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Biology subjects

Xuan, M.

Publications and source records attributed to Xuan, M..

6 recordsLinked to original sources

INHBA promotes the progression of gastric cancer by activating MAPK signaling pathway via targeting ITGA6

Gastric cancer (GC) is one of the most common malignancies, ranking as the fifth most common cancer and the fourth leading cause among cancer related deaths worldwide. Upregulated INHBA expression in gastric cancer tissues compared to adjacent non-cancerous tissues was confirmed by immunohistochemistry and qRT-PCR analysis. This increased expression of INHBA was found to be significantly associated with the incidence of tumor lesion, lymph node metastasis and the progression to more advanced TNM stages in patients. Functional experiments showed that INHBA could promote the proliferation of GC cells, enhance migration and invasion in vitro, while simultaneously facilitating the inhibition of apoptosis. To test whether INHBA regulated the tumor growth in vivo, the animal studies were performed. The indicated that INHBA over-expression promoted the tumor growth, including weight and volume. Moreover, this study demonstrated through a series of experiments including RNA-seq, Co-IP, Co-IF, Western blot, and Rescue studies that INHBA promotes the progression of GC by targeting ITGA6 to regulate the MAPK signaling pathway. In summary, understanding the role of INHBA/ITGA6/MAPK in tumourigenesis could provide new insights into gastric cancer therapy and targeted inhibition of INHBA might be a potential therapeutic approach for GC treatment.

cancer biology↗

YTHDF3 promotes the progression of gastric cancer by activating Wnt/β-catenin signaling pathway via targeting NEK7

Gastric cancer (GC) is a widespread and deadly malignancy among global digestive tract tumors, alarmingly ranked the fifth most common cancer in terms of incidence and mortality. This study used immunohistochemistry and RT-qPCR to reveal a significant upregulation of YTHDF3 expression in GC tissues compared with that of adjacent normal tissues. This increased expression of YTHDF3 was closely associated with the incidence of lymph node metastasis and the progression to more advanced TNM stages. In vitro experiments demonstrated that YTHDF3 was crucial in promoting the aggressive characteristics of GC cells by enhancing their ability to proliferate, migrate, and invade, while simultaneously inhibiting apoptosis. The role of YTHDF3 in the progression of GC was further confirmed using the BALB/c nude mice subcutaneous tumor model, which showed a slowed tumor growth after YTHDF3 knockdown. This study further confirmed through Co-IF RIP-qPCR, western blotting, and rescue studies that YTHDF3 promotes GC progression by targeting NEK7 to regulate the Wnt/{beta}-catenin signaling pathway. In conclusion, our pivotal findings highlight the YTHDF3/NEK7/Wnt/{beta}-catenin axis as a promising and accessible therapeutic target for the development of new treatments aimed at improving clinical outcome of patients with GC.

cancer biology↗

ITGB4 promotes the progression of colorectal cancer by activating Wnt/β-catenin signaling pathway via targeting EZR

ObjectivesColorectal cancer (CRC) is a major cause of cancer-related mortality worldwide. Integrin beta 4 (ITGB4) has been previously identified as being overexpressed in CRC; however, its precise oncogenic mechanism remains unclear. The present study aimed to elucidate the functional role of ITGB4 in CRC progression and identify its downstream molecular effectors to provide new insights for targeted therapy. MethodsThe biological functions of ITGB4 were investigated in CRC cell lines (SW480 and HCT116) using a series of in vitro assays, including CCK-8, colony formation, Transwell migration and invasion, and flow cytometry for apoptosis following ITGB4 knockdown. An in vivo xenograft mouse model was used to evaluate the effect of ITGB4 on tumor growth. Downstream targets were screened using RNA sequencing (RNA-seq) and validated by co-immunoprecipitation and co-immunofluorescence. The underlying signaling pathway was investigated by Western blotting and functional rescue experiments. ResultsKnockdown of ITGB4 significantly suppressed CRC cell proliferation, migration, and invasion, while promoting apoptosis in vitro. Similarly, silencing ITGB4 markedly inhibited tumor growth in the in vivo xenograft model. RNA-seq analysis identified Ezrin (EZR) as a key downstream target of ITGB4, and a direct protein-protein interaction was confirmed between them. Mechanistically, ITGB4 knockdown decreased the expression of EZR at both the mRNA and protein levels. ITGB4 was demonstrated to exert its pro-tumorigenic effects through the regulation of EZR, which subsequently activated the Wnt/{beta}-catenin signaling pathway. Interestingly, EZR overexpression partially restored ITGB4 levels, suggesting a potential positive feedback loop via Wnt/{beta}-catenin signaling that further amplifies this oncogenic axis. Notably, the malignant phenotypes suppressed by ITGB4 silencing were significantly rescued by the overexpression of EZR. ConclusionThe present study identified a novel ITGB4/EZR/Wnt/{beta}-catenin signaling axis in colorectal cancer. ITGB4 promotes CRC progression by modulating EZR expression and subsequently activating the Wnt/{beta}-catenin pathway. These findings highlight ITGB4 as a potential prognostic biomarker and a promising therapeutic target for CRC.

molecular biology↗

The m6A reader IGF2BP3 promotes gastric cancer progression via increasing the expression of FBXO32 protein

N6-methyladenosine (m6A) represents the most prevalent chemical modification on eukaryotic mRNA, with an accumulating body of literature indicating its pivotal significance in the pathogenesis of human cancers. Nevertheless, the precise molecular interplay between the m6A reader protein IGF2BP3 and gastric cancer remains to be thoroughly delineated. Our study uncovered that the expression of IGF2BP3 in gastric cancer tissues is markedly elevated in comparison to adjacent normal tissues, and this upregulation is tightly correlated with the incidence of lymph node metastasis, more advanced TNM stages, and deeper invasion depth of tumor in patients. In vitro experiments demonstrated that IGF2BP3 potentiates the proliferative, migratory, and invasive capacities of gastric cancer cells, while concurrently inhibiting apoptosis and augmenting the intracellular levels of aerobic glycolysis. In vivo experiments revealed that IGF2BP3 contributes to the growth of gastric cancer. Mechanistically, IGF2BP3 can increase the expression of FBXO32 protein by recognizing and binding to the m6A binding site on FBXO32 mRNA and further activate the downstream cGMP-PKG signaling pathway, thereby modulating various biological functions of gastric cancer cells and ultimately promoting the progression of gastric cancer. In summary, our findings suggest that IGF2BP3 upregulates the expression of FBXO32 protein in an m6A dependent manner and subsequently activates the cGMP-PKG signaling pathway, ultimately leading to the onset and progression of gastric cancer. Consequently, the targeting of the IGF2BP3/FBXO32/cGMP-PKG axis emerges as a promising therapeutic modality for the treatment of gastric cancer.

cancer biology↗

Role of non-coding RNA hsa_circ_0001495 in 16HBE cellular inflammation induced by PM2.5 and O3 combined exposure

BackgroundPM2.5 and O3 are the main air pollutants in China, and inflammation of the respiratory system is one of their main toxic effects. Cyclic RNAs are involved in many pathophysiological processes, but their relationship to the combined exposure to PM2.5 and O3 has not yet been investigated. ObjectiveTo elucidate the biological function played by hsa_circ_0001495 in the induction of 16HBE cellular inflammation by combined exposure to PM2.5 and O3. MethodDetection of cell survival after 24h exposure of 16HBE cells to a combination of PM2.5 and O3 by CCK8. RT-qPCR and ELISA were used to detect inflammatory factors in 16HBE cells after co-exposing to PM2.5 and O3. CircRNA was screened using high throughput sequencing and bioinformatics analysis approaches. RNaseR experiments were carried out to verify the circular RNA properties of the circRNAs. Cytoplasmic-nuclear subcellular localisation assays and fish assays were used to verify the distribution of circRNAs in the nucleus versus the cytoplasm of the cell. To validate functions related with circRNA,RT-qPCR and ELISA were employed. ResultCombined exposure to PM2.5 and O3 resulted in decreased cell viability.Combined exposure to PM2.5 and O3 resulted in 16HBE inflammation. High throughput sequencing and RT-qPCR results showed that the expression of hsa_circ_0001495 was significantly downregulated in 16HBE exposed to PM2.5 and O3 in combination. Hsa_circ_0001495 is not easily digested by RNaseR enzymes and has the properties of a circular RNA. Hsa_circ_0001495 is expressed in the cytoplasm as well as in the nucleus, but its distribution is predominantly in the cytoplasm. ConclusionIn 16HBE cells, combined exposure to PM2.5 and O3 can induce an inflammatory response.hsa_circ_0001495 plays an inhibitory role in the inflammatory response of 16HBE cells that can be induced by combined exposure to PM2.5 and O3.

molecular biology↗

Myostatin gene deletion alters gut microbiota stimulating fast-twitch glycolytic muscle growth

The host genome may influence the composition of the intestinal microbiota, and intestinal microbiota performs an important role in muscle growth and development. Here, we showed that Myostatin (MSTN), a key factor for muscle growth, deletion alters muscularis, plica, and intestinal barrier in pigs. Mice transplanted with MSTN-/- pig intestinal flora showed increase in the cross-sectional area of myofibers and fast-twitch glycolytic muscle mass. The microbes responsible for the production of short chain fatty acids (SCFAs) were enriched in both MSTN-/- pigs and recipient mice, and SCFAs levels were elevated in the colon contents. We demonstrated that valeric acid can stimulate type IIb myofiber growth by activation of the Akt/mTOR pathway via GPR43 and improve muscle atrophy induced by dexamethasone. This is the first study to identify the MSTN gene-gut microbiota-SCFA axis and its regulatory role in fast-twitch glycolytic muscle growth.

microbiology↗