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Updated: Jul 14, 2026

Assays for Validating Histone Acetyltransferase Inhibitors
Published on: August 6, 2020
Carboxyl terminus of Nkx2.5 impairs its interaction with p300
Tao Li1, Yan-Ming Li, Zhu-Qing Jia
1Department of Biochemistry and Molecular Biology, Peking University Health Science Center, Beijing 100083, China.
Abstract:
The transcription factor Nkx2.5 plays critical roles in controlling cardiac-specific gene expression. Previous reports demonstrated that Nkx2.5 is only a modest transactivator due to the auto-inhibitory effect of its C-terminal domain. Deletion of the C-terminal domain, mimicking conformational change, evokes vigorous transactivation activity. Here, we show that a C-terminal defective mutant of Nkx2.5 improves the occupation of p300 at the ANF promoter compared with full-length Nkx2.5, leading to hyperacetylation of histone H4. We reveal that p300 is a cofactor of Nkx2.5, markedly potentiating Nkx2.5-dependent transactivation, whereas E1A antigen impairs Nkx2.5 activity. Furthermore, p300 can acetylate Nkx2.5 and display an acetyltransferase-independent mechanism to coactivate Nkx2.5. Physical interaction between the N-terminal activation domain of Nkx2.5 and the C/H3 domain of p300 are identified by GST pull-down assay. Point mutants of the N-terminal modify the transcriptional activity of Nkx2.5 and interaction with p300. Deletion of the C-terminal domain greatly facilitates p300 binding and improves the susceptibility of Nkx2.5 to histone deacetylase inhibitor. These results establish that p300 acts as an Nkx2.5 cofactor and facilitates increased Nkx2.5 activity by relieving the conformational impediment of its inhibitory C-terminal domain.
Insights
The transcription factor Nkx2.5, crucial for heart development, is enhanced by the cofactor p300. This interaction overcomes Nkx2.5
Area of Science:
- Molecular Biology
- Cardiovascular Research
- Epigenetics
Background:
- Nkx2.5 is a key transcription factor for cardiac gene expression.
- Its C-terminal domain auto-inhibits transactivation activity.
- Modulating this domain can enhance Nkx2.5's transcriptional function.
Purpose of the Study:
- To investigate the role of p300 as a cofactor for Nkx2.5.
- To elucidate the mechanism by which p300 enhances Nkx2.5 activity.
- To explore the interaction between Nkx2.5 and p300 in cardiac gene regulation.
Main Methods:
- Utilized C-terminal defective Nkx2.5 mutants.
- Assessed p300 occupation at the ANF promoter.
- Performed GST pull-down assays to identify protein interactions.
- Investigated histone acetylation and Nkx2.5 acetylation by p300.
Main Results:
- A C-terminal defective Nkx2.5 mutant increased p300 binding and histone H4 hyperacetylation.
- p300 was identified as a cofactor that potentiates Nkx2.5 transactivation.
- p300 directly acetylates Nkx2.5 and interacts with its N-terminal domain.
- Deletion of Nkx2.5's C-terminal domain facilitates p300 binding.
Conclusions:
- p300 acts as a critical cofactor for Nkx2.5, enhancing its transcriptional activity.
- p300 overcomes the auto-inhibitory C-terminal domain of Nkx2.5.
- The Nkx2.5-p300 interaction is crucial for cardiac-specific gene expression regulation.
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