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Biomedical subjects

A Celis

Publications and source records attributed to A Celis.

At least 37 records · Page 2Linked to original sources

Levels of synthesis of primate-specific nuclear proteins differ between growth-arrested and proliferating cells.

A monoclonal antibody that reacts specifically with the proliferation-sensitive nuclear proteins, isoelectric focusing (IEF) 8Z30 and 8Z31 (molecular weight (MW), 76,000 charge variants, HeLa protein catalogue number) has been characterized. As determined by indirect immunofluorescence, the antibody stains the nucleolus and nucleoplasm of interphase-cultured cells of primate origin, but does not react with cells of other species. Proteins having similar MWs and isoelectric points as the human or monkey (primates) proteins were not observed in cultured cells of the following species: aves, bat, dog, dolphin, goat, hamster, mink, mouse, pisces, potoroo, rabbit and rat. Quantitative two-dimensional (2D) gel electrophoretic analysis of [35S]methionine-labeled proteins synthesized by normal (quiescent, proliferating) and SV40-transformed human MRC-5 fibroblasts revealed significant differences in the levels of synthesis of both IEF 8Z30 and 8Z31. In quiescent cells the main labelled product corresponded to IEF 8Z31 (ratio IEF 8Z31/8Z30, 2.3), while in the transformed cells the major product was IEF 8Z30 (ratio, 0.62). Normal proliferating fibroblasts exhibited similar levels of both proteins (ratio, 1.21). Combined levels of synthesis of both proteins were 1.50 and 1.20 times as high in the transformed cells as in the quiescent and proliferating cells, respectively. Similar results were observed in other pairs of normal and transformed human cells, such as WI38/WI38 SV40 and amnion/AMA. Modulation of the levels of synthesis of these proteins may play a role in cell proliferation.

Animals↗

Yeasts in juvenile periodontitis. Preliminary observations by scanning electron microscopy.

Through the use of the electron microscope, yeasts were found invading gingival connective tissue in juvenile periodontitis (JP). Samples (3-mm punch biopsies, including epithelium and underlying connective tissue) were taken apically to periodontal pockets before and after patient treatment with spiramycin. Some samples underwent in vitro treatment with spiramycin. Oval and round yeast cells were found before and after in vivo and after in vitro spiramycin treatment. Larger numbers of yeast cells were seen after spiramycin treatment indicating that their growth might be favored after patient treatment with this antibiotic. This observation has an obvious clinical implication. Budding processes, indicating active yeast multiplication, were observed. Some yeast cells also showed the presence of glycocalyx. Further studies on the role of yeast in the pathogenesis of JP are necessary.

Adolescent↗

Secreted proteins from normal and SV40 transformed human MRC-5 fibroblasts: toward establishing a database of human secreted proteins.

Analysis by means of computerized two-dimensional gel electrophoresis (NEPHGE, IEF) of the [35S]-methionine labeled proteins secreted by normal human MRC-5 fibroblasts revealed 476 polypeptides (258 acidic and 218 basic), many of which appeared as charge trains due to modification. Similar analysis of the proteins secreted by SV40 transformed MRC-5 fibroblasts (MRC-5 V2) showed a striking decrease in the levels of many of these proteins as well as the appearance (or increased synthesis) of 47 polypeptides that were either absent or present in very low amounts in normal cells. Of the major secreted polypeptides whose relative proportion decreased dramatically in the MRC-5 V2 cells, 15 were found to be abundant components of other normal (nontransformed) fibroblasts (W138, Xeroderma pigmentosum cell lines). Low levels of these radioactively labeled polypeptides were observed in transformed human cell lines of fibroblast (W138, SV40, HT1080), epithelial (HeLa, transformed amnion cells (AMA), A431, A459) and myeloid (HL-60) origin. No major secreted polypeptide from MRC-5 V2 cells was synthesized exclusively by the transformed cell lines.

Cell Line, Transformed↗

Major proteins induced and down-regulated by interferons in human cultured cells: identification of a unique set of proteins induced by interferon-alpha in epithelial, fibroblast, and lymphoid cells.

In all, 40 major polypeptides ranging in molecular weights from 14.5 to 83 kDa were shown to be induced by IFNs alpha (also by IFN-alpha 2b and beta in a few cases) and gamma in human cultured cells of epithelial (transformed amnion cells (AMA)), fibroblast (proliferating and quiescent MRC-5 fibroblasts), and lymphoid origin (Molt-4). With the exception of a heat shock protein (IEF14 or hs x 70) and two tropomyosins (IEFs 52x and 55), none of these proteins corresponded to polypeptides (proliferation-sensitive or others) previously identified and catalogued by us. IFN-alpha induced the highest number of polypeptides in lymphoid cells, while the response to IFN-gamma was more pronounced in cultured epithelial and fibroblast cells. Several of the polypeptides induced by IFNs alpha and gamma were synthesized (albeit at different rates) by the control untreated cells, and in some cell types such as normal human peripheral blood mononuclear cells many were expressed at high levels. Only IFN-alpha-induced a unique set of proteins (alpha 1, 51 kDa; alpha 2, 15 kDa; alpha 19, 78 kDa; and gamma 10, 83 kDa) in all cultured cell types studied, implying that response to this IFN involves a shared biochemical pathway(s). Both IFN-alpha (also IFN-alpha 2b) and beta induced an identical group of proteins in AMA cells in agreement with the fact that type I IFNs share common receptors. IFNs alpha and gamma induced a few common polypeptides, but only gamma 10 (83 kDa) showed increased synthesis in all cell types exposed to either of these IFNs. A total of 28 major cellular polypeptides were down-regulated by IFNs in the various cell type studied. Different sets of proteins were affected, however, in each system, emphasizing the complexity of the mechanisms underlying the action of these factors. Treatment of synchronized G1 AMA cells with IFNs alpha, beta, or gamma (500 IU/ml, final concentration) did not inhibit their progression from G1 to S-phase as determined by indirect immunofluorescence using PCNA autoantibodies specific for cyclin. These observations were in line with the fact that IFNs did not affect dividin or cyclin(PCNA) synthesis (S-phase specific proteins) at least within the first 17 hr after their addition.

Amnion↗

Identification of two human phosphoproteins (dividin and IEF 59dl) that are first detected late in G1 near the G1/S transition border of the cell cycle.

Two-dimensional gel electrophoretic analysis (NEPHGE, IEF) of the [32P]-orthophosphate-labeled proteins synthesized throughout the cell cycle of transformed human amnion cells (AMA) revealed two phosphoproteins (dividin, Mr = 54,000, pl = 8.4; IEF 59dl, Mr = 27,000, pl = 5.7) that are present mainly in S-phase cells. These proteins are first detected at the end of G1, near the G1/S transition border, and their levels reach a maximum late in S-phase. Together with the previously identified nuclear protein cyclin, these phosphoproteins are likely candidates for proteins that may play a role in the regulation of the onset of DNA synthesis and cell division.

Amnion↗

Nuclear patterns of cyclin (PCNA) antigen distribution subdivide S-phase in cultured cells--some applications of PCNA antibodies.

Immunofluorescence studies using PCNA autoantibodies specific for the proliferation-sensitive protein cyclin have revealed dramatic changes in the nuclear distribution of this protein during the S-phase of normal and transformed cells. Patterns of cyclin antigen distribution subdivide S-phase and have provided new cell cycle landmarks. Some of these (nucleolar exclusion or staining), mimic topographical patterns of DNA synthesis thus arguing for a role of this protein in some specific aspect of DNA replication. Cells outside S-phase (G0 included) stain only weakly with PCNA antibodies, stressing the usefulness of this reagent for identifying proliferating cells (S-phase cells) of both normal and malignant origins.

Animals↗

Individual nuclei in polykaryons can control cyclin distribution and DNA synthesis.

Nuclear patterns of cyclin (PCNA) distribution that subdivide S-phase (determined using PCNA autoantibodies specific for this protein) as well as [3H]thymidine incorporation followed by autoradiography have been used to determine the S-phase synchrony of homophasic polykaryons produced by polyethylene glycol (PEG)-induced fusion of populations of mitotic transformed human amnion cells (AMA) exhibiting the following average distribution of phases: prophase, 9%, metaphase, 60% (including early and late prometaphase), anaphase, 3.8%, telophase, 26.2% and interphase, 1%. Both synchronous and asynchronous polykaryons were generated from these fusions; the latter being frequently observed only amongst populations of multinucleated cells having three or more nuclei. These results are taken to imply that individual nuclei in these polykaryons can control cyclin distribution and DNA synthesis in spite of the fact that they share a common cytoplasm.

Amnion↗

Cell cycle-dependent variations in the distribution of the nuclear protein cyclin proliferating cell nuclear antigen in cultured cells: subdivision of S phase.

Immunofluorescence analysis of synchronously growing transformed human amnion cells (AMA) using autoantibodies specific for cyclin has revealed dramatic changes in the nuclear distribution of this protein during the S phase of the cell cycle. Cells in G1, G2, and mitosis exhibit weak staining with the antibody, while S-phase cells show variable patterns of staining in terms of both intensity and distribution of the antigen. Early in S phase, cyclin is localized throughout the nucleoplasm with the exception of the nucleoli. A similar, but stronger, staining pattern is observed as the cells progress through the S phase. At a later stage, before maximum DNA synthesis, cyclin redistributes to reveal a punctuated pattern with foci of staining throughout the nucleus. This pattern precedes a major change in the distribution of this protein, which is then detected in the nucleolus. At this stage, DNA synthesis is at or near a maximum. Thereafter, there are further changes in the distribution of this protein, with the pattern becoming punctuated and of decreasing intensity. All these staining patterns have also been detected in asynchronously growing normal human amnion cells (AF type), suggesting that the distribution of this protein is not a consequence of transformation. Analysis of cultured cells from several vertebrate species also revealed similar staining patterns. These results are consistent with the idea that cyclin is a central component of the pathway(s) leading to DNA replication and cell division.

Amnion↗

Expression of the transformation-sensitive protein "cyclin" in normal human epidermal basal cells and simian virus 40-transformed keratinocytes.

A cell population highly enriched in human epidermal basal cells has been obtained and characterized by using antibodies specific for various cell types in the epidermis. Quantitative two-dimensional gel electrophoretic analysis (isoelectric focusing) of [35S]methionine-labeled polypeptides from basal cells and simian virus 40-transformed keratinocytes showed that the basal cells synthesize very low amounts (less than 0.02% of the total protein) of the nuclear, transformation-sensitive protein cyclin as compared to the transformed cells, which synthesize this protein constitutively (0.15% of the total protein). Very low levels of cyclin were observed in total human epidermis, and preliminary studies of two basaliomas have shown a significant synthesis of this protein in these tumors. Immunofluorescence studies using antibodies to proliferating cell nuclear antigen that immunoprecipitate cyclin confirmed the above observations at least in the case of the cultured cells. Taken together, these results support the notion that cyclin may be a central component of the pathway(s) that controls cell proliferation.

Antigens, Neoplasm↗

Intermediate filaments in monkey kidney TC7 cells: focal centers and interrelationship with other cytoskeletal systems.

Two-dimensional gel electrophoresis of intermediate-sized filament-enriched cytoskeletons of epithelial monkey kidney TC7 cells has shown that they are composed of at least two keratins (isoelectric focusing 36, Mr = 48,500; IEF 46, Mr = 43,500; HeLa protein catalogue number) and vimentin. Indirect immunofluorescence as well as immunoelectron microscopy using antibodies directed against specific polypeptides sometimes revealed a discontinuous staining of keratin-containing filaments. Indirect immunofluorescence analysis of cells stained with keratin or vimentin antibodies also revealed a bright perinuclear staining in 58% of the cells in interphase. Of particular interest were focal centers from which filaments radiated. Double-label immunofluorescence using tubulin and keratin antibodies showed that these centers codistributed with focal arrays of microtubules (most likely centrosomes) in interphase cells but were not colocalized with centrioles in mitosis or, in many cases, with the microtubule organizing centers seen after release from nocodazole treatment. Treatment of TC7 cells with demecolcine (10 micrograms/ml, 20 hr) resulted in a drastic rearrangement of the keratin and vimentin filaments. Likewise, treatment with cytochalasin B (10 micrograms/ml, 1 hr) produced a star-like arrangement of the keratin and vimentin filaments and, in most cases, these codistributed with patches of actin. The results provide evidence for the interaction of intermediate filaments (keratins and vimentin) with both microtubules and microfilaments.

Animals↗

Differential immunological crossreactivity of HeLa keratin antibodies with human epidermal keratins.

HeLa cells contain four keratin-like proteins having molecular weights of 50,000 (IEF 31), 48,500 (IEF 36), 44,000 (IEF 44), and 43,500 (IEF 46), respectively. Mouse polyclonal antibodies prepared against two of these keratins (IEF 31 and 46) have been used in this study to identify human epidermal keratins with common antigenic determinants. Using a sensitive immunoprecipitation procedure we show that the IEF 31 antibody crossreacts with three human acidic epidermal keratins, termed K1, K2, and K3, having molecular weights of 44,000, 47,500, and 54,000, respectively. One of these keratins (K1) comigrated with HeLa keratin IEF 44 and exhibited an identical one-dimensional peptide map. This protein is also abundant in basaliomas. In contrast to these results, the IEF 46 antibody showed no crossreactivity with any of the human acidic or basic [35S]methionine-labeled epidermal proteins. The lack of crossreactivity of this antibody was further confirmed by indirect immunofluorescence staining of cryostat sections from human split skin. These results emphasize both the similarity and diversity of antigenic determinants among HeLa and epidermal keratins.

Antibody Specificity↗

Phosphorylation of keratin and vimentin polypeptides in normal and transformed mitotic human epithelial amnion cells: behavior of keratin and vimentin filaments during mitosis.

Analysis by means of two-dimensional gel electrophoresis (IEF) of [32P]orthophosphate-labeled proteins from mitotic and interphase transformed amnion cells (AMA) has shown that keratins IEF 31 (Mr = 50,000; Hela protein catalogue number), 36 (Mr = 48,500), 44 (Mr = 44,000), 46 (Mr = 43,500), as well as vimentin (IEF 26; Mr = 54,000) are phosphorylated above their interphase level during mitosis. Similar studies of normal human amnion epithelial cells (AF type) confirmed the above observations except in the case of keratin IEF 44 whose relative proportion was too low to be analyzed. Immunofluorescent staining of methanol/acetone-treated mitotic transformed amnion cells with a mouse polyclonal antibody elicited against human keratin IEF 31 showed a dotted staining (with a fibrillar background) in all of the cells in late anaphase/early telophase (characteristic "domino" pattern) and in a sizeable proportion of the cells in other stages of mitosis. Normal mitotic amnion cells on the other hand showed a fine fibrillar staining of keratins at all stages of mitosis. Similar immunofluorescent staining of normal and transformed mitotic cells with vimentin antibodies revealed a fibrillar distribution of vimentin in both cell types. Taken together the results indicate that the transformed amnion cells may contain a factor(s) that modulates the organization of keratin filaments during mitosis. This putative factor(s), however, is most likely not a protein kinase as transformed amnion cells and amnion keratins are modified to similar extents. It is suggested that in general the preferential phosphorylation of intermediate-sized filament proteins during mitosis may play a role in modulating the various proposed associations of these filaments with organelles and other cellular structures.

Amnion↗

Distribution of HeLa cells polypeptides in cytoplasts and karyoplasts.

The polypeptide composition of cytoplasts and karyoplasts prepared form HeLa cells prelabelled with [35S]-methionine and enucleated with Cytochalasin B has been analyzed using high resolution two dimensional gel electrophoresis (IEF and NEPHGE). Of the 259 major proteins followed in this study we have identified 73 polypeptides (30 acidic(IEF) and 43 basic (NEPHGE)) that are present mainly in karyoplasts. One of these polypeptides (IEF 49) has previously been shown to be a polypeptide marker for cycling cells. A total of 59 polypeptides (27 acidic and 32 basic) were found to be present mainly in cytoplasts. Many polypeptides (109 acidic and 18 basic) including Y and beta-actin (60% in cytoplasts), beta-tubulin (60% in cytoplasts), vimentin (75% in cytoplasts) and alpha-actinin (65% in cytoplasts) were found to be present in both cellular fragments. These results could be of value in assigning the cellular distribution of potential regulatory proteins.

Cell Nucleus↗

Demonstration of dissimilar acute haemodynamic effects of ethanol and acetaldehyde.

To determine whether the acute cardiac depressant effects of ethanol could be attributed to its metabolite (acetaldehyde), either ethanol or acetaldehyde was intravenously infused into pentobarbital anaesthetised, closed-chest dogs. At a venous blood ethanol level of 199 +/- 43 (SE) mg . dl-1, ejection fraction had decreased from 35 +/- 2 to 30 +/-2%, P less than 0.05, max dP/dt/end-diastolic volume from 14.0 +/- 2.1 to 8.6 +/- 1.1 kPa . s-1 . cm-3 (105 +/- 16 to 65 +/- 8 mmHg . s-1 . cm-3), P less than 0.02, whereas end-diastolic volume (P less than 0.005), myocardial oxygen consumption (P less than 0.05) and coronary blood flow (P less than 0.005) had increased. Higher ethanol levels exaggerated these changes when peak arterial acetaldehyde was 20.2 +/- mumol . litre-1. By contrast, infusion of acetaldehyde to a peak blood level comparable with that produced by ethanol increased cardiac output from 2.4 +/- 0.2 to 2.8 +/- 0.2 litre-1 . min-1 P less than 0.01), coronary sinus oxygen saturation from 46 +/- 4 to 55 +/- 3% (P less than 0.25) and reduced systemic resistance from 8.0 +/- 0.7 to 6.3 +/- 0.5 kPa . litre-1 . min-1 (60 +/- 5 to 47 +/- 4 mmHg . litre-1 . min-1) (P less than 0.001). High dosage of acetaldehyde to a level of 129 +/- 23 mumol . litre-1 produced elevation of cardiac output (P less than 0.001), ejection fraction (P less than 0.01), coronary blood flow (P less than 0.02), whereas systemic resistance (P less than 0.001), heart rate (P less than 0.05) and myocardial oxygen consumption (P less than 0.05) decreased. Discontinuation of acetaldehyde infusion significantly reversed these changes. Max dP/dt/left ventricular end-diastolic volume and left ventricular end-diastolic volume were not significantly altered by acetaldehyde. Thus, ethanol depresses cardiac performance and increases myocardial oxygen consumption. By contrast, acetaldehyde at levels produced by ethanol metabolism improves cardiac performance, consequent to afterload reduction, and reduces myocardial oxygen consumption.

Acetaldehyde↗