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Biomedical subjects

Q Wei

Publications and source records attributed to Q Wei.

At least 127 records · Page 7Linked to original sources

Reduced DNA repair capacity in head and neck cancer patients.

Head and neck cancers (HNCs) are malignancies that can be induced by tobacco use, although host-specific factors such as the DNA repair capacity (DRC) may modulate individual susceptibility to tobacco carcinogenesis. To test the hypothesis that genetically determined DRC modulates HNC susceptibility, we measured the DRC in the peripheral blood lymphocytes of 55 patients with newly diagnosed, previously untreated HNC and 61 healthy controls by the host-cell reactivation assay using a reporter gene damaged by benzo(a)pyrene diol epoxide, an ultimate tobacco-related carcinogen. The mean DRC was significantly lower in cases (8.6%) than it was in controls (12.4%; P < 0.001). The DRC was an independent risk factor for HNC (P < 0.01); those in the middle and lowest tertiles of DRC had increased odds ratios [2.17 (95% confidence interval, 0.74-6.39) and 4.27 (confidence interval, 1.45-12.5), respectively] for HNC. These findings suggest that individuals with reduced DRC may be at increased risk of developing HNC.

7,8-Dihydro-7,8-dihydroxybenzo(a)pyrene 9,10-oxide↗

Genetic polymorphisms in glutathione S-transferase mu and theta, N-acetyltransferase, and CYP1A1 and risk of gliomas.

The role of genetic polymorphisms in modulating susceptibility to carcinogenic exposures has been well explored for tobacco-related neoplasms but not for other neoplasms including gliomas. It is relevant to explore these polymorphisms because certain carcinogenic exposures such as nitrosamines are implicated in the risk of gliomas. We therefore conducted a pilot case-control study to examine the role of polymorphisms in GSTM1, GSTT1, NAT2 (rapid, intermediate, and slow acetylation), and CYP1A1 and risk of glioma. Ninety patients diagnosed with glioma were ascertained as part of an ongoing genetic epidemiological study and were age, gender, and race matched with 90 healthy controls. We used PCR based methodology to determine the prevalence of the above genetic polymorphisms using sequences and PCR conditions directly adapted from studies reported previously. We calculated univariate odds ratios and performed multiple logistic regression to assess interactions between polymorphisms. We found no statistically significant associations between the null genotypes of GSTM1 and GSTT1, and CYP1A1 and risk of gliomas. However, there was an intriguing pattern with NAT2 acetylation status (odds ratios, 1.81, 1.34, and 0.61 for rapid, intermediate, and slow acetylation, respectively; P = 0.10 for trend). It is unlikely that any single polymorphism is sufficiently predictive of risk, and a panel of markers integrated with epidemiological data should be conducted on a large number of study subjects to fully understand the role of genetic polymorphisms and brain tumor risk.

Adult↗

Mutagen sensitivity to benzo(a)pyrene diol epoxide and the risk of squamous cell carcinoma of the head and neck.

Genetic susceptibility appears to modulate an individual's risk of tobacco-induced carcinoma. One biomarker of such susceptibility, chromatid breaks induced in vitro in lymphocytes by the mutagen bleomycin, is an independent risk factor for several malignancies. To date, the more etiologically appropriate mutagen benzo(a)pyrene diol epoxide (BPDE) has only been used in one lung cancer study. Our objective was to evaluate the association between the BPDE-induced chromatid breaks per cell (b/c) values and the risk of squamous cell carcinoma of the head and neck (SCCHN) in a pilot case-control study. Blood samples were obtained from 60 SCCHN patients and 112 healthy controls matched for age, sex, ethnicity, and smoking status. After incubation and exposure to BPDE, metaphase spread slides were created, and the average b/c values were determined. Univariate analysis identified elevated BPDE-induced b/c values as a significant risk factor [P < 0.05, crude odds ratio (OR)=1.94, 95% confidence interval (CI)=1.00-3.74]. On multivariate analysis using logistic regression models and including age, sex, ethnicity, and smoking status, BPDE-induced b/c values remained an independent risk factor for disease (P < 0.05, adjusted OR=2.36, 95% CI=1.17-4.79). Furthermore, when b/c values were divided based on control values into low, medium, and high tertiles, there was a dose-response relationship: an adjusted OR of 1.28 (95% CI=0.49-3.33) for the middle tertile and an adjusted OR of 4.09 (95% CI=1.67-10.0) for the high tertile (trend test, P < 0.001). These findings suggest that high BPDE-induced b/c values in lymphocytes are an independent risk factor for SCCHN and a marker for genetic susceptibility to tobacco-induced carcinogenesis.

Adult↗

Effect of aging on DNA repair and skin carcinogenesis: a minireview of population-based studies.

In the general population, the risk of developing sunlight-induced skin cancer increases as age increases. During the aging process, many biologic factors contribute to the increased risk of developing cancer, including increasing cumulative carcinogenic exposure and increased cellular susceptibility to DNA damage induced by carcinogens. The latter is probably due to an age-related decrease in cellular DNA repair capacity (DRC). Secondary to this decrease in DNA damage repair associated with aging, oncogene activation and amplification also increase, as does the frequency of defects in tumor suppressor genes. All these factors lead to carcinogenesis. Population studies using peripheral blood lymphocytes, transformed lymphoblastoid cells, and primary skin fibroblasts have shown that human DRC decreases with increasing age. The decrease in DRC is also correlated with an increased mutation rate. Reduced DRC may thus be one of the underlying biologic mechanisms for the age-related increase in risk of skin cancer. Therefore, it is important to take the effect of age on DNA repair into account in population studies of DNA repair and skin cancer risk.

Aging↗

Gamma-ray mutagen sensitivity and survival in patients with glioma.

Despite advances in treatment of brain tumors, cerebral malignant gliomas are rapidly debilitating with poor survival. Patient age and tumor histology are known to influence survival in glioma patients, but these factors do not account for all of the variability in survival time. To identify additional useful predictors, we tested an assay that measures intrinsic gamma-ray mutagen sensitivity. Our hypothesis was that increased sensitivity of peripheral blood lymphocytes to chromatid breaks is associated with tumor aggressiveness and decreased patient survival. The eligible 76 patients were those with histologically confirmed malignant gliomas, seen at the University of Texas M. D. Anderson Cancer Center between 1994 and 1997, for whom we had sufficient blood for the in vitro gamma-radiation assay. After gamma-irradiation of each subject's lymphocytes, the frank chromatid breaks in 50 metaphases were averaged to calculate breaks/cell. On the basis of our patient series, we established a gamma-ray mutagen sensitivity cutoff point of 0.55 breaks/cell that was confirmed by bootstrap resampling techniques. Patients with values >0.55 breaks/cell were considered sensitive. Kaplan-Meier and Cox proportional hazards modeling were used for the analysis. The gamma-ray mutagen-sensitive patients had worse survival than the nonsensitive patients, with an unadjusted hazard rate ratio of 1.6 (95% confidence interval, 0.9-2.8; P = 0.15). After adjustment for age, tumor histology, and extent of surgical resection, the hazard rate ratio was 2.4 (95% confidence interval, 1.3-4.6; P = 0.0081). Our data suggest that gamma-ray mutagen sensitivity is a prognostic indicator of survival in glioma patients. The significance of these findings needs to be verified in studies with larger samples of patients with histologically similar gliomas.

Adult↗

Increased expression of monoamine oxidase-B results in enhanced neurite degeneration in methamphetamine-treated PC12 cells.

In vivo administration of methamphetamine (MA) produces selective damage to dopaminergic nerve terminals, which is hypothesized to be due to release of dopamine from synaptic vesicles within the terminals, allowing the generation of reactive oxygen species (ROS) via dopamine metabolism. Hydrogen peroxide formed during this reaction can interact with free iron to form hydroxyl radicals, which can oxidize proteins, nucleic acids, and membrane lipids, leading to terminal degeneration. Elevation of activity of the dopamine-metabolizing enzyme monoamine oxidase (MAO) in nerve growth factor-treated PC12 cells resulted in a substantial rise in products of dopamine metabolism following MA treatment, including 3,4-dihydroxyphenylacetic acid and hydroperoxides, as well as an increase in lipid peroxidation and a decrease in neurite number and length compared with control cells. These latter effects could be reversed by treatment with the MAO-B specific inhibitor, deprenyl. These data suggest that dopamine metabolism and subsequent ROS production may be key elements in MA-induced neurite degeneration in dopaminergic neurons.

3,4-Dihydroxyphenylacetic Acid↗

Mutagenesis of the L7 loop connecting beta strands 12 and 13 of calcineurin: evidence for a structural role in activity changes.

Calcineurin is a heterodimer consisting of a catalytic A-subunit and a B-subunit, and is regulated by binding of calmodulin and calcium. The C-terminus of the A-subunit contains an autoinhibitory domain which plays an important role in regulation of calcineurin activity. In this study, we have mutated the L7 loop connecting beta strands 12 and 13 in calcineurin A. These mutants included two chimeric mutants in which a four amino acid stretch in the cognate L7 loops of the related proteins phosphatase-1 (GEFD) or -2A (YRCG) were substituted for the calcineurin sequence DVYN (313-316), a point mutation (L312C), and a truncated mutant in which the YRG sequence replaced residues 313-316. Examination of the activities of these mutants led to the striking finding that truncation of the loop region by one residue resulted in hyperactivation of the calcineurin A-subunit. That the hyperactivation is due to conformational effects on the catalytic core of the enzyme was established since this effect was maintained in truncation mutants (at residues 456 and 388) in which the calmodulin and autoinhibitory domains were deleted. These studies provide evidence that the L7 loop is an important structural element in the conformation of the active site, and may participate in the conformational transitions of calcineurin between a catalytically repressed state and an activated state under the influence of the B-subunit.

Animals↗

Reduced expression of mismatch repair genes measured by multiplex reverse transcription-polymerase chain reaction in human gliomas.

Microsatellite instability (MIN) is frequently observed in hereditary nonpolyposis colon cancer and in other sporadic cancers including gliomas. Abnormalities in at least one of five mismatch repair (MMR) genes are implicated in the development of cancers in hereditary nonpolyposis colon cancer and the associated MIN. Using a newly developed multiplex reverse transcription-PCR assay, we evaluated the expression of the five known human MMR genes (hMSH2, hMLH1, hPMS1, hPMS2, and GTBP) in human gliomas by measuring simultaneously the relative levels of the transcripts. The beta-actin gene was used as an internal control for RNA degradation and DNA contamination and as a reference for quantifying the levels of their transcripts. Of the 33 gliomas examined, 42% (14) had low expression of hMSH2 (at least 4-5-fold lower than normal mean), 21% (7) had low expression of hMLH1, and 18% (6) had low expression of hPMS1 compared with the expression in the lymphocytes from 13 normal individuals. Furthermore, six of the 33 (18%) tumor samples had decreased expression of more than one MMR gene. Two of these six patients with multiple gene abnormalities had second primary cancers, and an additional patient had multifocal gliomas. Further molecular analysis of available DNA samples indicated that one of five of those tumors with aberrant expression of MMR genes had MIN, as compared with none of five tumors with normal expression. These data suggest that reduced expression of MMR genes is frequent in human gliomas and that aberrant expression of more than one MMR gene may be associated with increased risk of second primary malignancies in glioma patients.

Adaptor Proteins, Signal Transducing↗

Thymic cortical epithelium is sufficient for the development of mature T cells in relB-deficient mice.

Thymic development of T lymphocytes progresses as a consequence of both TCR-mediated and non-TCR-mediated interactions between thymocytes and stromal cells. As relB-deficient mice appear to lack thymic medullary epithelium and mature dendritic cells, we studied the effect of this "cortex-only" thymus on T cell development. Two major consequences were observed. First, in both relB mutant and TCR transgenic/relB mutant mice, positive selection of both TCR alpha beta and delta gamma T cells appeared to proceed normally, with export of fully functional T cells to the periphery, suggesting that the thymic medullary stromal cells are not required for full maturation of T cells nor is an organized medullary compartment required for accumulation of mature single positive CD4 and CD8 T cells. Second, thymic negative selection was impaired, as evidenced by significant autoreactive proliferative responses to normal spleen stimulators. Peripheral T cells in relB mutant mice showed an unusually high proportion of CD69+ and CD44high cells. While some of these cells may be autoreactive T cells, most of the cells appeared to be activated by cytokines produced by relB mutant nonlymphoid cells, as the effect is minimized in relB mutant bone marrow chimeras. In sum, while the TCR-mediated steps in T cell maturation require both thymic cortex and medulla (epithelium and dendritic cells) for normal positive and negative selection of the repertoire, non-TCR-mediated interactions in the thymic cortex alone are sufficient to generate mature functional T cells.

Animals↗

Dendritic-like cells from relB mutant mice.

Mice deficient in the NF-kappa B transcription factor relB appear to have defects in the production of mature dendritic cells, as secondary lymphoid tissues are absent, and spleen cells show a significant loss of antigen presenting function. Moreover, the thymus appears to be impaired in negative selection, and immune responses in vivo are poor. Since dendritic cell precursors such as skin Langerhans cells appear to be normal, we sought information on the nature of the dendritic cell defect in these mice. Cultures of mutant bone marrow in the presence of GM-CSF revealed a delay in the accumulation of cells with dendritic cell features relative to controls; however, these cells were nearly as potent on a per cell basis as wild type cells in the stimulation of allogeneic mixed lymphocyte cultures. Similarly, skin Langerhans cells from mutant mice also showed significant ability to stimulate allogeneic T cells in culture. Since these findings cannot explain the defect in immune responses and the absence of secondary lymphoid tissues, we also looked at the ability of the relB mutant dendritic-like cells to form aggregates in vitro with naive syngeneic T cells. In this case, while wild type dendritic cells generated compact aggregates with T cells, relB mutant cells only formed irregular small aggregates. Thus, while relB mutant dendritic-like cells have some functions of mature dendritic cells, other functions are deficient. Understanding the role of relB in regulation of these functions should lead to a greater understanding of the molecular basis of dendritic cell development and function.

Animals↗

Effects of neuroblastoma tumor gangliosides on platelet adhesion to collagen.

Gangliosides, sialic acid-containing glycosphingolipids, enhance tumor formation in experimental animals and are associated with tumor progression and metastasis in humans. The mechanism(s) for this activity is (are) unknown. One possibility is enhanced platelet activation, since the interaction of platelets with tumor cells contributes to tumor cell arrest in the vascular compartment. We have previously shown that neuroblastoma tumor gangliosides (NBTG) enhance platelet adenosine triphosphate (ATP) secretion, aggregation, and adhesion. We determined that these NBTG effects are specific for collagen and are mediated through an alpha2 beta1 integrin-dependent mechanism. This report describes the effects of NBTG on a physiologically relevant model of collagen-alpha2 betal interaction. Platelet adhesion to immobilized native collagen fibers similar to those found in the extracellular matrix of blood vessels was determined. Platelet adhesion is enhanced by NBTG in a concentration-dependent manner. Incubation with concentrations of 1 and 10 microM NBTG increased platelet adhesion by 9% and 52%, respectively, compared to less than 1% in controls not incubated with gangliosides (P = 0.001 and P < 0.0001, respectively). In addition to increasing the number of adherent platelets, NBTG promoted more rapid attachment. In NBTG-incubated platelets, platelet adhesion began after a 5-min lag phase and was maximal at 30 min compared to a 20-min lag phase and maximal adhesion at 60 min for control platelets. At 30 min this difference was significant (P = 0.017); however, by 120 min there was no difference between NBTG and controls (P = 0.259). NBTG also induces platelet adhesion at collagen concentrations (0.1 microg) that failed to support adhesion of control platelets. These effects of NBTG require Mg2+ or Mn2+ ions but are not supported by Zn2+ or Ca2+ ions. Furthermore, preincubation of platelets with a blocking antibody (6F1) to the integrin collagen receptor alpha2 beta1 abrogates all of the effects of NBTG. These results indicate that tumor gangliosides enhance platelet adhesion to extracellular matrix collagen and promote rapid stabilization of the collagen-alpha2 beta1 interaction, the initial steps in platelet activation.

Adenosine Triphosphate↗

The predominant defect in dilute melanocytes is in melanosome distribution and not cell shape, supporting a role for myosin V in melanosome transport.

Mice with mutations at the dilute locus, which encodes the heavy chain of a type V unconventional myosin, exhibit a reduction in coat colour intensity. This defect is thought to be caused by the absence in dilute melanocytes of the extensive dendritic arbor through which these cells normally deliver pigment-laden melanosomes to keratinocytes. The data on which this conclusion has been based can also be explained, however, by a defect in the outward transport of melanosomes within melanocytes of normal shape. To resolve this question, we compared the shape and pigment distribution within melanocytes present in primary cultures prepared from the epidermis of C57BL/6J pups that were either wild type (D/D) at dilute or homozygous for the dilute null allele d120J. These same comparisons were also performed on melanocytes in situ, where antibodies to the membrane tyrosine kinase receptor cKIT were used to visualize melanocyte cell shape independent of pigment distribution. Wild type melanocytes were found to be dendritic and to have melanosomes distributed throughout their dendrites both in vitro and in situ. Mutant melanocytes were also found to be dendritic in both cases, but their melanosomes were highly concentrated in the cell body and largely excluded from dendrites. We conclude, therefore, that the predominant defect in dilute melanocytes is in melanosome distribution, not cell shape. These results argue that the myosin V isoform encoded by the dilute locus functions in dendritic extensions to move melanosomes from their site of formation within the cell body to their site of intercellular transfer at dendritic tips. This conclusion is consistent with our recent demonstration by immunolocalization that the dilute myosin V isoform associates with melanosomes in mouse melanocytes.

Animals↗

Expression and reconstitution of calcineurin A and B subunits.

Calcineurin consists of two subunits, a catalytic A subunit of 60 kDa and a regulatory B subunit of 19 kDa. Both the A and B subunits of rat brain calcineurin were expressed in E. coli. The B-subunit was readily overexpressed in the pET-21a vector with yields of > 70 mg of purified B subunit per 1 culture, representing > 17% of the soluble E. coli protein. About 8 mg of purified A subunit was obtained. The enzyme activities of the A-subunit and the reconstituted AB complex were found to be comparable to that of the bovine brain enzyme. The reconstitution of the AB complex was studied and shown to be rapid.

Base Sequence↗

Direct correlation between DNA repair capacity and metastatic potential of K-1735 murine melanoma cells.

The purpose of this study was to determine whether the ability of K-1735 murine melanoma cells to repair DNA damage correlates with their metastatic potential. Three nonmetastatic clones, four metastatic clones, and three somatic-cell hybrids between metastatic and nonmetastatic clones were exposed to incident ultraviolet (UV) light (254 nm). Cell survival was determined by the microculture tetrazolium assay, which measures cell metabolic activity. DNA repair capacity was determined with a host-cell reactivation assay, which measures the activities of chloramphenicol acetyltransferase encoded by the reporter gene in both UV-damaged and undamaged plasmid (control) pCMV cat 40 h after transfection. No discernible differences in transfection efficiencies were found between K-1735 clones with low and high metastatic potential or between cells transfected with UV-damaged and control plasmids. DNA repair capacity directly correlated with cell survival (p < 0.05) and with metastatic potential in the K-1735 clones and somatic cell hybrids (p < 0.05). These data suggest that the intrinsic resistance of melanoma metastases to systemic chemotherapy may be due, in part, to the cells' enhanced DNA repair capacity.

Animals↗

Human immunodeficiency virus type 1 intersubtype (B/E) recombination in a superinfected chimpanzee.

Genetic characterization of a large number of human immunodeficiency virus type 1 (HIV-1) isolates indicates that at least 10% of all strains have mosaic genomes generated by recombination between viruses of the same or different subtypes or clades. What is not known, however, is the time between infection with the first and second HIV-1 strains as well as the time between infection with the second strain and the recombinational event. After 32 months of infection with HIV-1(LAI(IIIB)), a chimpanzee was inoculated intravenously and became infected with a subtype E strain, HIV-1(90CR402). With PCR amplification, DNA heteroduplex analysis, and DNA sequencing, both parental strains and two distinct recombinant proviruses were found in genomic DNA from lymph node tissue obtained 24 weeks after exposure to HIV-1(90CR402). These results show (i) that antiviral immune responses established by long-term infection with an HIV-1 subtype B strain did not prevent infection by a subtype E strain and (ii) that both strains actively replicated and produced sufficient quantities of virus to coinfect the same cell(s), resulting in recombinant viruses.

Acquired Immunodeficiency Syndrome↗

Expression of five selected human mismatch repair genes simultaneously detected in normal and cancer cell lines by a nonradioactive multiplex reverse transcription-polymerase chain reaction.

Abnormalities in at least 1 of 5 mismatch repair (MMR) genes (hMSH2, hMLH1, hPMS1, hPMS2 and GTBP/hMSH6) are found in hereditary nonpolyposis colon cancer and sporadic colon cancers. We used a single-reaction multiplex reverse transcription (RT)-polymerase chain reaction (PCR), with the beta-actin gene as an internal control, to simultaneously evaluate expression of these 5 known human MMR genes in normal and tumor cell lines with known or uncharacterized mutations in MMR genes. The relative quantitation of the transcripts is demonstrated by controlling the number of PCR cycles and titrating cDNA with a dose-curve. The 13 normal cell lines tested were derived from normal lymphocytes, skin, thymus, breast, lung, colon, liver and kidney. The 26 cancer cell lines were derived from melanoma and cancers of the brain, breast, lung, colon, pancreas and prostate. All 5 MMR genes were ubiquitously expressed in all normal cell lines tested, suggesting their housekeeping roles. Aberrant MMR gene expression was only observed in the colon cancer cell lines. Two previously uncharacterized colon cancer cell lines did not express hMLH1. These data suggest that this nonradioactive multiplex RT-PCR assay for MMR gene expression may be useful for fast screening for genetic alterations that may affect gene expression and so may aid molecular analysis of MMR-related colon cancer.

Adaptor Proteins, Signal Transducing↗

Myosin V associates with melanosomes in mouse melanocytes: evidence that myosin V is an organelle motor.

Mice with mutations at the dilute locus exhibit a 'washed out' or 'diluted' coat color. The pigments that are responsible for the coloration of mammalian hair are produced by melanocytes within a specialized organelle, the melanosome. Each melanocyte is responsible for delivering melanosomes via its extensive dendritic arbor to numerous keratinocytes, which go on to form the pigmented hair shaft. In this study, we show by light immunofluorescence microscopy and immunoelectron microscopy that the myosin V isoform encoded by the dilute locus associates with melanosomes. This association, which was seen in all mouse melanocyte cell lines examined and with two independent myosin V antibodies, was evident not only within completely melanized cells, but also within cells undergoing the process of melanosome biogenesis, where coordinate changes in the distributions of a melanosome marker and myosin V were seen. To determine where myosin V, a known actin-based motor, might play a role in melanosome transport, we also examined the cellular distribution of F-actin. The only region where myosin V and F-actin were both concentrated was in dendrites and dendritic tips, which represent the sole destination for melanosomes and where they accumulate in cultured melanocytes. These results support the idea that myosin V serves as the motor for the outward movement of melanosomes within dendritic extensions, and, together with the available information regarding the phenotype of mutant melanocytes in vitro, argue that coat color dilution is caused by the absense of this myosin V-dependent melanosome transport system.

Actins↗