PO.CL12.04 · 临床研究

患者配对的子宫内膜PDX肿瘤的ECM分析揭示转化漂移和TME重塑

ECM profiling of patient-matched endometrial PDX-tumors reveals translational drift and TME remodeling

海报缩略图:患者配对的子宫内膜PDX肿瘤的ECM分析揭示转化漂移和TME重塑
编号 2616 展板 7 时间 4/20 09:00–12:00 区域 Section 47 主讲 Dhruva Dave, MBBS
分会场 Molecular Imaging, Radiomics, and Theranostics
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作者与单位 Authors & Affiliations

Dhruva Dave1, Rebecca Christian Arend1, Chelsea Crawford2, Amr Mahmoud2, Brahma Mubarak K. Budhwani2, Khidr Kishan K. Budhwani2, Hunter Segrest1, Ashwini Katre1, Rachael E. Guenter2, Karim Ismail Budhwani3

1Obstetrics and Gynecology, University of Alabama at Birmingham, Birmingham, AL,2CerFlux, Birmingham, AL,3University of Alabama at Birmingham, Birmingham, AL

摘要 Abstract

中文摘要
背景:细胞外基质(ECM)重塑,尤其是胶原沉积,已被证实与子宫内膜癌的侵袭性特征相关。它在组织结构、深层肌层浸润、免疫浸润和治疗反应中起关键作用。患者来源的异种移植(PDX)模型在癌症研究中被广泛使用;然而,其保留患者特异性ECM组织结构的能力仍不确定。本研究量化了ECM组成和空间拓扑结构,以评估物种特异性的转化漂移。 方法:来自两例原发性子宫内膜肿瘤及配对PDX肿瘤的福尔马林固定石蜡包埋组织接受了天狼星红(胶原)和阿尔新蓝(透明质酸;HA)双重染色。使用Agilent Lionheart系统在标准化条件下采集高分辨率明场图像。使用CerFlux PEER AI/ML成像流程进行ECM分析,提取63个组织形态计量学和空间参数,包括ECM面积分数、HA:胶原比值、灰度共生矩阵(GLCM)纹理指标和Moran's I空间自相关。分析在Fiji中进行交叉验证。组间比较采用非参数统计,主成分分析(PCA)用于概括多变量ECM特征。 结果:患者肿瘤的胶原面积分数显著高于配对的PDX肿瘤(0.20 ±0.01 对 0.05 ±0.04;p<0.05),而HA水平相似(0.41 ±0.03 对 0.33 ±0.14)。这导致HA:胶原比值发生明显变化,从患者中的2.1 ±0.3变为PDX肿瘤中的7.9 ±2.7(p<0.05)。纹理分析显示患者肿瘤中胶原组织更为异质,熵值更高(8.22 ±0.10 对 8.07 ±0.02;p<0.05),均质性更低(0.15 ±0.02 对 0.19 ±0.01;p<0.05)。HA表现出类似模式,在PDX肿瘤中均匀性增加(均质性0.16 ±0.07 对 0.10 ±0.01;p<0.05)。空间统计显示PDX肿瘤中胶原Moran's I增加了近两倍(0.51 ±0.02 对 0.26 ±0.07;p<0.05),表明相对于患者组织,ECM聚集更强、空间异质性降低。PCA沿PC1(58%方差)清晰地区分了患者和PDX样本,其驱动因素为HA:胶原平衡、纹理异质性和空间自相关。 结论:定量ECM分析表明,患者配对的子宫内膜PDX肿瘤经历了明显的转化漂移,包括胶原耗竭、HA:胶原比值升高、ECM均质性增加和空间聚集增强。这些变化反映了异种移植后物种特异性的TME重塑,可能影响药物渗透、反应和生物标志物解读。因此,在使用PDX模型指导子宫内膜癌的转化研究和临床前决策时,评估ECM保真度至关重要。
查看英文原文 English abstract
Background: Extracellular matrix (ECM) remodeling, particularly collagen deposition, have been linked with aggressive features of endometrial. It plays a critical role in tissue architecture, deep myometrial invasion, immune infiltration, and therapeutic response. Patient-derived xenograft (PDX) models are widely used in cancer research; however, their ability to preserve patient-specific ECM organization remains uncertain. This study quantified ECM composition and spatial topology to evaluate species-specific translational drift. Methods: Formalin-fixed, paraffin-embedded tissue from two primary endometrial tumors and matched PDX tumors underwent dual Picrosirius Red (collagen) and Alcian Blue (hyaluronic acid; HA) staining. High-resolution brightfield images were captured under standardized conditions using an Agilent Lionheart system. ECM profiling was performed using the CerFlux PEER AI/ML imaging pipeline, extracting 63 histomorphometric and spatial parameters, including ECM area fractions, HA:collagen ratios, gray-level co-occurrence matrix (GLCM) texture metrics, and Moran's I spatial autocorrelation. Analyses were cross validated in Fiji. Group comparisons used nonparametric statistics, and principal component analysis (PCA) summarized multivariate ECM signatures. Results: Patient tumors demonstrated substantially higher collagen area fraction than matched PDX tumors (0.20 ±0.01 vs 0.05 ±0.04; p<0.05), while HA levels were similar (0.41 ±0.03 vs 0.33 ±0.14). This yielded a marked shift in HA:collagen ratio, from 2.1 ±0.3 in patients to 7.9 ±2.7 in PDX tumors (p<0.05). Texture analysis revealed more heterogeneous collagen organization in patient tumors, with higher entropy (8.22 ±0.10 vs 8.07 ±0.02; p<0.05) and lower homogeneity (0.15 ±0.02 vs 0.19 ±0.01; p<0.05). HA exhibited a similar pattern of increased uniformity in PDX tumors (homogeneity 0.16 ±0.07 vs 0.10 ±0.01; p<0.05). Spatial statistics showed a nearly two-fold increase in collagen Moran's I in PDX tumors (0.51 ±0.02 vs 0.26 ±0.07; p<0.05), indicating stronger ECM clustering and reduced spatial heterogeneity relative to patient tissue. PCA cleanly separated patient and PDX samples along PC1 (58% variance), driven by HA:collagen balance, textural heterogeneity, and spatial autocorrelation. Conclusions: Quantitative ECM profiling demonstrates that patient-matched endometrial PDX tumors undergo pronounced translational drift, including collagen depletion, increased HA:collagen ratio, higher ECM homogeneity, and strengthened spatial clustering. These changes reflect species-specific TME remodeling following xenografting and may influence drug penetration, response, and biomarker interpretation. Assessing ECM fidelity is therefore vital when using PDX models to inform translational research and preclinical decision-making in endometrial cancer.
利益披露 Disclosure
D. Dave, None.. R. C. Arend, None. C. Crawford, CerFlux Employment. A. Mahmoud, CerFlux Employment. B. K. Budhwani, CerFlux Employment. K. K. Budhwani, CerFlux Patent. H. Segrest, None.. A. Katre, None. R. E. Guenter, CerFlux Employment. K. I. Budhwani, CerFlux Employment, g., Board of Directors, non-salaried role), Stock, Patent.

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