==== Front Cell Mol Gastroenterol HepatolCell Mol Gastroenterol HepatolCellular and Molecular Gastroenterology and Hepatology2352-345XElsevier S2352-345X(18)30069-910.1016/j.jcmgh.2018.04.009EditorialBeyond Kras: MYC Rules in Pancreatic Cancer Korc Murray MDmkorc@iu.edu∗Department of Medicine, Department of Biochemistry and Molecular Biology, Indiana University School of Medicine, Indianapolis, IndianaThe Melvin and Bren Simon Cancer Center, The Pancreatic Cancer Signature Center, Indianapolis, Indiana∗ Correspondence Address correspondence to: Murray Korc, MD, Department of Medicine, Indiana University School of Medicine, 980 West Walnut Street, Walther Hall, Room C528, Indianapolis, Indiana 46202. mkorc@iu.edu2018 26 5 2018 6 2 223 224 © 2018 The Author2018This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/). ==== Body Pancreatic ductal adenocarcinoma (PDAC) most often arises from advanced pancreatic intraepithelial neoplasia harboring mutated KRAS. Pancreatic intraepithelial neoplasia derive from foci of acinar–ductal metaplasia in which acinar cells have transdifferentiated into ductal-like cells, underscoring the potential acinar cell origin of PDAC. E47 is a basic helix-loop-helix transcription factor that binds to an enhancer box sequence, hence the designation of E. E proteins heterodimerize with tissue-specific class II basic helix-loop-helix proteins, thereby promoting cell differentiation in a tissue-specific manner. It previously was shown that inducible expression of E47 in human pancreatic cancer cells leads to the induction of genes associated with acinar cells, up-regulation of p53-inducible nuclear protein 1 and cyclin-dependent kinase inhibitor p21, and inhibition of proliferation.1 In the article by Scully et al2 in this issue of Cellular and Molecular Gastroenterology and Hepatology, the authors show that E47 exerts additional beneficial effects in PDAC. Thus, E47 also increases Cyclin-dependent kinase inhibitor 1B (p27) levels in pancreatic cancer cells by up-regulating p27 messenger RNA levels and attenuating p27 protein degradation, while concomitantly lowering myelocytomatosis (MYC) messenger RNA levels and enhancing MYC protein degradation. Appropriately, the authors used 2 recently established patient-derived pancreatic cancer cells, 1 from a primary tumor and the other from a hepatic metastasis, in addition to 3 pancreatic cancer cell lines that have been in long-term culture. Despite differences in mutation status among the 5 cell lines, there were remarkable similarities in the E47-induced alterations in their transcriptomes, and Gene Ontology analysis showed that genes implicated in cell division were commonly regulated by E47 in these pancreatic cancer cells. The antiproliferative actions of E47 were mediated through several pathways. First, cell-cycle progression was inhibited by the up-regulation of p211 and p27, the latter confirmed by the finding of enhanced proliferation in E47-overexpressing cells after small interfering RNA–mediated knockdown of p27. Second, cell proliferation was inhibited by the down-regulation of MYC protein, an effect that was prevented by lentiviral-mediated expression of the T58A mutant form of MYC that is resistant to proteosomal degradation and thereby prevents E47 from down-regulating MYC. Third, E47 decreased the expression of E2F target genes that promote cell proliferation resulting from activation of the retinoblastoma protein (pRb), as evidenced by E47-mediated pRb hypophosphorylation. This effect was prevented by short hairpin RNA–induced knockdown of human pRB, and was rescued by the expression of murine pRb. Fourth, E47 induced an increase in senescence-associated β-galactosidase, caused the appearance of large pancreatic cancer cells with variable size, and down-regulated the expression of certain proteins such as lamin B1 and centromere protein A. These alterations are consistent with induction of cell senescence, which is known to attenuate proliferation and induce cell-cycle arrest. Mutated KRAS is the major driver mutation in PDAC, but it may be associated with oncogene-induced senescence, a phenomenon originally shown to be owing to increased expression of wild-type p16 and p53 and to be associated with an enduring G1 arrest.3 Oncogene-induced senescence also can be induced by other mechanisms such as activation of mitogen-activated protein kinase and DNA damage response pathways, p21 and p27 up-regulation, pRB activation, and MYC inactivation. Scully et al2 excluded p16, p53, mitogen-activated protein kinase, or DNA damage response activation as contributors to E47-mediated senescence. Instead, their findings suggest that E47 induces cell-cycle arrest and senescence-like alterations in pancreatic cancer cells by the combined actions of up-regulated p27, down-regulated MYC, and activated pRB. Senescent cells have the capacity to express proinflammatory cytokines, a phenomenon termed senescence associated secretory phenotype (SASP), and the released cytokines can exert beneficial effects by orchestrating the destruction of damaged cells. However, SASP also can induce a chronic inflammatory state that promotes malignant transformation. Moreover, in the presence of mutated KRAS, loss of pRB has been associated with expression of senescence markers and an intense SASP that enhances PCC proliferation, a phenomenon termed senescence bypass.4 As a consequence of excessive mitogenic signaling driven by Kras and occurring in conjunction with loss of p16 and overexpression of tyrosine kinase receptors and cyclin D1, pRB often is dysfunctional in PDAC. It may be difficult, therefore, to completely restore pRB functions in PDAC. In contrast with difficulties inherent in targeting mutated Kras or dysfunctional pRB therapeutically, an increasing number of pharmacologic approaches are becoming available to antagonize MYC’s actions. Given MYC’s important role in enhancing cell proliferation, ability to protect pancreatic cancer cells from undergoing senescence, and capacity to suppress differentiation, the current findings support the concept that MYC is a crucially important therapeutic target in PDAC, and raise the possibility that targeting MYC could restore the balance toward E47-mediated inhibition of proliferation and promotion of differentiation. Conflicts of interest The author discloses no conflicts. ==== Refs References 1 Kim S. Lahmy R. Riha C. Yang C. Jakubison B.L. van Niekerk J. Staub C. Wu Y. Gates K. Dong D.S. Konieczny S.F. Itkin-Ansari P. The basic helix-loop-helix transcription factor E47 reprograms human pancreatic cancer cells to a quiescent acinar state with reduced tumorigenic potential Pancreas 44 2015 718 727 25894862 2 Scully K.M. Lahmy R. Signaevskaia L. Sasik R. Medal R. Kim H. French R. James B. Wu Y. Lowy A.M. Itkin-Ansari P. E47 governs the MYC-CDKN1B/p27KIP1 –RB network to growth arrest PDA cells independent of CDKN2A/p16INK4A and wild-type p53 Cell Mol Gastroenterol Hepatol 6 2018 181 198 30003124 3 Serrano M. Lin A.W. McCurrach M.E. Beach D. Lowe S.W. Oncogenic ras provokes premature cell senescence associated with accumulation of p53 and p16INK4a Cell 88 1997 593 602 9054499 4 Carrière C. Gore A.J. Norris A.M. Gunn J.R. Young A.L. Longnecker D.S. Korc M. Deletion of Rb accelerates pancreatic carcinogenesis by oncogenic Kras and impairs senescence in premalignant lesions Gastroenterology 141 2011 1091 1101 21699781