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:Controlled-release nanoparticle of toll-like receptors-7/8 agonist enhances immune activation and inhibits gastric cancer in a preclinical mouse model.
Controlled-release nanoparticle of toll-like receptors-7/8 agonist enhances immune activation and inhibits gastric cancer in a preclinical mouse model.
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K-nanoadjuvant 是一种控释 TLR-7/8 药物递送系统,在胃癌临床前小鼠模型中显示出显著的抗肿瘤疗效和低毒性。
**背景:**TLR-7/8激动剂是强效免疫刺激剂,可促进免疫细胞杀瘤活性,但其全身性副作用限制了临床应用。为此,研究者开发了K-nanoadjuvant纳米佐剂:纳米颗粒包载TLR-3激动剂,并缓慢释放TLR-7/8激动剂。
本研究在新建立的临床前胃癌小鼠模型中评估K-nanoadjuvant的疗效和安全性;该模型由三重条件性(Tcon)胃癌细胞构建。**方法:**Tcon胃癌细胞系源自自发胃癌小鼠;这些小鼠的胃壁细胞谱系细胞经基因工程改造,携带活化Kras并缺失E-cadherin和p53。将Tcon细胞皮下注射至同系小鼠侧腹以形成肿瘤,随后瘤内注射K-nanoadjuvant和/或腹腔注射化疗药物5-FU。监测肿瘤大小和体重以评估疗效和安全性,并通过流式细胞分选及免疫组化评估肿瘤内免疫状态。**结果:**K-nanoadjuvant显著抑制肿瘤生长,未造成体重减轻或明显副作用。5-FU疗效相对有限,与K-nanoadjuvant联合时仅有轻度叠加作用。免疫分析显示,K-nanoadjuvant改善M1/M2巨噬细胞比例,并增加CD4和CD8 T细胞浸润、IFN-γ生成及NK细胞募集。单用K-nanoadjuvant也有效减少淋巴结转移,并抑制未经治疗的远端Tcon肿瘤。**结论:**作为一种缓释型TLR-7/8药物递送系统,K-nanoadjuvant在临床前胃癌小鼠模型中表现出显著抗肿瘤疗效和低毒性,因此可能具有胃癌免疫治疗潜力。
TLR-7/8 agonists are potent immunostimulators that can promote tumoricidal immune cell activities. However, the systemic side effects of these agents have limited their clinical application. To address this, we developed K-nanoadjuvant, which consists of nanoparticles that encapsulate a TLR-3 agonist and slowly release a TLR-7/8 agonist. We evaluated the efficacy and safety of K-nanoadjuvant in a newly developed preclinical mouse model of gastric cancer that was generated with triple-conditional (Tcon) gastric cancer cells.
The Tcon gastric cancer cell line was derived from the spontaneous gastric cancers that developed in mice whose gastric parietal-cell lineage cells had been genetically engineered to bear activated Kras and lack E-cadherin and p53. Tumors were generated in syngeneic mice by subcutaneous injection of Tcon cells into the flank. The tumors were then injected with K-nanoadjuvant and/or the mice were injected intraperitoneally with the chemotherapeutic agent 5-FU. Tumor size and body weight were monitored to assess efficacy and safety, respectively. Fluorescence-activated cell sorting and immunohistochemistry were conducted on the tumors to assess the intratumoral immune status.
K-nanoadjuvant significantly inhibited tumor growth without inducing weight loss or any notable side effects. 5-FU was relatively ineffective and had only a mild additive effect when it was combined with K-nanoadjuvant. Immune profiling showed that K-nanoadjuvant generated a favorable M1/M2 macrophage ratio and increased CD4 and CD8 T cell infiltration, IFN- production, and NK cell recruitment. K-nanoadjuvant treatment alone also effectively reduced lymph node metastasis and suppressed untreated distant Tcon tumors.
K-nanoadjuvant, a controlled-release TLR-7/8 drug delivery system, demonstrated significant anti-tumor efficacy and low toxicity in a preclinical mouse model of gastric cancer. Thus, K-nanoadjuvant may have potential as a gastric cancer immunotherapy.
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