CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Genetically engineering glycolysis in T cells increases their antitumor function.
Genetically engineering glycolysis in T cells increases their antitumor function.
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这些发现支持实施 T 细胞代谢工程,以增强细胞免疫疗法对癌症的疗效。
T细胞在抗肿瘤反应中发挥核心作用。然而,它们在肿瘤微环境中常常面临诸多障碍,包括葡萄糖和氨基酸等可用必需代谢物的匮乏。此外,癌细胞可以通过上调代谢物转运蛋白并维持高代谢率来垄断这些资源以生长和增殖,从而在竞争中胜过T细胞。
在此,我们试图通过增强T细胞的糖酵解能力,使其能更好地与肿瘤细胞竞争,从而改善肿瘤附近的T细胞抗肿瘤功能。为实现这一目标,我们对人类T细胞进行了工程改造,使其表达一种关键的糖酵解酶——磷酸果糖激酶,以及一种葡萄糖转运蛋白——葡萄糖转运体3。我们将这些与肿瘤特异性嵌合抗原受体或T细胞受体共同表达。
工程化细胞与对照细胞相比,表现出细胞因子分泌增加和T细胞活化标志物上调。此外,它们展现出更优越的糖酵解能力,这在人肿瘤异种移植模型中转化为改善的体内治疗潜力。
T cells play a central role in the antitumor response. However, they often face numerous hurdles in the tumor microenvironment, including the scarcity of available essential metabolites such as glucose and amino acids. Moreover, cancer cells can monopolize these resources to thrive and proliferate by upregulating metabolite transporters and maintaining a high metabolic rate, thereby outcompeting T cells.
Herein, we sought to improve T-cell antitumor function in the tumor vicinity by enhancing their glycolytic capacity to better compete with tumor cells. To achieve this, we engineered human T cells to express a key glycolysis enzyme, phosphofructokinase, in conjunction with Glucose transporter 3, a glucose transporter. We co-expressed these, along with tumor-specific chimeric antigen or T-cell receptors.
Engineered cells demonstrated an increased cytokine secretion and upregulation of T-cell activation markers compared with control cells. Moreover, they displayed superior glycolytic capacity, which translated into an improved in vivo therapeutic potential in a xenograft model of human tumors.
In summary, these findings support the implementation of T-cell metabolic engineering to enhance the efficacy of cellular immunotherapies for cancer.
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