Search bioRxiv⌕ Search

Biology subjects

Ramponi, V.

Publications and source records attributed to Ramponi, V..

2 recordsLinked to original sources

Persister cancer cells are characterized by H4K20me3 heterochromatin that defines a low inflammatory profile

Anti-cancer therapies may induce proliferative arrest in cancer cells in the form of senescence or drug-tolerant persistency, the latter being a reversible arrest with similarities to embryonic diapause. Here, we use mTOR/PI3K inhibition to develop and characterize a model of persistency/diapause-like arrest in human cancer cells of various origins. We show that persister and senescent cancer cells share an expanded lysosomal compartment and hypersensitivity to BCL-XL inhibition. However, persister cells do not exhibit other features of senescence, such as the loss of Lamin B1, senescence-associated b-galactosidase activity, and an inflammatory phenotype. Compared to senescent cells, persister cells have a profoundly diminished senescence-associated secretory phenotype (SASP), low activation of interferon signaling pathways and lack upregulation of MHC-I presentation. Based on a genome-wide CRISPR/Cas9 screen performed in diapause mouse embryonic stem cells (mESC), we discover that persister human cancer cells are hypersensitive to the inhibition of one-carbon metabolism. This finding led us to uncover that the repressive heterochromatic mark H4K20me3 is enriched at promoters of SASP and interferon response genes in persister cells, but not in senescent cells. Collectively, we define novel features and vulnerabilities of persister cancer cells and we provide insight into the epigenetic mechanisms underlying their low inflammatory and immunogenic activity.

cancer biology↗

A primordial TFEB-TGFβ signaling axis systemically regulates diapause and stem cell longevity

Fasting/refeeding enhances animal health and lifespan across taxa. C. elegans can endure months of fasting in adult reproductive diapause (ARD) and upon refeeding, regenerate and reproduce. hlh-30/TFEB is an ARD master regulator whose mutants live mere days in ARD and dont recover with refeeding. Here we find that downregulation of TGF{beta} signaling bypasses hlh-30 collapse, and restores recovery, germline stem cell proliferation and reproductive competence. Upon fasting, HLH-30/TFEB(+) downregulates TGF{beta} in sensory neurons, to inhibit Notch and promote reproductive quiescence in the germline. Upon refeeding, these pathways are upregulated to activate stem cells and promote reproduction. hlh-30 loss induces a senescent-like DNA damage, immune and growth metabolic signature reversed by inhibiting TGF{beta} signaling. TFEBs role is conserved in mammalian diapause models, including mouse embryonic and human cancer diapause. Thus, TFEB-TGF{beta} axis relays systemic signals matching nutrient supply with growth signaling, to regulate stem cell longevity, senescence and regeneration across species.

cell biology↗