
從細胞到個體、從個人到群體、從人群到動物、從體內保健到生態環保,GMI免疫調節蛋白全面地提供了良性循環的基礎。
GMI免疫調節蛋白有高度的協同性、安全性及有效性,已具備新藥開發的資格。
Tumor drug sensitivity is often evaluated under static experimental conditions despite the dynamic biological environments that influence therapeutic response. Here, we established a paired ex vivo functional screening framework to evaluate modulation-dependent drug-response behavior in heterogeneous tumor-derived systems. Using three-dimensional spheroids generated from companion-animal tumors, we performed matched high-throughput screening of an oncology-focused compound library under baseline phosphate-buffered saline (PBS) and biologically modulated conditions using GMI (Ganoderma microsporum immunomodulatory protein). Drug-response landscapes varied substantially across tumors and paired conditions, demonstrating that biological modulation does not uniformly enhance or suppress therapeutic sensitivity. Instead, delayed GMI exposure following compound treatment was associated with bidirectional viability shifts, revealing structured patterns of sensitization-associated and attenuation-associated responses across compounds and cases. Pathway-level aggregation identified recurrent modulation-associated response patterns across drug classes linked to DNA replication and repair, cell-cycle regulation, receptor tyrosine kinase signaling, developmental signaling, and metabolic stress pathways. Unsupervised clustering further resolved three modulation-associated response groups corresponding to sensitized, mixed, and attenuation-associated response states. These modulation-associated response patterns were strongly influenced by tumor context while retaining substantial case-specific variability across species and tumor types. Together, these findings demonstrate that delayed biological perturbation can alter therapeutic-response behavior in a strongly case-dependent manner and establish paired ex vivo functional screening as a strategy for resolving context-dependent modulation patterns in heterogeneous tumor systems.
資料來源:https://www.nature.com/articles/s41598-026-66318-2