Spatial analyses revealed S100P + TFF1 + tumor cells in spread through air spaces samples correlated with undesirable therapy response in non-small cell lung cancer.

IF 5.3 2区 材料科学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY ACS Applied Nano Materials Pub Date : 2024-10-09 DOI:10.1186/s12967-024-05722-6
Guangyu Fan, Tongji Xie, Mengwei Yang, Lin Li, Le Tang, Xiaohong Han, Yuankai Shi
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Abstract

Spread through air spaces (STAS) is a recognized aggressive pattern in lung cancer, serving as a crucial risk factor for postoperative recurrence. However, its phenotype and related spatial structure have remained elusive. To address these limitations, we conducted a comprehensive study based on spatial data, analyzing over 30,000 spots from 14 non-STAS samples and one STAS sample. We observed increased proliferation activities and angiogenesis in STAS, identifying S100P as a potential biomarker for STAS. Furthermore, our investigation into the heterogeneity of STAS tumor cells revealed a subset identified as S100P + TFF1 +, exhibiting a negative impact on patients' survival in public datasets. This subtype exhibited the highest activities in the TGFb and hypoxia, suggesting its potential pro-tumor role within the tumor microenvironment. To assess the role of S100P + TFF1 + tumor cells in therapy response, we included data from two clinical trial cohorts (BPI-7711 for EGFR-TKI therapy and ORIENT-3 for immunotherapy). The presence of S100P + TFF1 + tumor cells correlated with worse responses to both EGFR-TKI therapy and immunotherapy. Notably, TFF1 emerged as a serum marker for predicting EGFR-TKI response. Cell-cell communication analysis revealed that the TGFb signaling pathway was the most activated in S100P + TFF1 + tumor cells, with TGFB2-TGFBR2 identified as the main ligand-receptor pair. This was further validated by multiplex immunofluorescence performed on twenty NSCLC samples. In summary, our study identified S100P as the biomarker for STAS and highlighted the adverse role of S100P + TFF1 + tumor cells in survival outcomes.

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空间分析表明,S100P + TFF1 + 肿瘤细胞在通过空气空间扩散的样本中与非小细胞肺癌的不良治疗反应相关。
气隙扩散(STAS)是公认的肺癌侵袭模式,是术后复发的关键风险因素。然而,其表型和相关的空间结构仍然难以捉摸。为了解决这些局限性,我们开展了一项基于空间数据的综合研究,分析了来自 14 个非 STAS 样本和 1 个 STAS 样本的 30,000 多个点。我们观察到 STAS 患者的增殖活动和血管生成增加,从而确定 S100P 是 STAS 的潜在生物标记物。此外,我们对 STAS 肿瘤细胞异质性的研究发现,在公开数据集中,一个被鉴定为 S100P + TFF1 + 的亚型对患者的生存有负面影响。该亚型在 TGFb 和缺氧方面表现出最高的活性,表明其在肿瘤微环境中可能起到促瘤作用。为了评估 S100P + TFF1 + 肿瘤细胞在治疗反应中的作用,我们纳入了两个临床试验队列(用于表皮生长因子受体-TKI疗法的 BPI-7711 和用于免疫疗法的 ORIENT-3)的数据。S100P + TFF1 + 肿瘤细胞的存在与表皮生长因子受体-TKI疗法和免疫疗法的不良反应相关。值得注意的是,TFF1已成为预测表皮生长因子受体-TKI反应的血清标志物。细胞-细胞通讯分析表明,TGFb 信号通路在 S100P + TFF1 + 肿瘤细胞中最为活跃,TGFB2-TGFBR2 被确定为主要配体-受体对。对 20 个 NSCLC 样本进行的多重免疫荧光进一步验证了这一点。总之,我们的研究确定了 S100P 是 STAS 的生物标记物,并强调了 S100P + TFF1 + 肿瘤细胞在生存结果中的不利作用。
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来源期刊
CiteScore
8.30
自引率
3.40%
发文量
1601
期刊介绍: ACS Applied Nano Materials is an interdisciplinary journal publishing original research covering all aspects of engineering, chemistry, physics and biology relevant to applications of nanomaterials. The journal is devoted to reports of new and original experimental and theoretical research of an applied nature that integrate knowledge in the areas of materials, engineering, physics, bioscience, and chemistry into important applications of nanomaterials.
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