The presence of a micropapillary (MPP) component is a crucial determinant of surgical strategies for lung adenocarcinoma (LUAD), yet reliable blood biomarkers for predicting MPP⺠LUAD remain elusive. Here, we integrate 4D label-free quantitative proteomics, a nanomixing-enhanced microfluidic surface-enhanced Raman spectroscopy (SERS) platform, and machine learning to sensitively identify and validate blood protein biomarkers associated with MPP⺠LUAD. Comparative proteomics reveal 44 differentially expressed proteins (DEPs) between MPP⺠and MPP⻠LUADs, with bioinformatics uncovering their roles in MPP⺠LUAD formation. To enable sensitive, multiplex detection of 4 upregulated DEPs, the nanomixing effect is leveraged to enhance target protein-SERS barcode interactions while minimizing nonspecific binding to antibody-functionalized gold electrodes. The SERS barcode cocktail allows simultaneous detection of the 4 selected DEPs. Machine learning models based on SERS detection effectively distinguish MPP⺠from MPP⻠LUAD patients, as well as LUAD patients from healthy donors. This approach demonstrates strong diagnostic potential for early, non-invasive MPP detection in LUAD, advancing nanotechnology-driven disease diagnosis and monitoring.
Proteomics-Empowered Microfluidic-SERS Immunoassay for Identifying and Detecting Biomarkers of Micropapillary Lung Adenocarcinoma.
蛋白质组学赋能的微流控SERS免疫分析用于识别和检测微乳头状肺腺癌的生物标志物
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作者:Zhang Dechun, Peng Kaiming, Xu Hui, Chen Yanping, Wang Jing
| 期刊: | Advanced Science | 影响因子: | 14.100 |
| 时间: | 2025 | 起止号: | 2025 Jul;12(25):e2501336 |
| doi: | 10.1002/advs.202501336 | 研究方向: | 肿瘤 |
| 疾病类型: | 肺癌 | ||
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