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Biomedical subjects

Weijia Wang

Publications and source records attributed to Weijia Wang.

7 recordsLinked to original sources

Mendelian Randomization Analysis of NETs-Associated Inflammatory Traits and Type 2 Diabetes and its Complications.

Neutrophil extracellular traps (NETs) -associated inflammatory traits play a significant role in type 2 diabetes mellitus (T2DM) and its complications. Notably, IL-6, a key inflammatory cytokine, is intricately linked to the formation of NETs and the pathogenesis of T2DM and its complications. This study aimed to explore the causal association between NETs-associated inflammatory traits and T2DM, as well as its complications, using a Mendelian Randomization (MR) approach. This study utilized a two-sample MR design with data from Genome-Wide Association Studies (GWAS), comprising a large European population-based meta-analysis for T2DM and its complications. The primary method of analysis was the inverse variance weighted (IVW) approach, complemented by MR-Egger regression, weighted median, and weighted mode methods. Sensitivity analyses included MR-Egger, MR-PRESSO, Cochran's Q, and leave-one-out methods to assess the robustness of the findings. The study indicated that genetically predicted levels of interleukin-6 (IL-6) were inversely associated with diabetic coronary artery disease (CAD) (OR = 0.8997, 95% CI: 0.8257-0.9803, P = 0.0158). Additionally, NETs showed significant associations with T2DM with renal complications (OR=0.97, 95% CI 0.9428-0.998, P = 0.0358) and T2DM with peripheral circulatory complications(OR = 1.0342, 95% CI 1.002-1.0673, P = 0.037). The significant IVW associations showed no evidence of heterogeneity or horizontal pleiotropy. This study suggests that genetically predicted NETs-associated inflammatory traits are associated with specific T2DM complications. Genetically predicted IL-6 was inversely associated with diabetic CAD, whereas NETs were associated with renal and peripheral circulatory complications in T2DM.

Diabetes Mellitus, Type 2↗

Using DNA microarray to study human cytomegalovirus gene expression.

DNA microarray technology has become one of the most widely used tools for functional genomics and is playing an ever increasing role in the study of viral infections and host-pathogen interactions. This paper describes the development of an oligonucleotide microarray representing all the predicted open reading frames of the human cytomegalovirus (HCMV) and an established protocol for simultaneously measuring the expression of all HCMV genes. To evaluate the performance of the HCMV array, human foreskin fibroblasts were either mock infected or infected with the HCMV AD169 or Toledo strains. Hybridizations were performed to determine the level of detection of HCMV transcripts from both the AD169 and Toledo strains and to assess reproducibility within and between slides. Overall, approximately 95% of the predicted HCMV genes produced detectable levels of mRNA, with median signal to noise and signal to background ratios of 41 and 14, respectively. Scatter plots of samples within an array and between two arrays resulted in average linear regressions above 0.95 and 0.9, respectively, indicating that data from the arrays are highly reproducible. In addition, transcripts from genes found in the Toledo strain but not in AD169 were specifically detected.

Cell Line↗

Human cytomegalovirus genes in the 15-kilobase region are required for viral replication in implanted human tissues in SCID mice.

Since animal models for studying human cytomegalovirus (HCMV) replication in vivo and pathogenesis are not available, severe combined immunodeficiency mice into which human tissues were implanted (SCID-hu mice) provide an alternative and valuable model for such studies. The HCMV clinical isolates, including those of the Toledo strain, replicate to high titers in human tissue implanted into SCID mice; however, the attenuated AD169 strain has completely lost this ability. The major difference between Toledo and AD169 is a 15-kb segment, encoding 19 open reading frames, which is present in all virulent strains but deleted from attenuated strains. This fact suggests that crucial genes required for HCMV replication in vivo are localized to this region. In this study, the importance of this 15-kb segment for HCMV replication in vivo was determined. First, Toledo(BAC) virus (produced from a Toledo bacterial artificial chromosome) and AD169 virus were tested for growth in SCID-hu mice. Toledo(BAC), like Toledo, grew to high titers in implanted human thymus and liver tissues, while AD169 did not. This outcome showed that the Toledo genome propagated in bacteria (Toledo(BAC)) retained its virulence. The 15-kb segment was then deleted from Toledo(BAC), and the resulting virus, Toledo(Delta15kb), was tested for growth in both human foreskin fibroblast (HFF) cells and SCID-hu mice. Toledo(Delta15kb) had a minor growth defect in HFF but completely failed to replicate in human thymus and liver implants. This failure to grow was rescued when the 15-kb region was inserted back into the Toledo(Delta15kb) genome. These results directly demonstrated that the genes located in the 15-kb segment are crucial for HCMV replication in vivo.

Animals↗

Characterization of the elements and proteins responsible for interferon-stimulated gene induction by human cytomegalovirus.

Human cytomegalovirus (HCMV) infection of human fibroblast cells activates a large number of interferon-stimulated genes (ISGs) in a viral envelope-cell membrane fusion-dependent mechanism. In this study, we identified two interferon response elements, the interferon-stimulated response element (ISRE) and the gamma interferon-activated site (GAS), which act as HCMV response sites (VRS). Gel mobility shift assays showed that cellular proteins form specific and identical complexes with ISRE and GAS elements, and the binding of these complexes to ISRE and GAS is stimulated by HCMV infection. Point mutations in the consensus sequences of ISRE and GAS completely abolished their activities in response to HCMV-mediated transactivation, as well as their abilities to interact with HCMV-activated VRS-binding proteins. Interferon regulatory factor 3 does not appear to be present in the VRS-binding complexes or to be involved directly in HCMV-mediated ISG activation. Using ProteinChip technology, four potential proteins were identified, ranging from 20 to 42 kDa, in the VRS-binding complexes. The data suggest that HCMV infection activates VRS-binding proteins, which then bind to the VRS and stimulate ISG expression.

Base Sequence↗

Two gamma interferon-activated site-like elements in the human cytomegalovirus major immediate-early promoter/enhancer are important for viral replication.

Human cytomegalovirus (HCMV) infection directly initiates a signal transduction pathway that leads to activation of a large number of cellular interferon-stimulated genes (ISGs). Our previous studies demonstrated that two interferon response elements, the interferon-stimulated response element and gamma interferon-activated site (GAS), in the ISG promoters serve as HCMV response sites (VRS). Interestingly, two GAS-like VRS elements (VRS1) were also present in the HCMV major immediate-early promoter-enhancer (MIEP/E). In this study, the importance of these VRS elements in viral replication was investigated. We demonstrate that the expression of the major IE genes, IE1 and IE2, is interferon inducible. To understand the biological significance of this signal transduction pathway in HCMV major IE expression, the two VRS1 in the MIEP/E were mutated. Mutant HCMVs in which the VRS elements were deleted or that contained point mutations grew dramatically more slowly than wild-type virus at a low multiplicity of infection (MOI). Insertion of wild-type VRS1 into the mutant viral genome rescued the slow growth phenotype. Furthermore, the expression levels of major IE RNAs and proteins were greatly reduced during infection with the VRS mutants at a low MOI. HCMV microarray analysis indicated that infection of host cells with the VRS mutant virus resulted in a global reduction in the expression of viral genes. Collectively, these data demonstrate that the two VRS elements in the MIEP/E are necessary for efficient viral gene expression and replication. This study suggests that although the HCMV-initiated signal transduction pathway results in induction of cellular antiviral genes, it also functions to stimulate viral major IE gene expression. This might be a new viral strategy in which the pathway is used to regulate gene expression and play a role in reactivation.

Base Sequence↗

Establishment of a normal medakafish spermatogonial cell line capable of sperm production in vitro.

Spermatogonia are the male germ stem cells that continuously produce sperm for the next generation. Spermatogenesis is a complicated process that proceeds through mitotic phase of stem cell renewal and differentiation, meiotic phase, and postmeiotic phase of spermiogenesis. Full recapitulation of spermatogenesis in vitro has been impossible, as generation of normal spermatogonial stem cell lines without immortalization and production of motile sperm from these cells after long-term culture have not been achieved. Here we report the derivation of a normal spermatogonial cell line from a mature medakafish testis without immortalization. After 140 passages during 2 years of culture, this cell line retains stable but growth factor-dependent proliferation, a diploid karyotype, and the phenotype and gene expression pattern of spermatogonial stem cells. Furthermore, we show that this cell line can undergo meiosis and spermiogenesis to generate motile sperm. Therefore, the ability of continuous proliferation and sperm production in culture is an intrinsic property of medaka spermatogonial stem cells, and immortalization apparently is not necessary to derive male germ cell cultures. Our findings and cell line will offer a unique opportunity to study and recapitulate spermatogenesis in vitro and to develop approaches for germ-line transmission.

Animals↗

Coupling generation of cytomegalovirus deletion mutants and amplification of viral BAC clones.

Human cytomegalovirus (HCMV) genome manipulation has always been difficult. Recently, the introduction of full-length HCMV DNA into Escherichia coli as an artificial bacterial chromosome (BAC) clone has allowed reliable targeted mutagenesis. Here, we show the next generation of improvement in designing recombinant HCMV, which will also be applicable to other viral BAC clones. An inducible origin of replication linked with an antibiotic resistance marker was used as a cassette for targeted replacement of sequences within a HCMV BAC clone, TowneBAC. The origin of replication allowed for the induction of increased amounts BAC DNA that improved recovery, ease of use and transfections for mutant viruses. By specific deletion of UL147 and the recombinant GFP gene, we have shown that targeted deletion of a gene and selection for a recombinant genome are coupled with the ability to amplify the BAC clone DNA. These HCMV BAC clones were amplified approximately 10-fold. In the case of the removal of GFP from the clone TowneBAC shown in this study, the resulting BAC DNA preparation following amplification was used for successful primary cell transfection. Both parental and deletion BAC clone transfections gave similar levels of recombinant HCMV, and the GFP deletion virus replicated the same as the TowneBAC in a multi-step growth curve analysis.

Cells, Cultured↗