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Biology subjects

Sherman, J. W.

Publications and source records attributed to Sherman, J. W..

2 recordsLinked to original sources

LSD1 Performs Demethylase-Independent and Context-Specific Roles in Ewing Sarcoma

Lysine specific demethylase 1 (LSD1), encoded by the gene KDM1A, is overexpressed and correlates with poor patient prognosis in Ewing sarcoma. LSD1 and the pathognomonic fusion oncoprotein, EWSR1::FLI1, colocalize throughout the genome, suggesting LSD1 is a critical co-regulator driving the progression of Ewing sarcoma. However, therapeutic targeting of LSD1 by competitive and noncompetitive inhibitors has yielded mixed results. Irreversible, enzymatic inhibition seems ineffective, but reversible noncompetitive inhibition has predominant off target mechanisms, leaving open the question of LSD1 function in Ewing sarcoma. Here we take a robust approach through multiple methods of depletion in multiple EwS cell lines to define enzymatic and nonenzymatic contributions of LSD1 to transcriptional regulation. We define a core set of 22 genes that are commonly repressed by LSD1 in all cell lines, and that repression of these genes downregulates synapse functioning and e-cadherin target genes. Derepression of these genes with LSD1 loss is an early and sustained genotype in all cell lines tested. We further define distinct gene sets in each cell line that are regulated by enzymatic and nonenzymatic LSD1 activity and find repression of e-cadherin target genes to be nonenzymatically regulated. This finding supports the growing body of evidence that in addition to their canonical catalytic activity, chromatin regulatory enzymes serve essential noncanonical roles as well. Furthermore, we uncovered evidence through use of the irreversible inhibitor OG-L002 that 2D cytotoxicity and proliferation assays may be insufficient to determine Ewing sarcoma response to LSD1 inhibition. SIGNIFICANCEHere we address a long-standing question in the field surrounding LSD1 and define the distinct enzymatic and nonenzymatic functions of LSD1 in Ewing sarcoma. In doing so, we have created a robust data set using genetic and pharmacological techniques in multiple models to thoroughly characterize LSD1 function in Ewing sarcoma cell lines.

cancer biology↗

N'-(1-phenylethylidene)-benzohydrazide cytotoxicity is LSD1 independent and linked to Fe-S cluster disruption in Ewing sarcoma

The noncompetitive LSD1 inhibitors SP-2509 and SP-2577 are N-(1-phenylethylidene)-benzohydrazides that display potent activity in Ewing sarcoma. They block transcriptional regulation of the causative oncogenic fusion protein, EWSR1::FLI1, and cause cell death. However, SP-2509 and SP-2577 are the only LSD1 inhibitors active in Ewing sarcoma; other LSD1 inhibitors have little effect. Studies from our group and others suggest SP-2509 activity may result from off-target activity affecting the mitochondria. Here we identified potential off-target mechanisms of N-(1-phenylethylidene)-benzohydrazides using an unbiased approach, cellular thermal shift assay coupled to mass spectrometry (CETSA-MS). Interestingly, this revealed significant destabilization of the electron transport chain complex III protein ubiquinol-cytochrome c reductase (UQCRFS1). We find that UQCRFS1 destabilization is likely linked to impaired iron-sulfur (Fe-S) cofactor binding, and that SP-2509 broadly destabilizes cellular Fe-S proteins. Using both chemical and genetic tools, we show that SP-2509 mediated cell death is LSD1 independent and instead requires a N-(2-hydroxybenzylidene)hydrazide. Our studies suggest this core moiety alters iron metabolism in the cell. Importantly, we also find that the reversal of EWSR1::FLI1 transcriptional regulation by SP-2509 is independent from LSD1 inhibition. This unique activity is instead associated with the N-(2-hydroxybenzylidene)-hydrazide core and destabilization of Fe-S proteins. These findings reveal a novel mechanism of action for this class of compounds and raise additional questions regarding how EWSR1::FLI1 transcriptional regulation is linked to Fe-S biogenesis, the precise mechanisms of cell death, the biological features of susceptible cancer cells, and strategies for clinical translation.

pharmacology and toxicology↗