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:Improving the efficacy of anti-SSEA4 antibody in pancreatic cancer immunotherapy with glyco-optimization and immune checkpoint blockade.
Improving the efficacy of anti-SSEA4 antibody in pancreatic cancer immunotherapy with glyco-optimization and immune checkpoint blockade.
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胰腺癌仍然是最致命的恶性肿瘤之一,治疗选择有限。在为胰腺癌探索的替代靶点中,糖脂阶段特异性胚胎抗原-4(SSEA4)已被广泛研究。
我们此前已证明,将α-2,6-唾液酸化复杂型双天线聚糖(SCT)或其3-氟唾液酸衍生物(FSCT)连接至Fc-Asn297残基的嵌合抗SSEA4抗体,表现出与Fc受体FcγRIIIA和FcγRIIA增强的结合,这些受体负责抗体依赖性细胞毒性和吞噬作用以及疫苗效应。
在此,我们发现高SSEA4表达与肿瘤增殖增加以及对糖基优化抗体(抗SSEA4-SCT和抗SSEA4-FSCT)的敏感性相关,这些抗体优先招募表达NKG2D的NK 细胞和携带FcγRIIA的巨噬细胞,具有增强的靶细胞杀伤活性。
我们还揭示了一种免疫逃逸机制,涉及癌细胞上的唾液酸聚糖与NK细胞上的Siglec-9或巨噬细胞上的Siglec-10相互作用,以阻断抗体介导的效应功能,而这种免疫检查点抑制可以通过去除癌细胞上的唾液酸或阻断Siglec识别来抑制。在异种移植模型中,与野生型抗体相比,糖基优化抗体对高SSEA4表达的肿瘤表现出更优的生长抑制,并且无需额外给予抗体即可维持持久的抗肿瘤活性。这些发现支持具有增强效应功能和阻断Siglec介导免疫检查点的抗SSEA4抗体作为胰腺癌的一种有前景的治疗策略。
Pancreatic cancer remains one of the most lethal malignancies with limited therapeutic options. Among the alternative targets explored for pancreatic cancer, the glycolipid stage-specific embryonic antigen-4 (SSEA4) has been extensively studied.
We have previously demonstrated that the chimeric anti-SSEA4 antibody with alpha-2,6-sialylated complex type biantennary glycan (SCT) or its 3-fluorosialyl derivative (FSCT) attached to the Fc-Asn297 residue exhibited enhanced binding to the Fc-receptors FcγRIIIA and FcγRIIA which are responsible for antibody-dependent cellular cytotoxicity and phagocytosis as well as vaccinal effect.
Here, we found that high-SSEA4 expression correlates with increasing tumor proliferation and sensitivity to the glyco-optimized antibodies (anti-SSEA4-SCT and anti-SSEA4-FSCT) which preferentially recruit NKG2D-expressing natural killer cells and FcγRIIA-bearing macrophages with enhanced target killing activity.
We also uncovered an immune evasion mechanism involving the interaction of sialoglycans on the cancer cell with Siglec-9 on NK cells or Siglec-10 on macrophages to block the antibody-mediated effector functions, and this immune checkpoint inhibition can be suppressed with the removal of sialic acid on cancer cells or blockade of Siglec recognition.
In xenograft models, the glyco-optimized antibodies exhibited superior inhibition of tumor growth with high-SSEA4 expression compared to the wild-type antibody and persistent antitumor activity without additional antibody administration.
These findings support anti-SSEA4 antibodies with enhanced effector functions and blockade of Siglec-mediated immune checkpoint as a promising therapeutic strategy for pancreatic cancer.
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