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yao, z.

Publications and source records attributed to yao, z..

2 recordsLinked to original sources

Ligand-independent c-Met activation by HHLA2 drives hepatocellular carcinoma and predicts c-MET inhibitor efficacy

The HGF/c-Met signaling pathway facilitates the initiation, progression, and metastasis of hepatocellular carcinoma (HCC). c-Met activation, however, is complex and not solely dependent on HGF, hindering targeted therapy development. This study identifies a critical oncogenic role for HHLA2, a B7 family member, in HCC and highlights its potential as a therapeutic target. We demonstrate that HHLA2 directly interacts with and activates c-Met through N-glycosylation, triggering sustained signaling and promoting aggressive HCC features. Mechanistically, we identified the pro-tumorigenic role of HHLA2 required downstream upregulation of MMP9 and VEGFA, both implicated in tumor progression. In multiple mouse models, HHLA2 overexpression accelerated tumor progression, metastasis, and reduced liver NK cell infiltration, all of which were reversed by c-Met inhibition. In a cohort of 176 HCC patients, HHLA2 expression strongly correlated with c-Met phosphorylation, advanced tumor stage, and poor prognosis. Importantly, HHLA2 expression predicted sensitivity to c-Met inhibitors in cell lines and patient-derived organoids and could be detected in patient serum, suggesting its potential as a prognostic biomarker. Collectively, our findings reveal an HHLA2-mediated mechanism of c-Met activation and provide a strong rationale for targeting the HHLA2-c-Met axis as a novel therapeutic strategy, with HHLA2 serving as a potential prognostic biomarker. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=173 SRC="FIGDIR/small/622557v1_ufig1.gif" ALT="Figure 1"> View larger version (26K): org.highwire.dtl.DTLVardef@8b10dforg.highwire.dtl.DTLVardef@b43dorg.highwire.dtl.DTLVardef@394c4aorg.highwire.dtl.DTLVardef@1bfbc8c_HPS_FORMAT_FIGEXP M_FIG C_FIG

cancer biology↗

Discovery of Waddington's developmental canals elucidates the embryogenesis stability in Caenorhabditis elegans

During embryogenesis, the cells in an embryo need to make numerous spatiotemporal decisions. However, there is inherent noise in each decision due to genetic or environmental fluctuations. How to suppress the noise accumulation to achieve stable embryonic end-products, a process known as Waddingtons developmental canalization, has been a major puzzle in biology since the 1940s. Previous studies have focused on the molecular noise within a cell instead of the cell noise within an embryo, thus providing indirect understandings (e,g., the well-known genetic capacitor Hsp90). In this study, we applied time-lapse microscopic imaging to capturing the spatiotemporal features of single cells, including cell position and cell cycle length, during the embryogenesis of approximately 2,100 Caenorhabditis elegans embryos exposed to various genetic or environmental perturbations. By treating the deviation of a cells spatiotemporal feature from the expected value as noise, we modeled the transmission of noise from each mother cell to their daughters. We discovered pervasive mother-daughter negative feedbacks, which collectively constitute continuous and comprehensive canals for suppressing noise accumulation along the developmental cell lineages, with the steepness (measuring noise suppression efficacy) and depth (measuring noise tolerance level) of the canals quantitatively defined. The learned quantitative rules enabled us to develop a cell-noise-based model that accurately predicts the nematode hatching phenotype, revealing how embryonic stochasticity could cause phenotypic disparity. With a high-dimensional mathematical tool we then proved the system stability of embryogenesis against the cell spatiotemporal noise. We also revealed several dozen canal-maintaining genes and proposed a novel association study framework that links embryonic cells rather than genetic variants with organismal traits. In sum, this study discovered and quantitatively characterized the developmental canals that directly stabilize embryogenesis in a metazoan, illuminating an 80-year-old puzzle and paving a way for studying the phenotypic plasticity and robustness of multicellular organisms from the perspective of embryogenesis.

developmental biology↗