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C A Long

Publications and source records attributed to C A Long.

At least 73 records · Page 4Linked to original sources

Isolation and characterization of the gene from a human genome encoding 17 beta-estradiol dehydrogenase: a comparison of Jar and BeWo choriocarcinoma cell lines.

17-beta-Estradiol dehydrogenase is required for the enzymatic interconversion of estradiol and its weaker related sex steroid, estrone. We isolated and sequenced a complementary deoxyribonucleic acid clone for 17 beta-estradiol dehydrogenase from the BeWo choriocarcinoma cell line. Comparison of the BeWo complementary deoxyribonucleic acid sequence to a previously derived placental complementary deoxyribonucleic acid sequence yields greater than 98% homology. We also isolated the gene for 17 beta-estradiol dehydrogenase from the Jar human choriocarcinoma cell line and elucidated its primary nucleic acid structure. Significant differences in the Jar-deduced complementary deoxyribonucleic acid sequence clearly differentiate it from both the human placental and BeWo forms of 17 beta-estradiol dehydrogenase, indicating the existence of two genes for 17 beta-estradiol dehydrogenase in the human genome. Evaluation of 17 beta-estradiol dehydrogenase gene expression in BeWo and Jar cells was compared with expression in luteinized granulosa cells. Messenger ribonucleic acid for human placental 17 beta-estradiol dehydrogenase was identified in all three cell types as a 1.3 kilobase band on Northern blot analysis. A second messenger ribonucleic acid species measuring 2.1 kilobase was abundantly present in the granulosa cells. Whether these two species of messenger ribonucleic acid are involved in the regulation of the estradiol dehydrogenase genes is yet to be determined.

Base Sequence↗

Menorrhagia.

Excessive vaginal bleeding, or menorrhagia, is one of the most common presenting symptoms for gynecologic patients. Although this disorder has many possible etiologies, it is generally possible to approach its diagnosis and management in an orderly fashion. When evaluating the menorrhagic patient, it important to gear the work-up toward a differential diagnosis that includes pregnancy-related causes, hormonal problems, iatrogenic etiologies, mechanical intrauterine disorders, infections of the lower genital tract, and gynecologic cancers (PHIMIC). This differential approach can guide the types of historical data obtained from the patient, focus the physical examination, and alert the practitioner to the most appropriate laboratory and radiologic evaluation. Therapy can differ widely, depending on the cause of the bleeding. Most types of menorrhagia respond to medical therapy with oral contraceptives, oral synthetic estrogens or progestins, and long-acting intramuscular progestins or GnRH agonists. Surgical approaches, such as dilatation and curettage or hysterectomy, are less and less a first-line therapy; but innovative surgical techniques such as hysteroscopy and laparoscopic surgery are becoming increasingly important. With rapid, goal-directed diagnosis and specific therapy, the medical complications, anxiety, and discomfort suffered by the woman with menorrhagia can be alleviated quickly.

Female↗

A protective monoclonal antibody recognizes an epitope in the carboxyl-terminal cysteine-rich domain in the precursor of the major merozoite surface antigen of the rodent malarial parasite, Plasmodium yoelii.

The 195-kDa major merozoite surface antigen of Plasmodium falciparum (Pf PMMSA) is a potential candidate for the development of a blood-stage malarial vaccine. We have focused on an analogous 230-kDa Ag of the rodent malarial parasite, Plasmodium yoelii, in an effort to study this protein in an experimental model system. Previously we reported the cloning and sequencing of a 2.1-kb portion of the gene encoding the carboxyl-terminal 77 kDa of the Py PMMSA. This region contained the B cell epitope recognized by mAb 302, a mAb shown to protect mice passively against P. yoelii challenge infection. To localize this B cell epitope, we have inserted various restriction fragments of the cloned Py PMMSA sequence into the bacterial expression vector pMG27NSTerm. Recombinant peptides of 74, 40, 34, 17, and 10 kDa have been produced which bear the epitope recognized by mAb 302. The results demonstrate that this B cell epitope is located within the most carboxyl-region of the Py PMMSA which contains a series of ten cysteine residues, also found in the PMMSA of P. falciparum. Further analysis showed that the reduction of disulfide bonds as well as the deletion of CYS-607 of the cloned sequence, resulted in the loss of the expression of this epitope. It is of interest that this epitope does not appear to be a dominant B cell determinant of the Py PMMSA molecule during infection. Inasmuch as this cysteine-rich domain of Py PMMSA displays considerable homology with that of Pf PMMSA, our data suggest that this region of the Pf PMMSA should be considered for inclusion in the development of a blood-stage vaccine.

Amino Acid Sequence↗

A protective monoclonal antibody recognizes a variant-specific epitope in the precursor of the major merozoite surface antigen of the rodent malarial parasite Plasmodium yoelii.

The precursor of the major merozoite surface Ag (PMMSA) represents one of the principal molecules of the erythrocytic stages of malarial parasites. Previously we reported that mAb 302 recognizing the 230-kDa PMMSA of Plasmodium yoelii provided passive protection to mice challenged with this parasite. We now report that the protective capacity of mAb 302 is variant specific, affording protection against infection with only three of five P. yoelii lines. Immunoprecipitation analyses of their PMMSA revealed that the expression of the epitope recognized by mAb 302 also varied and correlated completely with the results of the passive protection studies. Although this specific determinant was not present on the merozoite Ag of all P. yoelii lines, the common expression of other B cell epitopes was noted by the demonstration of serologic cross-reactivity between these molecules. Furthermore, the relatedness of the genes encoding the PMMSA of several murine plasmodial strains and species was clearly shown in nucleic acid hybridization studies. Although strain-common and strain-variable epitopes have been observed in the PMMSA of the human parasite, Plasmodium falciparum, little is known concerning the variability of its biologically relevant epitopes. The current studies using the P. yoelii model system demonstrate that the epitope recognized by a protective mAb is strain variable. Because of the similarities between these antigens of P. falciparum and P. yoelii, this information may impact on the construction of an effective blood-stage malarial vaccine.

Animals↗

Cloned T cells provide help for malaria-specific polyclonal antibody responses.

Athymic mice grafted with antigen-reactive cloned T cells and challenged with Plasmodium chabaudi adami produced antibodies against multiple parasite antigens. Antibody reactivities were similar to those seen in infected euthymic mice and contrasted with their absence in infected athymic mice. These results suggest that it will not be possible to determine the antigenic specificity of clonal T cell populations in malarial infections by their capacity to provide help to restricted populations of B lymphocytes.

Animals↗

Adoptive protection against Plasmodium chabaudi adami malaria in athymic nude mice by a cloned T cell line.

T cell-dependent, cell-mediated immune mechanisms have been shown to contribute to resistance against malaria. Because the identity of plasmodial Ag responsible for the activation of these protective immune responses remains unknown, a major step in isolating these potential immunizing agents will be the development of adequate screening procedures designed to identify important T cell Ag. This study focused on the isolation of protective T cell clones that may play a pivotal role in this process. A T cell clone designated CTR2.1 and two subclones derived from it adoptively transferred protection to athymic nude mice infected with Plasmodium chabaudi adami, a murine malarial parasite known to be recognized by protective thymus-dependent immune mechanisms. The protective T cell clone displayed a L3T4+, Lyt-2- surface phenotype and secreted both IFN-gamma and IL-2 after stimulation with solubilized parasites in vitro. This is the first report of results demonstrating a cloned T cell line capable of providing adoptive protection against malaria in vivo. More importantly, CTR2.1 and other protective T cell clones may provide for the identification of plasmodial antigenic epitopes recognized by important cell-mediated immune mechanisms during acute malarial infection.

Animals↗

ras oncogene is expressed in adenocarcinoma of the endometrium.

Activation of c-ras oncogenes has been implicated in human carcinomas of the colorectum, prostate, bladder and breast. The major peptide product of c-ras is a 21 kilodalton peptide (p21), but other larger "ras-related" peptides have been described in urine obtained from patients with several types of cancers. In the present investigation immunohistochemical methods were used to assess c-ras expression in tissues obtained from patients with endometrial adenocarcinoma. Formalin-fixed, paraffin-embedded tissues were processed in routine fashion, then incubated with a monoclonal antibody raised against a v-H-ras synthetic peptide. ras Peptides were not detected in proliferative or secretory endometrium or in benign adenomatous hyperplasia. One of four specimens of atypical adenomatous hyperplasia and two of 11 specimens of grade 1 (international Federation of Gynecology and Obstetrics) adenocarcinoma stained positive for ras peptides. A total of 95% of the grade 2 and 3 adenocarcinoma studied contained detectable ras peptides within neoplastic cells. In contrast to previous immunohistochemical studies that identified ras peptides only in neoplastic cells of bladder, prostate, colon, and breast cancers, we routinely found ras peptides within stromal cells of high-grade endometrial carcinomas. When stained with hematoxylin and eosin, these cells have the appearance of foamy macrophages.

Adenocarcinoma↗

Plasmodium yoelii: characterization of a protective idiotype during malarial infection in mice.

We have previously identified and characterized a monoclonal antibody (McAb 302) with potent passive protective activity in mice infected with Plasmodium yoelii, a murine malarial parasite which depends on antibodies for resolution. To further study the appearance and regulation of this antibody during infection, we prepared syngeneic monoclonal antibodies specific for idiotopes present on McAb 302. Three hybridomas were established which synthesized antibodies that bound only to the homologous idiotype but which did not recognize isotypic specificities. All three of these antibodies were found to recognize distinct 302 idiotopes and two of these were shown to be specific for determinants associated with the antibody combining site of McAb 302. One of these monoclonal anti-idiotypic antibodies was used to develop an enzyme-linked immunosorbent assay for the 302 idiotype. When serum samples taken at different times from mice undergoing a primary infection with P. yoelii were tested in this assay, the 302 idiotype could not be detected even though the host was mounting a significant humoral response to the 230-kDa antigen recognized by McAb 302. These studies suggest that the idiotype of the protective McAb 302 is not a predominant one involved in the resolution of a P. yoelii infection and that only some idiotypes of antibodies directed to relevant plasmodial antigens possess significant biological activity. Therefore, protective immunization with plasmodial antigens may require the elicitation of selected idiotypes. Attempts to alter the course of P. yoelii infection by preimmunization with monoclonal or polyclonal anti-idiotypic reagents were unsuccessful.

Animals↗

CA 125 in tissues and amniotic fluid during pregnancy.

CA 125 was assayed in amniotic fluid and tissue extracts by immunoradiometric assay, and immunohistochemical studies were performed on paraffin-embedded sections of endometrium, decidua, and fetal membranes with the monoclonal antibody OC 125 used as primary antibody. The concentration of CA 125 in amniotic fluid changes during pregnancy so that levels of 800 to 1000 U/ml are found before 12 weeks. Thereafter, levels of 4000 to 10,000 U/ml are detected routinely. As term approaches, amniotic fluid CA 125 concentrations fall to a range of 1000 to 2000 U/ml. Levels of CA 125 in tissue extracts of secretory endometrium and decidua were 65,000 and 29,500 U/gm of tissue, respectively. CA 125 was readily detected on the apical surfaces of glandular epithelium and in the secretions of endometrial glands obtained throughout the menstrual cycle. It was also detected in the lumina of decidualized glands throughout pregnancy. No antigen was detectable within glandular epithelial cells. We have previously reported high concentrations of CA 125 in chorionic tissue extracts (42,000 U/gm) and low concentrations in amniotic tissue extracts (275 U/gm). In contrast to those findings, immunohistochemical techniques detected CA 125 within the intercellular canaliculi that surround amniotic epithelial cells but not in chorion. We conclude that the likely source of amniotic fluid CA 125 is the decidua and that it gains access to the amniotic fluid via the intercellular canalicular system that traverses the amniotic epithelium.

Amniotic Fluid↗

The 3' portion of the gene for a Plasmodium yoelii merozoite surface antigen encodes the epitope recognized by a protective monoclonal antibody.

The 230-kDa merozoite antigen of the murine malarial parasite Plasmodium yoelii provides a potential model system for the development of a protective erythrocytic stage vaccine. To characterize this antigen at the molecular level, isolated P. yoelii 17XL DNA was used to construct a genomic library in the expression vector lambda gt11. A monoclonal antibody, mAb 302, which passively protected mice against P. yoelii challenge infection, was used to identify a lambda gt11 recombinant clone encoding a portion of the 230-kDa antigen of this parasite. Using this clone as a probe, we identified an mRNA of 7.6 kilobases by RNA blot analysis. Nucleic acid sequence analysis of the clone showed that the epitope recognized by the protective mAb 302 is encoded by the 3' portion of the gene for the 230-kDa antigen. The deduced amino acid sequence revealed that this antigen also contains the tandemly repeated tetrapeptide Gly-Ala-Val-Pro, a series of 10 cysteine residues located within the terminal 110 amino acids, and a potential membrane anchor of 18 hydrophobic residues. Comparison of this C-terminal sequence with the carboxyl segment of the 195-kDa merozoite antigen of Plasmodium falciparum revealed nucleic acid and amino acid sequence similarities ranging from 40% to 70%. The localization of a B-cell epitope recognized by the protective mAb 302 to this carboxyl region of the P. yoelii antigen, combined with the limited strain variability in this region of the homologous 195-kDa antigen of P. falciparum, has implications for the development of an effective erythrocytic stage malarial vaccine.

Amino Acid Sequence↗

Abruptio placenta.

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Abruptio Placentae↗

Antigen-specific, interleukin 2-propagated T lymphocytes confer resistance to a murine malarial parasite, Plasmodium chabaudi adami.

To explore cell-mediated immune mechanisms in host defense against malaria, we utilized a murine model system in which antibody-independent mechanisms of immunity are known to play a major role. Splenic T lymphocytes obtained from Plasmodium chabaudi adami-immune mice were maintained in vitro by using IL 2-containing medium and frequent antigenic stimulation. These IL 2-propagated T lymphocytes were characterized for their antigen reactivity, surface phenotype, and ability to confer protection to P. chabaudi adami in reconstituted mice. IL 2-dependent T lymphocytes maintained their capacity to proliferate in vitro to solubilized parasite preparations of homologous but not heterologous antigens. Antigen-specific proliferation was H-2 restricted, requiring antigen-presenting cells of the correct haplotype. More importantly, these propagated T lymphocytes were effective in adoptively transferring protection to both athymic nude mice and sublethally irradiated recipients. The protective response was dose dependent and antigen specific, because recipients resisted challenge infection with P. chabaudi adami but not with the heterologous parasite Plasmodium yoelii 17X. Pretreatment of the IL 2-propagated cells with anti-Thy-1.2 and complement abrogated their ability to transfer protection. Collectively, these results suggest that T lymphocytes obtained from P. chabaudi adami-immune mice, propagated and expanded in vitro, retain antigen specificity and passive protective activity in vivo.

Animals↗

T-cell immunity in murine malaria: adoptive transfer of resistance to Plasmodium chabaudi adami in nude mice with splenic T cells.

Acute infections caused by the murine malarial parasite Plasmodium chabaudi adami are resolved by antibody-independent mechanisms of immunity. The fact that athymic nude mice developed high-grade unrelenting malaria and died when infected with this parasite suggested a significant role for T lymphocytes. Using adoptive transfer techniques, we demonstrated that spleen cells from either nonimmune or immune donor BALB/c mice eventually suppressed P. chabaudi adami infections in histocompatible recipient nude mice in a dose-dependent manner. Infections in recipients of "immune" spleen cells were less severe, demonstrating a depressed peak parasitemia and a shortened duration of patent infection, than was observed in recipients of normal spleen cells. Also, when sufficient numbers of immune spleen cells were transferred, the second wave of parasitemia (characteristic of this infection in nonimmune mice) failed to occur. T lymphocytes mediated protection in recipient mice, since T-cell-enriched, but not B-cell-enriched, spleen cell fractions suppressed P. chabaudi adami infections in nude mice. Protection was best achieved with T cells that bore the L3T4 phenotype. Patent parasitemias developed in all recipient mice, suggesting that the grafted cells did not limit parasite growth directly but achieved this end by activating other as yet unidentified inhibiting cell systems.

Animals↗

Effects of splenectomy on antibody-independent immunity to Plasmodium chabaudi adami malaria.

Splenectomy of B-cell-deficient mice and immunologically intact mice before infection with Plasmodium chabaudi adami led to the development of significant parasitemias which eventually resolved in the latter mice. Whereas both eusplenic B-cell-deficient mice and immunologically intact mice resolved their acute P. chabaudi adami infection, only B-cell-deficient mice subsequently developed chronic low-grade malaria. Splenectomy of B-cell-deficient mice with chronic malaria led to recrudescing infections, suggesting that the expression of antibody-independent immunity to reinfection was spleen dependent. When dispersed spleen cells were injected into splenectomized mice before challenge with P. chabaudi adami, the kinetics of the resulting infection resembled that seen in splenectomized mice which had not been grafted with normal spleen cells. This finding indicates that immunity to P. chabaudi adami requires the presence of an architecturally intact spleen.

Animals↗