Design and Characterization of SGK3-PROTAC1, an Isoform Specific SGK3 Kinase PROTAC Degrader

Hannah Tovell1, Andrea Testa2, Houjiang Zhou1

  • 1Medical Research Council (MRC) Protein Phosphorylation and Ubiquitylation Unit, School of Life Sciences , University of Dundee , Dow Street , Dundee DD1 5EH , United Kingdom.

ACS Chemical Biology
|August 29, 2019
PubMed

Insights

A novel PROTAC molecule, SGK3-PROTAC1, effectively degrades SGK3 protein, overcoming resistance in breast cancer cells to PI3K and Akt inhibitors. This targeted degradation restores sensitivity to these drugs and suppresses cancer cell proliferation.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Oncology

Background:

  • SGK3 (Serum/Glucocorticoid regulated kinase 3) is a protein kinase activated at endosomes.
  • It plays a critical role in mediating breast cancer cell resistance to PI3K and Akt inhibitors.
  • Targeting SGK3 is crucial for overcoming inhibitor resistance and restoring therapeutic efficacy.

Purpose of the Study:

  • To develop a potent and selective tool to target SGK3 for degradation.
  • To investigate the efficacy of a novel PROTAC conjugate, SGK3-PROTAC1, in degrading SGK3.
  • To evaluate the impact of SGK3 degradation on restoring sensitivity to PI3K and Akt inhibitors in breast cancer cells.

Main Methods:

  • Development of SGK3-PROTAC1, a PROTAC conjugate linking an SGK inhibitor with a VHL ligand.
  • Treatment of breast cancer cells with SGK3-PROTAC1 and assessment of SGK3 degradation via proteomic analysis.
  • Evaluation of SGK3-PROTAC1's effect on substrate phosphorylation (NDRG1) and cancer cell sensitivity to PI3K/Akt inhibitors.

Main Results:

  • SGK3-PROTAC1 induced rapid and significant degradation of endogenous SGK3 (up to 80% within 8 hours).
  • SGK3-PROTAC1 selectively degraded SGK3 without affecting closely related SGK1 and SGK2 isoforms.
  • Low doses of SGK3-PROTAC1 restored sensitivity of breast cancer cells to PI3K and Akt inhibitors and suppressed proliferation more effectively than conventional inhibitors.

Conclusions:

  • PROTAC technology offers a highly effective and selective approach for targeting protein kinase signaling pathways.
  • SGK3-PROTAC1 is a valuable tool for exploring the role of SGK3 in cancer and overcoming therapeutic resistance.
  • Targeted protein degradation via PROTACs represents a promising strategy for cancer therapy.

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