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J Cossman

Publications and source records attributed to J Cossman.

At least 19 recordsLinked to original sources

Oncogenes in Hodgkin's disease.

The following manuscript reviews data presented at the Cologne meeting relating to oncogene expression in Hodgkin's disease. Presented data ranged from investigations of oncogene expression in cell lines, where transcripts of unique size were identified and lineage related expressions of transcription factors described to detailed cytogenetic investigations of fresh Hodgkin's biopsy tissue. Particular attention was centred on discrepancies in the described expression of t(14; 18) and the molecular demonstration of translocated bcl-2 breakpoints in Hodgkin's disease. A large volume of data was presented relating to the relative expression of bcl-2 breakpoints by either genomic hybridization or hybridization following DNA amplification, the expression of the bcl-2 protein or the defined cytogenetic presence of the translocation. Certain other cytogenetic abnormalities of interest in Hodgkin's disease were discussed.

Cell Line

Mutations of the retinoblastoma gene in human lymphoid neoplasms.

The inactivation or loss of tumor suppressor genes (anti-oncogenes) has been implicated as a mechanism central to the pathogenesis of many solid tumors. More recently, we and others have identified a role of one rumor suppressor gene, the retinoblastoma gene, in the development of human lymphoid lymphoma and leukemia. Here we review the involvement of the retinoblastoma gene in the control of normal lymphocyte cell division and the consequences of inactivation of the retinoblastoma gene for the development of lymphoid neoplasia. Our survey has disclosed a broad involvement of retinoblastoma gene inactivation in a wide variety of non-Hodgkin's lymphomas and lymphocytic leukemia. Based on these early findings, it appears likely that tumor suppressor genes may well be involved in many hematopoietic neoplasma.

Genes, Retinoblastoma

Inactivation of the retinoblastoma gene in human lymphoid neoplasms.

The absence of wild type retinoblastoma (Rb) gene expression in a wide variety of human solid tumors suggests an etiologic role for this tumor suppressor gene in human cancer. We have evaluated the involvement of Rb gene inactivation in the pathogenesis and progression of human lymphoma and leukemia. We examined the genomic configuration and transcription of the Rb gene in cultured cell lines and primary cases of T- and B-cell lymphomas and leukemias. By Southern analysis, abnormalities of the Rb locus were identified in 1 of 5 T-cell acute lymphoblastic lymphoma (T-ALL) cell lines, 1 of 26 primary cases of T-ALL, 1 of 40 primary cases of chronic lymphocytic lymphoma/well-differentiated lymphoma (CLL/WDL), and 1 of 15 primary cases of intermediately differentiated lymphoma (IDL). By Northern analysis, markedly reduced or abnormal expression of the Rb gene was identified in 2 of 5 T-ALL cell lines, 1 of 7 primary cases of T-ALL, 1 of 5 primary cases of CLL/WDL, and 1 of 6 primary cases of IDL. These findings show that Rb gene inactivation can be associated with a broad range of lymphoid neoplasms and that loss of the tumor suppressor function of Rb may influence the pathogenesis and progression of lymphoma/leukemia.

DNA Probes

Gene rearrangements in the diagnosis of lymphoma/leukemia. Guidelines for use based on a multiinstitutional study.

The demonstration of immunoglobulin or T-cell receptor gene rearrangements in human lymphoproliferative processes with the use of DNA hybridization has gained great popularity as a sensitive laboratory adjunct to diagnostic hematopathology. The fact that nearly all B- or T-cell malignant lymphomas and leukemias have one or more rearranged antigen receptor genes provides a biologic basis for a diagnostic test. To formally analyze the sensitivity, specificity, and reproducibility of gene rearrangements in the diagnosis of human lymphoproliferative disease, the authors conducted a large, multiinstitutional study. Through a blinded, controlled approach, gene rearrangement analysis of 275 cases was shown to carry a high correlation with conventional phenotyping and histologic diagnosis, with only minor false-positive and false-negative rates. Significantly, no rearrangements were detected in normal lymphoid tissues or carcinomas, sarcomas, or melanomas. In a randomized study of 50 cases, laboratory results showed a high rate of interlaboratory agreement, regardless of the level of previous experience. Furthermore, the reproducibility of interpretation of data (Southern blot autoradiograms) of 192 cases showed high concordance among 11 observers from multiple laboratories. Based on these findings, the authors propose a set of guidelines for interpretation of gene rearrangement analysis that, if carefully followed, renders this a highly reproducible, safe, and accurate addition to the diagnostic regimen for human lymphoproliferative processes.

B-Lymphocytes

My4 antibody staining of non-Hodgkin's lymphomas.

The My4 antibody, one of a number of monoclonal antibodies that react with the CD14 antigen, was originally reported to weakly stain monocytes, macrophages, and granulocytes. However, recent studies have shown that the My4 antibody also stains normal peripheral blood B lymphocytes and some subtypes of B-cell non-Hodgkin's lymphoma. Thus, the authors have studied a large series of non-Hodgkin's lymphomas stained with the My4 antibody. In frozen sections of reactive lymph node biopsy specimens, the My4 antibody strongly stained mantle zone B lymphocytes and weakly reacted with dendritic reticulum cells and histiocytes. In a series of 245 non-Hodgkin's lymphomas, the My4 antibody stained 111 (45%) cases: 108 of 189 (57%) B-cell lymphomas, 3 of 50 (6%) T-cell lymphomas, and 0 of 6 null cell lymphomas. My4-positive B-cell lymphomas occurred in all histologic subtypes with the exception of small noncleaved cell lymphomas. Follicular lymphomas were most often My4 positive (82%). My4 antibody staining showed no correlation with Working Formulation grade. All three My4-positive T-cell lymphomas had a mature T-cell phenotype. Seventy-six of the 111 (68%) My4-positive lymphomas were also analyzed with at least one other anti-CD14 antibody, either Mo2 and/or Leu-M3. In all cases the antigens that react with Mo2 and Leu-M3 were not expressed. Thus, the staining of reactive and neoplastic B cells by My4 appears to be unique to this antibody and is not a feature of all anti-CD14 antibodies.

Antibodies, Monoclonal

A common V delta 2-D delta 2-D delta 3 T cell receptor gene rearrangement in precursor B acute lymphoblastic leukaemia.

Despite their apparent commitment to the B lymphocytic lineage, human precursor B cell acute lymphoblastic leukaemias (ALL) frequently rearrange their T cell antigen receptor (TCR) alpha, beta and gamma chain genes. Since these three genes are active sites of rearrangement in precursor B cell neoplasms, it seemed that the recently discovered fourth TCR gene, delta, might be similarly rearranged. To investigate this possibility, a series of precursor B cell leukaemias was analysed for rearrangements at the delta chain gene locus, using probes of the variable, joining, and constant regions of the delta chain gene. The majority of precursor B cell ALLs in this series (25/32, 78%) showed rearrangement or deletion of one or more TCR delta genes. This contrasts sharply with a series of 16 mature B cell neoplasms (chronic lymphocytic leukaemia) in which no TCR delta gene rearrangements were detected. An unusual TCR delta rearrangement, rarely observed in normal or neoplastic T cells, was seen in the majority (14/18) of precursor B cell ALLs with TCR delta rearrangements. In contrast to the utilization ov V delta 1 in T cell ALL, detailed restriction mapping of precursor B ALL revealed an incomplete rearrangement without involvement of J delta segments. Direct genomic sequencing was performed on one example and demonstrated a nonproductive V delta 2-D delta 2-D delta 3 recombination in this precursor B ALL. We conclude that the TCR delta chain gene is an active locus in precursor B cell neoplasia, involves an unusual type of rearrangement and provides a clonal tumour marker for diagnosis of precursor B ALL.

Base Sequence

Superiority of ProMACE-CytaBOM over ProMACE-MOPP in the treatment of advanced diffuse aggressive lymphoma: results of a prospective randomized trial.

One hundred ninety-three patients with stage II, III, or IV follicular large-cell, diffuse large-cell, diffuse mixed, immunoblastic, or diffuse small noncleaved-cell (non-Burkitt's) lymphoma were randomized to receive either cyclophosphamide 650 mg/m2 intravenously (IV), doxorubicin 25 mg/m2 IV, etoposide 120 mg/m2 IV on day 1, mechlorethamine 6 mg/m2 IV, vincristine 1.4 mg/m2 (no cap at 2 mg total dose) IV on day 8, prednisone 60 mg/m2 orally daily days 1 through 14, procarbazine 100 mg/m2 orally daily days 8 through 14, and methotrexate 500 mg/m2 IV on day 15 with leucovorin 50 mg/m2 orally every 6 hours for four doses beginning 24 hours after methotrexate with cycles repeated every 28 days (ProMACE-MOPP) or same day-1 treatment as ProMACE-MOPP plus cytarabine 300 mg/m2 IV, bleomycin 5 U/m2 IV, vincristine 1.4 mg/m2 (no cap at 2 mg total dose) IV, and methotrexate 120 mg/m2 IV on day 8, leucovorin 25 mg/m2 orally every 6 hours for four doses beginning 24 hours after methotrexate, and prednisone 60 mg/m2 orally daily days 1 through 14 with cycles repeated every 21 days (ProMACE-CytaBOM). Co-trimoxazole two double-strength tablets orally twice daily throughout the period of treatment was added to the ProMACE-CytaBOM regimen when an increased risk of Pneumocystis carinii pneumonia was found in the first 35 patients receiving this combination. Median follow-up is 5 years. Among the 99 patients treated with ProMACE-MOPP, 73 achieved a complete remission (CR) (74%), 30 complete responders have relapsed (41%), and 45 patients have died (45%), including two (2%) of treatment-related causes. Among the 94 patients treated with ProMACE-CytaBOM, 81 achieved a CR (86%), 22 complete responders have relapsed (27%), and 31 patients have died (33%). The complete response rate (P2 = .048) and survival (P2 = .046) were significantly higher for patients treated with ProMACE-CytaBOM. The mortality of ProMACE-CytaBOM treatment overall was six of 94 patients (6.4%). There was no treatment-related mortality among patients treated with prophylactic co-trimoxazole (n = 59). ProMACE-CytaBOM combination chemotherapy with co-trimoxazole prophylaxis is a safe and effective treatment for patients with aggressive histology malignant lymphoma and is superior to ProMACE-MOPP.

Aged

Rearrangement of the T-cell receptor delta chain gene in T-cell lymphomas with a mature phenotype.

The configuration of the T-cell receptor (TCR) delta chain gene was assessed using restriction fragment analysis and the Southern blot technique in 39 T-cell lymphomas with a mature immunophenotype. The TCR delta gene was rearranged in four lymphomas although the gamma/delta TCR was not expressed in two cases studied. The TCR delta gene was the only TCR gene rearranged in two cases. Each lymphoma with TCR delta gene rearrangement had an aberrant T-cell immunophenotype and three cases were of the large cell anaplastic type. The TCR delta gene was deleted in 22 cases and was in the germline configuration in 13 lymphomas. Deletion of the TCR delta gene was characteristic of mycosis fungoides, adult T-cell leukemia/lymphoma (human T cell leukemia-lymphoma virus positive), and Lennert's lymphoma, and was not identified in angiocentric lymphomas. In eight cases with TCR delta deletion, however, a large number of polyclonal (presumably reactive) T cells were present and, in these lymphomas, the authors could not determine if TCR delta gene deletion occurred in the polyclonal T cells, the neoplastic cells, or both cell populations. The authors conclude that the TCR delta gene is usually deleted in mature T-cell lymphomas, as would be expected in alpha/beta TCR T cells. However, TCR delta gene rearrangement is detectable in approximately 10% of cases. Analysis of this locus may be useful diagnostically, as it occasionally may be the only molecular marker of clonality in mature T-cell lymphomas T-cell receptor delta chain gene rearrangement also is found most often in lymphomas of the large cell anaplastic type.

Chromosome Deletion

Disruption of the human SCL locus by "illegitimate" V-(D)-J recombinase activity.

A fusion complementary DNA in the T cell line HSB-2 elucidates a provocative mechanism for the disruption of the putative hematopoietic transcription factor SCL. The fusion cDNA results from an interstitial deletion between a previously unknown locus, SIL (SCL interrupting locus), and the 5' untranslated region of SCL. Similar to 1;14 translocations, this deletion disrupts the SCL 5' regulatory region. This event is probably mediated by V-(D)-J recombinase activity, although neither locus is an immunoglobulin or a T cell receptor. Two other T cell lines, CEM and RPMI 8402, have essentially identical deletions. Thus, in lymphocytes, growth-affecting genes other than immune receptors risk rearrangements.

Base Sequence

A deletion linked to a poly(ADP-ribose) polymerase gene on chromosome 13q33-qter occurs frequently in the normal black population as well as in multiple tumor DNA.

The nuclear enzyme poly(ADP-ribose) polymerase (PADPRP) is thought to play a role in DNA recombination, replication, and repair. In view of the implication of these processes in tumorigenesis, and based on preliminary evidence which indicated the presence of an extraneous polymorphic restriction fragment for murine PADPRP loci in strains of mice susceptible to plasmacytomas, we investigated correlations between the restriction fragment length polymorphism of the PADPRP gene(s) and human Burkitt lymphoma. No increase in the frequency of polymorphisms on chromosome 1 (containing the active gene) or on chromosome 14 (a pseudogene) was observed. However, restriction fragment length polymorphism analysis of PADPRP sequences on chromosome 13 (either a processed pseudogene or a gene with extensive identity to PADPRP) revealed that of 19 DNA samples derived from endemic Burkitt lymphoma all contained at least one copy of a rare allele (B). Simple two-allele (A/B) polymorphisms in this PADPRP-like locus were identified by digestion with a number of restriction enzymes including HindIII, PstI, KpnI, and MspI. These restriction fragment length polymorphisms always segregated together, suggesting that they identify a deletion within or close to the PADPRP sequences on chromosome 13, which we mapped precisely to 13q33-qter. Based upon family studies the A and B alleles were shown to be transferred in a Mendelian codominant fashion. Subsequently, this probe was used as a linkage marker to study the frequency of this deletion in various tumors including B-cell follicular lymphomas, small cell lung carcinomas, breast carcinomas, and colorectal carcinomas. In noncancer control populations, the frequency of this deletion was 3-fold higher among Blacks as compared to Caucasians. When DNA from various tumors was compared to normal DNA from racially appropriate noncancer controls, the frequency of this deletion was still 2- to 3-fold higher in the tumor DNA. Matched samples provided instances of tumor-specific loss of heterozygosity but also revealed that the predominant source of this deletion is the germ line, suggesting that the chromosome 13 region neighboring the PADPRP locus may harbor a gene whose loss may predispose individuals to malignancy.

Alleles

Involvement of the bcl-2 gene in Hodgkin's disease.

A major obstacle to investigations of Hodgkin's disease is the paucity of malignant cells, i.e., Reed-Sternberg cells and their variants, in tissues of patients with this disease. Consequently, the pathogenesis, cell of origin, and clonality of this relatively frequent lymphoma have remained unresolved. Results of recent studies suggest that in some instances Reed-Sternberg cells carry rearranged immunoglobulin heavy-chain joining region (JH) loci as well as chromosomal translocations involving band 14q32. Prompted by these findings, we sought to determine if the t(14;18) (q32;q21) translocation of follicular, non-Hodgkin's B-cell lymphoma was associated with Hodgkin's disease. To detect the possible t(14;18) (q32;q21) translocation within the rare malignant cells of Hodgkin's disease, we amplified sequences created by the t(14;18) translocation using the polymerase chain reaction (PCR). With this approach, DNA sequences carrying the direct fusion of the major breakpoint region of the candidate oncogene, bcl-2, derived from chromosome 18q21, with JH on chromosome 14q32 can be detected in as few as one in 10(5)-10(6) cells. In the present study, joined bcl-2/JH sequences were detected in tissues involved by Hodgkin's disease in 17 of 53 (32%) patients. The frequent association of bcl-2 translocation with Hodgkin's disease suggests that this oncogene has a role in the pathogenesis of Hodgkin's disease. That bcl-2 is involved in a major class of lymphoma in addition to follicular lymphoma implies a role for additional factors responsible for generating the two distinctive clinical and pathologic disease states.

Adult

Surface light chain phenotype in indolent lymphomas: lack of prognostic significance.

The indolent follicular and diffuse lymphomas are neoplasms of B-cell origin. In several other B-cell neoplastic disorders, including multiple myeloma, hairy cell leukemia, and chronic lymphocytic leukemia, the light chain isotype of the surface immunoglobulin has been reported to have prognostic significance. Patients with tumors expressing lambda light chains usually fare more poorly than those with kappa light chain-bearing tumours. We analyzed the clinical data and immunologic phenotype of 101 patients with indolent lymphoma. Eighty-nine of the 101 patients demonstrated surface immunoglobulin of only one light chain type (kappa-47, lambda-42). Patients in both groups were matched for known prognostic factors. There were no significant differences in disease-free survival or overall survival between the two groups or within histologic subtypes. These results indicate that the immunologic light chain phenotype in indolent lymphoma, unlike other B-cell neoplasms, is not a prognostic indicator of survival.

Humans

T-cell receptor gene rearrangements and the diagnosis of human T-cell neoplasms.

The rearranging antigen receptor genes of lymphoid cells serve as unique clonal markers of lymphoid neoplasms. Gene rearrangement analysis is a highly sensitive and reproducible tool which is useful in the diagnosis and classification of malignant lymphoma/leukemia. Although clonality can often be determined among B cell neoplasms by virtue of immunoglobulin isotype analysis, no such phenotypic marker of clonality exists for T cells. Therefore, clonality of T lymphoproliferative processes is most readily determined by rearrangement analysis of the T cell antigen receptor genes. The alpha, beta, gamma, and delta genes of the T cell receptor gene family encode heterodimeric surface antigen receptors and undergo rearrangement early in T cell differentiation. Identification of rearrangement of T cell antigen receptor genes provides valuable diagnostic information concerning cellular lineage, clonality and classification of T cell neoplasms. This molecular approach is applicable to the diagnosis of occult disease, relapse, and resolution of diagnostic dilemmas in any type of tissue sample including fluids and needle aspirations.

Gene Rearrangement, T-Lymphocyte

Molecular genetics and its application to the diagnosis and classification of hematopoietic neoplasms.

Diagnostic pathology and hematology have been enormously helped by recent advances in laboratory techniques that enable sensitive detection and more accurate and reproducible classification of lymphoproliferative processes. This review will focus on the normal molecular mechanisms that lead to the generation of immunocompetence. In addition, some of the techniques of recombinant DNA technology that can be applied to the diagnosis and classification of hematopoietic neoplasms will be described. These common DNA techniques can be of great help in the following problems: differentiation of monoclonal (usually malignant) from polyclonal (usually benign) processes, assistance in differentiation of malignant hematopoietic neoplasms from other poorly differentiated malignant neoplasms of nonhematopoietic lineage such as melanoma or carcinoma, determination of cell lineage (i.e., T lymphocyte versus B lymphocyte), and identification of cytogenetic abnormalities such as chromosomal translocations. From these cytogenetic abnormalities probes may be constructed and used to substitute for the more labor-intensive, technically demanding conventional microscopic karyotype.

Genetic Techniques