Search bioRxiv⌕ Search

Biology subjects

Ogino, N.

Publications and source records attributed to Ogino, N..

2 recordsLinked to original sources

Adaptation to volumetric compression drives hepatoblastoma cells to an apoptosis-resistant and invasive phenotype

Liver cancer involves tumor cells rapidly growing within a packed tissue environment. Patient tumor tissues reveal densely packed and deformed cells, especially at tumor boundaries, indicative of physical crowding and compression. It is not well understood how these physical signals modulate tumor evolution and therapeutic susceptibility. Here we investigate the impact of volumetric compression on liver cancer (HepG2) behavior. We find that conditioning cells under a highly compressed state leads to major transcriptional reprogramming, notably the loss of hepatic markers, the epithelial-to-mesenchymal transition (EMT)-like changes, and altered calcium signaling-related gene expression, over the course of several days. Biophysically, compressed cells exhibit increased Rac1-mediated cell spreading and cell-extracellular matrix interactions, cytoskeletal reorganization, increased YAP and {beta}-catenin nuclear translocation, and dysfunction in cytoplasmic and mitochondrial calcium signaling. Furthermore, compressed cells are resistant to chemotherapeutics and desensitized to apoptosis signaling. Apoptosis sensitivity can be rescued by stimulated calcium signaling. Our study demonstrates that volumetric compression is a key microenvironmental factor that drives tumor evolution in multiple pathological directions and highlights potential countermeasures to re-sensitize therapy-resistant cells. Significance statementCompression can arise as cancer cells grow and navigate within the dense solid tumor microenvironment. It is unclear how compression mediates critical programs that drive tumor progression and therapeutic complications. Here, we take an integrative approach in investigating the impact of compression on liver cancer. We identify and characterize compressed subdomains within patient tumor tissues. Furthermore, using in vitro systems, we induce volumetric compression (primarily via osmotic pressure but also via mechanical force) on liver cancer cells and demonstrate significant molecular and biophysical changes in cell states, including in function, cytoskeletal signaling, proliferation, invasion, and chemoresistance. Importantly, our results show that compressed cells have impaired calcium signaling and acquire resistance to apoptosis, which can be countered via calcium mobilization.

cancer biology↗

Neutrophils regulate ITPR2 levels in epithelia by direct injection of elastase

The destructive role of neutrophils in inflammation is well known1 but they also have less damaging effects such as tissue remodeling and modulation of metabolism2, 3. Usually, neutrophils in tissues release toxic or digestive compounds into the extracellular region4-8. Here we report that neutrophils can inject their granule contents directly into hepatocytes. Neutrophil elastase within the hepatocytes selectively degrades the inositol trisphosphate receptor (ITPR), especially the type 2 isoform which is the predominant intracellular calcium release channel in these cells9. This action reduces calcium signals and cell proliferation without cellular damage. In response, the hepatocytes increase expression of serpins E2 and A3, which block the effect of elastase. This phenomenon is also observed in liver biopsies from patients with alcoholic hepatitis, a condition characterized by infiltration of neutrophils10, 11. This non-destructive and reversible effect on hepatocytes defines a previously unappreciated role of neutrophils in transiently regulating signaling mechanisms in epithelia.

cell biology↗