Early Identification of At-Risk Patients: Proteomic Signature Predicts Progression to Decompensated Cirrhosis

队列 医学 失代偿 肝硬化 概化理论 内科学 蛋白质组 队列研究 比例危险模型 逻辑回归 蛋白质组学 肿瘤科 前瞻性队列研究 肝病 疾病 血液蛋白质类 生物信息学 试验预测值 生物标志物 胃肠病学 曲线下面积 鉴定(生物学) CXCL1型
作者
Marie Louise N. Therkelsen,Nicolai J. Wewer Albrechtsen,Mikkel Parsberg Werge,Mira Thing,Puria Nabilou,Elias B. Rashu,Liv Eline Hetland,Signe Boye Knudsen,Anders Ellekær Junker,Elisabeth D. Galsgaard,Jesper V. Olsen,Mads Grønborg,Nina Kimer,Lise Lotte Gluud
标识
DOI:10.64898/2026.03.04.709475
摘要

Abstract Background & Aims Early identification of decompensation in patients with cirrhosis is important to enable timely detection, management of complications and for effective treatment. This study investigates the biology of decompensation and aim to identify protein biomarkers for identification of high-risk patients. Methods The primary analysis included plasma samples from 46 patients with metabolic dysfunction associated steatotic liver disease (MASLD) related cirrhosis. Plasma samples were depleted for the top 14 most abundant proteins and the proteome was measured by liquid chromatography tandem mass spectrometry. The dataset was divided into a training (14 compensated, 10 decompensated) and a test cohort of compensated patients (11 progressing to decompensation, 11 remaining compensated). Changes in protein levels were determined by ANCOVA and a prognostic model was developed using logistic regression. External validation was performed in an independent cohort of 120 patients with alcohol-related cirrhosis. Time-to-event analyses were conducted in this cohort using Cox regression. Results 52 proteins involved in impaired hepatic function, fibrogenesis, immune activation, and metabolic changes were significantly different between compensated and decompensated patients. A prognostic model with four proteins (NBL1, LTBP4, APOC4, GHR), demonstrated predictive ability for future decompensation (AUC=0.93, 73% sensitivity, 100% specificity). In the external validation cohort, the model demonstrated generalizability (AUC=0.78, 72% sensitivity, 82% specificity). Validation cohort time-to-event analyses showed that higher baseline scores were associated with shorter time to liver-related events (HR 1.32; log-rank p = 0.027), underscoring the panel’s prognostic value. Conclusion Our study indicates that patients with decompensated cirrhosis are characterized by proteomic signatures of fibrogenesis and metabolic dysfunction. Capturing these signatures could help identify patients at risk of complications and potentially those eligible for aetiology directed treatment. Impact and Implications Addressing a critical unmet need for early detection of cirrhosis decompensation, our proteomic study identifies a four-protein panel with predictive ability for decompensation. These findings hold significant implications for hepatologists, clinical researchers, and healthcare systems, offering a novel tool to enhance prognostication and refine treatment strategies, potentially facilitating targeted patient monitoring. However, considering the small discovery sample size and the distinct aetiology of the external validation cohort, further validation is essential before broad clinical integration. Graphical Abstract

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