increase, HIF-1alpha and TGFbeta3 expression remain high, resulting in shallow trophoblast invasion and predisposing the pregnancy to pre-eclampsia. Effective fetal-maternal interactions during early placentation are critical for a successful pregnancy. Optimal placental perfusion requires the controlled invasion of trophoblast cells deep into the decidua to the spiral arteries. Trophoblast stem cells, also referred to as cytotrophoblast cells, reside in chorionic villi of two types, floating and anchoring villi. Floating villi, which represent the vast majority of chorionic villi, are bathed in maternal blood and primarily perform gas and nutrient exchange for the developing embryo. During early placentation, cytotrophoblast cells in the floating villi proliferate and differentiate by fusing to form the multinucleate syncytiotrophoblast layer. Cytotrophoblast cells in anchoring villi either fuse to form the syncytiotrophoblast layer, or break through the syncytium at selected sites and form multilayered columns of non-polarized extravillous trophoblast cells, which physically connect the embryo to the uterine wall (Figure 1). The extravillous trophoblast cells invade into the uterine wall as far as the first third of the myometrium and its associated spiral arteries, where they disrupt the endothelium and the smooth muscle layer and replace the vascular wall. This results in the conversion of the narrow calibre arteries into distended uteroplacental arteries, thereby increasing blood flow to the placenta and allowing an adequate supply of oxygen and nutrients to the growing fetus. The invasive activity of the extravillous trophoblast cells is at a maximum during the first trimester of gestation, peaking at around 10-12 weeks and declining thereafter. Insufficient invasion contributes to the development of pre-eclampsia, which often results in fetal intrauterine growth restriction, maternal hypertension and proteinuria. In contrast, unrestricted invasion is associated with premalignant conditions, such as invasive mole, and with malignant choriocarcinoma. Invading trophoblast cells undergo striking and rapid changes in cellular functions that are temporally and spatially regulated along the invasive pathway (Figure 1) (Cross, Werb and Fisher, 1994. The formation of the anchoring villi is accompanied by changes in synthesis and degradation of extracellular matrix proteins and their receptors, and changes in the spatial distribution of extracellular matrix proteins, as well as changes in the expression of adhesion molecules (Damsky, Fitzgerald and

DNA-Binding Proteins↗

Hypoxia favours necrotic versus apoptotic shedding of placental syncytiotrophoblast into the maternal circulation.

In the third trimester of normal pregnancy, the mother tolerates daily shedding of several grams of dying placental trophoblast into the maternal circulation. The balance between apoptotic and necrotic shedding is presently unknown. Since pre-eclampsia is characterized by an altered placental oxygenation and increased trophoblast shedding, we investigated the role of oxygen on the balance of apoptotic versus necrotic trophoblast shedding in vitro. We studied human trophoblast turnover in explanted villi from late first and third trimester placentas in low oxygen (2 per cent) and higher oxygen tensions (6 per cent and 18 per cent) for up to 72h. Trophoblast turnover including apoptosis and necrosis were assessed by histology, immunolocalization of Mib-1 (proliferation marker), Bcl-2 (apoptosis inhibitor), activated caspase 3 (apoptosis promoter), cytokeratin 18 neo-epitope formation (M30 antibody), TUNEL test (DNA degradation), and (3)H-cytidine and(3) H-uridine incorporations. Culture in 2 per cent oxygen increased cytotrophoblast proliferation and syncytiotrophoblast shedding by necrosis. The proteins necessary for execution of apoptosis were mostly retained in the cytotrophoblast due to lack of syncytial fusion. Culture in 6 per cent and 18 per cent oxygen reduced cytotrophoblast proliferation. Syncytial fusion occurred and activity of caspase 3 was found in the syncytiotrophoblast; the latter remained intact demonstrating physiologic turnover, including apoptotic shedding. We conclude that severe placental hypoxia favours necrotic rather than apoptotic shedding of syncytial fragments into the maternal circulation. Since uteroplacental ischaemia is a significant risk factor for pre-eclampsia, these findings may explain the link between reduced uteroplacental blood flow and the systemic clinical manifestations of this disease.

Adult↗