Kenniston Jon A, Baker Tania A, Sauer Robert T
Department of Biology and Howard Hughes Medical Institute, Massachusetts Institute of Technology, Cambridge, MA 02139, USA.
Proc Natl Acad Sci U S A. 2005 Feb 1;102(5):1390-5. doi: 10.1073/pnas.0409634102. Epub 2005 Jan 25.
Energy-dependent proteases, such as ClpXP, are responsible for the regulated destruction of proteins in all cells. AAA+ ATPases in these proteases bind protein substrates and power their mechanical denaturation and subsequent translocation into a secluded degradation chamber where polypeptide cleavage occurs. Here, we show that model unfolded substrates are engaged rapidly by ClpXP and are then spooled into the degradation chamber at a rate proportional to their length. Degradation and competition studies indicate that ClpXP initially binds native and unfolded substrates similarly. However, stable native substrates then partition between frequent release and infrequent denaturation, with only the latter step resulting in committed degradation. During degradation of a fusion protein with three tandem native domains, partially degraded species with one and two intact domains accumulated. These processed proteins were not bound to the enzyme, showing that release can occur even after translocation and degradation of a substrate have commenced. The release of stable substrates and committed engagement of denatured or unstable native molecules ensures that ClpXP degrades less stable substrates in a population preferentially. This mechanism prevents trapping of the enzyme in futile degradation attempts and ensures that the energy of ATP hydrolysis is used efficiently for protein degradation.
诸如ClpXP之类的能量依赖性蛋白酶负责所有细胞中蛋白质的有序降解。这些蛋白酶中的AAA+ATP酶结合蛋白质底物,并为其机械变性提供能量,随后将其转运到一个隐蔽的降解腔室中,在那里发生多肽切割。在这里,我们表明,模型未折叠底物能迅速被ClpXP结合,然后以与其长度成正比的速率被卷入降解腔室。降解和竞争研究表明,ClpXP最初结合天然底物和未折叠底物的方式相似。然而,稳定的天然底物随后在频繁释放和偶尔变性之间分配,只有后一步才导致不可逆的降解。在用三个串联天然结构域的融合蛋白进行降解过程中,积累了具有一个和两个完整结构域的部分降解产物。这些加工后的蛋白质没有与酶结合,这表明即使在底物的转运和降解开始后也会发生释放。稳定底物的释放以及变性或不稳定天然分子的不可逆结合确保了ClpXP优先降解群体中较不稳定的底物。这种机制可防止酶陷入无效的降解尝试,并确保ATP水解的能量有效地用于蛋白质降解。