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Intracarotid Cancer Cell Injection to Produce Mouse Models of Brain Metastasis
Published on: February 8, 2017
Linkage between cellular communications, energy utilization, and proliferation in metastatic neuroendocrine cancers
Joseph E Ippolito1, Matthew E Merritt, Fredrik Bäckhed
1Center for Genome Sciences, Washington University, St. Louis, MO 63108, USA.
Abstract:
To identify metabolic features that support the aggressive behavior of human neuroendocrine (NE) cancers, we examined metastatic prostate NE tumors and derived prostate NE cancer (PNEC) cell lines from a transgenic mouse model using a combination of magic angle spinning NMR spectroscopy, in silico predictions of biotransformations that observed metabolites may undergo, biochemical tests of these predictions, and electrophysiological/calcium imaging studies. Malignant NE cells undergo excitation and increased proliferation when their GABA(A), glutamate, and/or glycine receptors are stimulated, use glutamate and GABA as substrates for NADH biosynthesis, and produce propylene glycol, a precursor of pyruvate derived from glycine that increases levels of circulating free fatty acids through extra-NE cell effects. Treatment of nude mice containing PNEC tumor xenografts with (i) amiloride, a diuretic that inhibits Abp1, an enzyme involved in NE cell GABA metabolism, (ii) carbidopa, an inhibitor of dopa decarboxylase which functions upstream of Abp1, plus (iii) flumazenil, a benzodiazepine antagonist that binds to GABA(A) receptors, leads to significant reductions in tumor growth. These findings may be generally applicable: GeneChip data sets from 471 human neoplasms revealed that components of GABA metabolic pathways, including ABP1, exhibit statistically significant increases in their expression in NE and non-NE cancers.
Insights
Neuroendocrine cancers utilize specific metabolic pathways involving GABA and glutamate for growth and proliferation. Inhibiting these pathways significantly reduced tumor growth in preclinical models.
Area of Science:
- Oncology
- Metabolic Biochemistry
- Neuroendocrinology
Background:
- Neuroendocrine (NE) cancers exhibit aggressive behavior.
- Understanding the metabolic underpinnings of NE cancer aggressiveness is crucial for developing targeted therapies.
Purpose of the Study:
- To identify key metabolic features supporting the aggressive behavior of human neuroendocrine cancers.
- To investigate the role of specific metabolic pathways in prostate NE cancer (PNEC) growth and proliferation.
Main Methods:
- Utilized magic angle spinning NMR spectroscopy and in silico biotransformation predictions.
- Conducted biochemical tests, electrophysiological studies, and calcium imaging.
- Administered drug combinations (amiloride, carbidopa, flumazenil) to mouse xenograft models.
Main Results:
- Malignant NE cells use glutamate and GABA for NADH biosynthesis and receptor stimulation.
- Propylene glycol production from glycine impacts free fatty acid levels.
- Combined drug treatment significantly reduced PNEC tumor xenograft growth.
- GABA metabolic pathway components, including ABP1, show increased expression in various human cancers.
Conclusions:
- Metabolic pathways involving GABA and glutamate are critical for NE cancer aggressiveness.
- Targeting these metabolic pathways offers a potential therapeutic strategy for NE and other cancers.
- The findings suggest broad applicability of targeting GABA metabolism in cancer treatment.
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