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Velazquez, F. N.

Publications and source records attributed to Velazquez, F. N..

3 recordsLinked to original sources

Neutral Sphingomyelinase-2 Restrains TAZ to Suppress Breast Tumor Growth

Loss of tumor suppressor gene (TSG) activity is pervasive across cancers and linked to worse clinical outcomes, yet therapeutic efforts aimed at restoring TSGs have remained elusive. One underexplored avenue to address this problem is the targeting of metabolic signaling pathways that actively enforce tumor suppressive programs. Ceramide (Cer), the central hub of the sphingolipid (SL) metabolic network, has long been thought to have tumor suppressive functions, though its mechanistic roles remain incompletely defined. Here, we identify neutral sphingomyelinase-2 (nSMase2) as a critical mediator of Cer-dependent tumor suppression. We show that nSMase2 is frequently suppressed in breast cancer (BC) and its restoration inhibits tumorigenesis. Biologically, this was linked to the suppression of anchorage-independent growth (AIG) and to restraint of the HIPPO pathway effector TAZ, but not its paralog YAP. Taken together, these findings define a previously unrecognized metabolic tumor suppressor pathway, clarify ambiguities in both SL and HIPPO signaling networks, and highlight reactivation of nSMase2-Cer signaling as a potential therapeutic strategy in BC.

cancer biology↗

A Critical Role for Neutral Sphingomyelinase-2 in Doxorubicin-induced Cardiotoxicity

Cardiotoxicity is a major side effect of Doxorubicin (Dox) that has hampered its clinical utility, and strategies to mitigate this cardiotoxicity are limited. Sphingolipids (SL) are central to the chemotherapy response in cancer but their role in normal tissue is less clear. Here, we identified the SL enzyme neutral sphingomyelinase-2 (nSMase2) as a critical mediator of chronic Dox-induced cardiotoxicity, establishing nSMase2 as a key downstream effector of Dox in cardiomyocytes (CM) and showing that in vivo loss of nSMase2 activity is protecting against chronic Dox-induced cardiac damage and dysfunction. Biologically, these studies link nSMase2 with Dox-induced CM senescence both in vitro and in vivo and identify the dual specificity phosphatase DUSP4 as a novel effector of nSMase2 in the Dox response. In addition to cementing a role for SL metabolism in Dox effects in normal tissue, this study advances nSMase2 as a target of interest for cardioprotection.

cell biology↗

Deoxysphingolipids activate cGAS-STING in colon cancer cells and enhance tumor immunity

Deoxysphingolipids (deoxySLs) are a class of non-canonical sphingolipids that can adversely impact mitochondrial function. Mitochondrial disruption can activate the cyclic GMP-AMP synthase-stimulator of interferon genes (cGAS-STING1) pathway, and in turn, promote antitumor immunity. Here, we investigated whether inducing deoxySL accumulation in colon cancer cells drives immune-specific, antitumor effects. We show that depleting serine increased deoxySLs and enhanced immune cell infiltration in colon tumors, in parallel with suppressing tumor growth. Elevating tumor deoxySL levels through mutation of SPT in cells and feeding a high alanine diet to mice exerted similar effects, including immune-mediated tumor growth suppression. Work conducted in multiple in vitro systems identified deoxySLs as key triggers of cGAS-STING1 activation, an effect mediated by mitochondrial release of double-stranded DNA resulting from mitochondrial stress. Collectively, these findings provide the first evidence that deoxySLs can drive antitumor immunity and identify a previously unrecognized metabolic strategy for cancer therapy.

cancer biology↗