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:Screening Oil Components for Interleukin-2-Loaded Lipid-Based Formulations with Molecular Dynamics, In Vitro Characterization, and Cell Culture Evaluation.
Screening Oil Components for Interleukin-2-Loaded Lipid-Based Formulations with Molecular Dynamics, In Vitro Characterization, and Cell Culture Evaluation.
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白细胞介素-2(IL-2)是一种免疫刺激性细胞因子,可刺激T细胞、NK 细胞及其他白细胞,发挥生长因子的功能。IL-2与IL-2Rα、IL-2Rβ和γ c受体相互作用。IL-2通过与β和γ受体亚基相互作用发挥抗肿瘤治疗效应,而与α、β和γ受体复合物的相互作用对于治疗自身免疫性疾病至关重要。当前的研究方向是开发改良的IL-2生物改良药(biobetters),通过降低给药策略来减少毒性,特别是通过阻断或减缓与IL-2Rα的相互作用。根据这些策略,本研究旨在设计一种基于脂质的IL-2制剂,该制剂能够调节或部分阻止IL-2Rα结合,从而增强βγ介导的抗肿瘤疗效,同时最大限度地减少α相关的免疫激活。分子动力学(MD)模拟包含数千个原子的大型系统中原子和分子的物理运动,广泛应用于生物技术药物制剂领域。
在本研究中,MD被用于模拟IL-2与基于脂质制剂中辅料之间的时间依赖性相互作用,以确定合适的辅料。使用Desmond模拟并观察制剂内容物与IL-2之间的时间相互作用。特别检查了与Arg38、Phe42和Leu72——α亚基界面的关键残基——的相互作用。根据模拟分析,极性侧链被脂质保护,同时所选辅料未预期出现不相容性。观察到与Arg38的相互作用,该残基与IL-2Rα相互作用;因此,可能实现增强的抗肿瘤效果。除计算机模拟研究外,还进行了体外细胞培养实验,以检测载IL-2纳米乳剂的生物活性和抗癌疗效。这些研究表明,IL-2的生物活性得以保留,且其抗肾癌细胞的效果得到增强。
总体而言,结果表明该制剂可稳定IL-2,并通过合理的辅料-蛋白质相互作用增强其α靶向抗肿瘤机制。
Interleukin-2 (IL-2) is an immunostimulatory cytokine that stimulates T cells, natural killer cells, and other leukocytes, functioning as a growth factor. IL-2 interacts with IL-2Rα, IL-2Rβ, and γ c receptors. IL-2 mediates its therapeutic effects by interacting with the β and γ receptor subunits against cancer, whereas interaction with the α, β, and γ receptor complexes is critical for treating autoimmune disorders. Current efforts aim to develop improved IL-2 biobetters that reduce toxicity through lower dosing strategies, particularly by blocking or slowing the interaction with IL-2Rα. According to these strategies, this study aimed to design a lipid-based IL-2 formulation that could modulate or partially prevent IL-2Rα binding, thereby enhancing the βγ-mediated antitumor efficacy while minimizing α-associated immune activation.
Molecular dynamics (MD) simulates the physical motions of atoms and molecules in large systems containing thousands of atoms and is widely used in biotechnological drug formulations. In this study, MD was used to simulate time-dependent interactions between IL-2 and excipients of the lipid-based formulations to determine suitable excipients. Desmond was used to simulate and observe the temporal interactions between the formulation contents and IL-2.
Interactions with Arg38, Phe42, and Leu72key residues of the α-subunit interfacewere specifically examined. According to the simulation analyses, polar side chains were protected by lipids, while no incompatibility was expected for the selected excipients. Interactions were observed with Arg38, which interacts with IL-2Rα; thus, an enhanced antitumor effect might be achieved.
In addition to the in silico studies, in vitro cell culture experiments were conducted to examine the biological activity and anticancer efficacy of IL-2-loaded nanoemulsions. These studies demonstrated that IL-2's biological activity was preserved, and its anticancer effect was enhanced against renal carcinoma cells.
Overall, the results suggest that the formulation stabilizes IL-2 and enhances its α-targeted antitumor mechanism through rational excipient-protein interactions.
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