RNF43 p.G659fs 通过 PI3K/AKT/mTOR 信号通路和 HLA-E 上调导致 MSI-high 结直肠癌中 NK 细胞功能障碍
RNF43 p.G659fs leads to natural killer cell dysfunction in MSI-high colorectal cancer through PI3K/AKT/mTOR signaling and HLA-E up-regulation.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Tumor immune microenvironment analysis of non-small cell lung cancer development through multiplex immunofluorescence.
Tumor immune microenvironment analysis of non-small cell lung cancer development through multiplex immunofluorescence.
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本研究对 NSCLC 中的免疫变化进行了深入分析,表明从 AIS/MIA 向浸润性 I 期 NSCLC 的转变会导致免疫激活,而从 I 期向 III 期进展则导致免疫抑制。
新兴证据凸显浸润免疫细胞在非小细胞肺癌(NSCLC)发生和进展的肿瘤免疫微环境(TIME)中的关键作用。随着筛查项目实施,早期 NSCLC 发病率不断升高。然而,该疾病复发风险高且生存率低,因此需要更深入了解 TIME 及其与驱动基因改变之间的关系。本研究旨在深入分析早期 NSCLC 的免疫变化,突出疾病进展过程中免疫应答的显著转变。
收集 105 例癌前病变或 I–III 期 NSCLC 患者肿瘤组织。采用下一代测序(NGS)检测癌症驱动基因改变,并通过多重免疫荧光(mIF)评估 TIME 中免疫细胞密度、比例及其与癌细胞的空间邻近关系。105 例患者中 64 例有 NGS 结果,包括 3 例原位腺癌(AIS)、10 例微浸润性腺癌(MIA)和 51 例 I 期浸润性癌。此外,3 例患者接受新辅助免疫化疗,并采集治疗前后肿瘤组织标本。
与 AIS/MIA 患者相比,I 期浸润性癌患者肿瘤实质中 CD8+ T 细胞密度(P = 0.01)和比例(P = 0.02)更高,M1 巨噬细胞比例(P = 0.04)及未成熟自然杀伤(NK)细胞比例(P = 0.041)也更高。与 EGFR 野生型患者相比,表皮生长因子受体(EGFR)突变患者 NK 细胞浸润减少、M2 巨噬细胞浸润增加,且肿瘤细胞附近 CD4+ T 细胞聚集减少。随着 NSCLC 从 I 期进展至 III 期,CD8+ T 细胞密度和比例增加,但 PD-L1+ 肿瘤细胞更靠近 PD-1+CD8+ T 细胞,可能抑制 CD8+ T 细胞功能。此外,M1 巨噬细胞密度和比例下降,肿瘤细胞周围 NK 细胞、巨噬细胞和 B 细胞数量减少。存在三级淋巴结构(TLS)的患者,肿瘤细胞附近 M1 巨噬细胞和淋巴细胞比例显著升高;无 TLS 患者则表现为 PD-L1+ 肿瘤细胞更密集地聚集于 PD-1+CD8+ T 细胞周围。值得注意的是,新辅助免疫化疗诱导了 TLS 形成。
本研究深入分析了 NSCLC 中的免疫变化,显示从 AIS/MIA 转变为 I 期浸润性 NSCLC 时免疫激活,而从 I 期进展至 III 期时发生免疫抑制。这些发现有助于理解早期 NSCLC 进展的分子机制,并为识别潜在治疗选择铺平道路。
Emerging evidence has underscored the crucial role of infiltrating immune cells in the tumor immune microenvironment (TIME) of non-small cell lung cancer (NSCLC) development and progression. With the implementation of screening programs, the incidence of early-stage NSCLC is rising. However, the high risk of recurrence and poor survival rates associated with this disease necessitate a deeper understanding of the TIME and its relationship with driver alterations. The aim of this study was to provide an in-depth analysis of immune changes in early-stage NSCLC, highlighting the significant transitions in immune response during disease progression.
Tumor tissues were collected from 105 patients with precancerous lesions or stage I-III NSCLC. Next-generation sequencing (NGS) was used to detect cancer driver alterations. Multiplex immunofluorescence (mIF) was performed to evaluate immune cell density, percentage, and spatial proximity to cancer cells in the TIME. Next Among these patients, 64 had NGS results, including three with adenocarcinoma in situ (AIS), 10 with minimally invasive adenocarcinoma (MIA), and 51 with stage I invasive cancers. Additionally, three patients underwent neoadjuvant immuno-chemotherapy and tumor tissue specimens before and after treatment were obtained.
Patients with stage I invasive cancer had significantly higher density (P=0.01) and percentage (P=0.02) of CD8 + T cells and higher percentages of M1 macrophages (P=0.04) and immature natural killer (NK) cells (P=0.041) in the tumor parenchyma compared to those with AIS/MIA. Patients with mutated epidermal growth factor receptor ( EGFR ) gene exhibited decreased NK cell infiltration, increased M2 macrophage infiltration, and decreased aggregation of CD4 + T cells near tumor cells compared to EGFR wild-type patients. As NSCLC progressed from stage I to III, CD8 + T cell density and proportion increased, while PD-L1 + tumor cells were in closer proximity to PD-1 + CD8 + T cells, potentially inhibiting CD8 + T cell function. Furthermore, M1 macrophages decreased in density and proportion, and the number of NK cells, macrophages, and B cells around tumor cells decreased. Additionally, patients with tertiary lymphoid structures (TLSs) had significantly higher proportion of M1 macrophages and lymphocytes near tumor cells, whereas those without TLS had PD-L1 + tumor cells more densely clustered around PD-1 + CD8 + T cells. Notably, neoadjuvant immuno-chemotherapy induced the development of TLS.
This study offers an in-depth analysis of immune changes in NSCLC, demonstrating that the transition from AIS/MIA to invasive stage I NSCLC leads to immune activation, while the advancement from stage I to stage III cancer results in immune suppression. These findings contribute to our understanding of the molecular mechanisms underlying early-stage NSCLC progression and pave the way for the identification of potential treatment options.
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