基于 DNA 超分子水凝胶的保护性 NK 细胞储库用于增强三阴性乳腺癌治疗
Protective NK Cell Reservoir Based on DNA Supramolecular Hydrogel for Enhanced Triple-Negative Breast Cancer Therapy.
过继性自然杀伤(NK)细胞疗法是治疗三阴性乳腺癌的一种有前景的策略,但其疗效往往受到瘤内持久性差以及在免疫抑制性肿瘤微环境中功能耗竭的限制。
英文原题:Incongruity between T cell receptor recognition of breast cancer hotspot mutations ESR1 Y537S and D538G following exogenous peptide loading versus endogenous antigen processing.
Incongruity between T cell receptor recognition of breast cancer hotspot mutations ESR1 Y537S and D538G following exogenous peptide loading versus endogenous antigen processing.
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这些结果表明,使用脉冲最小肽刺激可能来源于初始库的 T 细胞,可能会导致识别未加工肽的克隆扩增,并强调了使用能选择性扩增对有效加工和呈递抗原有特异性的 T 细胞的方法的重要性。
T细胞受体工程T细胞(TCR T)疗法近期已显示出对某些类型实体转移性癌症的疗效。然而,要将TCR T疗法扩展至治疗更多癌症类型的更多患者,需要识别癌症特异性抗原靶点的新型TCR。AKT1、ESR1、PIK3CA和TP53的驱动突变在转移性乳腺癌(MBC)患者中常见,如果具有免疫原性,可作为TCR T疗法治疗该疾病的理想肿瘤特异性靶点。通过对来自健康供者和MBC患者的体外扩增新肽刺激T细胞系进行IFN- ELISpot筛选,我们鉴定出对13个突变中11个的反应性。为鉴定新肽特异性TCR,我们对新肽刺激后的其中一个T细胞系进行了单细胞RNA测序。在此,我们鉴定出一个ESR1 Y537S特异性T细胞克隆,克隆型16,以及一个ESR1 Y537S/D538G双特异性T细胞克隆,克隆型21,分别受HLA-B*40:02和HLA-C*01:02限制。表达这些TCR的TCR T细胞能够识别并杀伤负载ESR1新肽的靶细胞,对ESR1 WT肽的活性极低。然而,这些TCR未能识别表达内源性突变ESR1的靶细胞。为探究这种缺乏识别的基础,我们对一株过表达突变体的淋巴母细胞样细胞系进行了免疫肽组学分析,发现ESR1 Y537S新肽未被内源性加工,尽管当外源性负载到靶细胞上时能够结合HLA-B*40:02。这些结果表明,使用脉冲最小肽刺激可能来源于初始库的T细胞,可能会导致识别未加工肽的克隆扩增,并强调了使用能选择性扩增对有效加工和呈递抗原有特异性的T细胞的方法的重要性。
T cell receptor engineered T cell (TCR T) therapies have shown recent efficacy against certain types of solid metastatic cancers. However, to extend TCR T therapies to treat more patients across additional cancer types, new TCRs recognizing cancer-specific antigen targets are needed. Driver mutations in AKT1, ESR1, PIK3CA, and TP53 are common in patients with metastatic breast cancer (MBC) and if immunogenic could serve as ideal tumor-specific targets for TCR T therapy to treat this disease. Through IFN- ELISpot screening of in vitro expanded neopeptide-stimulated T cell lines from healthy donors and MBC patients, we identified reactivity towards 11 of 13 of the mutations. To identify neopeptide-specific TCRs, we then performed single-cell RNA sequencing of one of the T cell lines following neopeptide stimulation. Here, we identified an ESR1 Y537S specific T cell clone, clonotype 16, and an ESR1 Y537S/D538G dual-specific T cell clone, clonotype 21, which were HLA-B*40:02 and HLA-C*01:02 restricted, respectively. TCR Ts expressing these TCRs recognized and killed target cells pulsed with ESR1 neopeptides with minimal activity against ESR1 WT peptide. However, these TCRs failed to recognize target cells expressing endogenous mutant ESR1. To investigate the basis of this lack of recognition we performed immunopeptidomics analysis of a mutant-overexpressing lymphoblastoid cell line and found that the ESR1 Y537S neopeptide was not endogenously processed, despite binding to HLA-B*40:02 when exogenously pulsed onto the target cell. These results indicate that stimulation of T cells that likely derive from the na ve repertoire with pulsed minimal peptides may lead to the expansion of clones that recognize non-processed peptides, and highlights the importance of using methods that selectively expand T cells with specificity for antigens that are efficiently processed and presented.
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