使用病毒邻近条形码的体内细胞间CRISPR筛选揭示肿瘤-免疫相互作用调控因子
In vivo intercellular CRISPR screens using viral proximity barcoding reveal regulators of tumor-immune interactions
bioRxiv · 2026 年 9 月 18 日 · Peter Du, Seth Kohno, Mengchen Wang 等 14 人
细胞间相互作用影响肿瘤生长和免疫逃逸,但在体内系统解析其遗传调控很困难。研究者开发了match-seq,一种无需成像、基于测序的细胞邻近追踪系统,利用病毒样颗粒在邻近细胞间传递条形码,组织解离后通过测序重建空间联系。在同源小鼠肿瘤模型中,该方法标记了所有免疫细胞谱系并重建细胞类型生态位;结合CRISPR扰动和单细胞RNA测序,在体内单细胞分辨率筛选肿瘤-免疫互作。研究发现Tgfb1缺失激活CD8 T细胞和巨噬细胞,Traf7缺失引发CD4 T细胞反应,Nectin3缺失促进NK细胞免疫,并经体内免疫细胞清除验证。这为体内细胞间互作的遗传解析建立了通用框架,尚未经同行评审。
为什么推荐给您:病毒邻近条形码结合CRISPR实现体内细胞互作筛选,方法学新且揭示新靶点。
不需要生物学背景,多打比方
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摘要Abstract
Cell-cell interactions shape tumor growth, immune evasion, and therapeutic response, but systematically dissecting their genetic regulators in vivo remains challenging. Existing cell-cell interaction tracing technologies rely largely on protein labels or enzymatic reactions, limiting their information content and scalability. To overcome these limitations, we developed match-seq, an imaging-free, sequencing-based cell proximity tracing system that uses virus-like particles to transmit barcodes between neighboring cells. Barcoded mRNAs are transmitted from sender cells to nearby receiver cells, thereby establishing a spatial linkage that can be computationally reconstructed by barcode sequencing after tissue dissociation. We apply this system to an in vivo syngeneic murine tumor model, where we observe robust labeling of all immune cell lineages, and leverage barcode labeling to reconstruct cell type niches that recapitulate known tumor spatial biology. Furthermore, we couple this system with CRISPR perturbations and single-cell RNA sequencing to perform genetic screens in vivo on tumor-immune interactions at single-cell resolution. We use this method to infer cell-cell spatial relationships and uncover genetic dependencies in cancer cells that change the composition and cell state of their local microenvironments. By calculating a local immune activation signature, we are able to prioritize targets whose deletion enhances anti-tumor immunity through distinct effector cell types: loss of Tgfb1 engages CD8 T cells and macrophages, Traf7 loss elicits a CD4 T cell response, and Nectin3 loss promotes NK cell-mediated immunity, relationships that we validate by in vivo immune cell depletion. Notably, Tgfb1 and Nectin3 deletion had little effect on cancer cell fitness in the pooled screen yet suppressed tumor growth when deleted throughout the tumor, demonstrating the potential of match-seq to reveal functionally important tumor-immune interactions that would otherwise remain hidden. Together, these results establish a general framework for pooled genetic dissection of cell-cell interactions in vivo, extending CRISPR screening from cell-intrinsic phenotypes to the mechanisms by which cells shape and respond to their local microenvironments.