Infective endocarditis, a life-threatening condition, poses challenges for early diagnosis and personalized treatment due to insufficient biomarkers and limited understanding of its pathophysiology. Here, we performed proteomic profiling of plasma and vegetation samples from 238 patients with infective endocarditis and 100 controls, with validation in two external plasma cohorts (nâ=â328). We developed machine learning-based diagnostic and prognostic models for infective endocarditis, with area under the curve values of 0.98 and 0.87, respectively. Leucine-rich alpha-2-glycoprotein 1 and NADH:ubiquinone oxidoreductase subunit B4 are potential biomarkers associated with infection severity. Pathologically, protein networks characterized by glycometabolism, amino acid metabolism, and adhesion are linked to adverse events. Liver dysfunction may exacerbate the condition in patients with severe heart failure. Neutrophil extracellular traps emerge as promising therapeutic targets in Streptococcus or Staphylococcus aureus infections. Our findings provide insights into biomarker discovery and pathophysiological mechanisms in infective endocarditis, advancing early diagnosis and personalized medicine.
Integrated plasma and vegetation proteomic characterization of infective endocarditis for early diagnosis and treatment.
整合血浆和植被蛋白质组学特征分析感染性心内膜炎,用于早期诊断和治疗
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作者:He Shiman, Hu Xuejiao, Zhu Jiajun, Wang Weiteng, Ma Chi, Ran Peng, Chen Oudi, Chen Fanyu, Qing Hongkun, Ma Jianhong, Zeng Danni, Wang Yunzhi, Liu Weijiang, Feng Jinwen, Gan Lixi, Qin Zhaoyu, Tan Subei, Tian Sha, Ding Chen, Jian Xuhua, Gu Bing
| 期刊: | Nature Communications | 影响因子: | 15.700 |
| 时间: | 2025 | 起止号: | 2025 May 30; 16(1):5052 |
| doi: | 10.1038/s41467-025-60184-8 | 研究方向: | 心血管 |
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