Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

STAT3 Protein–Protein Interaction Analysis Finds P300 as a Regulator of STAT3 and Histone 3 Lysine 27 Acetylation in Pericytes

View through CrossRef
Background: Signal transducer and activator of transcription 3 (STAT3) is a member of the cytoplasmic inducible transcription factors and plays an important role in mediating signals from cytokines, chemokines, and growth factors. We and others have found that STAT3 directly regulates pro-fibrotic signaling in the kidney. The STAT3 protein–protein interaction plays an important role in activating its transcriptional activity. It is necessary to identify these interactions to investigate their function in kidney disease. Here, we investigated the protein–protein interaction among three species to find crucial interactions that can be targeted to alleviate kidney disease. Method: In this study, we examined common protein–protein interactions leading to the activation or downregulation of STAT3 among three different species: humans (Homo sapiens), mice (Mus musculus), and rabbits (Oryctolagus cuniculus). Further, we chose to investigate the P300 and STAT3 interaction and performed studies of the activation of STAT3 using IL-6 and inhibition of the P300 by its specific inhibitor A-485 in pericytes. Next, we performed immunoprecipitation to confirm whether A-485 inhibits the binding of P300 to STAT3. Results: Using the STRING application from ExPASy, we found that six proteins, including PIAS3, JAK1, JAK2, EGFR, SRC, and EP300, showed highly confident interactions with STAT3 in humans, mice, and rabbits. We also found that IL-6 treatment increased the acetylation of STAT3 and increased histone 3 lysine acetylation (H3K27ac). Furthermore, we found that the disruption of STAT3 and P300 interaction by the P300 inhibitor A-485 decreased STAT3 acetylation and H3K27ac. Finally, we confirmed that the P300 inhibitor A-485 inhibited the binding of STAT3 with P300, which inhibited its transcriptional activity by reducing the expression of Ccnd1 (Cyclin D1). Conclusions: Targeting the P300 protein interaction with STAT3 may alleviate STAT3-mediated fibrotic signaling in humans and other species.
Title: STAT3 Protein–Protein Interaction Analysis Finds P300 as a Regulator of STAT3 and Histone 3 Lysine 27 Acetylation in Pericytes
Description:
Background: Signal transducer and activator of transcription 3 (STAT3) is a member of the cytoplasmic inducible transcription factors and plays an important role in mediating signals from cytokines, chemokines, and growth factors.
We and others have found that STAT3 directly regulates pro-fibrotic signaling in the kidney.
The STAT3 protein–protein interaction plays an important role in activating its transcriptional activity.
It is necessary to identify these interactions to investigate their function in kidney disease.
Here, we investigated the protein–protein interaction among three species to find crucial interactions that can be targeted to alleviate kidney disease.
Method: In this study, we examined common protein–protein interactions leading to the activation or downregulation of STAT3 among three different species: humans (Homo sapiens), mice (Mus musculus), and rabbits (Oryctolagus cuniculus).
Further, we chose to investigate the P300 and STAT3 interaction and performed studies of the activation of STAT3 using IL-6 and inhibition of the P300 by its specific inhibitor A-485 in pericytes.
Next, we performed immunoprecipitation to confirm whether A-485 inhibits the binding of P300 to STAT3.
Results: Using the STRING application from ExPASy, we found that six proteins, including PIAS3, JAK1, JAK2, EGFR, SRC, and EP300, showed highly confident interactions with STAT3 in humans, mice, and rabbits.
We also found that IL-6 treatment increased the acetylation of STAT3 and increased histone 3 lysine acetylation (H3K27ac).
Furthermore, we found that the disruption of STAT3 and P300 interaction by the P300 inhibitor A-485 decreased STAT3 acetylation and H3K27ac.
Finally, we confirmed that the P300 inhibitor A-485 inhibited the binding of STAT3 with P300, which inhibited its transcriptional activity by reducing the expression of Ccnd1 (Cyclin D1).
Conclusions: Targeting the P300 protein interaction with STAT3 may alleviate STAT3-mediated fibrotic signaling in humans and other species.

Related Results

Abstract 1705: 3D growth modulates the competition between STAT3 and STAT5 in breast cancer
Abstract 1705: 3D growth modulates the competition between STAT3 and STAT5 in breast cancer
Abstract Approximately 13% of women are diagnosed with invasive breast cancer. Signal Transducer and Activator of Transcription 3 (STAT3) is a transcription factor t...
Microencapsulated Escape Lysine with Tannin as an Adjuvant in Sheep Diets
Microencapsulated Escape Lysine with Tannin as an Adjuvant in Sheep Diets
The use of escape protein, which is absorbed in the small intestine, can improve the production of ruminant animals because it meets their protein requirements better. This study h...
Progress of Acetylation Modification in Plants
Progress of Acetylation Modification in Plants
Protein acetylation, a conserved post-translational modification, is collaboratively catalyzed by acetyltransferases and deacetylases and is widespread in plants. This study review...
Pericytes: Cell Biology and Pathology
Pericytes: Cell Biology and Pathology
Pericytes are perivascular cells with multifunctional activities which are now being elucidated. The functional interaction of pericytes with endothelial cells (EC) is now being es...
Abstract 1455: In vitro blood brain barrier model for evaluation of brain metastasis
Abstract 1455: In vitro blood brain barrier model for evaluation of brain metastasis
Abstract Introduction: Brain metastasis significantly reduces the patient's quality of life and survival, but there are only a few choices of treatment for brain met...
Temporal and spatial distribution of histone acetylation in mouse molar development
Temporal and spatial distribution of histone acetylation in mouse molar development
Histone acetylation is one of the most widely studied histone modification, regulating a variety of biological activities like organ development and tumorigenesis. However, the rol...
Exploring Histone Acetylation in Ischemic Stroke: The Role of CREBBP and CKAP4 as Key Biomarkers
Exploring Histone Acetylation in Ischemic Stroke: The Role of CREBBP and CKAP4 as Key Biomarkers
Abstract Background Ischemic stroke (IS) is a serious cerebrovascular disease. Excessive acetylated protein levels are linked to neuronal resistance to ischemia, making hi...
Abstract 5051: STAT3 signaling activates MSK1-mediated histone H3 phosphorylation in N-nitrosocompounds induced carcinogenesis
Abstract 5051: STAT3 signaling activates MSK1-mediated histone H3 phosphorylation in N-nitrosocompounds induced carcinogenesis
Abstract Signal transducer and activator of transcription (STATs) signaling, particularly STAT3, have been demonstrated to be one of the central pathways for cancer ...

Back to Top