CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Identification of neoepitope reactive T-cell receptors guided by HLA-A*03:01 and HLA-A*11:01 immunopeptidomics.
Identification of neoepitope reactive T-cell receptors guided by HLA-A*03:01 and HLA-A*11:01 immunopeptidomics.
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我们的数据表明,MS 方法可用于证明哪些共享的癌基因衍生新表位被常见 HLA 等位基因加工并呈递,并且这些 MS 数据可快速用于开发针对这些常见肿瘤特异性抗原的 TCR。尽管需要对这些新表位特异性鼠源 TCR 进行进一步表征,但最终它们有潜力用于过继性细胞治疗的临床。
肿瘤特异性突变蛋白能够产生具有免疫原性的非自身、含突变的“新抗原表位”,这些表位是过继性T细胞疗法的有吸引力的靶点。为了避免定义患者特异性、私人新抗原表位的复杂性,人们对于利用现成的、工程化导入自体淋巴细胞的T细胞受体(TCR)来靶向驱动基因中常见的共享突变产生了很大兴趣。然而,确定要 pursued 的精确天然加工新抗原表位是一个复杂且具有挑战性的过程。明确证明某一表位是否在细胞表面呈递的一种方法是洗脱与特定主要组织相容性复合体(MHC)等位基因结合的肽,并通过质谱(MS)进行分析。这些MS数据随后可被前瞻性地应用于分离针对该新抗原表位特异性的TCR。
我们构建了单等位基因细胞系,表达一个I类HLA等位基因和一个常见的突变癌基因,以消除HLA解卷积的需求并增加回收肽的信号。这些细胞系表面MHC结合的肽被免疫沉淀、纯化,并使用液相色谱-串联质谱分析,产生了一个包含突变的最小表位列表。为了验证这些新表位的免疫原性,HLA转基因小鼠使用MS鉴定的最小肽进行疫苗接种,以生成新表位反应性TCR。这些候选TCR的特异性通过肽滴定和转导靶标的识别得到确认。
我们在多个生物学重复中鉴定出由HLA-A*03:01和/或HLA-A*11:01呈递的、来源于KRAS、EGFR、BRAF和PIK3CA突变异构体的精确新抗原表位。从我们的MS数据中,我们成功分离出特异性识别四个HLA-A*11:01限制性新抗原表位(KRAS G13D、PIK3CA E545K、EGFR L858R和BRAF V600E)以及三个HLA-A*03:01限制性新抗原表位(KRAS G12V、EGFR L858R和BRAF V600E)的鼠源TCR。
Tumor-specific mutated proteins can create immunogenic non-self, mutation-containing 'neoepitopes' that are attractive targets for adoptive T-cell therapies. To avoid the complexity of defining patient-specific, private neoepitopes, there has been major interest in targeting common shared mutations in driver genes using off-the-shelf T-cell receptors (TCRs) engineered into autologous lymphocytes. However, identifying the precise naturally processed neoepitopes to pursue is a complex and challenging process. One method to definitively demonstrate whether an epitope is presented at the cell surface is to elute peptides bound to a specific major histocompatibility complex (MHC) allele and analyze them by mass spectrometry (MS). These MS data can then be prospectively applied to isolate TCRs specific to the neoepitope.
We created mono-allelic cell lines expressing one class I HLA allele and one common mutated oncogene in order to eliminate HLA deconvolution requirements and increase the signal of recovered peptides. MHC-bound peptides on the surface of these cell lines were immunoprecipitated, purified, and analyzed using liquid chromatography-tandem mass spectrometry, producing a list of mutation-containing minimal epitopes. To validate the immunogenicity of these neoepitopes, HLA-transgenic mice were vaccinated using the minimal peptides identified by MS in order to generate neoepitope-reactive TCRs. Specificity of these candidate TCRs was confirmed by peptide titration and recognition of transduced targets.
We identified precise neoepitopes derived from mutated isoforms of KRAS, EGFR, BRAF, and PIK3CA presented by HLA-A*03:01 and/or HLA-A*11:01 across multiple biological replicates. From our MS data, we were able to successfully isolate murine TCRs that specifically recognize four HLA-A*11:01 restricted neoepitopes (KRAS G13D, PIK3CA E545K, EGFR L858R and BRAF V600E) and three HLA-A*03:01 restricted neoepitopes (KRAS G12V, EGFR L858R and BRAF V600E).
Our data show that an MS approach can be used to demonstrate which shared oncogene-derived neoepitopes are processed and presented by common HLA alleles, and those MS data can rapidly be used to develop TCRs against these common tumor-specific antigens. Although further characterization of these neoepitope-specific murine TCRs is required, ultimately, they have the potential to be used clinically for adoptive cell therapy.
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