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Updated: May 11, 2026

Development and Application of Rapamycin-regulated Tyrosine Phosphatases
Published on: September 6, 2024
Posttranslational protein knockdown coupled to receptor tyrosine kinase activation with phosphoPROTACs
John Hines1, Jonathan D Gough, Timothy W Corson
1Department of Molecular, Cellular, and Developmental Biology, Yale University, New Haven, CT 06511, USA.
Abstract:
Posttranslational knockdown of a specific protein is an attractive approach for examining its function within a system. Here we introduce phospho-dependent proteolysis targeting chimeras (phosphoPROTACs), a method to couple the conditional degradation of targeted proteins to the activation state of particular kinase-signaling pathways. We generated two phosphoPROTACs that couple the tyrosine phosphorylation sequences of either the nerve growth factor receptor, TrkA (tropomyosin receptor kinase A), or the neuregulin receptor, ErbB3 (erythroblastosis oncogene B3), with a peptide ligand for the E3 ubiquitin ligase von Hippel Lindau protein. These phosphoPROTACs recruit either the neurotrophic signaling effector fibroblast growth factor receptor substrate 2α or the survival-promoting phosphatidylinositol-3-kinase, respectively, to be ubiquitinated and degraded upon activation of specific receptor tyrosine kinases and phosphorylation of the phosphoPROTACs. We demonstrate the ability of these phosphoPROTACs to suppress the short- and long-term effects of their respective activating receptor tyrosine kinase pathways both in vitro and in vivo. In addition, we show that activation of phosphoPROTACs is entirely dependent on their kinase-mediated phosphorylation, as phenylalanine-containing null variants are inactive. Furthermore, stimulation of unrelated growth factor receptors does not induce target protein knockdown. Although comparable in efficiency to RNAi, this approach has the added advantage of providing a degree of temporal and dosing control as well as cell-type selectivity unavailable using nucleic acid-based strategies. By varying the autophosphorylation sequence of a phosphoPROTAC, it is conceivable that other receptor tyrosine kinase/effector pairings could be similarly exploited to achieve other biological effects.
Insights
Researchers developed phospho-dependent proteolysis targeting chimeras (phosphoPROTACs) for conditional protein knockdown. This novel method links protein degradation to specific kinase pathway activation, offering temporal and cell-type control.
Area of Science:
- Biochemistry
- Molecular Biology
- Cell Signaling
Background:
- Posttranslational protein knockdown is crucial for functional studies.
- Existing methods like RNA interference (RNAi) have limitations in temporal and cellular control.
Purpose of the Study:
- To introduce phospho-dependent proteolysis targeting chimeras (phosphoPROTACs) for conditional protein degradation.
- To demonstrate the efficacy and specificity of phosphoPROTACs in regulating receptor tyrosine kinase pathways.
Main Methods:
- Generation of two phosphoPROTACs targeting TrkA and ErbB3 receptor tyrosine kinases.
- Coupling specific phosphorylation sequences with a ligand for the E3 ubiquitin ligase von Hippel Lindau protein.
- In vitro and in vivo validation of phosphoPROTAC-mediated protein knockdown upon kinase activation.
Main Results:
- PhosphoPROTACs successfully induced degradation of targeted proteins (FGFR substrate 2α and PI3K) in response to specific receptor tyrosine kinase activation.
- Degradation was dependent on kinase-mediated phosphorylation, with null variants showing no activity.
- The approach demonstrated temporal and cell-type selectivity, outperforming RNAi in control.
Conclusions:
- PhosphoPROTACs offer a powerful, controllable method for protein knockdown.
- This technology enables precise investigation of protein function in specific signaling contexts.
- The platform is adaptable for targeting other receptor tyrosine kinase pathways.
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