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Copyright Nature Publishing Group Jan 2015

Abstract

The anti-apoptotic protein MCL-1 is a key regulator of cancer cell survival and a known resistance factor for small-molecule BCL-2 family inhibitors such as ABT-263 (navitoclax), making it an attractive therapeutic target. However, directly inhibiting this target requires the disruption of high-affinity protein-protein interactions, and therefore designing small molecules potent enough to inhibit MCL-1 in cells has proven extremely challenging. Here, we describe a series of indole-2-carboxylic acids, exemplified by the compound A-1210477, that bind to MCL-1 selectively and with sufficient affinity to disrupt MCL-1-BIM complexes in living cells. A-1210477 induces the hallmarks of intrinsic apoptosis and demonstrates single agent killing of multiple myeloma and non-small cell lung cancer cell lines demonstrated to be MCL-1 dependent by BH3 profiling or siRNA rescue experiments. As predicted, A-1210477 synergizes with the BCL-2/BCL-X L inhibitor navitoclax to kill a variety of cancer cell lines. This work represents the first description of small-molecule MCL-1 inhibitors with sufficient potency to induce clear on-target cellular activity. It also demonstrates the utility of these molecules as chemical tools for dissecting the basic biology of MCL-1 and the promise of small-molecule MCL-1 inhibitors as potential therapeutics for the treatment of cancer.

Details

Title
Potent and selective small-molecule MCL-1 inhibitors demonstrate on-target cancer cell killing activity as single agents and in combination with ABT-263 (navitoclax)
Author
Leverson, J D; Zhang, H; Chen, J; Tahir, S K; Phillips, D C; Xue, J; Nimmer, P; Jin, S; Smith, M; Xiao, Y; Kovar, P; Tanaka, A; Bruncko, M; Sheppard, G S; Wang, L; Gierke, S; Kategaya, L; Anderson, D J; Wong, C; Eastham-anderson, J; Ludlam, M J C; Sampath, D; Fairbrother, W J; Wertz, I; Rosenberg, S H; Tse, C; Elmore, S W; Souers, A J
Pages
e1590
Publication year
2015
Publication date
Jan 2015
Publisher
Springer Nature B.V.
e-ISSN
20414889
Source type
Scholarly Journal
Language of publication
English
ProQuest document ID
1785929203
Copyright
Copyright Nature Publishing Group Jan 2015