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Mechanism of Kemeng Fang's Inhibition of Podocyte Apoptosis in Rats with Membranous Nephropathy through the PI3K/AKT Signaling Pathway
Published on: August 23, 2024
PI-3 kinase-PTEN signaling node: an intercept point for the control of angiogenesis
R C Castellino1, C R Muh, D L Durden
1Department of Pediatrics, Aflac Cancer Center and Blood Disorders Services, Emory University School of Medicine, Atlanta, GA 30322, USA.
Abstract:
Angiogenesis is tightly regulated by opposing mechanisms in mammalian cells and is controlled by the angiogenic switch. Other review articles have described a central role for the PTEN/PI-3 kinase/AKT signaling node in the coordinate control of cell division, tumor growth, apoptosis, invasion and cellular metabolism [1, 2]. In this review, we focus on literature that supports the PTEN/PI-3 kinase/AKT signaling node as a major control point for the angiogenic switch in both the on and off positions. We also discuss the rationale for designing small molecule drugs that target the PTEN/PI-3 kinase/AKT signaling node for therapeutic intervention. Our hypothesis is that, instead of inhibiting one cell surface receptor, such as VEGFR2 with bevacizumab (Avastin), thereby leaving a significant number of receptors free to pulse angiogenic signals, a more effective strategy may be to regulate signaling through an intercept node where redundant cell surface receptor signals converge to transmit important signaling events within the cell. This therapeutic configuration brings coordinate control over multiple cell surface receptors in concert with a physiologic response which may combine arrest of cell cycle progression with growth inhibition and the induction of genes involved in specialized functions such as movement, which are all required for the complex process of angiogenesis to occur in a temporal-spatial paradigm.
Insights
Targeting the PTEN/PI-3 kinase/AKT pathway offers a superior strategy for controlling angiogenesis compared to single receptor inhibition. This approach regulates the angiogenic switch by intercepting converging signals for better therapeutic outcomes.
Area of Science:
- Molecular Biology
- Cellular Biology
- Oncology
Background:
- Angiogenesis is a complex process regulated by opposing mechanisms in mammalian cells, controlled by the angiogenic switch.
- The PTEN/PI-3 kinase/AKT signaling pathway is recognized for its role in cell division, tumor growth, apoptosis, invasion, and metabolism.
Purpose of the Study:
- To review literature supporting the PTEN/PI-3 kinase/AKT signaling node as a critical control point for the angiogenic switch.
- To discuss the rationale for developing small molecule drugs targeting this node for therapeutic intervention.
Main Methods:
- Literature review focusing on the PTEN/PI-3 kinase/AKT signaling pathway's role in angiogenesis.
- Analysis of therapeutic strategies targeting signaling intercept nodes versus single cell surface receptors.
Main Results:
- The PTEN/PI-3 kinase/AKT signaling node acts as a major control point for the angiogenic switch.
- Targeting this intercept node offers a more effective strategy than inhibiting single receptors like VEGFR2.
Conclusions:
- Regulating the PTEN/PI-3 kinase/AKT pathway provides coordinated control over multiple cell surface receptors.
- This approach may lead to combined effects like cell cycle arrest, growth inhibition, and induction of pro-angiogenic genes, offering a novel therapeutic strategy.
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