Genomic deletion of malic enzyme 2 confers collateral lethality in pancreatic cancer

The genome of pancreatic ductal adenocarcinoma (PDAC) frequently contains deletions of tumour suppressor gene loci, most notably SMAD4, which is homozygously deleted in nearly one-third of cases. As loss of neighbouring housekeeping genes can confer collateral lethality, we sought to determine whether loss of the metabolic gene malic enzyme 2 (ME2) in the SMAD4 locus would create cancer-specific metabolic vulnerability upon targeting of its paralogous isoform ME3. The mitochondrial malic enzymes (ME2 and ME3) are oxidative decarboxylases that catalyse the conversion of malate to pyruvate and are essential for NADPH regeneration and reactive oxygen species homeostasis. Here we show that ME3 depletion selectively kills ME2-null PDAC cells in a manner consistent with an essential function for ME3 in ME2-null cancer cells. Mechanistically, integrated metabolomic and molecular investigation of cells deficient in mitochondrial malic enzymes revealed diminished NADPH production and consequent high levels of reactive oxygen species. These changes activate AMP activated protein kinase (AMPK), which in turn directly suppresses sterol regulatory element-binding protein 1 (SREBP1)-directed transcription of its direct targets including the BCAT2 branched-chain amino acid transaminase 2) gene. BCAT2 catalyses the transfer of the amino group from branched-chain amino acids to α-ketoglutarate (α-KG) thereby regenerating glutamate, which functions in part to support de novo nucleotide synthesis. Thus, mitochondrial malic enzyme deficiency, which results in impaired NADPH production, provides a prime ‘collateral lethality’ therapeutic strategy for the treatment of a substantial fraction of patients diagnosed with this intractable disease.

[1]  Gerald C. Chu,et al.  Smad4 is dispensable for normal pancreas development yet critical in progression and tumor biology of pancreas cancer. , 2006, Genes & development.

[2]  Martin E. Fernandez-Zapico,et al.  Faculty Opinions recommendation of Elevation of circulating branched-chain amino acids is an early event in human pancreatic adenocarcinoma development. , 2015 .

[3]  Michael A. Choti,et al.  Whole-exome sequencing of pancreatic cancer defines genetic diversity and therapeutic targets , 2015, Nature Communications.

[4]  J. Gustafsson,et al.  Estrogen receptor β upregulates FOXO3a and causes induction of apoptosis through PUMA in prostate cancer , 2014, Oncogene.

[5]  K. Wellen,et al.  Reciprocal regulation of p53 and malic enzymes modulates metabolism and senescence , 2012, Nature.

[6]  R. Harris,et al.  A molecular model of human branched-chain amino acid metabolism. , 1998, The American journal of clinical nutrition.

[7]  R. DePinho,et al.  Genetics and biology of pancreatic ductal adenocarcinoma , 2006, Genes & development.

[8]  D. Glass,et al.  Cancer cachexia: mediators, signaling, and metabolic pathways. , 2012, Cell metabolism.

[9]  Steven L Salzberg,et al.  Fast gapped-read alignment with Bowtie 2 , 2012, Nature Methods.

[10]  Meagan E. Sullender,et al.  Rational design of highly active sgRNAs for CRISPR-Cas9–mediated gene inactivation , 2014, Nature Biotechnology.

[11]  L. Chin,et al.  Passenger Deletions Generate Therapeutic Vulnerabilities in Cancer , 2012, Nature.

[12]  G. Robertson,et al.  Cancer cachexia: malignant inflammation, tumorkines, and metabolic mayhem , 2013, Trends in Endocrinology & Metabolism.

[13]  D. Vertommen,et al.  Identification of Phosphorylation Sites in AMP-activated Protein Kinase (AMPK) for Upstream AMPK Kinases and Study of Their Roles by Site-directed Mutagenesis* , 2003, Journal of Biological Chemistry.

[14]  David R. Kelley,et al.  Differential gene and transcript expression analysis of RNA-seq experiments with TopHat and Cufflinks , 2012, Nature Protocols.

[15]  Shan Jiang,et al.  Yap1 Activation Enables Bypass of Oncogenic Kras Addiction in Pancreatic Cancer , 2014, Cell.

[16]  L. Chin,et al.  FoxOs cooperatively regulate diverse pathways governing neural stem cell homeostasis. , 2009, Cell stem cell.

[17]  Adam M. Feist,et al.  Tracing compartmentalized NADPH metabolism in the cytosol and mitochondria of mammalian cells. , 2014, Molecular cell.

[18]  G. Magni,et al.  Simultaneous Single-Sample Determination of NMNAT Isozyme Activities in Mouse Tissues , 2012, PloS one.

[19]  John M. Asara,et al.  Glutamine supports pancreatic cancer growth through a Kras-regulated metabolic pathway , 2013, Nature.

[20]  Thomas M. O’Connell,et al.  The Complex Role of Branched Chain Amino Acids in Diabetes and Cancer , 2013, Metabolites.

[21]  Aviv Regev,et al.  Generation of mouse models of myeloid malignancy with combinatorial genetic lesions using CRISPR-Cas9 genome editing , 2014, Nature Biotechnology.

[22]  M. Holeček Relation between glutamine, branched-chain amino acids, and protein metabolism. , 2002, Nutrition.

[23]  U. Meyer,et al.  In the regulation of cytochrome P450 genes, phenobarbital targets LKB1 for necessary activation of AMP-activated protein kinase , 2007, Proceedings of the National Academy of Sciences.

[24]  G. Shulman,et al.  Cytosolic and Mitochondrial Malic Enzyme Isoforms Differentially Control Insulin Secretion* , 2007, Journal of Biological Chemistry.

[25]  Claudio R. Santos,et al.  SREBP Activity Is Regulated by mTORC1 and Contributes to Akt-Dependent Cell Growth , 2008, Cell metabolism.

[26]  H. Krebs,et al.  Aspects of the regulation of the metabolism of branched-chain amino acids. , 1976, Advances in enzyme regulation.

[27]  L. Chin,et al.  Telomere dysfunction induces metabolic and mitochondrial compromise , 2011, Nature.

[28]  Gerald C. Chu,et al.  Oncogenic Kras Maintains Pancreatic Tumors through Regulation of Anabolic Glucose Metabolism , 2012, Cell.

[29]  S. Hutson,et al.  Role of mitochondrial transamination in branched chain amino acid metabolism. , 1988, The Journal of biological chemistry.

[30]  S. Hutson,et al.  Regulation of leucine and alpha-ketoisocaproate metabolism in skeletal muscle. , 1978, The Journal of biological chemistry.

[31]  Mengwei Zang,et al.  AMPK phosphorylates and inhibits SREBP activity to attenuate hepatic steatosis and atherosclerosis in diet-induced insulin-resistant mice. , 2011, Cell metabolism.

[32]  M. Willingham,et al.  Branched-chain amino acid catabolism: unique segregation of pathway enzymes in organ systems and peripheral nerves. , 2004, American journal of physiology. Endocrinology and metabolism.

[33]  R. DePinho,et al.  Collateral Lethality: A new therapeutic strategy in oncology. , 2015, Trends in cancer.