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Antibody targeting of E3 ubiquitin ligases for receptor degradation.

Hadir MareiWen-Ting K TsaiYee-Seir KeeKaren RuizJieyan HeChris CoxTao SunSai PenikalapatiPankaj DwivediMeena ChoiDavid KanPablo Saenz-LopezKristel DorighiPamela ZhangYvonne T KschonsakNoelyn KljavinDhara AminIngrid KimAndrew G ManciniThao NguyenChunling WangEric M JanezicAlexander DoanElaine MaiHongkang XiChen GuMelanie HeinleinBrian BiehsJia WuIsabelle LehouxSeth HarrisLaetitia Comps-AgrarDhaya SeshasayeeFrederic J de SauvageMatthew GrimmerJing LiNicholas J AgardFelipe de Sousa E Melo
Published in: Nature (2022)
Most current therapies that target plasma membrane receptors function by antagonizing ligand binding or enzymatic activities. However, typical mammalian proteins comprise multiple domains that execute discrete but coordinated activities. Thus, inhibition of one domain often incompletely suppresses the function of a protein. Indeed, targeted protein degradation technologies, including proteolysis-targeting chimeras 1 (PROTACs), have highlighted clinically important advantages of target degradation over inhibition 2 . However, the generation of heterobifunctional compounds binding to two targets with high affinity is complex, particularly when oral bioavailability is required 3 . Here we describe the development of proteolysis-targeting antibodies (PROTABs) that tether cell-surface E3 ubiquitin ligases to transmembrane proteins, resulting in target degradation both in vitro and in vivo. Focusing on zinc- and ring finger 3 (ZNRF3), a Wnt-responsive ligase, we show that this approach can enable colorectal cancer-specific degradation. Notably, by examining a matrix of additional cell-surface E3 ubiquitin ligases and transmembrane receptors, we demonstrate that this technology is amendable for 'on-demand' degradation. Furthermore, we offer insights on the ground rules governing target degradation by engineering optimized antibody formats. In summary, this work describes a strategy for the rapid development of potent, bioavailable and tissue-selective degraders of cell-surface proteins.
Keyphrases
  • cell surface
  • cancer therapy
  • small molecule
  • stem cells
  • cell proliferation
  • drug delivery
  • protein protein
  • amino acid
  • anti inflammatory
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