Section of Cell and Developmental Biology, Division of Biological Sciences, University of California San Diego, La Jolla, California 92093, USA.
J Biol Chem. 2011 Jul 29;286(30):26298-307. doi: 10.1074/jbc.M111.244798. Epub 2011 May 31.
The sterol-sensing domain (SSD) is a conserved motif in membrane proteins responsible for sterol regulation. Mammalian proteins SREBP cleavage-activating protein (SCAP) and HMG-CoA reductase (HMGR) both possess SSDs required for feedback regulation of sterol-related genes and sterol synthetic rate. Although these two SSD proteins clearly sense sterols, the range of signals detected by this eukaryotic motif is not clear. The yeast HMG-CoA reductase isozyme Hmg2, like its mammalian counterpart, undergoes endoplasmic reticulum (ER)-associated degradation that is subject to feedback control by the sterol pathway. The primary degradation signal for yeast Hmg2 degradation is the 20-carbon isoprene geranylgeranyl pyrophosphate, rather than a sterol. Nevertheless, the Hmg2 protein possesses an SSD, leading us to test its role in feedback control of Hmg2 stability. We mutated highly conserved SSD residues of Hmg2 and evaluated regulated degradation. Our results indicated that the SSD was required for sterol pathway signals to stimulate Hmg2 ER-associated degradation and was employed for detection of both geranylgeranyl pyrophosphate and a secondary oxysterol signal. Our data further indicate that the SSD allows a signal-dependent structural change in Hmg2 that promotes entry into the ER degradation pathway. Thus, the eukaryotic SSD is capable of significant plasticity in signal recognition or response. We propose that the harnessing of cellular quality control pathways to bring about feedback regulation of normal proteins is a unifying theme for the action of all SSDs.
固醇感应结构域(SSD)是膜蛋白中负责固醇调节的保守基序。哺乳动物蛋白 SREBP 切割激活蛋白(SCAP)和 HMG-CoA 还原酶(HMGR)都具有 SSD,这对于固醇相关基因和固醇合成率的反馈调节是必需的。尽管这两种 SSD 蛋白显然能感知固醇,但该真核基序所检测到的信号范围尚不清楚。酵母 HMG-CoA 还原酶同工酶 Hmg2 与哺乳动物同工酶一样,经历内质网(ER)相关降解,该降解受固醇途径的反馈控制。酵母 Hmg2 降解的主要降解信号是 20 碳异戊二烯香叶基香叶基焦磷酸,而不是固醇。然而,Hmg2 蛋白具有 SSD,这促使我们测试其在 Hmg2 稳定性的反馈控制中的作用。我们突变了 Hmg2 的高度保守 SSD 残基,并评估了受调控的降解。我们的结果表明,SSD 是固醇途径信号刺激 Hmg2 ER 相关降解所必需的,并且可以检测到香叶基香叶基焦磷酸和次级氧化固醇信号。我们的数据进一步表明,SSD 允许 Hmg2 中信号依赖性的结构变化,从而促进其进入 ER 降解途径。因此,真核 SSD 在信号识别或响应方面具有很大的可塑性。我们提出,利用细胞质量控制途径来实现正常蛋白的反馈调节是所有 SSD 作用的统一主题。