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Chien, K.-Y.

Publications and source records attributed to Chien, K.-Y..

3 recordsLinked to original sources

HSPB8 regulates CTP synthase filaments to couple nucleotide metabolism and autophagy in tumors

Metabolic adaptation and proteostasis are essential for tumor survival under nutrient stress, yet how these processes are mechanistically integrated remains unclear. Here, we identify CTP synthase (CTPS) filament dynamics as a regulatory nexus linking nucleotide metabolism to autophagic flux. Under glutamine deprivation--a hallmark of poorly vascularized solid tumors--CTPS undergoes polymerization into filamentous assemblies that exhibit reduced enzymatic activity. We demonstrate that filament formation is driven by intracellular asparagine availability and stabilized by the accumulation of misfolded proteins. Using APEX2-based proximity labeling and proteomics, we identify the small heat shock protein HSPB8 as a filament-associated regulator. HSPB8, acting within the chaperone-assisted selective autophagy (CASA) pathway, antagonizes CTPS polymerization by promoting clearance of misfolded proteins, thereby restoring soluble, catalytically active CTPS. Filament disassembly increases CTP production and enhances synthesis of autophagy-related phospholipids, including phosphatidylinositol and phosphatidylethanolamine, resulting in accelerated autophagic flux. Cells expressing filament-deficient CTPS mutants display elevated autophagosome formation and increased LC3-II accumulation upon lysosomal blockade, confirming enhanced flux. In vivo, disruption of CTPS filament assembly impairs xenograft tumor growth and is associated with excessive autophagy. Analysis of TCGA datasets further reveals that high CTPS and low HSPB8 expression correlate with poor patient survival across multiple cancers. Collectively, our findings establish CTPS filament dynamics as a proteostasis-sensitive metabolic switch that coordinates nucleotide biosynthesis with autophagy, revealing a previously unrecognized vulnerability in tumors adapting to nutrient limitation.

cell biology↗

Hemodynamic Characteristics of Acute Hypersensitivity Reaction Induced by PEGylated Nanocomposite in Rats: Mechanism at the Nano-Bio Interface

BackgroundPolyethylene glycol (PEG)-modified nanocomposites may induce acute hypersensitivity reactions (HSR), including complement activation and hypotension, followed by tachyphylaxis with an unknown mechanism. We established a rodent model of acute HSR, and hypothesized that the formation of protein corona with a composition specific to PEGylated nanoparticles induces an acute and transient microvascular occlusion that entrains the hemodynamic effects. MethodsHemodynamic parameters of renal and cremaster vasculature were measured in anesthetized rats using ultrasonic flowmetry and laser speckle contrast imaging, respectively. Proteomic analysis on the hard corona of dextran-coated magnetic nanoparticles (MNP) with and without PEGylation was conducted after incubation of the nanoparticles with plasma from rats. ResultsPEG-MNP iv. induced a temporary reduction by approximately 30 mmHg in arterial pressure, with significant reduction in renal/cremaster blood flow and cardiac output, followed by tachyphylaxis and thrombocytopenia. PEG-MNP, but not pristine MNP, significantly increased renal vascular resistance with a reduction in the calculated cross-sectional area of renal vessels, suggesting microvascular occlusion. In contrast, the vasodilator acetylcholine decreased both blood pressure and vascular resistance before and after administration of PEG-MNP, suggesting an intact endothelium. Complement depletion by cobra venom factor induced a transient reduction in blood flow and prevented PEG-MNP-induced hemodynamic effects, suggesting an important role of complement activation. Proteomic analysis identified much higher complement proteins in the hard corona of PEG-MNP vs. MNP in plasma from rats; preexposure of rats to PEG-MNP or MNP in vivo greatly reduced plasma proteins with high affinity for PEG-MNP. The results suggest that complement depletion may mediate tachyphylaxis in response to the 2nd dose of PEG-MNP. ConclusionPEGylated nanocomposites-induced complement activation in the protein corona may trigger the hemodynamic effects and subsequent pathophysiological responses in HSR of rats. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=150 SRC="FIGDIR/small/642931v1_ufig1.gif" ALT="Figure 1"> View larger version (76K): org.highwire.dtl.DTLVardef@1554185org.highwire.dtl.DTLVardef@40b9d0org.highwire.dtl.DTLVardef@1671c5borg.highwire.dtl.DTLVardef@76dbb5_HPS_FORMAT_FIGEXP M_FIG C_FIG PEGylated magnetic nanoparticles (PEG-MNPs)-induced complement activation and platelet aggregation mediate the systemic increase in resistance of microvessels in rats.

pharmacology and toxicology↗

The evolution and structure of snake venom phosphodiesterase (svPDE) highlight its importance in venom actions

For decades, studies of snake venoms focused on the venom-ome-specific toxins (VSTs). VSTs are dominant soluble proteins believed to contribute to the main venomous effects and emerged into gene clusters for fast adaptation and diversification of snake venoms. However, the conserved minor venom components, such as snake venom phosphodiesterase (svPDE), remain largely unexplored. Here, we focus on svPDE by genomic and transcriptomic analysis across snake clades and demonstrate that soluble svPDE is co-opted from the ancestral membrane-attached ENPP3 (ectonucleotide pyrophosphatase/phosphodiesterase 3) gene by replacing the original 5 exon with the exon encoding a signal peptide. Notably, the exons, promoters and transcription/translation starts have been replaced multiple times during snake evolution, suggesting the evolutionary necessity of svPDE. The structural and biochemical analyses also show that svPDE shares the similar functions with ENPP family, suggesting its perturbation to the purinergic signaling and insulin transduction in venomous effects. Significance StatementWe provided a case of the evolutionary co-option strategy in which the secretory svPDE, one of the minor venom components, is generated from the ancestral membrane-anchored ENPP3 gene by using an alternative 5 exon. The first exon of the svPDE transcript encodes a signal peptide instead of the transmembrane domain of the ENPP3. Multiple replacement events of genomic elements during snake evolution maintain the expression of the svPDE transcripts, suggesting the crucial function of svPDE. Also, the structures and biochemical analyses indicate that svPDE reuse the original functions of ENPP3 in the bitten tissues and may interfere with normal cell signaling. Together, our study reveals the evolution of svPDE and suggests the importance of minor venom components.

evolutionary biology↗