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Updated: Jul 14, 2026

RNA Interference-based Investigation of the Function of Heat Shock Protein 27 during Corneal Epithelial Wound Healing
Published on: September 27, 2016
Hsp27 regulates Akt activation and polymorphonuclear leukocyte apoptosis by scaffolding MK2 to Akt signal complex
Rui Wu1, Hina Kausar, Paul Johnson
1Department of Medicine, University of Louisville, Louisville, KY 40202, USA.
Abstract:
We have shown previously that Akt exists in a signal complex with p38 MAPK, MAPK-activated protein kinase-2 (MK2), and heat shock protein 27 (Hsp27) and MK2 phosphorylates Akt on Ser-473. Additionally, dissociation of Hsp27 from Akt, prior to Akt activation, induced polymorphonuclear leukocyte (PMN) apoptosis. However, the role of Hsp27 in regulating Akt activation was not examined. This study tested the hypothesis that Hsp27 regulates Akt activation and promotes cell survival by scaffolding MK2 to the Akt signal complex. Here we show that loss of Akt/Hsp27 interaction by anti-Hsp27 antibody treatment resulted in loss of Akt/MK2 interaction, loss of Akt-Ser-473 phosphorylation, and induced PMN apoptosis. Transfection of myristoylated Akt (AktCA) in HK-11 cells induced Akt-Ser-473 phosphorylation, activation, and Hsp27-Ser-82 phosphorylation. Cotransfection of AktCA with Hsp27 short interfering RNA, but not scrambled short interfering RNA, silenced Hsp27 expression, without altering Akt expression in HK-11 cells. Silencing Hsp27 expression inhibited Akt/MK2 interaction, inhibited Akt phosphorylation and Akt activation, and induced HK-11 cell death. Deletion mutagenesis studies identified acidic linker region (amino acids 117-128) on Akt as an Hsp27 binding region. Deletion of amino acids 117-128 on Akt resulted in loss of its interaction with Hsp27 and MK2 but not with Hsp90 as demonstrated by immunoprecipitation and glutathione S-transferase pulldown studies. Co-transfection studies demonstrated that constitutively active MK2 (MK2EE) phosphorylated Aktwt (wild type) on Ser-473 but failed to phosphorylate Akt(Delta117-128) mutant in transfixed cells. These studies collectively define a novel role of Hsp27 in regulating Akt activation and cellular apoptosis by mediating interaction between Akt and its upstream activator MK2.
Insights
Heat shock protein 27 (Hsp27) acts as a scaffold, bringing MK2 to Akt to enable Akt activation and promote cell survival. Loss of Hsp27 binding leads to Akt inactivation and cell death.
Area of Science:
- Molecular Biology
- Cell Signaling
- Apoptosis Research
Background:
- Akt signaling is crucial for cell survival and is regulated by various protein interactions.
- Heat shock protein 27 (Hsp27) has been previously observed in a complex with Akt and MK2, but its regulatory role was unclear.
- Previous studies indicated that Hsp27 dissociation precedes Akt activation and can induce apoptosis.
Purpose of the Study:
- To investigate the role of Hsp27 in regulating Akt activation and promoting cell survival.
- To test the hypothesis that Hsp27 scaffolds MK2 to the Akt signaling complex.
Main Methods:
- Utilized antibody treatment to disrupt Akt/Hsp27 interaction.
- Employed siRNA to silence Hsp27 expression in HK-11 cells.
- Performed deletion mutagenesis on Akt to identify Hsp27 binding sites.
- Conducted co-transfection studies with constitutively active MK2 (MK2EE) and Akt mutants.
Main Results:
- Disruption of Akt/Hsp27 interaction led to loss of Akt/MK2 interaction, reduced Akt phosphorylation (Ser-473), and induced PMN apoptosis.
- Silencing Hsp27 inhibited Akt/MK2 interaction, Akt phosphorylation, and Akt activation, resulting in HK-11 cell death.
- The acidic linker region (amino acids 117-128) of Akt was identified as the Hsp27 binding site, crucial for Akt/MK2 interaction and MK2-mediated Akt phosphorylation.
Conclusions:
- Hsp27 plays a novel role in regulating Akt activation by scaffolding MK2 to the Akt signaling complex.
- Hsp27 is essential for maintaining Akt activity and promoting cell survival.
- The findings elucidate a new mechanism by which Hsp27 controls Akt signaling and cellular fate.
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