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Choi, I.-W.

Publications and source records attributed to Choi, I.-W..

2 recordsLinked to original sources

Unveiling the Role of PHF20 in TBC1D4-Mediated Glucose Uptake During Toxoplasma gondii Infection

BackgroundToxoplasma gondii relies on host cell nutrients, especially glucose, to support its intracellular growth. However, the mechanisms by which it enhances host glucose metabolism remain incompletely understood. MethodsWe used fluorescence-based glucose uptake assays, flow cytometry, metabolic flux analysis, and gene silencing in ARPE-19 cells, along with transgenic mouse models, to explore how T. gondii manipulates host glucose utilization and whether this promotes parasite proliferation. ResultsT. gondii infection significantly enhanced host glucose uptake in a dose-dependent manner and promoted GLUT4 translocation to the plasma membrane. Notably, extracellular acidification rate (ECAR) assays demonstrated a marked increase in glycolytic activity following infection. Mechanistically, we identified that the PI3K/AKT signaling pathway mediates the phosphorylation and transcriptional upregulation of TBC1D4, a Rab-GAP protein essential for GLUT4 trafficking. Genetic silencing of TBC1D4 impaired both glucose uptake and parasite replication. Furthermore, we uncovered a regulatory mechanism involving AKT-dependent nuclear signaling that modulates TBC1D4 transcription. In vivo experiments using Phf20 transgenic mice confirmed increased susceptibility to T. gondii and elevated glucose metabolic responses. ConclusionsOur study reveals that T. gondii hijacks a host PI3K/AKT-TBC1D4 axis to enhance glucose uptake and glycolysis, thereby ensuring metabolic support for its proliferation. These findings highlight host glucose metabolism as a potential therapeutic target for controlling toxoplasmosis.

cell biology↗

The sodium-glucose cotransporter 2 inhibitor tofogliflozin induces vasodilation by activating Kv channels, the SERCA pump, and the sGC/cGMP pathway

OBJECTIVETofogliflozin is a sodium-glucose cotransporter 2 (SGLT2) inhibitor widely used to treat T2DM, but it also exhibits cardio-protective effects. This study investigated the vasodilatory action of tofogliflozin using rabbit femoral artery rings pre-contracted with phenylephrine. APPROACH AND RESULTSThe femoral artery quickly separated from the rabbit and fix it to the organ bath chamber. Subsequently, administer an inhibitor that modulates vascular tension in the rings or remove the endothelium to assess its impact on vasodilation. The results showed the concentration-dependent induction of vasodilation by tofogliflozin, a response that remained unchanged following endothelial removal, pretreatment with the nitric oxide synthase (NOS) inhibitor L-NAME, or the inhibition of low- and intermediate-conductance Ca2+-activated K+ channels (SKCa and IKCa) using apamin in combination with TRAM-34. Furthermore, pretreatment with the voltage-dependent K+ (Kv) channel inhibitor 4-AP reduced the vasodilatory effects of tofogliflozin whereas pretreatment with the ATP-sensitive K+ (KATP) channel inhibitor glibenclamide or the large-conductance Ca2+-activated K+ (BKCa) channel inhibitor paxilline did not. Notably, our findings indicated that Kv7.X, rather than Kv1.5 or Kv2.1, is the primary Kv subtype involved in tofogliflozin-induced vasodilation. The vasodilatory effects of tofogliflozin were also significantly inhibited in femoral arterial rings pretreated with the sarco/endoplasmic reticulum Ca2+-ATPase (SERCA) pump inhibitors thapsigargin and cyclopiazonic acid (CPA). Tofogliflozin-induced vasodilation was unaltered in arterial rings exposed to the adenylyl cyclase inhibitor SQ 22536, the protein kinase A (PKA) inhibitor KT 5720, and the protein kinase G (PKG) inhibitor KT 582 whereas it was effectively reduced by the soluble guanylyl cyclase (sGC) inhibitor ODQ. CONCLUSIONSThese findings suggest that tofogliflozin-induced vasodilation is mediated by the activation of the SERCA pump, the sGC/cGMP pathway, and Kv channels, but not the PKA signaling pathway, other K+ channels, or endothelium-dependent mechanisms.

pharmacology and toxicology↗