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Xing, C.

Publications and source records attributed to Xing, C..

4 recordsLinked to original sources

GWAS using 2b-RAD sequencing identified three mastitis important SNPs via two-stage association analysis in Chinese Holstein cows.

BackgroundBovine mastitis is a key disease restricting developing global dairy industry. Genomic wide association studies (GWAS) provided a convenient way to understand the biological basis of mastitis and better prevent or treat the disease. 2b-RADseq is a reduced-representation sequencing that offered a powerful method for genome-wide genetic marker development and genotyping. This study, GWAS using two-stage association analysis identified mastitis important genes single nucleotide polymorphisms (SNP) in Chinese Holstein cows.\n\nResultsIn the selected Chinese Holstein cows population, we identified 10,058 SNPs and predicted their allele frequencies. In stage I, 42 significant SNPs screened out in Chinese Holstein cows via Bayesian (P<0.001), while logistic regression model identified 51 SNPs (P<0.01). Twenty-seven significant SNPs appeared simultaneously in both analytical models, which of them only three significant SNPs (rs75762330, C>T, PIC=0.2999; rs88640083, A>G, PIC=0.1676; rs20438858, G>A, PIC=0.3366) located in non-coding region (introns and intergenic) screened out associated with inflammation or immune response. GO enrichment analysis showed that they annotated to three genes (PTK2B, SYK and TNFRSF21), respectively. Stage II? case-control study used to verify three important SNPs associated with dairy cows mastitis traits in independent population. Data suggested that the correlation between these three SNPs (rs75762330, P<0.025; rs88640083, P<0.005; rs20438858, P<0.001) and mastitis traits in dairy cows were consistent with stage I.\n\nConclusionTwo-stage association analysis approved that three significant SNPs associated with mastitis traits in Chinese Holstein cows. Gene function analysis indicated that three genes (PTK2B, SYK and TNFRSF21) involved in inflammation and immune response of dairy cows. Suggesting that they as new candidate genes have an impact on mastitis susceptibility (PTK2B and SYK, OR>1) or resistance (TNFRSF21, OR<1) in Chinese Holstein cows.

genomics

Transcriptome Profiling Reveals Inhibitory Effect of Down-regulated ZBTB38 gene on the Transcriptional Regulation of Tumor Cells Proliferation

Transcription factor ZBTB38 belongs to the zinc finger protein family and contains the typical BTB domains. Only several predicted BTB domain-containing proteins encoded in the human genome have been functionally characterized. No relevant studies have been reported concerning the effect of down-regulated ZBTB38 gene expression on tumor cells through transcriptome analysis. In the present study, 2,438 differentially expressed genes in ZBTB38-/- SH-SY5Y cells were obtained via high-throughput transcriptome sequencing analysis, 83.5% of which was down-regulated. Furthermore, GO functional clustering and KEGG pathway enrichment analysis of these differentially expressed genes (DEGs) revealed that the knocked-down transcription factor ZBTB38 interacted with p53 and arrested cell cycles to inhibit the proliferation of the tumor cells. Besides, it also significantly down-regulated the expressions of PTEN, a \"molecular switch\" of the PI3K/Akt signaling pathway, and RB1CC1, the key gene for autophagy initiation, and blocked autophagy to accelerate the apoptosis of tumor cells. ZBTB38-/- SH-SY5Y cells were investigated at the whole transcriptome level and key DEGs were screened in the present study for the first time, providing a theoretical foundation for exploring the molecular mechanism of inhibition of tumor cell proliferation and targeted anti-tumor therapies.

genomics

Smad9 is a key player of follicular selection in goose via keeping the balance of LHR transcription

The egg production of poultry depends on follicular development and selection. However, the mechanism of selecting the priority of hierarchical follicles is completely unknown. Smad9 is one of the important transcription factors in BMP/Smads pathway and involved in goose follicular initiation. To explore its potential role in goose follicle hierarchy determination, we first blocked Smad9 expression using BMP typereceptor inhibitor LDN-193189 both in vivo and in vitro. Unexpectedly, LDN-193189 administration could dramatically suppress Smad9 level and elevate egg production (7.08 eggs / bird, P< 0.05) of animals, and the estradiol (E2) and luteinizing hormone receptor (LHR) level were significantly increased (P< 0.05), but the progesterone (P4) and follicle stimulating hormone receptor (FSHR) mRNA remain unchanged. Surprisingly, Smad9 knockdown notably attenuated (P< 0.05) in E2, P4, FSHR and LHR level in goose granulosa cells (gGCs). Further chromatin immunoprecipitation (ChIP) assay of gGCs revealed that Smad9, served as a sensor of balance, bound to the LHR promoter regulating its transcription. These findings demonstrated that Smad9 is differentially expressed in goose follicles, and acts as a key player in controlling goose follicular selection.\n\nSUMMARY STATEMENTTo study the hierarchical development mechanism of avian follicle, new strategies can be found to improve the egg production of low-yielding poultry, such as geese.

developmental biology

The IFN response in bat cells consists of canonical and non-canonical ISGs with unique temporal expression kinetics

Bats are reservoirs for a number of highly pathogenic zoonotic viruses, yet they remain relatively asymptomatic during infection. Whether this viral resistance is due to a unique innate immune system is unknown. An evolutionarily conserved feature of vertebrate antiviral immunity is the interferon (IFN) response, which triggers cellular defenses through interferon-stimulated gene (ISG) expression. While bats encode an intact IFN system, global ISG expression patterns in bat cells are not well characterized. Here, we used RNA-Seq to assess the transcriptional response to IFN in cells derived from the bat Pteropus alecto (black flying fox). We show induction of more than 100 transcripts, most of which are canonical ISGs observed in other species. Kinetic gene profiling revealed that P. alecto ISGs fall into two unique temporal subclusters with similar early induction kinetics but distinct late-phase declines. In contrast to bat ISGs, human ISGs generally remained elevated for longer periods following IFN treatment, suggesting host-based differences in gene regulatory mechanisms. Notably, we also identified a small group of non-canonical bat ISGs, including an enzymatically active RNASEL that plays a role in controlling viral infection. These studies provide insight into the innate immune response of an important viral reservoir and lay a foundation for studies into the immunological features that may underlie unique virus-host relationship in bats.\n\nSignificance StatementBats are considered unique in their ability to resist disease caused by viruses that are often pathogenic in humans. While the nature of this viral resistance is unknown, genomic data suggest bat innate immune systems may be specialized in controlling these disease-causing viruses. A critical cell intrinsic antiviral defense system in vertebrates is the interferon response, which suppresses viral infection through induction of hundreds of interferon-stimulated genes (ISGs). In this study, we report the repertoire of ISGs and several unique features of ISG induction kinetics in bat cells. We also characterize induction and antiviral activity of bat RNASEL, which is induced by IFN in bat, but not human cells. These studies lay the foundation for discovery of potentially new antiviral mechanisms in bats, which may spur research into development of therapies to combat viral infection.

immunology