Integrated Immunotherapy Target Atlas for Ewing Sarcoma.

IF 2.6 4区 医学 Q2 GENETICS & HEREDITY
Corey Goldman
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引用次数: 0

Abstract

Background/aim: Ewing sarcoma is a fusion-driven malignancy with low tumor mutational burden, making recurrent tumor-associated antigens with favorable tumor-to-normal contrast central to immunotherapy development. We converted the Deng et al.-defined 32-gene Ewing Sarcoma Specific Signature (ESS32) into a practical target atlas by integrating tumor RNA expression with normal-tissue context, protein evidence, subcellular localization, and therapeutic accessibility.

Materials and methods: A 38-gene set was analyzed, including ESS32 and six comparator antigens (STEAP1, LINGO1, PRAME, CD99, CD276/B7-H3, and ENPP1). Eight Gene Expression Omnibus datasets (n=854 samples) were assigned predefined roles spanning tumor-versus-skeletal-muscle comparison, broad normal-organ context, EWSR1::FLI1 perturbation, tumor-only support cohorts, cell-line models, and cross-sarcoma comparison. Results were overlaid with Human Protein Atlas and published proteomic/surfaceome evidence.

Results: In GSE17674, the strongest tumor-enriched transcripts included NKX2-2, NPY1R, STEAP1, RBM11, RNF182, LIPI, CD99, STEAP2, LOXHD1, and DCDC2. Normal-tissue and compartment data substantially reordered RNA-only ranking. NKX2-2 showed the strongest Ewing-associated signal but encodes a nuclear transcription factor, favoring peptide-HLA/T-cell receptor (TCR) or vaccine development. RBM11 and LIPI emerged as high-interest intracellular/secretome-associated candidates, with an explicit epididymal/male reproductive caveat for LIPI. CD99 and NPY1R illustrated normal-cell reservoir and receptor-distribution constraints.

Conclusion: ESS32 should be interpreted as an EWSR1::FLI1-associated RNA discovery set, not as a pre-validated target panel. Practical nomination requires integration of RNA enrichment, normal-tissue distribution, protein evidence, cellular compartment, and modality compatibility before nomination of TCR, vaccine, antibody-drug conjugate (ADC), chimeric antigen receptor (CAR), radioligand, or validation-first candidates.

尤因肉瘤的综合免疫治疗靶点图谱。
背景/目的:尤文氏肉瘤是一种融合驱动的恶性肿瘤,肿瘤突变负担低,使得复发性肿瘤相关抗原具有良好的肿瘤-正常对比成为免疫治疗发展的核心。我们通过整合肿瘤RNA表达、正常组织背景、蛋白质证据、亚细胞定位和治疗可及性,将Deng等人定义的32基因尤文氏肉瘤特异性特征(ESS32)转化为实用的靶标图谱。材料和方法:对38个基因集进行分析,包括ESS32和6个比较抗原(STEAP1、LINGO1、PRAME、CD99、CD276/B7-H3和ENPP1)。8个基因表达Omnibus数据集(n=854个样本)被分配了预定义的角色,包括肿瘤与骨骼肌比较、广泛的正常器官背景、EWSR1::FLI1干扰、仅肿瘤支持队列、细胞系模型和跨肉瘤比较。结果与人类蛋白质图谱和已发表的蛋白质组学/表面组学证据重叠。结果:在GSE17674中,最强的肿瘤富集转录本包括NKX2-2、NPY1R、STEAP1、RBM11、RNF182、LIPI、CD99、STEAP2、LOXHD1和DCDC2。正常组织和隔室数据基本上重新排序了仅rna的排名。NKX2-2表现出最强的ewing相关信号,但编码一个核转录因子,有利于肽- hla / t细胞受体(TCR)或疫苗的开发。RBM11和LIPI被认为是细胞内/分泌组相关的高兴趣候选者,对LIPI有明确的附睾/男性生殖警告。CD99和NPY1R说明了正常细胞储存库和受体分布的限制。结论:ESS32应该被解释为EWSR1:: fli1相关的RNA发现集,而不是一个预先验证的目标面板。在提名TCR、疫苗、抗体-药物偶联物(ADC)、嵌合抗原受体(CAR)、放射配体或验证优先候选物之前,实际提名需要整合RNA富集、正常组织分布、蛋白质证据、细胞隔室和模态兼容性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Cancer Genomics & Proteomics
Cancer Genomics & Proteomics ONCOLOGY-GENETICS & HEREDITY
CiteScore
5.00
自引率
8.00%
发文量
51
期刊介绍: Cancer Genomics & Proteomics (CGP) is an international peer-reviewed journal designed to publish rapidly high quality articles and reviews on the application of genomic and proteomic technology to basic, experimental and clinical cancer research. In this site you may find information concerning the editorial board, editorial policy, issue contents, subscriptions, submission of manuscripts and advertising. The first issue of CGP circulated in January 2004. Cancer Genomics & Proteomics is a journal of the International Institute of Anticancer Research. From January 2013 CGP is converted to an online-only open access journal. Cancer Genomics & Proteomics supports (a) the aims and the research projects of the INTERNATIONAL INSTITUTE OF ANTICANCER RESEARCH and (b) the organization of the INTERNATIONAL CONFERENCES OF ANTICANCER RESEARCH.
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