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Biology subjects

Mäntylä, E.

Publications and source records attributed to Mäntylä, E..

2 recordsLinked to original sources

Progression of herpesvirus infection remodels mitochondrial organization and metabolism

Viruses target mitochondria to promote their replication, and infection-induced stress during the progression of infection leads to the regulation of antiviral defenses and mitochondrial metabolism which are opposed by counteracting viral factors. The precise structural and functional changes that underlie how mitochondria react to the infection remain largely unclear. Here we show extensive transcriptional remodeling of protein-encoding host genes involved in the respiratory chain, apoptosis, and structural organization of mitochondria as herpes simplex virus type 1 lytic infection proceeds from early to late stages of infection. High-resolution microscopy and interaction analyses unveiled infection-induced emergence of rough, thin, and elongated mitochondria relocalized at the perinuclear area, a significant increase in the number and clustering of ER-mitochondria contact sites, and thickening and shortening of mitochondrial cristae. Finally, metabolic analyses demonstrated that reactivation of ATP production is accompanied by increased mitochondrial Ca2+ content and proton leakage as the infection proceeds. Overall, the significant structural and functional changes in the mitochondria triggered by the viral invasion are tightly connected to the progression of the virus infection.

microbiology↗

Light-induced nanoscale deformation in azobenzene thin film triggers rapid intracellular Ca2+ increase via mechanosensitive cation channels

Epithelial cells are in continuous dynamic biochemical and physical interaction with their extracellular environment. Ultimately, this interplay guides fundamental physiological processes. In these interactions, cells generate fast local and global transients of Ca2+ ions, which act as key intracellular messengers. However, the mechanical triggers initiating these responses have remained unclear. Light-responsive materials offer intriguing possibilities to dynamically modify the physical niche of the cells. Here, we use a light-sensitive azobenzene-based glassy material that can be micropatterned with visible light to undergo spatiotemporally controlled deformations. The material allows mechanical stimulation of single cells or multicellular assemblies, offering unique opportunities for experimental mechanobiology. Real-time monitoring of consequential rapid intracellular Ca2+ signals reveal that Piezo1 is the key mechanosensitive ion channel generating the Ca2+ transients after nanoscale mechanical deformation of the cell culture substrate. Furthermore, our studies indicate that Piezo1 preferably responds to lateral material movement at cell-material interphase rather than to absolute topographical change of the substrate. Finally, experimentally verified computational modeling of the signaling kinetics suggests that the lateral mechanical stimulus triggers multiplexed intercellular signaling that involves Na+, highlighting the complexity of mechanical signaling in multicellular systems. These results give mechanistic understanding on how cells respond to material dynamics and deformations.

bioengineering↗