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A Dritschilo

Publications and source records attributed to A Dritschilo.

At least 37 records · Page 2Linked to original sources

Apoptosis-associated proteolysis of vimentin in human prostate epithelial tumor cells.

Vimentin intermediate filaments (IF) are responsible for regulation of cell attachment and subcellular organization. Using an in vitro model system of human prostate epithelial cells (267B1-XR), we demonstrate that a series of vimentin proteolytic fragments represent some of the differentially expressed proteins in 2D-gel profiles of the apoptotic cells undergoing ionizing radiation-induced cell death. A caspase-sensitive motif search suggests that the type III IF protein (vimentin) is subject to proteolysis to promote the execution phase of apoptosis, in a manner similar to the well-established type V (lamins) and type I (keratins 18, 19) IF proteins. Furthermore, vimentin and a few of its derived polypeptides, reported to be specific to the apoptotic process, correspond to ubiquinated proteins, thus pointing to the complex interrelationships of protein ubiquination in solubilizing the IF network during apoptosis.

Apoptosis↗

Irreversible binding of poly(ADP)ribose polymerase cleavage product to DNA ends revealed by atomic force microscopy: possible role in apoptosis.

During apoptosis, DNA undergoes fragmentation and caspase-3 cleaves poly(ADP-ribose) polymerase (PARP) into both a 24-kDa fragment containing the DNA binding domain and an 89-kDa fragment containing the catalytic and automodification domains. Atomic force microscopy revealed that recombinant full-length PARP bound to plasmid DNA fragments and linked them into chainlike structures. Automodification of PARP in the presence of NAD+ resulted in its dissociation from the DNA fragments, which, nevertheless, remained physically aligned. A recombinant 28-kDa fragment of PARP containing the DNA binding domain but lacking the automodification domain irreversibly bound to and linked DNA fragments in the absence or presence of NAD+. Identical results were obtained on incubation of internucleosomal DNA fragments from apoptotic cells with the products of cleavage of recombinant PARP by purified caspase-3. The 24-kDa product of PARP cleavage by caspase-3 may contribute to the irreversibility of apoptosis by blocking the access of DNA repair enzymes to DNA strand breaks.

Animals↗

Expression of cytokeratin-19 as a marker of neoplastic progression of human prostate epithelial cells.

BACKGROUND: Our earlier studies demonstrated neoplastic transformation of SV40-immortalized neonatal human prostate epithelial cells (267B1) by fractionated doses of ionizing radiation or by introduction of v-ki-ras oncogene. X-ray-treated 267B1 cells represent three different stages of neoplastic progression: nontumorigenic F3-SAC cells that acquired morphological changes and anchorage independence when treated with 2 x 2 Gy of X-rays; malignantly transformed 267B1-XR and 267B1-SXR cells that received 2-Gy doses to a total of 30 Gy. We also reported alterations in cell size, morphology, actin stress fibers, and levels of actin-binding proteins in these transformed human prostate cells. METHODS: We analyzed intermediate filament-nuclear matrix (IF-NM) protein expression in the various 267B1 cells as a consequence of neoplastic progression by two-dimensional gel electrophoresis and immunofluorescence. RESULTS: Our present study revealed that the 267B1 cells experienced progressive changes in their intermediate filament protein composition during the process of neoplastic conversion, achieved either by X-rays or by ras-oncogene. In particular, we observed a stepwise downregulation of cytokeratin-19 in these in vitro transformed 267B1 cells. CONCLUSIONS: Our data suggest that loss of expression of cytokeratin-19 accompanied the morphological alterations associated with in vitro neoplastic transformation of SV40-immortalized prostate epithelial cells.

Biomarkers, Tumor↗

Sodium butyrate induces apoptosis and accumulation of ubiquitinated proteins in human breast carcinoma cells.

To investigate the possible relationship between apoptosis and the ubiquitin pathway we examined the patterns of ubiquitinated proteins in the human breast carcinoma MCF-7 cell line following induction of apoptotic death by sodium butyrate. Apoptosis in these cells was associated with internucleosomal DNA fragmentation and proteolytic cleavage of poly(ADP-ribose) polymerase. By dual in situ antiubiquitin immunofluorescence and chromatin DNA staining, we demonstrated that ubiquitin fluorescence was increased specifically in cells that underwent sodium butyrate-mediated apoptosis. The extent of ubiquitin incorporation into protein conjugates was examined in both adherent (not yet apoptotic) and floating (apoptotic) cell populations. We found that apoptotic cells exhibited enhanced intensity of ubiquitin-immunoreactive conjugates, whereas adherent cells did not. In addition, two-dimensional immunoblot analysis of proteins from apoptotic cells identified a set of isomeric ubiquitinated conjugates located at a pI range of 4. 2 - 4.6 and a Mr approximately of 30 kDa. These data indicate that the ubiquitin pathway may play a role in the sodium butyrate-induced apoptotic program in breast carcinoma cells.

Apoptosis↗

Identification of keratins 18, 19 and heat-shock protein 90 beta as candidate substrates of proteolysis during ionizing radiation-induced apoptosis of estrogen-receptor negative breast tumor cells.

Induction of apoptosis in the estrogen-receptor negative MDA-MB-468 breast tumor cells has been demonstrated by treatments with cytotoxic agents and growth factors. Using these breast tumor cells, we studied ionizing radiation-induced apoptosis. 2D-PAGE of apoptotic cells indicated keratins 18, 19 and heat-shock protein 90 as candidate substrates of apoptosis-associated proteolysis. At the same time, a motif search revealed possible cleavage-sites in keratins 18, 19 (VEVD) and hsp-90 (DEED) that would yield polypeptides of molecular sizes observed experimentally by immunoblotting with specific antisera. This study provides evidence that the insoluble network of intermediate filament proteins of epithelial cells (keratins), and the associated proteins (heat-shock protein 90) constitute targets of caspase-mediated proteolysis during apoptosis triggered by ionizing radiation.

Amino Acid Sequence↗

Impaired regulation of nuclear factor-kappaB results in apoptosis induced by gamma radiation.

Recent studies have shown that activation of nuclear factor-kappaB (NF-kappaB) is critical for cell survival. Cells from patients with ataxia telangiectasia (AT) have an impaired NF-kappaB response to ionizing radiation. AT cells also exhibit inappropriate regulation of apoptosis. We report here that expression of a dominant negative form of IkappaB-alpha, an inhibitor of NF-kappaB, protects AT fibroblasts from apoptosis induced by gamma radiation, but it enhances apoptosis in normal fibroblasts. Furthermore, the process leading to apoptosis may involve caspase 3-mediated cleavage of IkappaB-alpha. These data suggest that regulation of NF-kappaB may play an important role in programmed cell death induced by DNA damage in AT cells.

Apoptosis↗

Investigation of neutron-induced damage in DNA by atomic force microscopy: experimental evidence of clustered DNA lesions.

Using atomic force microscopy (AFM), we have investigated neutron-induced DNA double-strand breaks in plasmids in aqueous solution. AFM permits direct measurement of individual DNA molecules with an accuracy of a few nanometers. Furthermore, the analysis of the DNA fragment size distribution is non-parametric, whereas other methods are dependent on the model. Neutron irradiation of DNA results in the generation of many short fragments, an observation not made for damage induced by low-LET radiation. These data provide clear experimental evidence for the existence of clustered DNA double-strand breaks and demonstrate that short DNA fragments may be produced by such radiations in the absence of a nucleosomal DNA structure.

DNA↗

Apoptosis of Ewing's sarcoma cells is accompanied by accumulation of ubiquitinated proteins.

Induction of apoptosis in Ewing's sarcoma cells by ionizing radiation is accompanied by accumulation of ubiquitinated proteins preferentially in the form of conjugates with M(r) greater than 75,000. Furthermore, enhanced antiubiquitin immunofluorescence was detected only in cells that underwent radiation-induced apoptosis, suggesting that the observed alterations in protein ubiquitination are specific to the apoptotic process. To determine the role of the proteasome in apoptosis-associated accumulation of ubiquitin-protein conjugates, we used lactacystin, a highly selective inhibitor of proteasome proteolytic activity. Exposure of Ewing's sarcoma cells to lactacystin resulted in accumulation of ubiquitinated proteins and activation of a Bcl-2-sensitive apoptotic pathways. The latter led to proteolytic cleavage of poly(ADP-ribose) polymerase and fragmentation of nuclear DNA. These findings suggest that proteasome function is required for apoptosis-specific accumulation of ubiquitinated proteins and indicate that functional disorder of the ubiquitin-proteasome system may play an important role in the apoptotic cell death pathway.

Acetylcysteine↗

Ku proteins join DNA fragments as shown by atomic force microscopy.

The binding of the Ku protein to DNA was investigated using the atomic force microscope. Ku was found to bind predominantly to the ends of double-stranded DNA. Experiments with plasmid DNA revealed that Ku does not bind to circular plasmids but does bind to plasmids that have been linearized by treatment with ionizing radiation. The binding of Ku to poly(dG-dC) x poly(dG-dC) polynucleotides and to a 400-bp DNA EcoRI fragment resulted in a shift in the fragment size distribution to include longer fragments, with internally binding Ku. Furthermore, we observed images consistent with fragments joined together by Ku, showing an interaction with two ends of DNA. These observations suggest that Ku may play a role in physically orienting DNA for ligation by binding the ends of adjacent DNA molecules.

Antigens, Nuclear↗

Regulation of p53 in response to ionizing radiation in ataxia telangiectasia fibroblasts.

PURPOSE: An analysis of the structure and expression of p53 in fibroblasts from patients with ataxia telangiectasia (AT) is presented. METHODS AND MATERIALS: p53 status in primary and SV40 T antigen-transformed AT cell lines was analyzed using immunocytochemistry and by sequencing with the dideoxynucleotide termination method. The expression of p53 transcript was measured by Northern analysis. The kinetics of p53 protein expression and DNA-binding activity were measured at various intervals following irradiation. RESULTS: No mutation of p53 sequences was found in AT cells. Decreased levels of p53 mRNA and protein were observed in AT5BIVA cells compared to other SV40 T antigen-immortalized fibroblasts. Furthermore, DNA-protein binding analysis shows that a fraction of p53 in the nuclear extracts from AT5BIVA is regulated and binds to specific DNA sequence following irradiation. CONCLUSION: These data provide evidence for a heterogeneity of the p53 function in SV40-transformed AT cells. It also supports the hypothesis that a regulatory mechanism of p53 activity remains in T antigen-expressing cells in response to ionizing radiation damage.

Ataxia Telangiectasia↗

ATM gene product phosphorylates I kappa B-alpha.

The recently cloned ATM gene is mutated in patients with ataxia telangiectasia, but its biological functions remain to be experimentally determined. Structural analysis has revealed ATM sequence similarities to the catalytic domains of phosphatidyl-3 kinase and other members of this family of yeast and mammalian proteins. Rabbit polyclonal antibodies raised against polypeptide regions unique to the COOH terminus and to the NH2 terminus of the published ATM sequence confirm ATM as M(r) approximately 350,000 protein in normal cells, which is missing in AT cells. Immunoprecipitated protein(s) is capable of phosphorylating I kappa B-alpha in an in vitro kinase assay. However, we did not observe a phosphatidyl-3 kinase or a DNA-dependent protein kinase function by ATM immunoprecipitates. These data support a protein kinase activity for ATM and suggest a role in NF-kappa B activation.

Antibodies, Monoclonal↗

Atomic force microscope imaging of DNA and DNA repair proteins: applications in radiobiological research.

By using the atomic force microscope (AFM), three-dimensional structures of biological specimens may be imaged at nanometer resolution. Furthermore, samples can be imaged in air or in fluid environments. The tapping mode of AFM operation for imaging has offered a significant advance in visualizing soft biological structures, such as DNA, proteins, and membranes. Here, we review the principles underlying the application of this instrument to radiation biological investigations. We focus on examples of proteins involved in the processes of repair of damaged DNA, including poly(ADP-ribose) polymerase, Ku protein, and DNA protein kinase. Novel observations on the character of DNA damage and repair have been addressed by direct visualization of DNA and protein-DNA interactions, such as the observation that the Ku protein is capable of physically joining DNA fragments in vitro. The AFM offers a powerful tool for investigating biologically important molecular interactions that are relevant to DNA damage and repair processes.

Air↗

Expression of a dominant negative I kappa B-alpha modulates hypersensitivity of ataxia telangiectasia fibroblasts to streptonigrin-induced apoptosis.

Ataxia telangiectasia (AT) cells exhibit greater levels of apoptosis than normal fibroblasts following exposure to X-rays or radiomimetic drugs. In this study, we investigated apoptosis in AT cells whose radiation sensitivity has been altered by transfection with a cDNA expressing truncated I kappa B-alpha (delta I kappa B-alpha). delta I kappa B-alpha functions as a dominant negative regulatory protein of NF-kappa B. The transfected cells (ATCL11) were compared to parental cells after treatment with the radiomimetic drug streptonigrin. ATCL11 cells exposed to streptonigrin demonstrated less apoptosis (approximately 2%) at 24 hr than did parental AT cells (approximately 24%). These data indicate that the mechanisms underlying apoptosis induction by streptonigrin are modulated by regulation of NF-kappa B.

Apoptosis↗

p53-Independent tumorigenic progression of human prostate cells.

We have previously described the development of radiation transformed human fetal prostate epithelial cells, 267B1. Using this in vitro model system, we investigated the molecular mechanisms of prostate carcinogenic progression by comparing nontumorigenic (267B1/B) and tumorigenic (267B1/D) cells. We examined the G1- to S-phase transition in synchronized cells to determine if the progression of 267B1 cells from nontumorigenic to tumorigenic was the consequence of a perturbation in the G1- to S-phase transition involving p53, pRb, p21, or p16. Nontumorigenic 267B1/B cells showed a time-dependent increase in the expression of p53 and a corresponding increase in p21 following exposure to ionizing radiation (6 Gy). The levels of pRb and p16 protein were virtually unchanged. In contrast, tumorigenic 267B1/D cells exhibited a p53-independent induction of p21 protein with a parallel increase in p16 protein in response to ionizing radiation, but no change in pRb was observed. These results suggest that the progression of 267B1 cells from nontumorigenic to tumorigenic involves p53-independent processes.

Animals↗

Chromosomal changes observed in immortalized human keratinocytes transformed by ionizing radiation.

Human epithelial cancer cells were induced by concerted action of DNA tumor virus and X-ray radiation. Treatment of nontumorigenic early passage AD12-SV40 immortalized epithelial cells (RHEK-1) at passage 23 with radiation, resulted in further changes in their growth properties. One day old cultures of these RHEK-1 cells were irradiated with graded doses of X-rays (0, 2, 4, 6, and 8 Gy i.e. RHEK-1, RHEK-1/200R, RHEK-1/400R, RHEK-1/600R, and RHEK-1/800R). Morphologic alterations, the ability to grow in soft agar, and to form rapidly-growing squamous cell carcinomas in nude mice were concomitantly acquired properties of the radiation transformed cell lines RHEK-1/200R and RHEK-1/ 400R. On the basis of commonality in having addition of some extra material in chromosome 11 in the region between q14/q22 in all tumorigenic cell lines RHEK-1/200R and RHEK-1/400R, and deletion of the same region in nontumorigenic irradiated cell lines-RHEK-1/600R and RHEK-1/800R, it is deduced this region may have some important oncogene/s or other gene/s that play an important role in tumorigenesis. When compared to squamous cell carcinoma data, the duplication observed in the present study is also observed in 28 to 38% of head and neck and also in 25% of cases of untreated malignant lesions of oral squamous cell carcinoma. Thus, this study shows the correlation between in vitro induced squamous cell carcinoma to in vivo tumors.

Animals↗

Antisense raf oligodeoxyribonucleotide is protected by liposomal encapsulation and inhibits Raf-1 protein expression in vitro and in vivo: implication for gene therapy of radioresistant cancer.

We have redesigned cationic liposomes by using a combination of dimethyldioctadecyl ammonium bromide, phosphatidylcholine and cholesterol to enhance the in vitro and in vivo effectiveness of antisense raf oligodeoxyribonucleotide (ODN). Circulating ODNs carried in vivo by liposomes were intact for at least 24 h, while free ODNs were undetectable after 5 min. Liposome-encapsulated antisense raf ODN (LE-ATG-AS) inhibited Raf-1 protein expression in vitro and in vivo. Furthermore, radioresistant tumor cells treated with LE-ATG-AS raf ODN were sensitized to ionizing radiation. These data provide new information for the delivery and potency of antisense ODN in vivo, and support the use of LE-ATG-AS raf ODN for gene therapy of radioresistant cancer.

Animals↗

Oncogenic activation of the tyrosine kinase domain of the human trk proto-oncogene by fusion to a cell adhesion molecule.

To investigate the mechanisms of radiation-induced neoplastic conversion, DNA from X-ray transformed human epidermal keratinocytes (RHEK-1) was used in sequential cycles of NIH3T3 transfection followed by nude mice tumorigenicity assays. NIH3T3-derived transformants retained discrete DNA fragments hybridizing to human alu probes. Four clones were isolated from a cosmid library prepared from one of these transformants (49-7G) using human DNA as the probe. Analyses of DNAs from 49-7G cells and the four cosmid clones with probes for a number of human oncogenes demonstrated that the cloned sequences were related to the trk oncogene. Transfection of NIH3T3 cells with the cosmid DNAs did not result in the appearance of transformed foci when the murine fibroblasts were cultured on plastic. However, foci developed when transfected cells were cultured on plates coated with various extracellular matrix (ECM) components. Neomycin-resistant cosmid-transfected NIH3T3 cells did induce tumors in nude mice, and their tumorigenicity correlated with their level of trk expression. Nucleotide sequence analyses of cDNA clones isolated from a 49-7G library with a human trk probe revealed that the cloned sequences resulted from the fusion between 5' sequences from the human beta-1,4-galactosyltransferase gene, which encodes a membrane protein involved in cell-cell and cell-matrix interactions, and 3' sequences from the human trk proto-oncogene. The 76 kDa protein product of the chimeric gene, designated bgt-trk, has been identified in NIH3T3 cells transfected with cosmid 19/2 or with bgt-trk cDNA expression constructs, and its phosphorylation in tyrosine has been found to increase when the transfected cells were seeded on plates coated with ECM components which also elicited foci formation in NIH3T3 transformation assays. The fusion of the trk tyrosine kinase domain to a cell adhesion molecule may explain the ECM dependence for the expression of the full transforming potential of the resulting oncogene product.

3T3 Cells↗