Kong Xianguo, Alvarez-Castelao Beatriz, Lin Zhao, Castaño José G, Caro Jaime
Cardeza Foundation, Thomas Jefferson University, Philadelphia, Pennsylvania 19107, USA.
J Biol Chem. 2007 May 25;282(21):15498-505. doi: 10.1074/jbc.M700704200. Epub 2007 Apr 2.
The transcriptional activator complex HIF-1 plays a key role in the long term adaptation of cells and tissues to their hypoxic microenvironment by stimulating the expression of genes involved in angiogenesis and glycolysis. The expression of the HIF-1 complex is regulated by the levels of its HIF-alpha subunits that are degraded under normoxic conditions by the ubiquitin-proteasome system. Whereas this pathway of HIF-alpha protein degradation has been well characterized, little is known of their turnover during prolonged hypoxic conditions. Herein, we describe a pathway by which HIF-1alpha and HIF-2alpha proteins are constitutively degraded during hypoxia by the proteasome system, although without requirement of prior ubiquitylation. The constitutive/hypoxic degradation of HIF-alpha proteins is independent of the presence of VHL, binding to DNA, or the formation of a transcriptionally active HIF-1 complex. These results are further strengthened by the demonstration that HIF-alpha proteins are directly degraded in a reconstituted in vitro assay by the proteasome. Finally, we demonstrate that the persistent down-regulation of HIF-1alpha during prolonged hypoxia is mainly caused by a decreased production of the protein without change in its degradation rate. This constitutive, ubiquitin-independent proteasomal degradation pathway of HIF-alpha proteins has to be taken into account in understanding the biology as well as in the development of therapeutic interventions of highly hypoxic tumors.
转录激活复合物HIF-1通过刺激参与血管生成和糖酵解的基因表达,在细胞和组织对缺氧微环境的长期适应中起关键作用。HIF-1复合物的表达受其HIF-α亚基水平的调节,在常氧条件下,HIF-α亚基通过泛素-蛋白酶体系统被降解。虽然HIF-α蛋白降解的这条途径已得到充分表征,但对于它们在长期缺氧条件下的周转情况却知之甚少。在此,我们描述了一条途径,通过该途径,HIF-1α和HIF-2α蛋白在缺氧期间被蛋白酶体系统持续降解,尽管不需要预先进行泛素化。HIF-α蛋白的组成型/缺氧降解独立于VHL的存在、与DNA的结合或转录活性HIF-1复合物的形成。蛋白酶体在体外重组试验中直接降解HIF-α蛋白,这一证明进一步强化了这些结果。最后,我们证明,在长期缺氧期间HIF-1α的持续下调主要是由于该蛋白产量降低,而其降解速率没有变化。在理解高缺氧肿瘤的生物学特性以及开发治疗干预措施时,必须考虑HIF-α蛋白这种组成型且不依赖泛素的蛋白酶体降解途径。