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Biology subjects

Brember, M.

Publications and source records attributed to Brember, M..

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↗

Activity of Salmonella SPI-1 inhibits the TLR4-dependent transcriptional but not translational response during macrophage infection

Changes in gene expression during bacterial infection are the combined result of altered transcription and translation, with the latter comparatively understudied. Gram-negative bacteria rapidly trigger cytokine gene transcription in macrophages through the activation of pathogen associated molecular pattern receptors, for example detection of Salmonella lipopolysaccharide (LPS) from the bacterial cell envelope by Toll-like receptor 4 (TLR4). Here, through time-resolved parallel translatomic and transcriptomic profiling, we now show temporal TLR4-specific translational upregulation of cell signalling proteins in macrophages induced by Salmonella. While transcriptional upregulation of these genes is dampened through the activity of the Salmonella SPI-1 type three secretion system, a robust translational response remains. These data reveal an important host-pathogen translational regulatory network that modifies the innate immune response of macrophages to infection.

molecular biology↗

Salmonella impairs macrophage immunity through effector-independent rapid translational induction in response to membrane puncture by the SPI-1 injectisome

During bacterial infection both the host cell and its invader must divert intracellular resources to synthesise specific proteins in a timely manner. For the host, these factors may be needed for innate immune responses, including programmed cell death, and in the bacteria newly synthesized proteins may be survival factors needed to counteract host responses. Salmonella is an important food-borne bacterial pathogen that invades and multiplies within host cells. It is well established that invasion of epithelial cells is dependent upon the SPI-1 Type III injectisome, a biological needle that penetrates and secretes effectors into host cells to promote internalization. However, the importance of the SPI-1 injectisome in infection of professional phagocytes such as macrophages, which are the predominant host cell type during systemic infection, is less clear. Through time resolved parallel transcriptomic and translatomic studies of macrophage infection, we revealed that SPI-1 injectisome-dependent infection of macrophages triggers rapid translation of transcription factor mRNAs, including Early Growth Response 1 (Egr1). Despite the short half-life of EGR1 protein, its swift synthesis within the initial hour of infection is sufficient to inhibit transcription of pro-inflammatory genes and thereby restrain inflammatory responses and programmed cell death within the first hour of during early infection. This transient period of inflammatory suppression in macrophages is exploited by Salmonella to establish infection and sheds new insight on the importance of translational activation in host-pathogen dynamics during Salmonella infection.

molecular biology↗