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全基因组 CRISPR 筛选确定酪氨酰蛋白磺基转移酶-2 为增强抗 PD1 疗效的靶点

英文原题:Genome-wide CRISPR screening identifies tyrosylprotein sulfotransferase-2 as a target for augmenting anti-PD1 efficacy.

查看英文原题

Genome-wide CRISPR screening identifies tyrosylprotein sulfotransferase-2 as a target for augmenting anti-PD1 efficacy.

PubMed 2024/08/02(内容时间) Mol Cancer Q1 · IF 42.2(JCR 2025)

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研究概要

我们提出 TPST2 作为癌症免疫抑制因子的新作用,并主张在基于 ICT 的治疗中将其视为治疗靶点。

研究思路结论见上方概要

免疫检查点治疗(ICT)在部分癌症患者中可提供持久缓解,但耐药性仍是一项重大挑战,这促使人们探索其潜在的分子机制。酪氨酰蛋白磺基转移酶-2(TPST2)因其在蛋白质酪氨酸O-磺酸化中的作用而为人所知,被认为可调节细胞外蛋白质-蛋白质相互作用,但其在癌症免疫中的具体作用在很大程度上仍未被探索。

为探索影响抗PD1应答的肿瘤细胞内在因素,我们在移植了人类免疫细胞的人源化小鼠中进行了混合loss-of-function遗传筛选。通过评估IFNγ介导的靶基因诱导、STAT1磷酸化、HLA表达和细胞生长抑制来估计癌细胞对干扰素-γ(IFNγ)的应答性。通过共免疫沉淀和质谱鉴定TPST2的磺基酪氨酸修饰靶基因。使用小鼠同源肿瘤模型评估TPST2抑制的体内效应,并通过bulk和单细胞RNA测序分析加以证实。

通过体内全基因组 CRISPR 筛选,TPST2 功能缺失成为抗 PD1 治疗疗效的潜在增强因子。TPST2 通过在 Y397 残基对 IFNγ 受体 1 进行硫酸化修饰,抑制 IFNγ 信号传导,而其下调则增强 IFNγ 介导的信号传导和抗原呈递。在癌症细胞中敲除 TPST2 通过增强TIL(肿瘤浸润淋巴细胞),提高了同系小鼠肿瘤模型中抗 PD1 抗体的疗效。RNA 测序数据显示 TPST2 与抗原呈递呈负相关,TPST2 表达升高与多种癌症类型的不良预后和癌症免疫改变相关。

展开英文摘要原文

Immune checkpoint therapy (ICT) provides durable responses in select cancer patients, yet resistance remains a significant challenge, prompting the exploration of underlying molecular mechanisms. Tyrosylprotein sulfotransferase-2 (TPST2), known for its role in protein tyrosine O-sulfation, has been suggested to modulate the extracellular protein-protein interactions, but its specific role in cancer immunity remains largely unexplored.

To explore tumor cell-intrinsic factors influencing anti-PD1 responsiveness, we conducted a pooled loss-of-function genetic screen in humanized mice engrafted with human immune cells. The responsiveness of cancer cells to interferon-γ (IFNγ) was estimated by evaluating IFNγ-mediated induction of target genes, STAT1 phosphorylation, HLA expression, and cell growth suppression. The sulfotyrosine-modified target gene of TPST2 was identified by co-immunoprecipitation and mass spectrometry. The in vivo effects of TPST2 inhibition were evaluated using mouse syngeneic tumor models and corroborated by bulk and single-cell RNA sequencing analyses.

Through in vivo genome-wide CRISPR screening, TPST2 loss-of-function emerged as a potential enhancer of anti-PD1 treatment efficacy. TPST2 suppressed IFNγ signaling by sulfating IFNγ receptor 1 at Y397 residue, while its downregulation boosted IFNγ-mediated signaling and antigen presentation. Depletion of TPST2 in cancer cells augmented anti-PD1 antibody efficacy in syngeneic mouse tumor models by enhancing tumor-infiltrating lymphocytes. RNA sequencing data revealed TPST2's inverse correlation with antigen presentation, and increased TPST2 expression is associated with poor prognosis and altered cancer immunity across cancer types.

We propose TPST2's novel role as a suppressor of cancer immunity and advocate for its consideration as a therapeutic target in ICT-based treatments.

论文信息

作者
Oh Y、Kim S、Kim Y、Kim H、Jang D、Shin S、Lee SJ、Kim J
第一作者单位
Medical Research Center, Genomic Medicine Institute, Seoul National University College of Medicine, Seoul, 03080, Korea.South Korea
通讯作者单位
Medical Research Center, Genomic Medicine Institute, Seoul National University College of Medicine, Seoul, 03080, Korea. csybio@snu.ac.kr.South Korea
文献类型
非美国政府资助研究
期刊
Molecular cancer2024 Aug 2
原文标识
PubMed 39095793 · DOI 10.1186/s12943-024-02068-x