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Biomedical subjects

Linda Bendall

Publications and source records attributed to Linda Bendall.

5 recordsLinked to original sources

Analysis of human leukaemias and lymphomas using extensive immunophenotypes from an antibody microarray.

A novel antibody microarray has been developed that provides an extensive immunophenotype of leukaemia cells. The assay is a solid phase cell-capture technique in which 82 antigens are studied simultaneously. This paper presents the analysis of 733 patients with a variety of leukaemias and lymphomas from peripheral blood and bone marrow. Discriminant Function Analysis of the expression profiles from these 733 patients and 63 normal subjects were clustered and showed high levels of consistency with diagnoses obtained using conventional clinical and laboratory criteria. The overall levels of consensus for classification using the microarray compared with established criteria were 93.9% (495/527 patients) for peripheral blood and 97.6% (201/206 patients) for bone marrow aspirates, showing that the extensive phenotype alone was frequently able to classify the disease when the leukaemic clone was the dominant cell population present. Immunophenotypes for neoplastic cells were distinguishable from normal cells when the leukaemic cell count was at least 5 x 10(9) cells/l in peripheral blood, or 20% of cells obtained from bone marrow aspirates. This technique may be a useful adjunct to flow cytometry and other methods when an extensive phenotype of the leukaemia cell is desired for clinical trials, research and prognostic factor analysis.

Acute Disease↗

Classification of AML using a monoclonal antibody microarray.

A cluster of differentiation (CD) antibody microarray called the DotScan microarray has been developed that enables an extensive immunophenotype to be obtained for a suspension of leukocytes in a single analysis. For a leukemia with a leukemia count of greater than 10 x 10(9)/L, the immunophenotype obtained is essentially that of the leukemic clone. The antibody microarray is printed as microscopic (10 nL) dots on a nitrocellulose film on a microscope slide. Cells are captured by the immobilized antibodies and a dot pattern is recorded with an optical array reader giving the immunophenotype of the leukemia. Procedures are being developed that should enable diagnosis of myeloid leukemias by comparison of the dot pattern obtained from an unknown blood sample with a library of consensus patterns for the common leukemias.

Antibodies, Neoplasm↗

Marked structural and functional heterogeneity in CXCR4: separation of HIV-1 and SDF-1alpha responses.

CXCR4, the chemotactic cell receptor for SDF-1alpha, is essential for immune trafficking and HIV infection. CXCR4 is remarkably heterogeneous and the purpose of this study was to better identify the isoforms expressed by cells and compare their structure and function. We found that cells express either a predominant isoform or multiple isoforms. These were best resolved on SDS-PAGE using sucrose-gradient-fractionated, triton-insoluble, membrane extracts. We hypothesized that glycosyl modification may underpin some of this heterogeneity and that cell isoform(s) differences may underscore CXCR4's multiple cell functions. A comparison of wild-type (WT) and dual N-linked glycosylation site, N11A/N176A, mutant CXCR4 expressed in 3T3 and HEK-293 cells served to implicate variabilities in glycosylation and oligomerization in almost half of the isoforms. Immunoprecipitation of CXCR4 revealed monomer and dimer non-glycosylated forms of 34 kDa and 68 kDa from the N11A/N176A mutant, compared with glycosylated 40 kDa and 47 kDa and 73 kDa and 80 kDa forms from WT. The functional specificity of isoform action was also implicated because, despite CEMT4 cells expressing high levels of CXCR4 and 11 different isoforms, a single 83 kDa form was found to bind gp120 for HIV-1 IIIB infection. Furthermore, comparative studies found that in contrast to SDF-1alpha-responsive Nalm-6 cells that expressed similar levels of a single isoform, CEMT4 cells did not show a Ca(++) flux or a chemotactic response to SDF-1alpha. Thus, CXCR4 can differ both structurally and functionally between cells, with HIV-1 infection and chemotaxis apparently mediated by different isoforms. This separation of structure and function has implications for understanding HIV-1 entry and SDF-1alpha responses and may indicate therapeutic possibilities.

Antibodies↗

Chemokines and their receptors as therapeutic targets: the role of the SDF-1/CXCR4 axis.

SDF-1 and CXCR4 are an important chemokine ligand/receptor pair, which play a crucial role in numerous biological processes including hematopoiesis, cardiogenesis, vasculogenesis, neuronal development and immune cell trafficking. They have also been implicated in various pathological conditions such as cancer, infection with the human immunodeficiency virus (HIV) and various inflammatory conditions. Numerous pharmacological agents exist that can modulate SDF-1/CXCR4-induced responses both in vitro and in vivo. The usefulness of these agents in affecting the outcome of pathological conditions influenced by the SDF-1/CXCR4 axis is currently being investigated. Whilst some of these compounds have been shown to be safe and well tolerated in phase 1 clinical trials, the full repercussions of SDF-1/CXCR4 inhibition or stimulation on normal physiological functions are yet to be appreciated. Inhibition of the SDF-1/CXCR4 axis may have positive effects in regulating tumour metastasis and growth, however, this may also negate immunological responses through dysregulated lymphocyte trafficking and contribute to disruption of hematopoiesis. As with any therapy, the usefulness of this type of intervention will require a balance between its positive effect on the disease outcome and deleterious effects on normal physiological functions. A greater understanding of the role of SDF-1 and CXCR4 in the body will allow greater manipulation of this important biological axis to affect disease outcome. Greater knowledge of the SDF-1 interaction with its receptor and the structural elements within CXCR4 mediating the different signalling events, resulting in SDF-1-induced responses, will also enhance future drug design.

Animals↗