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Jamard, C.

Publications and source records attributed to Jamard, C..

2 recordsLinked to original sources

Atypical contribution of caspase-3 to melanoma cancer cell motility by regulation of coronin 1B activity

Recent studies have unveiled unexpected connections between cell death and cell motility. While traditionally recognized for their pro-apoptotic roles, caspases have emerged as regulators of physiological processes beyond cell death, including cellular differentiation and motility. In some particularly aggressive cancers like melanoma, caspase-3, a prominent executioner caspase, is unexpectedly and inexplicably highly expressed. Here, we describe a novel non-apoptotic role for caspase-3 in melanoma cell motility. Through comprehensive molecular and cellular analyses, we demonstrate that caspase-3 is constitutively associated with the cytoskeleton and crucially regulates melanoma cell migration and invasion in vitro and in vivo. Mechanistically, caspase-3 interacts with and modulates the activity of coronin 1B, a key regulator of actin polymerization, thereby promoting melanoma cell motility, independently of its apoptotic protease function. Furthermore, we identify specificity protein 1 (SP1) as a transcriptional regulator of CASP3 expression, and show that its inhibition reduces caspase-3 expression and impairs melanoma cell migration. Overall, this study provides insights into the multifaceted roles of caspase-3 in cancer progression, highlighting its relevance as a novel target for anti-metastatic therapies.

cancer biology↗

Lysosomal MLKL is balanced by ESCRT to control cell death

Mixed lineage kinase-like (MLKL) is activated by RHIM-domain containing kinase (RIPK)3 to permeabilize the plasma-membrane and execute necroptosis, a form of regulated necrosis. We found that MLKL is activated in an atypical, RIPK3- and necroptosis-independent manner downstream of Toll-like receptor 3, resulting in its translocation to lysosomes and lysosomal membrane permeabilization. Damaged lysosomes then undergo exocytosis, leading to the integration of lysosomal MLKL into the plasma-membrane to trigger cell death. The ESCRT-machinery can repair damaged lysosomes and counteract cell death by packing lysosomal MLKL into intraluminal vesicles, which are subsequently released as extracellular vesicles. In this way, ESCRT-machinery balances life and death decisions by preventing lysosomal MLKL to reach its killing destination, which is the plasma-membrane.

cell biology↗