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Derivation and characterization of ubiquitin-specific protease 18 inhibitors
Blessing O. Ogunlade, Kevin N. Dalby, Samuel C. Okpechi, Eun Jeong Cho, Liliya Tyutyunyk-Massey, Zibo Chen, Xiuxia Liu, Joseph Ivanic, Brian Luke, Shyamal D. Desai, Yair Alfaro, Ashwini K. Devkota, Rae M. Sammons, Gilbert G. Privé, Xi Liu, Ethan Dmitrovsky
Blessing O. Ogunlade, Kevin N. Dalby, Samuel C. Okpechi, Eun Jeong Cho, Liliya Tyutyunyk-Massey, Zibo Chen, Xiuxia Liu, Joseph Ivanic, Brian Luke, Shyamal D. Desai, Yair Alfaro, Ashwini K. Devkota, Rae M. Sammons, Gilbert G. Privé, Xi Liu, Ethan Dmitrovsky
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Research Article Cell biology Oncology

Derivation and characterization of ubiquitin-specific protease 18 inhibitors

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Abstract

Ubiquitin-Specific Protease 18 (USP18) is a deISGylation enzyme and antineoplastic target. To develop USP18 inhibitors, an enzymatically active human recombinant USP18 protein was engineered suitable for high-throughput screening of ~80,000 chemical compounds. Three of them substantially inhibited USP18 enzymatic activity, with β-lapachone having prominent antineoplastic activity. Independent β-lapachone treatments of murine and human lung cancer cell lines statistically significantly reduced proliferation and increased apoptosis. Gain of USP18 expression antagonized these effects. β-Lapachone treatments statistically significantly repressed lung cancer xenograft growth. β-Lapachone increased reactive oxygen species (ROS), but antineoplastic effects occurred at dosages with negligible ROS production. ROS scavenger treatments did not rescue β-lapachone effects at these concentrations, consistent with an ROS-independent mechanism. IFN-Stimulated Response Element (ISRE) reporter assays following β-lapachone treatment activated this reporter. USP18 cotransfection antagonized this activity. β-Lapachone treatments increased global ISGylation. RNA-seq of lung cancer cells engineered with or without enhanced USP18 expression showed specific pathways affected by β-lapachone treatment. Proteomic analysis of these treated cells revealed known and new ISGylated proteins. In silico modeling identified a unique USP18 pocket where these USP18 inhibitors bind. Engineered mutation of this pocket disrupted β-lapachone activity. Taken together, β-lapachone is an antineoplastic tool compound useful for USP18 inhibitor development.

Authors

Blessing O. Ogunlade, Kevin N. Dalby, Samuel C. Okpechi, Eun Jeong Cho, Liliya Tyutyunyk-Massey, Zibo Chen, Xiuxia Liu, Joseph Ivanic, Brian Luke, Shyamal D. Desai, Yair Alfaro, Ashwini K. Devkota, Rae M. Sammons, Gilbert G. Privé, Xi Liu, Ethan Dmitrovsky

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Figure 6

Transcriptomic profiling identifies USP18-dependent gene expression changes conferred by β-lapachone treatment relative to vehicle control.

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Transcriptomic profiling identifies USP18-dependent gene expression chan...
(A) Volcano plot displayed the differentially expressed genes in A549 human lung cancer cells treated with β-lapachone (2.5 μM) as compared with vehicle-treated controls. β-Lapachone treatment caused distinct patterns of gene upregulation and downregulation. (B) Volcano plot of A549 lung cancer cells engineered to overexpress USP18 versus empty vector controls is shown following β-lapachone treatment (2.5 μM) as compared with vehicle control. Genes whose expression changes were opposed by USP18 overexpression represent β-lapachone regulated transcripts that are USP18 dependent. (C) Quantitative real-time PCR assays validated representative β-lapachone–regulated genes identified in B, including those decreased (NR4A2, ENTPD1, DCC, and USP41) and those increased (FGF13, IL31RA, OTUD7A, and KLK2) after β-lapachone treatment. (D) Representative β-lapachone treatment repressed expression of USP18-dependent genes, including LINC00319, NCCRP1, and ENTPD1. Differential expression profiles of many of species showed statistically significant associations with overall survival in TCGA lung adenocarcinoma cohort. (E) Representative β-lapachone treatment increased expression of USP18-regulated genes, including FGF13, IL31RA, OTUD7A, and KLK2, exhibited statistically significant associations with improved overall survival in the same TCGA cohort. Two-tailed Student’s t tests compared differences between study groups with a P value below 0.05 deemed statistically significant. Data are shown as mean ± SD. *P < 0.05, **P < 0.01 and ***P < 0.001. Survival analyses for D and E were performed using the Kaplan-Meier method using the log-rank test with a P value below 0.05 deemed statistically significant.

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