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Ricci, M. M. C.

Publications and source records attributed to Ricci, M. M. C..

2 recordsLinked to original sources

The proximal lipid phase of PI3K signaling is confined to the plasma membrane

Class I phosphoinositide 3-kinases (PI3Ks) generate the lipid second messengers PIP3 and PI(3,4)P2 to control diverse cellular processes including growth, metabolism, and survival. Although these signals are classically thought to arise at the plasma membrane, several recent studies have proposed that PI3K signaling is propagated from intracellular membranes along the endocytic pathway. Here, we combined genomic tagging of endogenous PI3K pathway enzymes with single-molecule imaging and sensitive lipid biosensors to define the spatial organization of PI3K signaling in living cells. We find that PI3K catalytic subunits are recruited to the plasma membrane but do not undergo detectable endosomal translocation during receptor activation. Consistently, PIP3 and PI(3,4)P2 accumulation is restricted to the plasma membrane, despite enrichment of lipid phosphatases along the endocytic pathway. Functional perturbation experiments further show that degradation of PI(3,4)P2 occurs predominantly at the plasma membrane, indicating that both synthesis and termination of proximal lipid signals are spatially confined to this compartment. Together, these results resolve the subcellular localization of proximal PI3K signaling and support a model in which lipid second messenger production is restricted to the plasma membrane, with diversification of downstream pathway outputs occurring through redistribution of activated effector proteins rather than intracellular propagation of lipid signals.

cell biology↗

Single molecule Lipid Biosensors Mitigate Inhibition of Endogenous Effector Proteins

Genetically encoded lipid biosensors uniquely provide real time, spatially resolved kinetic data for lipid dynamics in living cells. Despite clear strengths, these tools have significant drawbacks; most notably, lipid molecules bound to biosensors cannot engage with effectors, potentially inhibiting signaling. Here, we show that although PI 3-kinase (PI3K)-mediated activation of Akt is not significantly reduced in a cell population transfected with a PH-Akt1 PIP3/PI(3,4)P2 biosensor, single cells expressing PH-Akt at visible levels have reduced activation. Tagging endogenous AKT1 with neonGreen reveals its EGF-mediated translocation to the plasma membrane. Co-transfection with the PH-Akt1 or other PIP3 biosensors eliminates this translocation, despite robust recruitment of the biosensors. Inhibition is even observed with PI(3,4)P2-selective biosensor. However, expressing lipid biosensors at low levels, comparable with those of endogenous AKT, produced no such inhibition. Helpfully, these single-molecule biosensors revealed improved dynamic range and kinetic fidelity compared with over-expressed biosensor. This approach represents a non-invasive way to probe spatiotemporal dynamics of PI3K signaling in living cells. eTOC summaryHolmes and colleagues show that AKT activation is blocked by commonly used PIP3 biosensors, but that this can be overcome by expressing biosensors at single molecule levels - which also improves kinetic fidelity and sensitivity.

cell biology↗