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首页> 外文期刊>Oncology reports >Upregulation of ABCG2 via the PI3K-Akt pathway contributes to acidic microenvironment-induced cisplatin resistance in A549 and LTEP-a-2 lung cancer cells
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Upregulation of ABCG2 via the PI3K-Akt pathway contributes to acidic microenvironment-induced cisplatin resistance in A549 and LTEP-a-2 lung cancer cells

机译:通过PI3K-Akt途径上调ABCG2有助于酸性微环境诱导的A549和LTEP-a-2肺癌细胞的顺铂耐药性

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摘要

Hypoxia always exists in the processes involved in the development of lung cancer and contributes to an acidic microenvironment. Despite that hypoxia in the tumor microenvironment is associated with the formation of chemotherapeutic resistance, the exact role of an acidic microenvironment in the development of hypoxia-induced lung cancer multidrug resistance is still unknown. In the present study, we acidized the medium with 2-(N-morpholino)-ethanesulfonic acid (MES monohydrate) to mimic the acidic tumor microenvironment and observed the effects of acidification on lung cancer cell viability, the expression of ATP-binding cassette sub-family G member 2 (ABCG2) and myeloid cell leukemia-1 (Mcl-1), and activation of the PI3K-Akt pathway. Thereafter, we investigated the mechanisms involved in the acidification-induced expression of ABCG2 and Mcl-1, and the potential therapeutic strategy to overcome acidification-associated multidrug resistance formation. We demonstrated that acidification obviously increased the expression of ABCG2 and Mcl-1 via PI3K-Akt-mTOR-S6 pathway activation and contributed to multidrug resistance. Inhibition of PI3K-Akt activity efficiently abolished the effect of acidification on cell viability, indicating that the PI3K-Akt pathway may include potential therapeutic target molecules in acidized microenvironment-associated lung cancer chemotherapeutic resistance.
机译:缺氧总是存在于肺癌的发展过程中,并导致酸性微环境。尽管肿瘤微环境中的缺氧与化疗耐药性的形成有关,但酸性微环境在缺氧诱导的肺癌多药耐药性发展中的确切作用仍然未知。在本研究中,我们用2-(N-吗啉代)-乙磺酸(MES一水合物)酸化培养基以模拟酸性肿瘤微环境,并观察酸化对肺癌细胞生存力,ATP结合盒亚型表达的影响-家族G成员2(ABCG2)和髓样细胞白血病-1(Mcl-1),以及PI3K-Akt途径的激活。此后,我们调查了酸化诱导ABCG2和Mcl-1表达的机制,以及克服酸化相关的多药耐药性形成的潜在治疗策略。我们证明了酸化通过PI3K-Akt-mTOR-S6途径激活明显增加了ABCG2和Mcl-1的表达,并促进了多药耐药性。 PI3K-Akt活性的抑制有效地消除了酸化对细胞生存力的影响,表明PI3K-Akt途径可能在酸化的微环境相关的肺癌化疗耐药性中包括潜在的治疗靶分子。

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