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Merlet, L.

Publications and source records attributed to Merlet, L..

2 recordsLinked to original sources

The Kinase CK1α coordinates Initiation and Termination of the cGAS-STING Pathway

The cGAS-STING pathway is an evolutionarily conserved antimicrobial defense mechanism that senses cytosolic DNA to trigger innate immune responses. cGAS and STING play dual roles in tumorigenesis, promoting antitumor immunity and cell death while fueling tumor growth and metastasis. However, the mechanisms fine-tuning this pathway remain elusive. Using proteomic approaches, we report that Casein Kinase 1 alpha (CK1) operates as a bimodal regulator of the cGAS-STING pathway. CK1 supports optimal DNA sensing by preventing the proteasomal degradation of cGAS driven by the cullin-RING ubiquitin ligase 3 (CRL3). Conversely, CK1 facilitates STING degradation and signaling termination in response to STING agonists, tempering IRF3 activation. Exploiting these counterposing functions, we show that selective degradation of CK1 with molecular-glue degraders impaired the survival of a triple-negative breast cancer cell line with chronic cGAS-STING activation and synergized with a STING agonist to kill acute myeloid leukemia cells. Thus, CK1s dual regulatory role in the cGAS-STING pathway presents a promising target for therapeutic development. TEASERThis study unveils CK1 as a bimodal regulator of the cGAS-STING pathway.

immunology↗

The paracaspase MALT1 controls cholesterol homeostasis in glioblastoma stem-like cells through lysosome proteome shaping

Glioblastoma stem-like cells (GSCs) compose a tumor-initiating and -propagating population, remarkably vulnerable to any variation in the stability and integrity of the endolysosomal compartment. Previous work showed that the expression and activity of the paracaspase MALT1 control GSC viability via lysosomal abundance. However, the underlying mechanisms remain elusive. By combining RNAseq with proteome-wide label-free quantification, we now report that MALT1 repression in patient-derived GSCs alters the cholesterol homeostasis, which aberrantly accumulates in lysosomes. This failure in cholesterol supply culminates in cell death and autophagy defects, which can be partially reverted by providing exogenous membrane-permeable cholesterol to GSCs. From a molecular standpoint, targeted lysosome proteome analysis unraveled that NPC lysosomal cholesterol transporters were exhausted when MALT1 was held in check. Accordingly, we found that hindering NPC1 and NPC2 phenocopies MALT1 inhibition. This supports the notion that GSC fitness relies on lysosomal cholesterol homeostasis.

cancer biology↗