癌症代谢和 PI3K 靶向疗法中的 PI3K 信号调节。

Beinan Han, Xiaorong Lin, Hai Hu
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引用次数: 0

摘要

磷脂酰肌醇-3-激酶(PI3K)信号传导在各种细胞功能中起着关键作用,在癌症中经常被激活,因此成为一个有吸引力的治疗靶点。PI3K 信号通路影响葡萄糖代谢、脂质合成、核苷酸生成和蛋白质合成,所有这些都有助于癌细胞的增殖和存活。它通过激活葡萄糖转运体和糖酵解增强葡萄糖摄取,同时还通过 mTORC1 等下游因子促进脂质合成。这一途径通过调节 MYC 等转录因子促进核苷酸合成,激活嘌呤和嘧啶生成的关键酶。此外,由于 PI3K 通路在癌细胞生长中的重要作用,它也是抗癌疗法的一个关键靶点。然而,单独使用 PI3K 抑制剂进行治疗有其局限性,包括耐药性和明显的副作用,如高血糖、疲劳和肝功能异常。临床试验促使人们开发出异构体特异性 PI3K 抑制剂,以减少毒性。将 PI3K 抑制剂与激素治疗或手术等其他治疗方法结合使用,可提高疗效并减少副作用。要充分了解 PI3K 抑制剂的作用机制并改进个体化治疗方法,还需要进一步的研究。在这篇综述中,我们将介绍三类 PI3K 的特点,讨论其对癌症代谢的调控,包括对葡萄糖摄取、糖酵解、新脂质合成、核苷酸合成和蛋白质合成的调控,并回顾不同 PI3K 抑制剂的治疗现状。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Regulation of PI3K signaling in cancer metabolism and PI3K-targeting therapy.

The phosphatidylinositol-3-kinase (PI3K) signaling plays a key role in various cellular functions and is frequently activated in cancer, making it an attractive therapeutic target. The PI3K signaling pathway influencing glucose metabolism, lipid synthesis, nucleotide production, and protein synthesis, all of which contribute to cancer cell proliferation and survival. It enhances glucose uptake through the activation of glucose transporters and glycolysis, while also promoting lipid synthesis via downstream factors like mTORC1. This pathway boosts nucleotide synthesis by regulating transcription factors like MYC, activating key enzymes for purine and pyrimidine production. Additionally, due to its essential role in cancer cell growth, the PI3K pathway is a key target for anticancer therapies. However, treatment using PI3K inhibitors alone has limitations, including drug resistance and significant side effects such as hyperglycemia, fatigue, and liver dysfunction. Clinical trials have led to the development of isoform-specific PI3K inhibitors to reduce toxicity. Combining PI3K inhibitors with other treatments, such as hormone therapy or surgery, may improve efficacy and minimize side effects. Further research is needed to fully understand the mechanisms of PI3K inhibitors and improve individualized treatment approaches. In this review, we introduce the characteristic of three classes of PI3Ks, discuss the regulation of cancer metabolism including the control of glucose uptake, glycolysis, de novo lipid synthesis, nucleotide synthesis and protein synthesis, and review the current statuses of different PI3K inhibitors therapy.

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