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:T cells of colorectal cancer patients' stimulated by neoantigenic and cryptic peptides better recognize autologous tumor cells.
T cells of colorectal cancer patients' stimulated by neoantigenic and cryptic peptides better recognize autologous tumor cells.
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这些结果证明,所分析的 CRC 在其 HLA I 类分子上既呈递突变的 neoantigenic 肽,也呈递 cryptic 肽。此外,用这些肽进行刺激显著增强了 Tc 对肿瘤细胞的识别。由于迄今为止通过 HLA 配体组分析可鉴定出的 neoantigenic 肽总数较少,我们的数据强调了通过 cryptic 肽类别扩大癌症疫苗靶点范围的相关性。
具有极高体细胞突变数量的癌症患者是免疫治疗的理想候选者,并且能够通过刺激肿瘤反应性T细胞(Tc)来识别肿瘤特异性肽。
结直肠癌(CRC)HROC113和HROC285基于高TMB、微卫星不稳定性和HLA I类表达被选中。通过质谱法对其HLA配体组进行了表征,与HLA配体图谱进行了比较,并预测了HLA I类结合亲和力。使用Peptide-PRISM鉴定了隐性肽。患者的Tc从外周血(pTc)或肿瘤组织(肿瘤浸润Tc,TiTc)中分离并扩增。此外,生成了B淋巴母细胞样细胞(B-LCL)并用作抗原呈递细胞。pTc和TiTc使用负载肽池的B-LCL刺激两次,每次7天。随后,通过ELISpot定量干扰素γ(IFNγ)释放。最后,在脱颗粒试验中评估了对自体肿瘤细胞的细胞毒性。
筛选出100条肿瘤特异性候选肽——97条隐性肽和3条经典突变新抗原。这些新抗原源自IQGAP1、CTNNB1和TRIT1基因的单核苷酸替换。进一步研究了诱导Tc分泌IFNγ的隐性肽和新抗原肽。在自体肿瘤细胞存在的情况下,用新抗原和所选隐性肽刺激pTc和TiTc,导致细胞毒性颗粒释放增加,证实了它们对肿瘤细胞识别能力的改善。四聚体染色显示,针对IQGAP1新抗原特异性的pTc和TiTc数量增加。肽刺激前的亚群分析显示,pTc主要由记忆Tc组成,而TiTc主要由效应Tc和效应记忆Tc组成。由此可以推断,对 New antigens 和隐性肽有反应的TiTc必定存在于肿瘤微环境中。
Patients with cancers that exhibit extraordinarily high somatic mutation numbers are ideal candidates for immunotherapy and enable identifying tumor-specific peptides through stimulation of tumor-reactive T cells (Tc).
Colorectal cancers (CRC) HROC113 and HROC285 were selected based on high TMB, microsatellite instability and HLA class I expression. Their HLA ligandome was characterized using mass spectrometry, compared with the HLA ligand atlas and HLA class I-binding affinity was predicted. Cryptic peptides were identified using Peptide-PRISM. Patients' Tc were isolated from either peripheral blood (pTc) or tumor material (tumor-infiltrating Tc, TiTc) and expanded. In addition, B-lymphoblastoid cells (B-LCL) were generated and used as antigen-presenting cells. pTc and TiTc were stimulated twice for 7 days using peptide pool-loaded B-LCL. Subsequently, interferon gamma (IFNγ) release was quantified by ELISpot. Finally, cytotoxicity against autologous tumor cells was assessed in a degranulation assay.
100 tumor-specific candidate peptides-97 cryptic peptides and 3 classically mutated neoantigens-were selected. The neoantigens originated from single nucleotide substitutions in the genes IQGAP1, CTNNB1, and TRIT1 . Cryptic and neoantigenic peptides inducing IFNγ secretion of Tc were further investigated. Stimulation of pTc and TiTc with neoantigens and selected cryptic peptides resulted in increased release of cytotoxic granules in the presence of autologous tumor cells, substantiating their improved tumor cell recognition. Tetramer staining showed an enhanced number of pTc and TiTc specific for the IQGAP1 neoantigen. Subpopulation analysis prior to peptide stimulation revealed that pTc mainly consisted of memory Tc, whereas TiTc constituted primarily of effector and effector memory Tc. This allows to infer that TiTc reacting to neoantigens and cryptic peptides must be present within the tumor microenvironment.
These results prove that the analyzed CRC present both mutated neoantigenic and cryptic peptides on their HLA class I molecules. Moreover, stimulation with these peptides significantly strengthened tumor cell recognition by Tc. Since the overall number of neoantigenic peptides identifiable by HLA ligandome analysis hitherto is small, our data emphasize the relevance of increasing the target scope for cancer vaccines by the cryptic peptide category.
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