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In Vivo Imaging and Quantitation of the Host Angiogenic Response in Zebrafish Tumor Xenografts
Published on: August 14, 2019
Fine-Tuning of Pten Localization and Phosphatase Activity Is Essential for Zebrafish Angiogenesis
Miriam Stumpf1, Sasja Blokzijl-Franke1, Jeroen den Hertog1,2
1Hubrecht Institute-Koninklijke Nederlandse Akademie van Wetenschappen (KNAW) and University Medical Center Utrecht, Utrecht, The Netherlands.
Abstract:
The lipid- and protein phosphatase PTEN is an essential tumor suppressor that is highly conserved among all higher eukaryotes. As an antagonist of the PI3K/Akt cell survival and proliferation pathway, it exerts its most prominent function at the cell membrane, but (PIP3-independent) functions of nuclear PTEN have been discovered as well. PTEN subcellular localization is tightly controlled by its protein conformation. In the closed conformation, PTEN localizes predominantly to the cytoplasm. Opening up of the conformation of PTEN exposes N-terminal and C-terminal regions of the protein that are required for both interaction with the cell membrane and translocation to the nucleus. Lack of Pten leads to hyperbranching of the intersegmental vessels during zebrafish embryogenesis, which is rescued by expression of exogenous Pten. Here, we observed that expression of mutant PTEN with an open conformation rescued the hyperbranching phenotype in pten double homozygous embryos and suppressed the increased p-Akt levels that are characteristic for embryos lacking Pten. In addition, in pten mutant and wild type embryos alike, open conformation PTEN induced stalled intersegmental vessels, which fail to connect with the dorsal longitudinal anastomotic vessel. Functional hyperactivity of open conformation PTEN in comparison to wild type PTEN seems to result predominantly from its enhanced recruitment to the cell membrane. Enhanced recruitment of phosphatase inactive mutants to the membrane did not induce the stalled vessel phenotype nor did it rescue the hyperbranching phenotype in pten double homozygous embryos, indicating that PTEN phosphatase activity is indispensable for its regulatory function during angiogenesis. Taken together, our data suggest that PTEN phosphatase activity needs to be carefully fine-tuned for normal embryogenesis and that the control of its subcellular localization is a key mechanism in this process.
Insights
PTEN protein conformation controls its cell membrane recruitment and nuclear localization, impacting cell survival pathways. Fine-tuning PTEN activity and localization is crucial for normal embryonic development and angiogenesis.
Area of Science:
- Molecular Biology
- Developmental Biology
- Cell Biology
Background:
- PTEN is a crucial tumor suppressor and antagonist of the PI3K/Akt pathway.
- PTEN's function is linked to its subcellular localization, controlled by protein conformation.
- Nuclear PTEN functions exist alongside its well-known membrane-associated roles.
Purpose of the Study:
- To investigate the role of PTEN conformation and subcellular localization in zebrafish embryogenesis.
- To determine if an open PTEN conformation can rescue Pten deficiency phenotypes.
- To elucidate the importance of PTEN phosphatase activity in angiogenesis.
Main Methods:
- Utilized zebrafish models with Pten deficiency and expression of wild-type and mutant PTEN.
- Analyzed intersegmental vessel development and AKT phosphorylation levels.
- Assessed PTEN recruitment to the cell membrane and its phosphatase activity.
Main Results:
- Open conformation PTEN rescued Pten deficiency-induced hyperbranching and suppressed elevated p-Akt levels.
- Open conformation PTEN induced stalled intersegmental vessels in both mutant and wild-type embryos.
- PTEN phosphatase activity is essential for rescuing hyperbranching and regulating vessel development.
Conclusions:
- PTEN's conformation dictates its subcellular localization and functional activity.
- Controlled PTEN phosphatase activity and membrane recruitment are vital for proper angiogenesis.
- Subcellular localization is a key regulatory mechanism for PTEN during embryogenesis.

