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Biology subjects

Desiderio, V.

Publications and source records attributed to Desiderio, V..

2 recordsLinked to original sources

Cancer cells adapt FAM134B-BiP complex mediated ER-phagy to survive hypoxic stress

In a tumor microenvironment cancer cells experience hypoxia resulting in the accumulation of misfolded/unfolded proteins in the endoplasmic reticulum (ER) which elicit unfolded protein response (UPR) as an adaptive mechanism. UPR activates autophagy enabling the degradation of misfolded/unfolded proteins. More recently, ER-specific autophagy has been implicated in the removal of damaged ER and restoration of ER-homeostasis. Our investigations reveal that during hypoxia induced ER-stress, the ER-phagy receptor FAM134B targets damaged portions of ER into autophagosomes to restore ER-homeostasis in cancer cells. Loss of FAM134B in breast cancer cells results in increased ER-stress and reduced cell proliferation. Mechanistically, upon sensing hypoxia activated proteotoxic stress, the ER chaperone BiP forms a complex with FAM134B and promotes ER-phagy. Our studies have further led to the identification of a pharmacological agent vitexin that disrupts FAM134B-BiP complex thereby inhibits ER-phagy and suppresses breast cancer progression in vivo.

cancer biology↗

S. Typhimurium impairs glycolysis-mediated acidification of phagosomes to evade macrophage defense

Regulation of the cellular metabolism is now recognized as a crucial mechanism for the homeostasis of innate and adaptive immune cells upon diverse extracellular stimuli. Macrophages, for instance, increase glycolysis upon stimulation with pathogen-associated molecular patterns (PAMPs). Conceivably, pathogens also counteract these metabolic changes for their own survival in the host. However, despite this dynamic interplay in host-pathogen interactions, the role of immunometabolism in the context of intracellular bacterial infections is still unclear. Here, employing unbiased metabolomic and transcriptomic approaches, we investigated the role of metabolic adaptations of macrophages upon Salmonella enterica serovar Typhimurium (S. Typhimurium) infections. Importantly, our results suggested that S. Typhimurium abrogates glycolysis and its modulators such as insulin-signaling to impair macrophage defense. Mechanistically, glycolytic enzyme aldolase A is critical for v-ATPase assembly and the acidification of phagosomes upon S. Typhimurium infection, and impairment in the glycolytic machinery eventually leads to decreased bacterial clearance and antigen presentation in macrophages. Collectively, our results highlight a vital molecular link between metabolic adaptation and phagosome maturation in macrophages, which is targeted by S. Typhimurium to evade cell-autonomous defense.

microbiology↗