An allosteric mechanism for potent inhibition of human ATP-citrate lyase.

Wei, Jia; Leit, Silvana; Kuai, Jun; Therrien, Eric; Rafi, Salma; Harwood, H James; DeLaBarre, Byron; Tong, Liang · Nature · 2019

basic_science · Level V

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Abstract

ATP-citrate lyase (ACLY) is a central metabolic enzyme and catalyses the ATP-dependent conversion of citrate and coenzyme A (CoA) to oxaloacetate and acetyl-CoA<sup>1-5</sup>. The acetyl-CoA product is crucial for the metabolism of fatty acids<sup>6,7</sup>, the biosynthesis of cholesterol<sup>8</sup>, and the acetylation and prenylation of proteins<sup>9,10</sup>. There has been considerable interest in ACLY as a target for anti-cancer drugs, because many cancer cells depend on its activity for proliferation<sup>2,5,11</sup>. ACLY is also a target against dyslipidaemia and hepatic steatosis, with a compound currently in phase 3 clinical trials<sup>4,5</sup>. Many inhibitors of ACLY have been reported, but most of them have weak activity<sup>5</sup>. Here we report the development of a series of low nanomolar, small-molecule inhibitors of human ACLY. We have also determined the structure of the full-length human ACLY homo-tetramer in complex with one of these inhibitors (NDI-091143) by cryo-electron microscopy, which reveals an unexpected mechanism of inhibition. The compound is located in an allosteric, mostly hydrophobic cavity next to the citrate-binding site, and requires extensive conformational changes in the enzyme that indirectly disrupt citrate binding. The observed binding mode is supported by and explains the structure-activity relationships of these compounds. This allosteric site greatly enhances the 'druggability' of ACLY and represents an attractive target for the development of new ACLY inhibitors.

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