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Centofanti, E.

Publications and source records attributed to Centofanti, E..

3 recordsLinked to original sources

Deep learning-based image classification reveals heterogeneous execution of cell death fates during viral infection

Cell fate decisions, such as proliferation, differentiation, and death, are driven by complex molecular interactions and signaling cascades. While significant progress has been made in understanding the molecular determinants of these processes, historically, cell fate transitions were identified through light microscopy that focused on changes in cell morphology and function. Modern techniques have shifted towards probing molecular effectors to quantify these transitions, offering more precise quantification and mechanistic understanding. However, challenges remain in cases where the molecular signals are ambiguous, complicating the assignment of cell fate. During viral infection, programmed cell death (PCD) pathways, including apoptosis, necroptosis, and pyroptosis, exhibit complex signaling and molecular crosstalk. This can lead to simultaneous activation of multiple PCD pathways, which confounds assignment of cell fate based on molecular information alone. To address this challenge, we employed deep learning-based image classification of dying cells to analyze PCD in single Herpes Simplex Virus-1 (HSV-1)-infected cells. Our approach reveals that despite heterogeneous activation of signaling, individual cells adopt predominantly prototypical death morphologies. Nevertheless, PCD is executed heterogeneously within a uniform population of virus-infected cells and varies over time. These findings demonstrate that image-based phenotyping can provide valuable insights into cell fate decisions, complementing molecular assays.

systems biology↗

Synergy Between TNFα and Proteostatic Stress Drives Cell Death and Guard Immunity

The production and sensing of type I interferons (IFN-I) are critical for antiviral defense, yet most virus-infected cells do not produce IFN-I or upregulate IFN-stimulated genes. Using quantitative proteomics and global protein synthesis measurements, we show that productive viral infection globally down-regulates protein synthesis, restricting the IFN response. Guard immunity, which responds to disruptions in essential cellular processes, might compensate for the lack of IFN-I response by rapidly killing infected cells. However, non-pathological stressors can also disrupt proteostasis, making it unclear how cells decide to trigger guard immunity. We hypothesized that TNF, produced by macrophages, provides a contextual signal allowing specificity. Using live-cell fluorescence microscopy and mathematical modeling, we showed that TNF synergizes with the rapid decay of the anti-apoptotic protein c-FLIP to induce cell death and prevent viral spread. Our findings demonstrate that TNF contextualizes proteostasis loss as non-sterile, enabling the activation of guard immunity to counteract viral infection.

immunology↗

The Spread of Interferon-γ in Melanomas is Highly Spatially Confined, Driving Non-Genetic Variability in Tumor Cells

Interferon-{gamma} (IFN{gamma}) is a critical anti-tumor cytokine that has varied effects on different cell types. The global effect of IFN{gamma} in the tumor depends on which cells it acts upon and the spatial extent of its spread. Reported measurements of IFN{gamma} spread vary dramatically in different contexts, ranging from nearest-neighbor signaling to perfusion throughout the entire tumor. Here, we apply theoretical considerations to experiments both in vitro and in vivo to study the spread of IFN{gamma} in melanomas. We observe spatially confined niches of IFN{gamma} signaling in 3-D mouse melanoma cultures and human tumors that generate cellular heterogeneity in gene expression and alter the susceptibility of affected cells to T cell killing. Widespread IFN{gamma} signaling only occurs when niches overlap due to high local densities of IFN{gamma}-producing T cells. We measured length scales of [~]30-40m for IFN{gamma} spread in B16 mouse melanoma cultures and human primary cutaneous melanoma. Our results are consistent with IFN{gamma} spread being governed by a simple diffusion-consumption model, and offer insight into how the spatial organization of T cells contributes to intra-tumor heterogeneity in inflammatory signaling, gene expression, and immune-mediated clearance. Solid tumors are often viewed as collections of diverse cellular "neighborhoods": our work provides a general explanation for such non-genetic cellular variability due to confinement in the spread of immune mediators.

systems biology↗