A. Neupane, J. W. Wollman, J. Donahoe, B. Pradhan, J. J. Balster, S. Poudel, K. Waniarachchi, A. D. Hoppe, J. A. Swanson, B. L. Scott, N. W. Thiex
Macrophage macropinocytosis contributes to wound healing, antigen presentation, and resolution of inflammation. Macropinocytosis also facilitates nutrient uptake and growth in macrophages, T cells, and cancer cells. Here, CRISPR/Cas9 whole-genome screens in murine bone-marrow derived macrophages (BMDM) identified genes regulating unstimulated, PMA-, and CSF1-stimulated uptake of the fluorescent pinocytosis solute tracer, Lucifer yellow. UVRAG and other members of VPS34 complex II (VPS34-II), which catalyze PI(3)P formation from phosphatidylinositol, were identified as positive regulators of macropinocytosis. Targeted gene disruption of Uvrag and Pik3r3 revealed that VPS34-II is required for efficient macropinocytosis with Uvrag-disrupted BMDM having fewer but larger macropinosomes. In contrast, depletion of ATG14, a unique component of VPS34 complex I, increased solute uptake and the number of macropinosomes. Live-cell imagining of macrophages expressing 2xFYVE-fluorescent protein fusions showed PI(3)P present on the plasma membrane, nascent macropinosomes, and endosomes. The presence of PI(3)P on the plasma membrane prior to macropinocytic cup closure, indicates a novel role on the plasma membrane. Quantitative imaging of fixed cells shows a decrease in concentration of PI(3)P in Uvrag-disrupted BMDMs while increase in concentration of PI(3)P in Atg14-disrupted BMDM compared to WT BMDMs. Treatment with the VPS34 inhibitor SAR-405 acutely decreased macropinocytosis but maintained AKT phosphorylation suggesting class I PI3K activity and PI(3,4,5)P3 production are independent of class III PI3K activity. These results suggest that PI(3)P is a key phosphoinositide governing macropinocytosis at the plasma membrane and that it is primarily formed via direct phosphorylation of PI rather than via the sequential dephosphorylation of PIP3.