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:Exosomal lncRNA SNHG10 derived from colorectal cancer cells suppresses natural killer cell cytotoxicity by upregulating INHBC.
Exosomal lncRNA SNHG10 derived from colorectal cancer cells suppresses natural killer cell cytotoxicity by upregulating INHBC.
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结直肠癌细胞来源的外泌体 lncRNA SNHG10 通过上调 INHBC 表达抑制 NK 细胞功能。本研究提供证据表明,外泌体 lncRNAs 通过诱导 NK 细胞抑制参与免疫逃逸,并提出了一种潜在的结直肠癌治疗策略。
外泌体介导的癌细胞与免疫细胞之间的串扰促进肿瘤生长。在本研究中,我们探讨了外泌体通过转移长链非编码RNA(lncRNA)介导结直肠癌(CRC)细胞逃逸自然杀伤(NK)细胞免疫的机制。
通过转化生长因子β(TGF-β)建立了SW480细胞的上皮-间质转化(EMT)模型,随后评估了EMT来源的外泌体(EMT-exo)对NK细胞功能的影响。进行RNA测序以鉴定外泌体lncRNA和靶基因。外泌体lncRNA在肿瘤生长中的功能在体内进一步验证。
EMT-exo抑制了NK细胞的增殖、细胞毒性、IFN-产生以及穿孔素-1和颗粒酶B的分泌。RNA测序显示,与非EMT-exo相比,EMT-exo中SNHG10表达上调。此外,SNHG10在CRC肿瘤组织中表达上调,并与不良预后相关。外泌体中SNHG10过表达(oe-lnc-SNHG10 exo)显著抑制了NK细胞的活力和细胞毒性。NK细胞的转录组测序显示,oe-lnc-SNHG10 exo组中有114个基因表达上调,包括抑制素亚基βC(INHBC),其参与TGF-信号通路。Si-INHBC处理消除了oe-lnc-SNHG10 exo对NK细胞的影响。oe-lnc-SNHG10 exo诱导了小鼠肿瘤生长并上调了INHBC表达,同时下调了肿瘤组织中穿孔素、颗粒酶B和NK1.1的表达。
Exosome-mediated crosstalk between cancer cells and immune cells contributes to tumor growth. In this study, we investigated the mechanism underlying the exosome-mediated immune escape of colorectal cancer (CRC) cells from natural killer (NK) cells via the transfer of long noncoding RNAs (lncRNAs).
An epithelial-mesenchymal transition (EMT) model of SW480 cells was established by transforming growth factor beta (TGF- ), followed by the assessment of the effect of EMT-derived exosomes (EMT-exo) on the functions of NK cells. RNA sequencing was performed to identify exosomal lncRNAs and target genes. The function of exosomal lncRNAs in tumor growth was further verified in vivo.
EMT-exo suppressed the proliferation, cytotoxicity, IFN- production, and perforin-1 and granzyme B secretion of NK cells. RNA sequencing revealed that SNHG10 expression was upregulated in EMT-exo compared with that in non-EMT-exo. Moreover, SNHG10 expression was upregulated in tumor tissues in CRC, which was associated with poor prognosis. Overexpression of SNHG10 in exosomes (oe-lnc-SNHG10 exo) significantly suppressed the viability and cytotoxicity of NK cells. Transcriptome sequencing of NK cells revealed that the expression levels of 114 genes were upregulated in the oe-lnc-SNHG10 exo group, including inhibin subunit beta C (INHBC), which was involved in the TGF- signaling pathway. Si-INHBC treatment abrogated the effect of oe-lnc-SNHG10 exo on NK cells. oe-lnc-SNHG10 exo induced tumor growth and upregulated INHBC expression in mice and downregulated the expression of perforin, granzyme B, and NK1.1 in tumor tissues.
The CRC cell-derived exosomal lncRNA SNHG10 suppresses the function of NK cells by upregulating INHBC expression. This study provides evidence that exosomal lncRNAs contribute to immune escape by inducing NK cell inhibition and proposes a potential treatment strategy for CRC.
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