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C Y Thomas

Publications and source records attributed to C Y Thomas.

18 recordsLinked to original sources

Immunoglobulin gene rearrangement in abnormal lymph node hyperplasia.

The histologic designation "abnormal lymphoid hyperplasia" is applied to lymph nodes demonstrating varying degrees of architectural effacement and/or cytologic atypia. Although some of these cases may be suggestive of non-Hodgkin's lymphoma, a definitive diagnosis is not possible despite careful morphologic and immunophenotypic studies. Because the demonstration of immunoglobulin and T-cell receptor gene rearrangements by Southern blot analysis provides a sensitive marker of lineage and clonality in lymphoid malignant conditions, the frequency with which such gene rearrangements could be identified in abnormal hyperplasia and their significance were studied. DNA samples from lymph node biopsy samples of 11 patients with abnormal lymphoid hyperplasia were analyzed for rearrangements of immunoglobulin and T-cell receptor genes by Southern blot hybridization. Six of these patients had monoclonal B-cell populations identified by immunoglobulin gene rearrangements; all were found subsequently to have non-Hodgkin's lymphoma by repeated biopsy from 8 days to 46 months later. Two patients with negative Southern blot studies also developed lymphoma, one a T-cell non-Hodgkin's lymphoma and one a cutaneous B-cell non-Hodgkin's lymphoma. Three patients without detectable gene rearrangements showed no evidence of malignant lymphoma at 36-, 45-, and 60-month follow-up evaluations. Southern blot analysis thus identified monoclonal B-cell lymphoid populations in a subset of patients with abnormal lymphoid hyperplasia; the presence of clonal immunoglobulin gene rearrangement predicted progression to overt non-Hodgkin's lymphoma.

Aged

A host gene regulates the structure of the transmembrane envelope protein of murine leukemia viruses.

Heterogeneity in the structure of the envelope proteins has been observed in many human and animal retroviruses and may influence pathogenicity. However, the biological significance of this heterogeneity and the mechanisms by which it is generated are poorly understood. We have studied a mouse model in which the envelope gene structure of lymphoma-associated viruses appears to be controlled by a single host gene. The inoculation of HRS and CWD mice with a leukemogenic murine leukemia virus (MuLV) results in recombination between the injected virus and envelope gene sequences of endogenous retroviruses. The genomes of HRS (class I) env recombinants and CWD (class II) env recombinants differ in the sequences encoding the NH2-terminal portion of the transmembrane envelope protein (TM). We have shown that an HRS gene linked to the MHC on chromosome 17 mediates a dominant selection for recombinant retroviruses with the class I envelope gene structure. CBA mice, which share the H-2k haplotype with HRS, also carry the dominant allele at this locus. This system provides a useful model for studies of host factors involved in the selection of specific variants of pathogenic retroviruses.

Amino Acid Sequence

Oncogenicity and U3 region sequences of class II recombinant MuLVs of CWD mice.

The pathogenic potential of Class II env recombinant murine leukemia viruses (MuLV) found in the high leukemia strain CWD has not been defined. We found that neonatal CWD mice that were injected with the phenotypic mixture of the spontaneous CWD class II env recombinant, CWM-T-15, and the AKR endogenous ecotropic virus, Akv 623, developed non-T-cell lymphomas more rapidly than controls inoculated with either virus alone or with a CWD ecotropic virus. In contrast, CWN-T-25, a class II env MuLV that was recovered from a CWD mouse injected with the AKR ecotropic virus SL3-3, dramatically accelerated the onset of T-cell lymphomas in the same assay. Southern blots of the tumor DNAs from each set of animals revealed the integration of recombinant and ecotropic proviruses. We also found that there were differences in the nucleotide sequences of the viral enhancer elements of the CWD viruses. The results indicate that (1) the two CWD class II env recombinants that were tested contained oncogenic determinants; (2) phenotypic mixing with ecotropic viruses was required for the full expression of the pathogenic potential of the CWM-T-15 recombinant; and (3) the distinct phenotypes of the CWD viruses likely reflected the differences in the origin of the viral enhancer element.

Animals

Origin of pathogenic determinants of recombinant murine leukemia viruses: analysis of Bxv-1-related xenotropic viruses from CWD mice.

The acquisition of U3 region sequences derived from the endogenous xenotropic provirus Bxv-1 appears to be an important step in the generation of leukemogenic recombinant viruses in AKR, HRS, C58, and some CWD mice. We report here that each of three CWD lymphomas produced infectious xenotropic murine leukemia virus related to Bxv-1. In Southern blot experiments, these proviruses hybridized to probes that were specific for the xenotropic envelope and Bxv-1 U3 region sequences. Nucleotide sequence analysis of a cloned CWD xenotropic provirus, CWM-S-5X, revealed that the envelope gene was closely related to but distinct from those of other known xenotropic viruses. In addition, the U3 region of CWM-S-5X contained a viral enhancer sequence that was identical to that found in MCF 247, a recombinant AKR virus that is thought to contain the Bxv-1 enhancer. Finally, restriction enzyme sites in the CWM-S-5X provirus were analogous to those reported within Bxv-1. These results establish that the virus progeny of Bxv-1 have the potential to donate pathogenic enhancer sequences to recombinant polytropic murine leukemia viruses. Interestingly, the three CWD polytropic viruses that were isolated from the same tumor cells that produced the Bxv-1-like viruses had not incorporated Bxv-1 sequences into the U3 region.

Amino Acid Sequence

Influence of enhancer sequences on thymotropism and leukemogenicity of mink cell focus-forming viruses.

Oncogenic mink cell focus-forming (MCF) viruses, such as MCF 247, show a positive correlation between the ability to replicate efficiently in the thymus and a leukemogenic phenotype. Other MCF viruses, such as MCF 30-2, replicate to high titers in thymocytes and do not accelerate the onset of leukemia. We used these two MCF viruses with different biological phenotypes to distinguish the effect of specific viral genes and genetic determinants on thymotropism and leukemogenicity. Our goal was to identify the viral sequences that distinguish thymotropic, nonleukemogenic viruses such as MCF 30-2 from thymotropic, leukemogenic viruses such as MCF 247. We cloned MCF 30-2, compared the genetic hallmarks of MCF 30-2 with those of MCF 247, constructed a series of recombinants, and tested the ability of recombinant viruses to replicate in the thymus and to induce leukemia. The results established that (i) MCF 30-2 and MCF 247 differ in the numbers of copies of the enhancer sequences in the long terminal repeats. (ii) The thymotropic phenotype of both viruses is independent of the number of copies of the enhancer sequences. (iii) The oncogenic phenotype of MCF 247 is correlated with the presence in the virus of duplicated enhancer sequences or with the presence of an enhancer with a specific sequence. These results show that the pathogenic phenotypes of MCF viruses are dissociable from the thymotropic phenotype and depend, at least in part, upon the enhancer sequences. On the basis of these results, we suggest that the molecular mechanisms by which the enhancer sequences determine thymotropism are different from those that determine oncogenicity.

Amino Acid Sequence

Phenotypic heterogeneity of spontaneous lymphomas of CWD mice.

Animals of the inbred mouse strain, CWD, express endogenous murine leukemia viruses early in life and have a high incidence of spontaneous neoplasms. We found that approximately one half of these animals died of malignant lymphoma by the age of 16 months. Splenic enlargement was seen in all mice, but thymic involvement was unusual. One half of the CWD tumors were diffuse lymphoblastic or immunoblastic lymphomas while the remainder were large cell, small cell, or mixed cell lymphomas. Analysis of DNAs from 12 tumors for immunoglobulin and T-cell receptor gene rearrangements revealed that all six of the lymphoblastic and immunoblastic lymphomas were of T-cell origin, as was one tumor of small cleaved cells. Four of the others were clonal B-cell lymphomas and one was of uncertain lineage. Assays of a limited number of tumors for the expression of the Thy 1.2 and IgM molecules confirmed the diversity in the cellular phenotype. The results indicate that CWD mice develop primarily splenic lymphomas with an unusual degree of heterogeneity in the tumor cell phenotypes as compared with the thymic lymphomas found in other high leukemia strains. The CWD strain is a useful new model for studies of retroviral leukemogenesis and the relationship between the histopathology and immunophenotype of malignant lymphomas.

Animals

Mechanism of selection of class II recombinant murine leukemia viruses in the highly leukemic strain CWD.

The development of spontaneous lymphomas in CWD mice is associated with the expression of endogenous ecotropic murine leukemia viruses (MuLV) and the formation of recombinant viruses. However, the pattern of substitution of nonecotropic sequences within the envelope genes of the CWD class II recombinant viruses differs from that seen in class I recombinant MuLVs of AKR, C58, and HRS mice. To determine how CWD host genes might influence the envelope gene structure of the recombinant viruses, we characterized the responses of these mice to two different types of exogenous MuLVs. Neonatal mice injected the HRS class I recombinant PTV-1 became infected and developed T-cell lymphomas more rapidly than controls did. The inoculation of CWD mice with the leukemogenic AKR ecotropic virus SL3-3 led to the formation of recombinant MuLVs with a novel genetic structure and class II-like envelope genes, although SL3-3 generates class I recombinants in other strains. These results suggest that the absence of class I recombinant MuLVs in CWD mice is not related to the restriction of the replication or oncogenicity of class I viruses or to the absence of an appropriate ecotropic virus that can generate class I recombinants. More likely, the genes of CWD mice that direct the formation or selection of class II recombinant viruses affect the process of recombination between the ecotropic and nonecotropic envelope gene sequences.

Animals

Association of recombinant murine leukemia viruses of the class II genotype with spontaneous lymphomas in CWD mice.

We determined the phenotype and genotype of murine leukemia viruses associated with the development of spontaneous nonthymic lymphomas in the high-leukemia mouse strain CWD/J. By T1 oligonucleotide fingerprint analysis of the viral RNA, the ecotropic viruses recovered from the spleen or thymus of preleukemic CWD/J mice were found to represent the progeny of the two endogenous ecotropic proviruses present in this strain. Polytropic murine leukemia viruses were produced by tissues from one-half of the leukemic mice, and fresh tumor cells from one of the two animals tested expressed recombinant envelope glycoproteins. The genomic structure of the recombinant viruses resembled those of class II polytropic viruses of NFS X Akv mice and differed from those of class I recombinant viruses that are commonly isolated from other high-leukemia strains such as AKR and HRS. Acquired retroviral sequences with the structural features of class II recombinant proviruses were detected in the DNA from each CWD/J tumor by the Southern blot technique. Finally, the injection of a mixture of CWD/J ecotropic and class II recombinant polytropic viruses into neonatal CWD/J mice accelerated the onset of lymphoma, whereas the endogenous ecotropic virus was inactive in these assays.

Animals

AKR ecotropic murine leukemia virus SL3-3 forms envelope gene recombinants in vivo.

The ecotropic AKR virus SL3-3 was injected into neonatal mice of the high-leukemia strains HRS/J and CWD/J and the low-leukemia strains CBA/J, SEA/J, and NIH Swiss. SL3-3 was highly leukemogenic in each strain, and 90% of the inoculated animals died by 6 months of age. T1 oligonucleotide fingerprint analysis of the genomic RNAs of viruses recovered from 9 of 13 leukemic animals revealed the presence of the SL3-3 virus and recombinant viruses with polytropic virus-related envelope gene sequences. Recombinant proviruses were detected by the Southern blot technique in the DNAs of 17 of 18 tumors. The pattern of substitutions within the envelope genes of the SL3-3 recombinant viruses appeared to be dependent on the strain of the animal. These observations indicate that the SL3-3 virus formed envelope gene recombinants in vivo in each of the strains that were studied. However, the role of these recombinants during leukemogenesis remains to be defined.

AKR murine leukemia virus

Multiple leiomyosarcomas.

A 32-year-old woman underwent a conservative total excision of a leiomyosarcoma of the sigmoid mesocolon. During the subsequent six years she developed additional malignant and benign smooth muscle neoplasms in the soft tissues and uterus which were treated only by nonmutilating surgical excisions with an excellent result. Since we know of no proof to the contrary, we submit this case as an example for surgically excising adult soft tissue sarcomas in as conservative a manner as is sufficient to locally eradicate the disease. Adjunctive radiation or chemotherapy or both may prove to be beneficial.

Adult

The doc's paradox.

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