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Published on: July 21, 2018
LKB1-Dependent Regulation of TPI1 Creates a Divergent Metabolic Liability between Human and Mouse Lung Adenocarcinoma
Benjamin D Stein1, John R Ferrarone1, Eric E Gardner1
1Sandra and Edward Meyer Cancer Center, Department of Medicine, Weill Cornell Medicine, New York, New York.
Abstract:
KRAS is the most frequently mutated oncogene in human lung adenocarcinomas (hLUAD), and activating mutations frequently co-occur with loss-of-function mutations in TP53 or STK11/LKB1. However, mutation of all three genes is rarely observed in hLUAD, even though engineered comutation is highly aggressive in mouse lung adenocarcinoma (mLUAD). Here, we provide a mechanistic explanation for this difference by uncovering an evolutionary divergence in the regulation of triosephosphate isomerase (TPI1). In hLUAD, TPI1 activity is regulated via phosphorylation at Ser21 by the salt inducible kinases (SIK) in an LKB1-dependent manner, modulating flux between the completion of glycolysis and production of glycerol lipids. In mice, Ser21 of TPI1 is a Cys residue that can be oxidized to alter TPI1 activity without a need for SIKs or LKB1. Our findings suggest this metabolic flexibility is critical in rapidly growing cells with KRAS and TP53 mutations, explaining why the loss of LKB1 creates a liability in these tumors.
Significance:
Utilizing phosphoproteomics and metabolomics in genetically engineered human cell lines and genetically engineered mouse models (GEMM), we uncover an evolutionary divergence in metabolic regulation within a clinically relevant genotype of human LUAD with therapeutic implications. Our data provide a cautionary example of the limits of GEMMs as tools to study human diseases such as cancers. This article is highlighted in the In This Issue feature, p. 799.
Insights
Human lung cancer with KRAS mutations rarely loses LKB1 function due to an evolutionary divergence in triosephosphate isomerase (TPI1) regulation, unlike mouse models. This metabolic difference impacts tumor aggressiveness.
Area of Science:
- Biochemistry
- Oncology
- Metabolic Regulation
Background:
- KRAS mutations are common in human lung adenocarcinomas (hLUAD) and often co-occur with TP53 or STK11/LKB1 mutations.
- Simultaneous mutation of KRAS, TP53, and STK11/LKB1 is rare in hLUAD but leads to aggressive disease in mouse models (mLUAD).
Purpose of the Study:
- To mechanistically explain the difference in tri-mutated LUAD between humans and mice.
- To uncover evolutionary divergence in metabolic regulation relevant to LUAD genotypes.
Main Methods:
- Phosphoproteomics and metabolomics were employed.
- Studies utilized genetically engineered human cell lines and mouse models (GEMM).
Main Results:
- An evolutionary divergence in triosephosphate isomerase (TPI1) regulation was identified.
- In hLUAD, TPI1 is regulated by LKB1-dependent SIK phosphorylation; in mice, TPI1 cysteine oxidation alters activity independently of SIKs/LKB1.
- This metabolic flexibility in mice supports rapid growth in KRAS and TP53-mutated cells.
Conclusions:
- The differential regulation of TPI1 explains why LKB1 loss is tolerated in mouse models but creates a liability in human LUAD.
- Findings highlight the limits of GEMMs in studying human diseases and offer therapeutic implications for LUAD.
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