PubMed Health⌕ Search

SEARCH · PubMed Health

Results for “Neoplastic Cells, Circulating”

Explore indexed PubMed citations for clinical trials, systematic reviews and public health research. Read source abstracts and follow each citation to its original PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 55 records · Page 3Linked to original sources

The lymph node as a bridgehead in the metastatic dissemination of tumors.

The metastatic spread of tumors is not a random process. Distinct patterns of metastasis can be discerned which vary from tumor type to tumor type. A common pattern, particularly for carcinomas, is that regional lymph nodes are often the first organs to develop metastases. This pattern of metastasis is central to the utility of the sentinel lymphonodectomy surgical technique. However, not all tumors and tumor types metastasize first to the regional lymph nodes. The mechanisms which determine whether regional lymph nodes or other sites first develop metastases remain poorly understood. In this article I review the anatomical, cellular and molecular factors which play a role in metastatic dissemination and determine patterns of metastasis. I then explore the importance of tumor heterogeneity and the selection of metastatically competent tumor cells during systemic dissemination, and suggest that some secondary sites are more readily colonised by metastasizing cells than others. Metastases at these sites act as bridgeheads, constituting a reservoir of tumor cells which, because they have already successfully metastasized, possess many of the properties required for metastasis to further sites. These tumor cells are therefore more likely than cells in the primary tumor to acquire all of the properties required for metastasis to less favourable secondary sites. To illustrate the bridgehead concept, I argue that features of the design and function of the lymphatic system make it highly amenable to the entry of metastasizing tumor cells and the formation of lymph node metastases, and suggest that lymph node metastases form a bridgehead for further metastatic spread.

Animals↗

Rapid generation of antigen-presenting cells from leukaemic blasts in acute myeloid leukaemia.

The ability of acute myeloid leukaemia (AML) cells to acquire dendritic cell (DC)-like characteristics in vitro with a rapid culture method based either on the phorbol ester PMA or calcium ionophores has been studied in comparison to conventional AML-DC cultures with the cytokines granulocyte-macrophage colony-stimulating factor (GM-CSF), tumour necrosis factor-alpha (TNF-alpha), interleukin-3 (IL-3), SCF, FLT3-L and IL-4. In all AML patients, antigen-presenting cells (APC) could be generated from leukaemic cells in 2 days by incubation with PMA or calcium ionophore (A23187 or ionomycin) in the presence as well as in the absence of IL-4. In 30 out of 36 patients APC could be generated after 2 weeks of culture in cytokine-enriched medium. AML-APC cultured with PMA or calcium ionophores immunophenotypically and functionally were at a more mature stage than those cultured in cytokine-enriched medium. The most mature APC were generated by calcium ionophore A23187 plus IL-4, as evidenced by the higher expression of CD40, CD80, CD86 and HLA-DR. Autologous T cell mediated cytotoxicity towards AML blast cells in vitro was observed in 2 cases tested. The persistence of cytogenetic abnormalities confirmed the leukaemic origin of the AML-APC. The generation of AML-APC was possible from freshly isolated as well as cryopreserved material. Our data show that generation of sufficient AML-APC by A23187 plus IL-4 is feasible, for vaccination purposes, in approximately 70% of AML specimens, offering a time-saving and cost-effective approach in preparing anti-leukaemia vaccines.

Acute Disease↗

Clinical targets for anti-metastasis therapy.

Metastasis is responsible for most cancer deaths. Therapeutic strategies to prevent development of metastases thus have potential to impact on cancer mortality. Development of these therapies requires a better understanding of the biology and molecular events of the metastatic process. Metastasis is usually defined, clinically and experimentally, by evidence of the endpoint of the process, that is, the presence of metastatic tumors. Endpoint assays are suitable for determining if a therapeutic approach is effective, but can provide little information on how a treatment works in vivo and what steps in metastasis are affected. We describe here two methodological advances in the study of metastasis as a process: in vivo videomicroscopy, which permits direct observation of steps in metastasis, and a "cell accounting" technique that permits quantification of the fate of cells over time. These procedures have provided new and unexpected insights into the biology of the metastatic process. Based on these insights, we consider which steps in the metastatic process are biologically and clinically most appropriate as therapeutic targets for development of anti-metastasis therapies. We conclude that the most promising stage of the metastasis process for therapeutic targeting is the growth phase, after cancer cells have arrested in the microcirculation in secondary sites and have completed extravasation. Earlier phases in the process are either biologically inappropriate or clinically inaccessible, except in specific cases (e.g., chemoprevention strategies). The role of "seed" and "soil" in determining organ-specific metastasis is also discussed. The metastatic growth phase fortunately is a clinically broad target, and any treatment that limits growth of metastases prior to their causing irreversible harm to the patient has the potential to be clinically useful. A variety of therapeutic approaches to target this phase are under active development, including inhibition of angiogenesis or signal transduction pathways needed to support the growth of metastatic cells.

Allantois↗

The Sézary syndrome: hematologic criteria.

The hematologic criteria for Sézary syndrome that were recently proposed by the International Society on Cutaneous Lymphomas are critically evaluated. Based on the experience at two institutions, revisions to the definition for Sézary syndrome are proposed.

Adult↗

Genes that regulate metastasis and angiogenesis.

Genetic instability and an accumulation of genetic and epigenetic changes during tumor progression lead to an increasingly aggressive and treatment-resistant phenotype, and ultimately metastasis. In recent years it has become well established that angiogenesis, the process by which new vasculature is formed from pre-existing vessels, is an essential component to primary tumor growth and distant metastasis. A greater understanding of the complex multitude of factors involved in tumor angiogenesis and metastasis is fundamental to the development of potential therapeutics to treat malignant disease. As highlighted throughout this review, angiogenesis and metastasis share many common cellular and molecular features. We will briefly discuss the pertinent genes involved in the regulation of angiogenesis and metastasis.

Angiogenesis Inhibitors↗

The detection of minimal numbers of contaminating epithelial tumor cells in blood or bone marrow: use, limitations and future of RNA-based methods.

BACKGROUND: Many solid tumors commonly metastasize to the bone marrow and the presence of tumor cells in the bone marrow is associated with a poor prognosis. Detection of tumor cells in the bone marrow has been reported to be important to determine the prognosis of newly diagnosed patients and may be helpful in deciding whether or not systemic treatment is indicated. PATIENTS AND METHODS: The majority of the studies focus on the detection of tumor cells in non-tumor tissue using immunocytochemistry and antibodies directed against epitopes of epithelial genes. Recently, the sensitive reverse-transcriptase polymerase chain reaction (RT-PCR) has been employed for the detection of tumor cells in bone marrow, using mRNA transcribed from epithelial genes as targets for RT-PCR. RESULTS: In some studies, encouraging results were reported when RT-PCR was used to detect expression of epithelial genes, but in many others frequent false-positive results were observed. These may results from the 'illegitimate expression' of epithelial genes in cells of non-epithelial tissues, such as bone marrow. CONCLUSIONS: Micrometastases in bone marrow can be detected with some sensitivity by antibodies directed against epithelial genes. RNA based methods, using epithelial genes as target for amplification, are less reliable. To improve these methods, a systematic approach is required to identify genes which are highly expressed in solid tumors and completely silent in blood and bone marrow of healthy individuals. Novel techniques, e.g., 'sequential analysis of gene expression (SAGE), are now available that allow such an endeavor.

Biomarkers, Tumor↗

Mobilization of hematopoietic progenitors in patients with chronic myeloid leukemia.

Although the mobilization and harvesting of Philadelphia chromosome-negative progenitors has been proven feasible by a number of groups, it is not clear which techniques should be used with regard to the monitoring of purging and evaluation of stem cell yield. Therefore, we isolated CD34-positive cells from leukapheresis samples of seven CML patients after induction therapy. These cells were analyzed using the colony-forming unit granulocyte-macrophage (CFU-GM) and long-term culture-initiating cell (LTCIC) assays. In addition, we analyzed frequency and clonogenicity of single stem cells using the LTCIC assay at limiting dilution. Individual colonies derived from these assays were subsequently analyzed for the presence of the bcr-abl gene with interphase fluorescence in situ hybridization (FISH) and for the presence of bcr-abl mRNA with RT-PCR. We compared these results with the cytogenetic analysis of the leukapheresis material. Molecular analysis of individual colonies correlated well with the results of cytogenetic analysis. However, in nine out of 18 samples, cytogenetic analysis exclusively demonstrated the presence of either Philadelphia chromosome-positive or -negative cells whereas with the molecular analysis of individual colonies tumor contamination or the presence of residual normal cells could be substantiated. We concluded that molecular analysis of individual colonies should be employed to further optimize induction protocols. With regard to stem cell mobilization we demonstrated that about 67 CFU-GM colonies and clusters were generated by one single LTCIC both for the CML samples and the samples obtained from patients with non-hematologic malignancy. This number is important since until now most centres use a number of four colonies and clusters generated by one LTCIC. Dividing the CFU-GM output in the LTCIC assay by four to determine LTCIC frequency could thus lead to an almost 20-fold overestimation of the LTCIC frequency. It is concluded that stem cell frequency analysis is an important tool with regard to the interpretation of mobilization protocols.

Adult↗

Leukaemogenic potency of WEHI-3B cells grown in vitro or in leukaemic mice.

In order to quantify contaminating leukaemia inducing cells in blood or bone marrow from WEHI-3B bearing BALB/c mice (injected with 10(5) WEHI-3B suspension culture cells), in vitro colony forming leukaemia cells (CFU-L) and survival rate and/or survival time of mice transplanted with cells from WEHI bearing mice or suspension culture were correlated. ED(50) (inoculum inducing leukaemia in 50% of the animals) was 109 CFU-L (33-361) from suspension culture cells. Three weeks after initiation of leukaemia 2 x 10(5) BM or 0.5-2.0 x 10(6) blood cells induced 100% mortality of recipients. After mobilisation with CY or CY and G-CSF, the same amount of blood or BM cells did not induce leukaemia in recipients. A significant negative correlation was found between the survival time of leukaemic mice and the log number of CFU-L inoculated from in vivo sources. In terms of CFU-L cells, leukaemia induction to BM or WBC obtained 3 weeks after leukaemia induction were more potent; those from BM or WBC also obtained at 3 weeks but after mobilisation were less potent inducers than those from suspension culture. These data suggest that CFU-L and leukaemogenic cells are associated, but not identical.

Animals↗

Does long-term culture favor normal clonogenic cells from interferon-treated patients with chronic myelogenous leukemia?

We have tested whether peripheral blood mononuclear cells (PBMNCs) from interferon (IFN)-treated patients may lose residual BCR-ABL sequence-positive progenitor cells when long-term cultured for 35 days on allogeneic stromal cells. IFN-treated patients have low white blood cell counts and a fair number of BCR-ABL-negative colony-forming cells in the peripheral blood. Particularly, IFN responders show increased numbers of normal hematopoietic cells. We have quantitatively analyzed progenitor cells in PBMNCs of IFN-treated patients by combining the clonogenic assay in semisolid medium with interphase fluorescent in situ hybridization (FISH). Thus, the identification is possible of the BCR-ABL status of colony-forming progenitor cells. In IFN-treated patients, the number of BCR-ABL-positive CFCs is considerably decreased and BCR-ABL-negative CFCs appear in the peripheral blood. We could show that after LTC for 35 days of the same PBMNCs on irradiated allogeneic normal stromal cells residual BCR-ABL sequence-positive CFCs were still present. In some cases the relative number of BCR-ABL sequence-positive CFCs was found to be increased after LTC. A minor proportion of blood samples from IFN-treated patients did not give rise to CFCs after LTC on allogeneic stromal cells (three of 10 patients). Inter- and intraindividual variations can be found with regard to loss or gain of BCR-ABL sequence-positive colonies after LTC. We conclude that early CML progenitor cells persist in the peripheral blood of IFN-treated patients and that a certain proportion may survive long-term culture.

Biomarkers, Tumor↗

Regulation of hairy-cell survival through constitutive activation of mitogen-activated protein kinase pathways.

The hairy cells (HCs) of hairy-cell leukemia are intrinsically activated mature clonal B cells. The aims of this study were to gain further insights into the nature of this activation and to assess its importance for the prolonged HC survival in this chronic disease. We show that HCs contain phosphorylated/activated p38 MAPK, JNK and ERK1/ERK2 (ERK1/2). PKC inhibitors increased the activation of p38 and JNK, but reduced the phosphorylation of ERK1/2. Moreover, PKC inhibition resulted in cell death; cell death was also observed when the activation of ERK1/2 in HCs was abrogated with an inhibitor of MEK1/2 activation. In addition to PKC, active Src kinase was also shown to be involved in the maintenance of Raf-independent ERK activation in HCs. During cell culture on a nonadherent surface, ERK phosphorylation was sustained, while phosphorylation of p38 and JNK decreased. This decrease was not observed in HCs cultured on vitronectin (VN), indicating that p38/JNK activation is probably a consequence of in vivo HC interaction with VN present in abundance in the red pulp of the spleen. Taken together, these results suggest that active p38/JNK make HCs susceptible to apoptosis, but the cells are effectively rescued by ERK activation involving constitutively active PKC and Src. These findings are relevant for the understanding of the prolonged cell survival of HCs and their selective sensitivity to some chemotherapeutic agents.

Antimetabolites, Antineoplastic↗

Role of fibrinogen covalently associated with cell membrane in blood-borne lung tumor colony formation of murine mammary carcinoma cells.

The role of fibrinogen covalently associated with cell membrane in blood-borne lung tumor colony formation of murine mammary carcinoma cells in mice was studied. When mice were treated with prednisolone, their plasma fibrinogen levels profoundly increased. Hyperfibrinogenemia, induced by prednisolone treatment or plasma fibrinogen infusion of syngeneic mice, accelerated the coagulation time and significantly increased the number of lung tumor colonies of SCK tumor cells. Hypofibrinogenemia, induced by rabbit antisyngenic mouse fibrinogen immunoglobulin G or heparin infusion, markedly delayed coagulation time and prominently reduced the numbers of blood-borne lung tumor colonies of the tumor cells. SCK mammary carcinoma cells form a coating of fibrinogen on their surfaces in a medium containing fibrinogen. This coating is cross-linked in a manner characteristic of catalysis by tumor cell membrane-bound transglutaminase K. The fibrinogen coating on the surface of these tumor cells functions to protect against autologous lymphokine-activated killer cells. These results provide information on the impact of fibrin stability on blood-borne lung tumor colony formation of SCK mammary carcinoma cells.

Animals↗

Platelet-mimicry of cancer cells: epiphenomenon with clinical significance.

Stem cell mimicry of cancer cells has been known for a long time and is considered to be responsible for ectopic gene expressions. The stem cell characteristics of tumor cells are shown to be involved in epithelial-mesenchymal transition and in the phenomenon of vascular mimicry. Certain cancer types acquire a geno-phenotype closely resembling the platelets and express several megakaryocytic genes (adhesion receptors alpha IIb beta 3, thrombin receptor and PECAM/CD 31 and/or platelet-type 12-LOX) able to activate the coagulation cascade or the platelets themselves. Here we define these potentials as platelet mimicry of cancer cells typical of pancreatic, breast, prostate, colorectal and urogenital cancers and melanoma. Data all support that platelet mimicry of certain cancer types is an important factor in their hematogenous dissemination and provides an attractive therapeutic target. Besides the long-available preclinical data, clinical trials have only recently provided evidence that targeting platelet mimicry of cancers is an efficient way to prevent tumor progression. The systematic discovery of the markers of platelet mimicry in various cancer types and their molecular targeting may provide new supportive therapeutic modalities for the management of the progressing disease.

Animals↗

Peripheral blood mobilization of hematopoietic stem cells: cytokine-mediated regulation of adhesive interactions within the hematopoietic microenvironment.

Peripheral blood (PB) mobilization of hematopoietic progenitors, presently regarded as an alternative source of cells intended for autologous or allogeneic bone marrow (BM) transplantation, supports a role for cytokines in the regulated adhesion of hematopoietic compartments to the BM microenvironment. Two major consequences might result from cytokine-induced rearrangements of adhesive interactions within the hematopoietic tissue, both potentially relevant for clinical purposes of PB grafts. The first one, arising from abrogated adhesion of hematopoietic stem cells to their microenvironmental 'niche', which is critical for the maintenance of cell cycle quiescence and endurability, might result in some impairment of the long-term repopulating potential of PB grafts. The second and possibly more harmful one is due to the inability of the cytokine to distinguish between normal and transformed cells, and would likely result in graft contamination by tumor cells, increasing the metastasizing potential of hematological malignancies and solid tumors.

Blood Cells↗