癌症研究
化学
临床实习
光热治疗
质谱法
肿瘤微环境
纳米材料
医学
吸收(声学)
癌症
炎症
激光器
免疫系统
作者
Yongpeng Liang,Haochen Han,Y. Zhao,Wenjun Yu,Jia Liu,Jiachuan Liu,Haojie Jin,Yan Xu,Wei Chen,Kun Qian,Xiangdong Yao,Lin Huang,Ge‐Bo Wen
标识
DOI:10.1073/pnas.2522028123
摘要
Thymic epithelial tumors (TETs), rare yet clinically significant malignancies, face diagnostic challenges due to their occult presentation and lack of noninvasive risk-stratification tools, leading to systemic overtreatment and poor prognoses for high-risk subtypes. To address this unmet need, we developed a Fe 3 O 4 @Fe metal–organic framework heterojunction-enhanced laser desorption ionization mass spectrometry (LDI MS) platform for the efficient analysis of serum metabolic fingerprints (SMFs). Engineered through gradient pyrolysis, this nanomaterial synergizes ultraviolet absorption and photothermal conversion from its two constituent components with enhanced charge separation, achieving 1,000-fold improvement in sensitivity and thus enabling direct SMF acquisition from 1 μL of serum. Coupled with machine learning, the platform demonstrates robust diagnostic performance, yielding area under the curve (AUC) of 0.960 for distinguishing TETs from benign control and AUC of 0.856 for hierarchical risk stratification, outperforming clinical workflows. Beyond advancing material design for LDI MS, this work establishes a clinically translatable framework for rapid, large-scale screening, addressing critical gaps in TET management through metabolic-driven stratification.
科研通智能强力驱动
Strongly Powered by AbleSci AI