Junne Tina, Wong Joanne, Studer Christian, Aust Thomas, Bauer Benedikt W, Beibel Martin, Bhullar Bhupinder, Bruccoleri Robert, Eichenberger Jürg, Estoppey David, Hartmann Nicole, Knapp Britta, Krastel Philipp, Melin Nicolas, Oakeley Edward J, Oberer Lukas, Riedl Ralph, Roma Guglielmo, Schuierer Sven, Petersen Frank, Tallarico John A, Rapoport Tom A, Spiess Martin, Hoepfner Dominic
Biozentrum, University of Basel, Klingelbergstrasse 50/70, 4056 Basel, Switzerland.
Novartis Institutes for BioMedical Research, Novartis Campus, 4056 Basel, Switzerland.
J Cell Sci. 2015 Mar 15;128(6):1217-29. doi: 10.1242/jcs.165746. Epub 2015 Jan 22.
A new cyclic decadepsipeptide was isolated from Chaetosphaeria tulasneorum with potent bioactivity on mammalian and yeast cells. Chemogenomic profiling in S. cerevisiae indicated that the Sec61 translocon complex, the machinery for protein translocation and membrane insertion at the endoplasmic reticulum, is the target. The profiles were similar to those of cyclic heptadepsipeptides of a distinct chemotype (including HUN-7293 and cotransin) that had previously been shown to inhibit cotranslational translocation at the mammalian Sec61 translocon. Unbiased, genome-wide mutagenesis followed by full-genome sequencing in both fungal and mammalian cells identified dominant mutations in Sec61p (yeast) or Sec61α1 (mammals) that conferred resistance. Most, but not all, of these mutations affected inhibition by both chemotypes, despite an absence of structural similarity. Biochemical analysis confirmed inhibition of protein translocation into the endoplasmic reticulum of both co- and post-translationally translocated substrates by both chemotypes, demonstrating a mechanism independent of a translating ribosome. Most interestingly, both chemotypes were found to also inhibit SecYEG, the bacterial Sec61 translocon homolog. We suggest 'decatransin' as the name for this new decadepsipeptide translocation inhibitor.
从图拉斯内毛壳菌中分离出一种新的环状十肽缩肽,它对哺乳动物和酵母细胞具有强大的生物活性。在酿酒酵母中的化学基因组分析表明,内质网上负责蛋白质转运和膜插入的Sec61转运体复合物是其作用靶点。这些分析结果与一种不同化学类型的环状七肽缩肽(包括HUN-7293和共转运素)相似,此前已证明这些环状七肽缩肽可抑制哺乳动物Sec61转运体上的共翻译转运。在真菌和哺乳动物细胞中进行无偏差的全基因组诱变,随后进行全基因组测序,确定了Sec61p(酵母)或Sec61α1(哺乳动物)中的显性突变赋予了抗性。尽管缺乏结构相似性,但这些突变中的大多数(并非全部)影响了两种化学类型的抑制作用。生化分析证实,两种化学类型均抑制共翻译和翻译后转运底物向内质网的蛋白质转运,这表明其作用机制独立于翻译中的核糖体。最有趣的是,发现这两种化学类型还抑制细菌Sec61转运体同源物SecYEG。我们建议将这种新的十肽缩肽转运抑制剂命名为“十肽共转运素”。