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受体选择性合成类视黄醇作为潜在的癌症化疗药物。

Receptor selective synthetic retinoids as potential cancer chemotherapy agents.

作者信息

Crowe D L

机构信息

Center for Craniofacial Molecular Biology, University of Southern California, 2250 Alcazar Street, Los Angeles, CA 90033, USA.

出版信息

Curr Cancer Drug Targets. 2002 Mar;2(1):77-86. doi: 10.2174/1568009023333935.

Abstract

For many years, the vitamin A metabolite retinoic acid (RA) has been known to have profound effects on development, cellular proliferation and differentiation, and tumor growth and invasion. The wide-ranging effects of RA on cellular proliferation and migration have made it a useful chemotherapeutic agent in the treatment of many types of cancer. In the last fifteen years, with the discovery of nuclear receptors for RA, the molecular basis for the effects of this molecule has become apparent. Retinoic acid receptors (RAR) are members of a superfamily of ligand dependent transcription factors that interact with an increasingly large array of coactivators and repressors to regulate target gene expression through binding to cognate recognition sequences in the promoters of these genes. Alterations in RAR expression and function have been demonstrated in many types of cancer. The translocation of RARalpha with PML or PLZF genes in acute promyelocytic leukemia is a paradigm of the role of RARs in cancer biology. In addition, the development of receptor selective synthetic retinoids has greatly expanded our knowledge of RAR function in tumor cells and provided additional treatment options for cancer patients. This review will examine the development of receptor selective retinoids, their uses to date, and future potential.

摘要

多年来,人们已知维生素A代谢产物视黄酸(RA)对发育、细胞增殖与分化以及肿瘤生长和侵袭具有深远影响。RA对细胞增殖和迁移的广泛作用使其成为治疗多种癌症的有效化疗药物。在过去十五年中,随着视黄酸核受体的发现,该分子作用的分子基础已变得清晰。视黄酸受体(RAR)是配体依赖性转录因子超家族的成员,它们与越来越多的共激活因子和共抑制因子相互作用,通过与这些基因启动子中的同源识别序列结合来调节靶基因表达。在许多类型的癌症中都已证实RAR表达和功能的改变。急性早幼粒细胞白血病中RARα与PML或PLZF基因的易位是RAR在癌症生物学中作用的一个范例。此外,受体选择性合成类视黄醇的开发极大地扩展了我们对RAR在肿瘤细胞中功能的认识,并为癌症患者提供了更多治疗选择。本综述将探讨受体选择性类视黄醇的发展、它们迄今为止的用途以及未来的潜力。

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