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Biomedical subjects

Jia Wei

Publications and source records attributed to Jia Wei.

2 recordsLinked to original sources

Efficacy and safety of infigratinib in patients with refractory advanced gastric or gastroesophageal junction adenocarcinoma harboring FGFR2 gene amplification: a single-arm, multicenter phase 2 trial.

BACKGROUND: FGFR2 has garnered attention as a promising therapeutic target for gastric cancer (GC) because of its role in GC progression. Infigratinib, an FGFR1-3 selective tyrosine kinase inhibitor, has shown potential in preclinical GC models. METHODS: Infigratinib was evaluated in a phase 2 trial for patients with FGFR2-amplified GC or gastroesophageal junction (GEJ) adenocarcinoma who had failed two or more lines of systemic treatment for locally advanced or metastatic disease. A total of 21 patients received 125 mg of infigratinib orally once daily on a "3 weeks on, 1 week off" schedule. RESULTS: Infigratinib showed preliminary antitumor activity in this molecularly selected population, as reflected by a confirmed objective response rate of 23.8% (95% CI, 8.2-47.2) with median progression-free survival of 3.4 months and median overall survival of 6.7 months. The most common grade 3-4 adverse events were elevated aspartate aminotransferase, decreased white blood cell count, and neutropenia. No treatment-related deaths occurred. Exploratory genomic analyses identified alterations in individual patients with disease progression that may be associated with resistance; however, these findings were based on a limited number of cases and should be interpreted as hypothesis-generating. CONCLUSIONS: The findings support continued investigation of FGFR-targeted strategies in FGFR2-amplified GC/GEJ adenocarcinoma, while underscoring the need for larger studies, refined biomarker selection, and deeper characterization of resistance mechanisms. TRIAL REGISTRATION: NCT05019794, Registered 28 July 2021, https://clinicaltrials.gov/study/NCT05019794 .

Humans

Comparative genomic analysis and functional investigations for MCs catabolism mechanisms and evolutionary dynamics of MCs-degrading bacteria in ecology.

Microcystins (MCs) significantly threaten the ecosystem and public health. Biodegradation has emerged as a promising technology for removing MCs. Many MCs-degrading bacteria have been identified, including an indigenous bacterium Sphingopyxis sp. YF1 that could degrade MC-LR and Adda completely. Herein, we gained insight into the MCs biodegradation mechanisms and evolutionary dynamics of MCs-degrading bacteria, and revealed the toxic risks of the MCs degradation products. The biochemical characteristics and genetic repertoires of strain YF1 were explored. A comparative genomic analysis was performed on strain YF1 and six other MCs-degrading bacteria to investigate their functions. The degradation products were investigated, and the toxicity of the intermediates was analyzed through rigorous theoretical calculation. Strain YF1 might be a novel species that exhibited versatile substrate utilization capabilities. Many common genes and metabolic pathways were identified, shedding light on shared functions and catabolism in the MCs-degrading bacteria. The crucial genes involved in MCs catabolism mechanisms, including mlr and paa gene clusters, were identified successfully. These functional genes might experience horizontal gene transfer events, suggesting the evolutionary dynamics of these MCs-degrading bacteria in ecology. Moreover, the degradation products for MCs and Adda were summarized, and we found most of the intermediates exhibited lower toxicity to different organisms than the parent compound. These findings systematically revealed the MCs catabolism mechanisms and evolutionary dynamics of MCs-degrading bacteria. Consequently, this research contributed to the advancement of green biodegradation technology in aquatic ecology, which might protect human health from MCs.

Humans