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Biomedical subjects

F Palmerini

Publications and source records attributed to F Palmerini.

4 recordsLinked to original sources

Caspase 7 downregulation as an immunohistochemical marker of colonic carcinoma.

Caspases play a crucial role as apoptotic effectors; their potential implication in tumorigenesis remains to be clarified. We investigated the expression and function of caspases 7, 8, and 9 in colon cancer tissues and cell lines. Immunohistochemistry (IHC) showed downregulation of caspase 7 (22 of 26 cases) and caspase 9 (12 of 26 cases) in colonic cancer samples compared with normal mucosa on the same tissue section. Caspase 8 expression was unchanged or slightly upregulated (19 of 27 cases). The combination of IHC and Western blot analysis showed expression of the proforms of caspases 7, 8, and 9 in HT29-19A and HT29-16E colonic carcinoma cell lines. Apoptosis could be induced by staurosporine in both HT29 cell lines, with a sensitivity similar to that of the HGT cell line, but lower than that of the DAUDI cell line. Apoptosis induction in HT29 cells was concomitant with processing of caspases 3, 7, 8, and 9 and was inhibited by the caspase inhibitor ZVAD. Our data show that (1) human colon cancer cells downregulate caspase 7 and, to a smaller extent, caspase 9 in vivo and (2) in vitro staurosporine-induced apoptosis of colonic cancer cells involves caspases 7 and 9. Caspase 7 deficiency thus appears as a new immunohistochemical marker of colonic neoplasia; its correction represents a potential basis for new therapies.

Apoptosis↗

Correlation between apoptosis microarray gene expression profiling and histopathological lymph node lesions.

AIMS: Microarray technology has recently led to the identification of molecular prognostic subgroups in non-Hodgkin's lymphomas. To determine the usefulness of ready made macroarrays as routine diagnostic tools in haematopathology, lymph node biopsies were analysed using a cDNA macroarray containing genes involved in apoptosis, including caspases. METHODS: Nine biopsy specimens were analysed using total frozen tissues: four samples of B cell follicular lymphoma, two of B cell diffuse large cell lymphoma, and three of non-neoplastic lymph nodes from benign lymphadenitis. Nine cell populations were sorted from fresh tissues: malignant B cells from two patients with follicular lymphoma and two with diffuse large cell lymphoma, reactive B cells from two benign lymph nodes, reactive T cells from one benign lymph node, and virgin (mantle zone) B cells and germinal centre B cells from benign tonsils. Immunohistochemistry (IHC) on paraffin wax sections was performed for the localisation of caspases 2, 3, 4, 7, 8, and 9. RESULTS: In the clustered array data, sorted cells from samples sharing common histological lesions were grouped together, whereas the array/histology correlation was less satisfactory for tissues. The expression profiles of both the array and IHC methods correlated for most caspases and samples. CONCLUSIONS: Variations in array profiles of sorted cell populations can be associated with specific histological features, suggesting a possible diagnostic application of ready made apoptosis macroarrays in haematopathology.

Apoptosis↗

Caspases: conductors of the cell death machinery in lymphoma cells.

The present review focuses on recent insights into the regulation of caspases by other components of the apoptotic pathway, including the mechanisms by which caspase activation influence the death of lymphoma cells. In the light of our recent findings and similar observations of other investigators, it is likely that lymphoma cells possess the complete caspase machinery required for the apoptotic process. Inhibition of caspases activation appears as a potential mechanism to explain apoptotic defects of malignant B-cells, and thus may constitute the basis for new cancer therapies.

Apoptosis↗

Frequent nuclear localization of ICAD and cytoplasmic co-expression of caspase-8 and caspase-3 in human lymphomas.

Lymphoma cells often display in vitro resistance to FAS-induced apoptosis, in which caspases act as crucial cell death effectors. Following FAS stimulation, caspase-8 activates caspase-3, which in turn activates the caspase-activated DNAse (CAD) by proteolysis of its inhibitor (ICAD). To investigate the mechanism of FAS resistance, the expression of caspase-8 was analysed by immunohistochemistry, together with that of the substrates caspase-3 and ICAD, in 52 representative samples from non Hodgkin's lymphoma (NHL), 12 from Hodgkin's disease (HD), and eight benign lymphoid tissues. In benign tissues, caspase-8 was co-expressed with caspase-3 in the cytoplasm in germinal centre (GC) cells and was co-expressed with ICAD in the nuclei of the mantle and marginal zone cells. ICAD expression was weak or absent in GC cells. Cytoplasmic staining for both caspase-8 and caspase-3 was present in 11/12 cases of diffuse large cell B-NHL. Caspase-8 positivity was nuclear and cytoplasmic in 9/9 follicular NHLs, in 5/5 mantle cell NHLs and in 6/6 marginal zone NHLs. Five out of six peripheral T-cell NHLs expressed cytoplasmic caspase-8. Ten out of the 12 HD cases lacked significant cytoplasmic staining for caspase-3 and caspase-8 in the majority of Reed-Sternberg cells. All lymphoma cases exhibited predominant nuclear ICAD positivity. Subcellular fractionation analysis of three lymphoma samples and normal mantle zone cells confirmed that ICAD and caspase-8 were at least partly localized in the nucleus. These results show that the profile of caspase-8 expression is correlated with histological lymphoma subtypes; that caspase-8 is co-expressed with caspase-3 in GC cells and their neoplastic counterparts; that ICAD has an immunohistochemical nuclear localization in vivo; and that caspase-8 and ICAD can be co-expressed in the nuclei of mantle zone and marginal zone cells; their unexpected nuclear localization allows a reappraisal of the biochemical cascade of caspase activation.

Apoptosis Regulatory Proteins↗