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本文引用的文献

1
Nuclear PTEN regulates the APC-CDH1 tumor-suppressive complex in a phosphatase-independent manner.核 PTEN 以非依赖磷酸酶的方式调节 APC-CDH1 肿瘤抑制复合物。
Cell. 2011 Jan 21;144(2):187-99. doi: 10.1016/j.cell.2010.12.020.
2
Decreased expression and androgen regulation of the tumor suppressor gene INPP4B in prostate cancer.前列腺癌中肿瘤抑制基因INPP4B的表达降低及雄激素调控
Cancer Res. 2011 Jan 15;71(2):572-82. doi: 10.1158/0008-5472.CAN-10-2314. Epub 2011 Jan 11.
3
AKT inhibition relieves feedback suppression of receptor tyrosine kinase expression and activity.AKT 抑制缓解了受体酪氨酸激酶表达和活性的反馈抑制。
Cancer Cell. 2011 Jan 18;19(1):58-71. doi: 10.1016/j.ccr.2010.10.031. Epub 2011 Jan 6.
4
NHERF1/EBP50 is a new marker in colorectal cancer.NHERF1/EBP50 是结直肠癌的一个新标志物。
Neoplasia. 2010 Dec;12(12):1013-22. doi: 10.1593/neo.10780.
5
Inositol polyphosphate 4-phosphatase II regulates PI3K/Akt signaling and is lost in human basal-like breast cancers.肌醇多聚磷酸 4-磷酸酶 II 调节 PI3K/Akt 信号通路,并且在人基底样乳腺癌中缺失。
Proc Natl Acad Sci U S A. 2010 Dec 21;107(51):22231-6. doi: 10.1073/pnas.1015245107. Epub 2010 Dec 2.
6
Loss of PTEN expression by blocking nuclear translocation of EGR1 in gefitinib-resistant lung cancer cells harboring epidermal growth factor receptor-activating mutations.阻断 EGR1 核转位导致携带表皮生长因子受体激活突变的吉非替尼耐药肺癌细胞中 PTEN 表达缺失。
Cancer Res. 2010 Nov 1;70(21):8715-25. doi: 10.1158/0008-5472.CAN-10-0043. Epub 2010 Oct 19.
7
Casein kinase 2 dependent phosphorylation of neprilysin regulates receptor tyrosine kinase signaling to Akt.酪蛋白激酶 2 依赖性神经肽酶的磷酸化调节受体酪氨酸激酶信号转导至 Akt。
PLoS One. 2010 Oct 1;5(10):e13134. doi: 10.1371/journal.pone.0013134.
8
Loss of PTEN binding adapter protein NHERF1 from plasma membrane in glioblastoma contributes to PTEN inactivation.胶质母细胞瘤中质膜上 PTEN 结合接头蛋白 NHERF1 的丢失导致 PTEN 失活。
Cancer Res. 2010 Sep 1;70(17):6697-703. doi: 10.1158/0008-5472.CAN-10-1271. Epub 2010 Aug 24.
9
The extending network of FOXO transcriptional target genes.FOXO 转录靶基因的扩展网络。
Antioxid Redox Signal. 2011 Feb 15;14(4):579-92. doi: 10.1089/ars.2010.3419. Epub 2010 Oct 25.
10
A coding-independent function of gene and pseudogene mRNAs regulates tumour biology.基因和假基因 mRNA 的一种无编码依赖性功能调节肿瘤生物学。
Nature. 2010 Jun 24;465(7301):1033-8. doi: 10.1038/nature09144.

PI3K-Akt信号通路调控中的PTEN肿瘤抑制网络

PTEN Tumor Suppressor Network in PI3K-Akt Pathway Control.

作者信息

Georgescu Maria-Magdalena

机构信息

Department of Neuro-Oncology, MD Anderson Cancer Center, The University of Texas, Houston, TX, USA.

出版信息

Genes Cancer. 2010 Dec;1(12):1170-7. doi: 10.1177/1947601911407325.

DOI:10.1177/1947601911407325
PMID:21779440
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3092286/
Abstract

The PI3K-Akt pathway is a major survival pathway activated in cancer. Efforts to develop targeted therapies have not been fully successful, mainly because of extensive internal intrapathway or external interpathway negative feedback loops or because of networking between pathway suppressors. The PTEN tumor suppressor is the major brake of the pathway and a common target for inactivation in somatic cancers. This review will highlight the networking of PTEN with other inhibitors of the pathway, relevant to cancer progression. PTEN constitutes the main node of the inhibitory network, and a series of convergences at different levels in the PI3K-Akt pathway, starting from those with growth factor receptors, will be described. As PTEN exerts enzymatic activity as a phosphatidylinositol-3,4,5-trisphosphate (PIP(3)) phosphatase, thus opposing the activity of PI3K, the concerted actions to increase the availability of PIP(3) in cancer cells, relying either on other phosphoinositide enzymes or on the intrinsic regulation of PTEN activity by other molecules, will be discussed. In particular, the synergy between PTEN and the circle of its direct interacting proteins will be brought forth in an attempt to understand both the activation of the PI3K-Akt pathway and the connections with other parallel oncogenic pathways. The understanding of the interplay between the modulators of the PI3K-Akt pathway in cancer should eventually lead to the design of therapeutic approaches with increased efficacy in the clinic.

摘要

PI3K-Akt信号通路是癌症中激活的一条主要生存信号通路。开发靶向治疗的努力尚未完全成功,主要原因是通路内部广泛的负反馈环或外部通路间的负反馈环,或是通路抑制因子之间的网络作用。PTEN肿瘤抑制因子是该信号通路的主要制动因素,也是体细胞癌中常见的失活靶点。本综述将重点介绍PTEN与该信号通路其他抑制剂的网络关系,这与癌症进展相关。PTEN构成抑制网络的主要节点,将描述PI3K-Akt信号通路中从与生长因子受体相关的环节开始的不同水平的一系列汇聚情况。由于PTEN作为磷脂酰肌醇-3,4,5-三磷酸(PIP(3))磷酸酶发挥酶活性,从而对抗PI3K的活性,因此将讨论癌细胞中依赖其他磷酸肌醇酶或其他分子对PTEN活性的内在调节来增加PIP(3)可用性的协同作用。特别是,将阐述PTEN与其直接相互作用蛋白环之间的协同作用,以试图理解PI3K-Akt信号通路的激活以及与其他平行致癌信号通路的联系。对癌症中PI3K-Akt信号通路调节剂之间相互作用的理解最终应能促成在临床上设计出疗效更高的治疗方法。