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Biomedical subjects

D Crisan

Publications and source records attributed to D Crisan.

At least 19 recordsLinked to original sources

Myeloperoxidase mRNA analysis in acute lymphoblastic leukemia.

Expression of the myeloperoxidase (MPO) gene at the mRNA level is a better lineage marker than enzymatic activity in early myeloid precursors and their leukemic counterparts. Its diagnostic use depends on the specificity of expression for myeloblasts and its absence in blasts of lymphoid lineage. The present study investigates MPO mRNA expression in adult acute lymphoblastic leukemia (ALL), using reverse transcription-polymerase chain reaction. Of a total of 13 cases, six were found to have blasts positive for MPO mRNA; in all of these cases, the blasts were cytochemically negative for MPO. This unexpected finding of MPO mRNA positivity in six of 13 cases was further investigated at the molecular level. Bcr gene rearrangement analysis was positive in all six cases for the bcr breakpoint diagnostic of chronic myelogenous leukemia (CML). Only three of these six cases were cytogenetically positive for a Philadelphia (Ph) chromosome. Based on molecular analysis, these cases are considered as CML presenting in blast crisis of lymphoid lineage, as opposed to de novo ALL. The remaining seven cases were Ph negative at the cytogenetic and molecular levels; the leukemic blasts were MPO mRNA negative, confirming the lack of MPO gene expression in de novo ALL.

Adult

bcr gene rearrangement analysis in myeloproliferative disorders other than chronic myelogenous leukemia.

The bcr gene rearrangement resulting from the Philadelphia translocation is diagnostic of chronic myelogenous leukemia (CML) and is considered the hallmark of this myeloproliferative disorder (MPD) at the molecular level. The other MPDs, essential thrombocythemia (ET), polycythemia vera (PV), agnogenic myeloid metaplasia (AMM), and unclassified MPD, share morphologic features with CML, making the diagnosis difficult in cases with considerable morphologic overlap. In such cases, molecular analysis becomes essential for accurate diagnosis. We report results of bcr analysis by Southern hybridization in 37 patients with MPDs other than CML: ET (20 cases), PV (seven cases). unclassified MPD (nine cases), as well as in one case of chronic myelomonocytic leukemia (CMML). bcr negativity ruled out CML in 36 cases, confirming the morphologic diagnosis. In one case diagnosed as ET. bcr gene rearrangement was diagnostic of CML. The correct diagnosis made possible a different therapeutic approach in this young patient and resulted in cure after allogeneic bone marrow transplantation. The existence of such cases makes the use of molecular analysis essential in the evaluation of MPDs, even when the morphologic features do not unequivocally support the diagnosis of CML, as in this patient.

Adult

BCL-2 gene rearrangements in lymphoid malignancies.

Chromosomal translocations consistently associated with lymphoid malignancies result in gene rearrangements and activation of cellular oncogenes. The bcl-2 gene rearrangement is one of the most thoroughly studied and clinically useful in the diagnosis and monitoring of patients with lymphoma. The molecular analysis of this gene rearrangement has led to the discovery of the first member of a new class of oncogenes, the regulators of programmed cell death.

Blotting, Southern

Specimen stability for DNA-based diagnostic testing.

The use of molecular diagnostic testing is increasing in the clinical setting; therefore, data regarding DNA stability in clinical specimens are essential for correct test performance and interpretation. This study was designed to determine DNA stability in peripheral blood and solid tissue under different storage conditions. DNA quality and yield were assayed by spectrophotometric absorbance, gel electrophoresis, and suitability for Southern hybridization and polymerase chain reaction (PCR), the most widely employed clinical DNA analyses. A second goal of the study was to evaluate DNA stability during storage at 4 degrees C for 1 month to 3 years. The data show that freezing or refrigeration of separated leukocytes is preferable for short- to intermediate-term storage and freezing is preferable for solid tissue. DNA degradation varying from slight to severe is seen inconsistently with such specimens, probably due to sampling of unevenly frozen-tissue areas. Depending on the degree of DNA degradation, analysis may still be possible by PCR and in some cases even by Southern hybridization. Once isolated, DNA was stable at 4 degrees C for at least 3 years. These results suggest a more flexible approach to specimen requirements for molecular pathology, as some samples that would routinely be rejected gave interpretable results.

Blood Cells

Use of myeloperoxidase mRNA as a marker for myeloid lineage in acute leukemias.

BACKGROUND: Positivity for myeloperoxidase is considered the diagnostic hallmark of myeloid lineage and is the major criterion in the classification of acute leukemias. Early myeloid precursors, however, may be cytochemically negative for myeloperoxidase enzymatic activity or protein, but positive for myeloperoxidase mRNA. OBJECTIVE: To evaluate the expression of the myeloperoxidase gene in leukemic blasts at the mRNA level and correlate the expression with blast cytochemistry and immunophenotyping. PATIENTS AND METHODS: Sixteen cases of acute myelogenous leukemia and six cases of acute lymphoblastic leukemia were studied retrospectively using cellular material from Wright-stained and unstained archival smears of peripheral blood and bone marrow aspirate and a reverse-transcription polymerase chain reaction procedure for detection of myeloperoxidase mRNA. RESULTS: Positivity in leukemic blasts was found in all acute myelogenous leukemia cases, including cases of M0, M1, and M5 that were cytochemically negative, equivocal, or weakly positive for the enzyme. None of the acute lymphoblastic leukemia cases showed positivity for myeloperoxidase mRNA. CONCLUSIONS: The procedure is a highly specific and sensitive method for diagnosis of myeloid lineage in leukemic blasts.

Diagnosis, Differential

Discordant morphologic features in bone marrow involvement by malignant lymphomas: use of gene rearrangement patterns for diagnosis.

Discordant morphology between lymph node or extra-nodal site and bone marrow (BM) involvement by non-Hodgkin's malignant lymphoma (NHL) is a common occurrence, causing diagnostic difficulties. Additional diagnostic problems are posed by lymphoid aggregates commonly found in the BM of elderly patients, the age group with the highest incidence of lymphoma. Morphologic features are used to distinguish between benign and malignant lesions but no feature is diagnostic and exceptions are numerous. Immunophenotyping is helpful for detecting B cell monoclonality, but it cannot detect T cell monoclonality. Unique B and T cell gene rearrangement patterns, the molecular "signature" of the lymphoma, can be used to detect monoclonal lymphoid populations. Finding the same rearrangement pattern in the BM as in the primary mass is proof of BM involvement by the same clone of malignant cells. We used B/T and Bcl-2 gene rearrangements to help diagnose cases with discordant morphology between primary site and BM. One hundred and seventy-five specimens, obtained from patients undergoing staging or restaging for NHL, were analyzed for B/T cell and Bcl-2 gene rearrangements by multiple restriction endonuclease digestion and Southern hybridization with 32P labeled JH, JK, CT beta, and Bcl-2 probes. Forty-two specimens (24%) from 24 patients showed discordant morphology: of 13 specimens with atypical lymphoid aggregates, only one had B cell gene rearrangement; of 15 specimens with morphologically benign lymphoid aggregates, one demonstrated B cell gene rearrangement; and of 14 specimens positive for NHL with different morphology than the lymph node, 13 were positive for B cell gene rearrangements. Molecular analysis can aid in the diagnosis of NHL, can establish a "baseline" for detection of recurrence, and is useful in monitoring therapy. These data suggest that it is also a tool for the pathologist in cases of discordant morphology between the primary tumor and BM, and should be strongly considered for each site.

B-Lymphocytes

Separate clones in concomitant multiple myeloma and a second B-cell neoplasm demonstrated by molecular and immunophenotypic analysis.

The occurrence of multiple myeloma (MM) and a second B-cell neoplasm in the same patient is a rare event. We present 2 such patients, and provide evidence to support the presence of separate clones in these coexisting neoplasms. In the first case, MM became evident 14 months after the diagnosis of chronic lymphocytic leukemia (CLL). In past reports, most occurrences of this association, when investigated, have been regarded to be biclonal disease processes; however, with few exceptions, most were documented by immunologic studies alone. To establish the clonality in our case of CLL with MM, we examined both immunophenotypic data obtained by standard two-color flow cytometric analysis, and patterns of immunoglobulin gene rearrangement, using standard Southern analysis and hybridization with 32P-labelled JH and JK probes. This provided evidence for the presence in this patient of two separate monoclonal populations of B cells, manifested as light chain restrictions and gene rearrangements which differed in blood (CLL) and bone marrow (MM) samples. In the second case, MM presented simultaneously with bone marrow lymphocytosis and abnormal peripheral lymphocytes. Clonality studies on blood were not done. Bone marrow B-cell gene rearrangement studies, however, revealed the presence of three bands in the JK blot of significantly different intensities, suggestive of two monoclonal populations. A monoclonal population of small cells with surface B markers and surface IgM was demonstrated by flow cytometry, while a second population of larger cells with intracytoplasmic IgG matching the patient's serum monoclonal protein was detected by immunofluorescence microscopy. The results in these 2 cases expand previous findings of the rare association of MM with a second B-cell neoplasm, and demonstrate the usefulness of molecular diagnostic investigation.

B-Lymphocytes

Myeloperoxidase mRNA detection for lineage determination of leukemic blasts: retrospective analysis.

Myeloperoxidase (MPO) mRNA is an early myeloid marker; its detection in the morphologically and immunophenotypically primitive blasts of acute undifferentiated leukemia (AUL) establishes myeloid lineage and allows reclassification as acute myelogenous leukemia with minimal differentiation (AML-MO). We have previously reported a procedure for MPO mRNA detection by RT-PCR (reverse transcription-polymerase chain reaction) and an adaptation for use of routine hematology smears. This variant procedure allows retrospective analysis of mRNA and is used in the present study to evaluate the lineage of leukemic blasts in seven cases with morphology and cytochemistry consistent with AUL. All hematology smears used in this study were air-dried, unstained or Wright-stained and stored at room temperature for periods varying between 3 days and 2 years. MPO mRNA was detected in six cases, establishing the myeloid lineage of the blasts and the diagnosis of AML-MO. In the remaining case, the blasts were MPO mRNA negative, confirming the diagnosis of AUL. The RT-PCR procedure for retrospective mRNA analysis is useful in the clinical setting, due to its high specificity and sensitivity, speed (less than 24 h), safety (no radioactivity) and convenient use of routine hematology smears; it is particularly attractive in clinical situations when fresh or frozen specimens are no longer available at the time when the need for molecular diagnostics becomes apparent.

Acute Disease

Polymerase chain reaction in the diagnosis of chromosomal breakpoints.

Polymerase chain reaction-based methods for the detection of translocation-induced gene rearrangements are now widely used for diagnostics and patient monitoring. This article concentrates on two of the best studied chromosome translocations resulting in specific gene rearrangements and oncogene activation: the Philadelphia translocation of chronic myelogenous leukemia and acute leukemias, and the t(14;18) translocation of follicular lymphomas.

Chromosome Aberrations

Retrospective DNA analysis using fixed tissue specimens.

The recent explosion of scientific and technical knowledge in the field of molecular biology has allowed us to make important advances in our understanding of the molecular basis of many human diseases. This technology has now entered the clinical laboratory where identification of specific genetic sequences can aid in the precise diagnosis of hematologic and other malignancies, inherited diseases, specific infectious agents, and inherited predisposition to disease. In addition, it can be applied to prenatal diagnosis, paternity testing, identification of minimal residual disease following treatment, and assessment of drug sensitivity or resistance. In many cases in diagnostic pathology, the need for molecular analysis often is not realized until after a critical tissue specimen has been fixed, embedded, and examined microscopically. Thus, there is a clear need for development of techniques that would allow the retrospective study of archival tissues that have been fixed and embedded in paraffin. This review examines in depth those factors which influence the quality of the DNA available from fixed embedded tissues and discusses the usefulness of polymerase chain reaction amplification in obtaining sufficient diagnostically useful DNA from archival specimens. It is hoped that this review will aid the diagnostic pathologist interested in the application of molecular techniques in the retrospective study of fixed embedded tissues.

DNA

A new procedure for cell lineage determination in acute leukemias. Myeloperoxidase mRNA detection.

Determination of cell lineage in acute leukemias is essential for diagnosis and treatment. Detection of myeloperoxidase (MPO) mRNA establishes myeloid lineage of leukemic blasts that may be too primitive to be identified as myeloblasts based on morphology, cytochemistry, or immunophenotype. A highly specific and sensitive new procedure for MPO mRNA detection has been developed using HL-60 cells. It involves a microprocedure for total cellular RNA extraction, reverse transcription, and specific amplification of target sequences in the resulting MPO cDNA, by the polymerase chain reaction. Specific primers are designed to amplify an 89-base pair (bp) sequence from the signal peptide, 179 and 318-bp sequences from the start and end, respectively, of the heavy-chain sequence, and a 255-bp sequence overlapping the proregion and light chain. The correct-size amplification products, detected electrophoretically, demonstrate MPO mRNA expression in the leukemic cells analyzed. The sensitivity of this new procedure was evaluated on serial concentrations of HL-60 cells and was found to be 10-10(4) cells depending on the MPO cDNA amplified sequence. No amplification products were obtained using peripheral blood lymphocytes as a negative cellular control. The specificity of the procedure is demonstrated by Southern blotting and hybridization with 32P-labeled oligonucleotide probes specific for each of the amplified sequences. An additional advantage of this procedure is availability of results in 8-24 h, compared with 1-2 weeks for conventional RNA methods.

Base Sequence

Amplification of intermediate-size DNA sequences from formalin and B-5 fixed tissue by polymerase chain reaction.

Retrospective analysis of DNA from paraffin-embedded fixed bone marrow biopsy specimens is possible if preceded by amplification of the DNA sequences of interest by the polymerase chain reaction (PCR). These fixed specimens yield degraded DNA that may not be suitable for direct analysis by conventional digestion and hybridization methods. This limitation is circumvented by PCR amplification and subsequent analysis of the amplified products. The model used in this study is the amplification of a 725 base-pair (bp) beta-globin gene sequence encompassing the sickle-cell anemia point mutation, followed by Cvn I digestion. The beta A beta A, beta A beta S, and beta S beta S genotypes are derived from analysis of the allele-specific digestion patterns. Two fixatives were compared: neutral-buffered formalin and a mercury-based fixative (B-5) routinely used for bone marrow biopsies. DNA extracted from B-5-fixed bone marrow specimens was found to be more degraded than DNA from neutral-buffered, formalin-fixed bone marrow aliquots from the same specimens. PCR amplification of the 725 bp beta-globin gene sequence was successful with DNA from formalin-fixed bone marrow specimens, but not with DNA from B-5-fixed identical specimens. Analysis of the amplified product by Cvn I digestion resulted in correct genotype derivation for all patients, normal controls and positive controls (patients diagnosed with sickle-cell anemia or trait). These results indicate that intermediate-size DNA sequences can be amplified and analyzed when DNA is extracted from formalin-fixed bone marrow specimens.(ABSTRACT TRUNCATED AT 250 WORDS)

Anemia, Sickle Cell

Chronic granulocytic leukemia: reassessment of morphologic and cytogenetic characteristics in Ph1-positive and Ph1-negative cases.

33 cases of chronic granulocytic leukemia (CGL) were reassessed to determine if, by strict morphologic criteria. Philadelphia chromosome (Ph1)-negative CGL exists as a diagnostic entity and if Ph1-positive CGL could be distinguished from Ph1-negative CGL. Cases were reassessed using published criteria and, of 11 Ph1-negative cases, only 4 could be reclassified as myelodysplastic syndromes or undifferentiated chronic myeloproliferative disorder. Of the morphologic parameters evaluated, peripheral blood basophilia and bicytopenia proved to be good discriminators between Ph1-positive and Ph1-negative cases. As a group, Ph1-negative cases were more heterogeneous and tended to have lower hemoglobin, WBC, platelet count and absolute eosinophilia. Chromosomal abnormalities other than Ph1 were seen only in the Ph1-positive cases. Based on these findings, we conclude that Ph1-negative CGL constitutes a heterogeneous group, a subgroup of which is morphologically identical with the Ph1-positive CGL. The parameters that best discriminate between Ph1-positive and Ph1-negative cases are peripheral blood absolute basophilia and bicytopenia.

Adolescent

Digoxin-like immunoreactivity in serum from neonates and infants reduced by centrifugal ultrafiltration and fluorescence polarization immunoassay.

We evaluated the TDx Digoxin II (Abbott) modified procedure for interference from digoxin-like immunoreactive factors (DLIF) in pediatric patients. The effectiveness of centrifugal ultrafiltration as a means of removing DLIF interference from the serum of such patients was assessed. We used sera from 40 patients who had not received digoxin, whom we divided into two age groups: 30 neonates (less than 34 days postpartum) and 10 infants (younger than six months). Digoxin-like immunoreactivity was detected in 34 of 41 (83%) neonatal specimens (range 0.2-1.0 micrograms/L) and 16 of 25 (60%) infants' specimens (range 0.2-1.3 micrograms/L). Centrifugal ultrafiltration of serum specimens from these patients reduced but did not eliminate the DLIF interference in some specimens. A comparison of concentrations of DLIF in serum with various other patients' characteristics demonstrated a strong correlation (r = 0.915; P = 0.0001) between DLIF and serum bilirubin in the infants. Apparent digoxin concentrations from 19 serum and serum ultrafiltrate samples collected from 13 patients (four neonates and nine infants) who were treated with digoxin showed a good correlation (r = 0.97); however, the serum samples showed a positive bias of 0.39 microgram/L. We conclude that the TDx Digoxin II modified procedure is still subject to considerable DLIF interference in these two pediatric populations. This interference can be reduced in some serum specimens, but cannot be eliminated completely as others reported.

Aging

Polymerase chain reaction: amplification of DNA from fixed tissue.

The polymerase chain reaction (PCR) allows the analysis of DNA from biologic samples containing only nanogram quantities of DNA. We used DNA purified from fresh or frozen peripheral blood (PB) leukocytes and formalin, or B-5 fixed bone marrow aspirate clots (BM). A sequence of the beta-globin gene was amplified via the PCR then hybridized with allele specific oligonucleotide probes for hemoglobin A, S, and C. All DNA preparations, including formalin and B-5 fixed BMs, were successfully amplified; the hybridization of the amplified products resulted in patterns consistent with the hemoglobin phenotype for all patients. PCR can be used on DNA from many sources; retrospective studies using paraffin embedded fixed tissue are possible because extremely small amounts of DNA present in fixed tissue can be successfully amplified.

Adult