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Updated: Aug 6, 2026

Assays for Validating Histone Acetyltransferase Inhibitors
Published on: August 6, 2020
Hdac3 suppresses apoptosis through deacetylating and stabilizing the antiapoptotic protein Diap1
Dafa Zhou1, Bin Liu1, Yan Ding1
1College of Life Sciences, Shandong Agricultural University, Tai'an 271018, China.
Abstract:
Apoptosis is a highly conserved process that eliminates unwanted or damaged cells in both physiological and pathological conditions. Dysregulation of apoptosis leads to developmental abnormalities and various diseases, such as neurodegeneration and cancer. Drosophila inhibitor of apoptosis 1 (Diap1) plays a crucial role in cell survival by inhibiting caspases and preventing apoptosis. However, under stress conditions, the prodeath proteins Rpr, Hid, and Grim (RHG) induce apoptosis by antagonizing Diap1. Despite being a key component of the apoptotic pathway, the mechanism that controls the stability of Diap1 remains unknown. Here, we find that loss of hdac3 results in the activation of apoptosis, which is completely blocked by expressing Diap1. Although Hdac3 localizes in both the cell cytoplasm and nucleus, only the cytoplasmic Hdac3 is able to suppress apoptosis induced by hdac3 deficiency, RHG overexpression, or x-ray irradiation. This finding indicates that Hdac3 exerts an antiapoptotic role independent of its canonical epigenetic functions. Loss of hdac3 decreases Diap1 protein, which is rescued by introducing cytoplasmic Hdac3. The deacetylase activity is necessary for Hdac3 to suppress apoptosis. Mechanistically, Hdac3 interacts with Diap1 to remove the acetyl group from K315 on Diap1, thereby increasing its stability. Compared with the wild-type Diap1, the acetyl-deficient mutant Diap1-K315R exhibits stronger stability and antiapoptotic activity. Last, RHG proteins compete with Hdac3 for Diap1 interaction, directing Diap1 toward degradation and triggering apoptosis. Together, these findings not only reveal the involvement of Diap1 acetylation modification in apoptosis regulation but also clarify the role of Hdac3 in apoptosis.
Insights
Histone deacetylase 3 (Hdac3) prevents apoptosis by stabilizing Diap1 protein through deacetylation. Cytoplasmic Hdac3 interacts with Diap1, preventing its degradation and promoting cell survival.
Area of Science:
- Cell Biology
- Molecular Biology
- Genetics
Background:
- Apoptosis is essential for development and disease, regulated by proteins like Diap1.
- Diap1 inhibits caspases, preventing programmed cell death.
- The stability of Diap1 is crucial but its regulation remains unclear.
Purpose of the Study:
- To investigate the role of Hdac3 in apoptosis regulation.
- To elucidate the mechanism by which Hdac3 controls Diap1 stability.
- To understand how Hdac3's function relates to its localization and enzymatic activity.
Main Methods:
- Studied apoptosis in Drosophila models with altered Hdac3 levels.
- Utilized genetic manipulation to express Diap1 and its mutants.
- Performed co-immunoprecipitation and Western blotting to analyze protein interactions and stability.
- Investigated the effect of Hdac3 localization and deacetylase activity on apoptosis.
Main Results:
- Loss of Hdac3 activates apoptosis, which is blocked by Diap1.
- Cytoplasmic Hdac3 suppresses apoptosis independently of nuclear functions.
- Hdac3 deacetylation of Diap1 at K315 enhances Diap1 stability and antiapoptotic function.
- RHG proteins compete with Hdac3 for Diap1 binding, promoting Diap1 degradation.
Conclusions:
- Hdac3 deacetylates Diap1, increasing its stability and inhibiting apoptosis.
- Cytoplasmic Hdac3 plays a critical antiapoptotic role.
- Diap1 acetylation is a key regulatory mechanism in apoptosis.
- Hdac3 acts as a crucial regulator of cell survival by controlling Diap1 stability.
Related Concept Videos
The Intrinsic Apoptotic Pathway
Caspases
The Extrinsic Apoptotic Pathway
The JAK-STAT Signaling Pathway
Abnormal Proliferation
Anaphase Promoting Complex

