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:Engineered cytokine/antibody fusion proteins improve delivery of IL-2 to pro-inflammatory cells and promote antitumor activity.
Engineered cytokine/antibody fusion proteins improve delivery of IL-2 to pro-inflammatory cells and promote antitumor activity.
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细胞因子工程的进展通过克服这些蛋白质作为药物的固有局限性,正在推动治疗转化。白细胞介素-2(IL-2)细胞因子作为癌症治疗的免疫刺激剂具有巨大前景。
然而,该细胞因子同时激活促炎性免疫效应细胞和抗炎性调节性T细胞、其高剂量下的毒性以及其短血清半衰期限制了临床应用。改善IL-2选择性、安全性和持久性的一种有前景的方法是与抗IL-2抗体复合,使该细胞因子偏向于激活免疫效应细胞(即效应T细胞和NK 细胞)。尽管该策略在临床前癌症模型中显示出治疗潜力,但细胞因子/抗体复合物的临床转化因多蛋白药物制剂方面的挑战以及对复合物稳定性的担忧而变得复杂。
在此,我们介绍了一种多功能方法,用于设计由IL-2和偏向性抗IL-2抗体组成的分子内组装单药融合蛋白(免疫细胞因子,ICs),该抗体将该细胞因子的活性导向免疫效应细胞。
我们确定了最佳IC构建方式,并进一步改造细胞因子/抗体亲和力以改善免疫偏向功能。我们证明,我们的IC优先激活并扩增免疫效应细胞,与天然IL-2相比具有更优的抗肿瘤活性,且不诱导与IL-2给药相关的毒性。
总之,这项工作为免疫调节性细胞因子/抗体融合蛋白的设计和转化提供了路线图。
Progress in cytokine engineering is driving therapeutic translation by overcoming the inherent limitations of these proteins as drugs. The interleukin-2 (IL-2) cytokine harbors great promise as an immune stimulant for cancer treatment.
However, the cytokine's concurrent activation of both pro-inflammatory immune effector cells and anti-inflammatory regulatory T cells, its toxicity at high doses, and its short serum half-life have limited clinical application. One promising approach to improve the selectivity, safety, and longevity of IL-2 is complexation with anti-IL-2 antibodies that bias the cytokine towards the activation of immune effector cells (i.
e. , effector T cells and natural killer cells). Although this strategy shows therapeutic potential in preclinical cancer models, clinical translation of a cytokine/antibody complex is complicated by challenges in formulating a multi-protein drug and concerns about complex stability.
Here, we introduce a versatile approach to designing intramolecularly assembled single-agent fusion proteins (immunocytokines, ICs) comprising IL-2 and a biasing anti-IL-2 antibody that directs the cytokine's activities towards immune effector cells.
We establish the optimal IC construction and further engineer the cytokine/antibody affinity to improve immune biasing function.
We demonstrate that our IC preferentially activates and expands immune effector cells, leading to superior antitumor activity compared to natural IL-2 without inducing toxicities associated with IL-2 administration. Collectively, this work presents a roadmap for the design and translation of immunomodulatory cytokine/antibody fusion proteins.
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