PO.CL06.03 · 临床研究
界定儿科及青少年和年轻成人(AYA)骨与软组织肉瘤的全基因组cfDNA甲基化图谱
Defining genome-wide cfDNA methylation landscapes in pediatric and adolescent and young adult (AYA) bone and soft-tissue sarcomas
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摘要 Abstract
中文摘要
背景:儿科及AYA肉瘤是罕见、生物学高度异质性的肿瘤,用以指导诊断、个体化治疗及疾病监测的非侵入性生物标志物有限。标准治疗评估依赖于具有操作风险的侵入性活检以及对检测微小残留病灶和区分肿瘤类型敏感性有限的影像学手段。游离DNA(cfDNA)甲基化谱分析提供了一种微创替代方案,能够捕捉肿瘤来源的表观基因组改变,并在成人恶性肿瘤中持续显示出强大的临床效用。然而,各种儿科及AYA肉瘤亚型的全基因组cfDNA甲基化模式仍界定不清。
方法:从93例儿科及AYA患者(儿科<18岁;AYA 15-39岁)采集血浆,涵盖27例尤因肉瘤、17例横纹肌肉瘤、11例脂肪肉瘤、10例脊索瘤、8例滑膜肉瘤、7例软骨肉瘤、6例骨肉瘤及6例纤维肉瘤病例,另加19例匹配的健康供者。从1 mL血浆中分离cfDNA,用Qubit定量,并用Bioanalyzer评估。使用NEBNext EM-seq v2工作流程制备文库,PCR循环数根据cfDNA投入量进行调整。全基因组测序(15×目标深度)后进行比对、去重及甲基化检出。使用MultiQC评估深度、重复率、转化效率及CpG覆盖度。计算全局甲基化汇总,并使用methylKit生成每CpG及1-kb平铺矩阵,启动差异甲基化分析。
结果:尤因肉瘤患者的血浆cfDNA浓度显著高于年龄和性别匹配的健康供者(24.4对4.6 ng/mL,p < 0.0001),而其他肉瘤亚型的cfDNA水平与健康队列重叠。经Qubit测得cfDNA浓度低或无法检出的情况在非尤因肉瘤样本中(66例中的23例)远比尤因肉瘤(27例中的1例)更常见。所有样本均达到了足以进行全基因组甲基化建模的CpG覆盖度。全局甲基化汇总显示,各肉瘤亚型之间或与健康供者相比,平均beta值无显著差异。对尤因肉瘤亚组的独立分析识别出299个显著差异甲基化区域(DMR),支持疾病特异性甲基化变化的可检测性。
结论:这些结果证明了在一个庞大且多样化的儿科及AYA肉瘤队列中——包括cfDNA浓度低于检测限的血浆样本——进行高质量cfDNA甲基化组谱分析的可行性。虽然各亚型间的全局甲基化水平总体相似,但对尤因肉瘤的概念验证性DMR分析提示,亚型特异性的表观基因组特征可能为未来儿科及AYA肉瘤的非侵入性诊断工具提供可能。
查看英文原文 English abstract
Background: Pediatric and AYA sarcomas are rare, biologically heterogeneous tumors with limited noninvasive biomarkers to guide diagnosis, personalized treatment, and disease monitoring. Standard-of-care evaluation relies on invasive biopsies that carry procedural risks and imaging modalities with limited sensitivity for detecting minimal residual disease and distinguishing tumor types. Cell-free DNA (cfDNA) methylation profiling offers a minimally invasive alternative capable of capturing tumor-derived epigenomic alterations and has consistently shown strong clinical utility in adult malignancies. However, genome-wide cfDNA methylation patterns across diverse pediatric and AYA sarcoma subtypes remain poorly defined.
Methods: Plasma was collected from 93 pediatric and AYA patients (pediatric <18 years; AYA 15-39 years) representing 27 Ewing sarcoma, 17 rhabdomyosarcoma, 11 liposarcoma, 10 chordoma, 8 synovial sarcoma, 7 chondrosarcoma, 6 osteosarcoma, and 6 fibrosarcoma cases, plus 19 matched healthy donors. cfDNA was isolated from 1 mL plasma, quantified by Qubit, and assessed by Bioanalyzer. Libraries were prepared using the NEBNext EM-seq v2 workflow with PCR cycles scaled to cfDNA input amount. Genome-wide sequencing (15× target depth) was followed by alignment, deduplication, and methylation calling. MultiQC was used to assess depth, duplication rate, conversion efficiency, and CpG coverage. Global methylation summaries were computed, and methylKit was used to generate per-CpG and 1-kb tiling matrices and initiate differential methylation analyses.
Results: Ewing sarcoma patients had significantly higher plasma cfDNA concentrations than age- and sex-matched healthy donors (24.4 vs 4.6 ng/mL, p < 0.0001), whereas cfDNA levels for other sarcoma subtypes overlapped with the healthy cohort. Low or undetectable cfDNA concentrations by Qubit were far more common among non-Ewing sarcoma samples (23 of 66) than Ewing sarcoma (1 of 27). All samples achieved sufficient CpG coverage for genome-wide methylation modeling. Global methylation summaries revealed no significant differences in mean beta-values across sarcoma subtypes or versus healthy donors. An independent analysis of the Ewing subset identified 299 significant differentially methylated regions (DMRs), supporting the detectability of disease-specific methylation changes.
Conclusions: These results demonstrate the feasibility of high-quality cfDNA methylome profiling across a large and diverse pediatric and AYA sarcoma cohort, including in plasma samples with cfDNA concentrations below the limit of detection. While global methylation levels appear broadly similar across subtypes, proof-of-concept DMR analysis in Ewing sarcoma suggests that subtype-specific epigenomic signatures could enable future noninvasive diagnostic tools for pediatric and AYA sarcomas.
利益披露 Disclosure
L. J. Greiner, None..
R. O. Kowalchuk, None..
J. Szymanski, None.
P. S. Chauhan,
N/A Patent.
A. Amundson, None..
P. J. Schoettler, None..
W. Allen-Rhoades, None..
S. F. Polites, None..
P. S. Rose, None..
K. Bailey, None..
L. McAllister-Lucas, None..
A. Mahajan, None..
N. Laack, None.
A. Chaudhuri,
N/A Patent.
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