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Chan, O.

Publications and source records attributed to Chan, O..

3 recordsLinked to original sources

Toxoplasma strikes preemptively to swiftly suppress macrophage immune response during active infection

The apicomplexan parasite Toxoplasma gondii is known to manipulate its host in multiple ways, ranging from proteins secreted into the host cell to hormone balance disruption and behavioral changes. Host immune system is crucial in managing the outcome with macrophages as part of the first line of defense. However, the initial triggers that ultimately result in characteristic complex responses and, at times, health hazards, remain poorly understood. This study focuses on filling the gaps in our knowledge of acute transcriptomic changes taking place in a mouse macrophage T. gondii infection model. We performed time-resolved transcriptomic profiling to simultaneously capture host and parasite gene expression profiles during the course of infection, focusing on the initial time frame of fifteen to 120 minutes, a crucial window for the host to activate innate immunity but also for the parasite to establish within the host macrophage. Further, utilization of inactivated parasite stimulation enabled dissection of transcriptomic response to active parasite infection from innate immune responses. Here, we observed that macrophages upregulate transcripts encoding suppressors of cytokine signaling by 30 minutes, specific to live parasite infection. Additionally, both pro-growth and stress marker genes were dysregulated. Concurrently, transcriptional response of T. gondii was milder in magnitude, with initial changes pointing at increasing transcription and growth capacity, followed by a delayed transcriptional response pertaining to secreted proteins. Taken together, these results demonstrate that macrophages mount a rapid transcriptional response upon active invasion by T. gondii. In contrast, the delayed transcriptional activation in the invading Toxoplasma highlights its reliance on alternative regulatory mechanisms to establish its replicative niche within the host. Author summaryToxoplasma gondii, a eukaryotic intracellular parasite, is often regarded as one of the most globally successful parasites because it can infect virtually any warm-blooded animal. It uses a repertoire of secretory proteins to gain a foothold in a host cell, often resulting in a dormant infection in vivo due to sufficient immune suppression. However, the timing of the signaling events as Toxoplasma invades is not yet fully understood. In this work we implement our user-friendly transcriptomic method to simultaneously capture T. gondii and murine macrophage protein-coding RNA contents over a time course to track cellular responses during infection. In particular, we focus on the first 2 hours of infection, a time window where the initial transcriptomic changes within macrophage are generally expected to take place and potentially define further course of infection. Our analysis reveals a robust host macrophage immune response and a moderate more gradual T. gondii response. These findings complement the currently existing picture of all the cellular regulation layers involved in Toxoplasma-macrophage interaction.

microbiology↗

A dynamic redox switch turns TRC40 into a chaperone protecting human cells against ATP-depleting, oxidative stress

Oxidative stress represents a major challenge for cellular proteostasis. The accumulation of reactive oxygen species, such as hydrogen peroxide, impairs the fidelity of protein biosynthesis and causes non-specific oxidative protein modifications and aggregation. This situation is further aggravated by the oxidative stress-mediated drop in cellular ATP levels, which reduces the activity of ATP-dependent chaperones and proteases. We now demonstrate that to cope with oxidative unfolding stress, human cells rely on the moonlighting function of TRC40, which turns from an ATP-dependent targeting factor into an ATP-independent chaperone upon oxidation. Controlled by a highly conserved redox switch, oxidized TRC40 forms chaperone-active tetramers and high-molecular complexes which prevent the aggregation of unfolding proteins. Acute oxidative stress leads to the reversible formation of distinct TRC40 foci, associated with the canonical chaperones Hsp70 and Hsp110, suggesting a role of these stress-induced structures in recovering and sorting aberrant proteins. Consistently, we discovered that TRC40 is essential upon ATP-depleting, oxidative stress conditions to counteract the accumulation of mis- and unfolded proteins, which are rapidly cleared in an TRC40-dependent manner. Our data reveal that TRC40 is an integral part of protein quality control and support its role as a triaging factor in cellular proteostasis.

cell biology↗

A Novel Subtype of Myeloproliferative Neoplasms Driven by a MYC-Alarmin Axis

Despite advances in understanding the genetic abnormalities in myeloproliferative neoplasms (MPNs) and the development of JAK2 inhibitors, there is an urgent need to devise new treatment strategies, particularly for triple negative myelofibrosis (MF) patients whose MPNs lack mutations in the JAK2 kinase pathway and have very poor clinical outcomes. Here we report that MYC copy number gain and increased MYC expression frequently occur in triple negative MF, and that MYC-directed activation of S100A9, an alarmin protein that plays pivotal roles in inflammation and innate immunity, is necessary and sufficient to drive development and progression of MF. Notably, the MYC-S100A9 circuit provokes a complex network of inflammatory signaling that involves various hematopoietic cell types in the bone marrow microenvironment. Accordingly, genetic ablation of S100A9 or treatment with small molecules targeting the MYC-S100A9 pathway effectively ameliorates MF phenotypes, highlighting the MYC-alarmin axis as a novel therapeutic vulnerability for this subgroup of MPNs. SIGNIFICANCEThis study establishes that MYC expression is increased in triple negative MPNs via trisomy 8, that a MYC-S100A9 circuit manifest in these cases is sufficient to provoke myelofibrosis and inflammation in diverse hematopoietic cell types in the BM niche, and that the MYC-S100A9 circuit is targetable in triple negative MPN.

cancer biology↗