Graduate School of Life and Environmental Sciences, University of Tsukuba, Tsukuba, Ibaraki 305-8577, Japan.
J Biol Chem. 2011 Sep 23;286(38):33613-21. doi: 10.1074/jbc.M111.245126. Epub 2011 Aug 2.
Substrate-specific protein degradation mediated by the ubiquitin proteasome system (UPS) is crucial for the proper function of the cell. Proteins are specifically recognized and ubiquitinated by the ubiquitin ligases (E3s) and are then degraded by the proteasome. BTB proteins act as the substrate recognition subunit that recruits their cognate substrates to the Cullin 3-based multisubunit E3s. Recently, it was reported that missense mutations in KLHL7, a BTB-Kelch protein, are related to autosomal dominant retinitis pigmentosa (adRP). However, the involvement of KLHL7 in the UPS and the outcome of the adRP causative mutations were unknown. In this study, we show that KLHL7 forms a dimer, assembles with Cul3 through its BTB and BACK domains, and exerts E3 activity. Lys-48-linked but not Lys-63-linked polyubiquitin chain co-localized with KLHL7, which increased upon proteasome inhibition suggesting that KLHL7 mediates protein degradation via UPS. An adRP-causative missense mutation in the BACK domain of KLHL7 attenuated only the Cul3 interaction but not dimerization. Nevertheless, the incorporation of the mutant as a heterodimer in the Cul3-KLHL7 complex diminished the E3 ligase activity. Together, our results suggest that KLHL7 constitutes a Cul3-based E3 and that the disease-causing mutation inhibits ligase activity in a dominant negative manner, which may lead to the inappropriate accumulation of the substrates targeted for proteasomal degradation.
泛素蛋白酶体系统 (UPS) 介导的底物特异性蛋白降解对于细胞的正常功能至关重要。蛋白质被泛素连接酶 (E3s) 特异性识别和泛素化,然后被蛋白酶体降解。BTB 蛋白作为底物识别亚基,将其同源底物募集到基于 Cullin 3 的多亚基 E3 中。最近,有报道称,BTB-Kelch 蛋白 KLHL7 的错义突变与常染色体显性视网膜色素变性 (adRP) 有关。然而,KLHL7 在 UPS 中的参与以及 adRP 致病突变的后果尚不清楚。在本研究中,我们表明 KLHL7 形成二聚体,通过其 BTB 和 BACK 结构域与 Cul3 组装,并发挥 E3 活性。K48 连接但不是 K63 连接的多泛素链与 KLHL7 共定位,蛋白酶体抑制后增加,表明 KLHL7 通过 UPS 介导蛋白降解。KLHL7 BACK 结构域中的一个 adRP 致病错义突变仅减弱了 Cul3 相互作用,但不减弱二聚化。然而,突变体作为异二聚体掺入 Cul3-KLHL7 复合物会降低 E3 连接酶活性。总之,我们的结果表明 KLHL7 构成了一个 Cul3 基的 E3,致病突变以显性负性方式抑制连接酶活性,这可能导致靶向蛋白酶体降解的底物的异常积累。