In Vivo Knockdown of Pathogenic Proteins via S pecific and N ongenetic I nhibitor of Apoptosis Protein (IAP)-dependent P rotein Er asers (SNIPERs)

通过特异性和非遗传性凋亡抑制蛋白 (IAP) 依赖性蛋白擦除器 (SNIPER) 在体内敲低致病蛋白

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作者:Nobumichi Ohoka, Keiichiro Okuhira, Masahiro Ito, Katsunori Nagai, Norihito Shibata, Takayuki Hattori, Osamu Ujikawa, Kenichiro Shimokawa, Osamu Sano, Ryokichi Koyama, Hisashi Fujita, Mika Teratani, Hirokazu Matsumoto, Yasuhiro Imaeda, Hiroshi Nara, Nobuo Cho, Mikihiko Naito

Abstract

Many diseases, especially cancers, result from aberrant or overexpression of pathogenic proteins. Specific inhibitors against these proteins have shown remarkable therapeutic effects, but these are limited mainly to enzymes. An alternative approach that may have utility in drug development relies on selective degradation of pathogenic proteins via small chimeric molecules linking an E3 ubiquitin ligase to the targeted protein for proteasomal degradation. To this end, we recently developed a protein knockdown system based on hybrid small molecule SNIPERs (Specific and Nongenetic IAP-dependent Protein Erasers) that recruit inhibitor of the apoptosis protein (IAP) ubiquitin ligases to specifically degrade targeted proteins. Here, we extend our previous study to show a proof of concept of the SNIPER technology in vivo By incorporating a high affinity IAP ligand, we developed a novel SNIPER against estrogen receptor α (ERα), SNIPER(ER)-87, that has a potent protein knockdown activity. The SNIPER(ER) reduced ERα levels in tumor xenografts and suppressed the growth of ERα-positive breast tumors in mice. Mechanistically, it preferentially recruits X-linked IAP (XIAP) rather than cellular IAP1, to degrade ERα via the ubiquitin-proteasome pathway. With this IAP ligand, potent SNIPERs against other pathogenic proteins, BCR-ABL, bromodomain-containing protein 4 (BRD4), and phosphodiesterase-4 (PDE4) could also be developed. These results indicate that forced ubiquitylation by SNIPERs is a useful method to achieve efficient protein knockdown with potential therapeutic activities and could also be applied to study the role of ubiquitylation in many cellular processes.

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