Low lying states in 153Ho and 157Tm from electron capture and beta + decay of 153Er and 157Yb.
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Biomedical subjects
Publications and source records attributed to J Gu.
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The Saccharomyces cerevisiae retroviruslike element Ty3 encodes the major structural proteins capsid (CA) and nucleocapsid in the GAG3 open reading frame. The Ty3 CA protein contains a sequence (QGX2EX5FX3LX3H, where H is a hydrophobic residue) which has not been observed in other retrotransposons but which is similar to the major homology region (MHR) described for retrovirus CA. In this study the effects of mutations in the Ty3 MHR on particle formation, processing, DNA synthesis, and transposition were examined. Each of the mutations tested resulted in severe defects in transposition, with disruption occurring prior to or at particle formation, subsequent to particle formation and prior to completion of DNA synthesis, and subsequent to DNA synthesis. Changing the Q in the motif to R had relatively little effect on particle formation but decreased transposition to about 13% of that of a wild-type element. Changing G to A or V almost completely eliminated the formation of intracellular particles, possibly by disruption of CA-CA interactions. Changes introduced at the position of E resulted in blocked processing, blocked DNA synthesis, or a block at some post-reverse transcription step, depending on the nature of the mutation introduced. These results showed that the integrity of the Ty3 MHR is required for multiple aspects of Ty3 replication involving CA. These functions are independent of extracellular budding and of infection, aspects of the retroviral life cycle which are not recapitulated in replication of the Ty3 retrotransposon.
This study determined effects of surgical dissection and chronic stimulation on degeneration of the latissimus dorsi muscle (LDM), the muscle used for contractile assistance in cardiomyoplasty. LDMs from 10 goats were allocated into four groups: N-LDM (normal), D-LDM (dissected muscle and collateral vessels ligated, muscle remained in original anatomic location), S-LDM (electrically stimulated for 65-75 days), and DS-LDM (dissected and stimulated). S-LDM had nearly a complete transformation to type I fibers throughout the lengths of the muscle. Both groups of dissected muscles (D-LDM and DS-LDM) showed lesser transformation and significant damage. Type I myosin heavy chain and citrate synthase activity were less in the distal compared with the proximal LDM. Morphology of the N-LDM and S-LDM was normal, whereas dramatic morphological abnormalities were observed in the D-LDM and DS-LDM, including lipid-containing ghostlike fibers, atrophied and hypertrophied fibers within the same fascicle. In conclusion, muscle degeneration associated with the cardiomyoplasty procedure was caused by surgical dissection, which was exacerbated by chronic stimulation but was not caused by stimulation alone.
Dose-dependent gastrointestinal absorption of 5-fluorouracil (5-FU) was kinetically evaluated in rats in vivo by analyzing gastrointestinal disposition after oral administration, where a linear model assuming first-order gastric emptying followed by first-order intestinal absorption was fitted to remaining fraction versus time profiles for the stomach and small intestine to estimate the rate constants of gastric emptying (kg) and intestinal absorption (Ka). With an increase in dose from 1.5 nmol/rat (low dow) to 15 mumol/rat (high dose), the Ka decreased from 5.95 to 0.55 min-1, suggesting the involvement of carrier-mediated transport. This study is the first to demonstrate the dose-dependent gastrointestinal absorption of 5-FU in vivo, though it has long been suggested in situ and in vitro. Meanwhile, at both the low and high doses, the Kg values, which were unaffected by dose (0.069 and 0.082 min-1, respectively, for the low and high doses), were smaller than the Ka values by an order of magnitude or more and the recovery of 5-FU was negligible, compared with that of inulin (a nonabsorbable marker), in the most distal segment of ileum. These results suggest that, regardless of dose, 5-FU is highly absorbable in a gastric emptying-limited manner. Thus, well-publicized bioavailability problems (low and erratic) of 5-FU may be attributable to extensive and variable first-pass metabolism rather than poor and variable gastrointestinal absorption.
The specific and dynamic RNA:RNA interactions between pre-mRNA and small nuclear RNAs (snRNAs), especially U2, U5, and U6 snRNAs, form the catalytic core and are at the heart of the spliceosome formation. The functionally important regions in the snRNAs correspond to the highly modified regions in snRNAs from human, rat, and plant cells. To better understand the importance of the modifications of snRNAs, we identified and localized the modified nucleotides in the five spliceosomal snRNAs of Schizosaccharomyces pombe cells. Twenty-two modified nucleotides, including base methylations, 2'-O-methylations, and pseudouridines, were found in the five spliceosomal snRNAs. The conservation of modified nucleotides between human and S. pombe snRNAs is striking. In addition, most of the modified nucleotides are in or around positions that form hydrogen bonds with the pre-mRNA or with other snRNAs. The results are consistent with the suggestion that modified nucleotides are clustered around functionally important regions of the spliceosomal snRNAs. These data provide the basis for further functional studies on posttranscriptional modifications in spliceosomal snRNAs.
This study describes a correlation between cellular DNA repair capacity and the frequency of mutagen-induced in vitro chromosomal breaks in selected lymphoblastoid cell lines. Two assays, host cell reactivation (HCR) assay for measuring cellular DNA repair capacity and in vitro mutagen sensitivity assay, have recently been shown to be useful biomarkers for such susceptibility. Increased in vitro mutagen sensitivity, measured by the number of induced chromatid breaks, has been postulated to reflect decreased capacity of DNA repair, as measured by the HCR assay. However, these two assays have not been examined in parallel to test this hypothesis. In this study, we performed both assays in 16 established lymphoblastoid cell lines derived from patients with xeroderma pigmentosum (n = 3), ataxia telangiectasia (n = 2), head and neck cancer (n = 3), and melanoma (n = 2), and from normal human subjects (n = 6) using UV light, 4-nitroquinoline-1-oxide (4-NQO; an UV-mimetic agent), and gamma-irradiation as the test agents. The measurements from the HCR assay correlated significantly with the frequency of chromatid breaks induced by either UV irradiation (r = -0.69; P < 0.01) or 4-NQO (r = -0.70; P < 0.01). Although published data suggest that damage induced by UV and 4-NQO may be repaired by different pathways, the two agents induced similar frequencies of chromatid breaks (r = 0.68; P < 0.01) in the tested cell lines. Our results also indicated that the HCR assay is not suitable to test agents that cause DNA strand breaks, such as gamma-irradiation, whereas the mutagen sensitivity assay is. Although reduced cellular DNA repair capacity correlated with increased frequency of mutagen-induced chromatid breaks in these cell lines, these two assays have different sensitivities in measuring the repair of damage induced by different carcinogens; therefore, the use of both assays is recommended for future molecular epidemiological studies of cancer susceptibility.
The expression of exogenous genes in long-lived primary T cells is potentially beneficial for the treatment of various diseases including cancer, AIDS, genetic defects of the lymphoid compartment, and systemic enzyme deficiencies such as hemophilia. One approach for genetic modification of T cells is to introduce therapeutic genes into hematopoietic stem cells that would give rise to cells of the lymphoid lineage. Efficient gene transfer and expression in stem cells is often problematic, however. A more direct approach is to introduce the genes into mature primary T lymphocytes since the transferred genes can be maintained and expressed for long periods by long-lived peripheral T cells. In this report, we describe the adoptive transfer into SCID mice of both murine and human primary T cells that have been efficiently transduced with exogenous genes. Primary murine T cells transduced with a retroviral vector containing the human adenosine deaminase (ADA) gene persisted for at least 5 months in lymphoid organs of SCID mice, continuously expressing the exogenous gene. Primary human T cells were also used as target cells for transfer of the beta-galactosidase (lacZ) gene. Expression of the lacZ gene could be detected in over 20% of the transduced primary T cells before adoptive transfer into SCID mice. Transduced human T cells were injected into SCID mice intraperitoneally (ip), and the beta-galactosidase activity could be detected in cells collected from peritoneal exudate washes of recipient mice 6 weeks post-injection. These results demonstrate the availability of a murine model in which the long-term effects of expression of exogenous genes in both murine and human T cells can be tested.
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10 cases of aldosteronoma, 10 cases of pheochromocytoma and 10 cases of adrenocortical adenoma and hyperplasia were studied by using immunohistochemical staining for ET-1. All of the tumors were stained positivily for ET-1, ranging from weak diffuse (+) staining to moderate staining (++). In aldosteronomas ET-1 receptro may be down-regulated and ET-1 may play a paracrine role in regulating catecholamine in pheochromocytoma.
In order to know the glycosylation of high density lipoprotein (HDL) and its specific binding to human lung fibroblasts (HLF) receptors in diabetic patients, the glycosyflation of HDL in diabetic group I (HbAlc < 7.6%) and II (HNbAlc > 9.6%) and a control group were measured with fluorimetry. The hydrazides in carbonyl radical of HDL in the three groups were conjugated with horadish peroxidase (HRP). The specific binding of HDL-HRP to HLF receptors was measured with enzyme linked immunoreceptor assay. The results showed that the glycosylated amount of HDl in group I, II and the control group was 39.26 +/- 8.10, 72.96 +/- 6.40 and 20.40 +/- 1.10 glycogroups/HDL respectively. The surface specific binding of HDL-HRP to HLF receptors in medium with high cholesterol was significantly greater than that in medium without cholesterol (P < 0.01). The surface specific binding of HDL-HRP to HLF receptors in group I and II was significantly lower than that in the control group (P < 0.01) and that in group II was significantly lower than in group I (P < 0.01). The results indicate glycosylated HDL in diabetic patients is increased but its specific binding to HLF receptors is decreased as compared with that in control subjects.
OBJECTIVE: To study the clinicopathological features and diagnosis of tuberculosis of the appendix. METHOD: Fifteen cases (0.27%) with tuberculosis of appendix selected from 5,621 histopathologically examined appendectomy specimens between June 1959 and May 1995 were analyzed retrospectively. RESULTS: All the cases with tuberculosis of appendix were commonly occurred in the young (< or = 34 years in 12 cases) and in females (in 11 cases). They were usually secondary to tuberculosis elsewhere in the abdomen. By microscopy, proliferative type of the lesions were found in 11 cases, while ulcerative type in 4 cases. Fourteen cases (accounting for 93%) were clinically misdiagnosed. It was difficult to be differentiated from chronic appendicitis, tuberculosis or tumor of the ileocecum and malignant tumor of the appendix. CONCLUSIONS: Definite diagnosis of tuberculosis of the appendix mainly depend on the histopathological examination. It is recommended that in order to avoid misdiagnosis, all the surgically removed appendix specimens should be histopathologically examined, no matter whether the specimens are macroscopically normal or not.
In situ hybridization, in situ transcription, and in situ polymerase chain reaction (PCR) are techniques used to detect DNA and RNA sequences within a cell or tissue structure. These three in situ methodologies employ the principles of recombinant DNA to form double-stranded hybrids of DNA-DNA, DNA-RNA, or RNA-RNA. The essence of in situ hybridization (ISH) is the hybridization of a labeled probe to a complementary target sequence, whereas in situ transcription (IST) is the synthesis of complementary DNA incorporating a label directly on the target DNA or RNA within a cell or tissue. In the case of in situ PCR (ISPCR), it is the repeated in situ duplication of both the sense and antisense strands of DNA to increase the number of copies of the target sequence. ISH, IST, and ISPCR each have their advantages and disadvantages. The purpose of this chapter is to address in situ considerations required of these techniques, emphasizing tissue fixation, pre-hybridization steps, DNA probes, RNA probes, oligoprobes, and probe labeling. Five successfully used protocols are presented as examples. Any given nucleotide target sequence may have its own unique set of optimum conditions, thus requiring some adjustment in the hands of the user.
Tumor suppressor p53 is a transcription activator that upregulates target genes containing the p53 binding site. UREB1, a DNA binding protein that is tyrosine phosphorylated in vivo, shares a significant homology with the human papilloma virus E6 associated protein (E6-AP). E6-AP forms a ternary complex with E6 and p53 and participates in the ubiquitination of p53. Based on the homology with E6-AP, but taking into account the nuclear localization of UREB1 and its smaller size, the present study used a transient transfection system to examine whether UREB1 influenced p53-stimulated transcription. Co-transfection of a vector expressing wildtype UREB1 with one expressing p53 into H1299, a p53 negative cell line, resulted in a pronounced suppression of p53 transactivation. The inhibitory effect was significantly attenuated by mutation of a tyrosine residue in the consensus tyrosine phosphorylation sequence of UREB1. These data suggest that optimal suppression of p53 transactivation requires tyrosine phosphorylated UREB1 and that tyrosine phosphorylation and dephosphorylation processes may be involved in the regulation of p53 transactivation.
UDP-N-acetylglucosamine: alpha-6-D-mannoside beta-1,6-N-acetylglucosaminyltransferase V (GlcNAc transferase V), which catalyzes the transfer of N-acetylglucosamine from UDP-N-acetylglucosamine to alpha-6-D-mannoside, is an important enzyme regulating the branch formation in complex-type, N-linked oligosaccharides. It has been reported that the enzymic activity of GlcNAc transferase V increases after viral transformation and the enzymic product is closely related to the metastasis of tumors. We previously reported the purification, cDNA cloning and chromosomal mapping of human GlcNAc transferase V. In this study, we describe the isolation of genomic clones encoding human GlcNAc transferase V and the structure of the gene. The human GlcNAc transferase V gene is divided into 17 exons, and the open reading frame is encoded by exons 2-17, spanning 155 kb. Analysis of the 5'-untranslated regions of mRNAs from various cells showed multiple sequences depending on the cell types. The promoter region of the GlcNAc transferase V gene was characterized by searching for any consensus sequences matching those for transcription-factor binding. The consensus sequences for a TATA box, AP-1, AP-2, and some other transcription factors were found in the 5'-upstream region of exon 1, and consensus sequences for LF-A1, HNF1-HP1, liver-restricted transcription factors and other factors were also found in intron 1. Chloramphenicol acetyltransferase fusion plasmids with either the 5'-upstream region of exon 1 or intron 1 were constructed and transfected into COS-1 cells. Promoter activities of both DNA fragments were detected, indicating that transcription starts within this region. These data suggest that the human GlcNAc transferase V gene employs a multiple promoter system for its transcription, and gene expression may therefore be regulated in tissue-specific and cell-type-specific manners.
The envelope glycoprotein complex is composed of two polypeptides, an external heavily glycosylated polypeptide (SU) and a membrane-spanning protein (TM). Together they form a heterodimer on the surface of the virion. These proteins are synthesized in the form of a polyprotein precursor which is glycosylated and proteolytically processed during its maturation in the secretory pathway. A highly conserved stretch of four amino acids, CWLC, has been identified in most known oncoretroviral SU proteins, about two-thirds of the distance from the amino terminus. To study the significance of this sequence for the structure and/or function of SU, cysteine to serine mutations were made in reticuloendotheliosis virus strain A. Initial studies showed that substitution of either one or both cysteines resulted in the production of noninfectious virus. Furthermore, immunoprecipitations and pulse-chase analysis demonstrated that the mutants yielded envelope polyprotein precursors which were stable. However, the polyprotein precursors were not proteolytically processed into SU and TM, and immunoprecipitations indicate that the immature polyproteins form aggregates, suggesting that the mutations interfere with proper folding. Although not proteolytically processed, at least one of the mutant glycoproteins appeared to be efficiently transported to the cell surface. These studies indicate that changing either cysteine residue abrogates viral infectivity by affecting folding, inhibiting normal maturation of the envelope glycoproteins.
Intermediate-phase clinical results of 51 low-pressure (LP) and 234 standard-pressure (SP) fixation porcine Carpentier-Edwards (CE) valves implanted between 1977 and 1991 were compared for valve-related events. Group similarities included New York Heart Association functional class, ejection fraction, and sex. Patients with SP valves were younger (mean age, 58 versus 68 years; p = 0.0001). There were 20 in-hospital deaths (8.6%) in the SP valve group and 5 (9.8%) in the LP valve group (p = 0.79). Follow-up was 99%, with a mean of 104 months in the SP valve group versus 55 months in the SP valve group (p = 0.0001). The actuarial survival rate was 48.2% and 22.3% at 10 and 15 years, respectively, in the SP valve group and 34.1% at 10 years in the LP valve group (p = 0.42). Freedom from events at 5, 10, and 15 years in the SP valve group and at 5 years in the LP valve group was as follows: for late valve-related events, 86.3%, 51.4% and 20.2%, respectively, in the SP valve group versus 85% in the LP valve group (p = 0.44); for valve-related death, 96.4%, 93.6%, and 87.3% in the SP valve group versus 100% in the LP valve group (p = 0.20); for structural valve failure, 96%, 68%, and 35% in the SP valve group versus 100% in the LP valve group (p = 0.09); and for reoperation, 95%, 61%, and 30% in the SP valve group versus 92% in the LP valve group (p = 0.82). In conclusion, this study revealed no significant statistical difference between LP and SP valves. In the LP valve group, structural valve failure/valve-related death was not observed, perhaps indicating a more favorable result. Absolute verification of this trend awaits long-term follow-up.
The glutathione post-activated neocarzinostatin chromophore (NCSi-glu)-DNA complex was studied in detail by 2-D NMR spectroscopy. The complex is a model for understanding the sequence specific cleavage of DNA by the native neocarzinostatin chromophore (NCS chrom), a highly potent enediyne antitumor agent. NMR spectral analysis is presented for the free NCSi-glu, the free DNA duplex and the NCSi-glu-DNA complex. In addition to the previously reported structural details of the complex (Gao, X.; Stassinopoulos, A.; Rice, J. S.; Goldberg, I. H. Biochemistry 1995, 34, 40), we demonstrate that the binding of NCSi-glu in minor groove results in a patch of negatively charged surface covering the otherwise relatively neutral minor groove. The formation of the complex is largely driven by hydrophobic forces and the solvation of the polar surface of the complex. Comparison of the conformations of NCSi-glu and DNA duplex in their free and bound form reveals an induced mutual fit of DNA and NCSi-glu upon complex formation. The reduced NCS chrom represents a DNA binding motif for sequence specific recognition of DNA via intercalation and minor groove interactions.
Carbohydrate-deficient glycoprotein syndrome (CDGS) is a congenital disorder characterized by neurological and developmental defects. We have examined the expressions of the small proteoglycans decorin and biglycan in cultured skin fibroblasts from a patient with CDGS Type-I. Northern blotting analysis identified a marked reduction in decorin mRNA and an increase in biglycan mRNA levels. The decorin protein in the culture medium was decreased. Responses to interleukin-1 beta (IL-1 beta) and transforming growth factor-beta 1 (TGF-beta 1) were apparently abnormal; decorin was only slightly up-regulated by IL-1 beta, while biglycan was markedly down-regulated by IL-1 beta and significantly up-regulated by TGF-beta 1. The constitutional and developmental abnormalities characteristic of CDGS may be associated with such derangements in the expression of proteoglycan genes.