Spatially resolved metabolomics and isotope tracing reveal dynamic metabolic responses of dentate granule neurons with acute stimulation.
Anne MillerElisa M YorkSylwia StopkaJuan Ramón Martínez-FrançoisMd Amin HossainGerard BaquerMichael ReganNathalie Y R AgarGary YellenPublished in: Research square (2023)
Neuronal activity creates an intense energy demand that must be met by rapid metabolic responses. To investigate metabolic adaptations in the neuron-enriched dentate granule cell (DGC) layer within its native tissue environment, we employed murine acute hippocampal brain slices coupled with fast metabolite preservation, followed by mass spectrometry imaging (MALDI-MSI) to generate spatially resolved metabolomics and isotope tracing data. Here we show that membrane depolarization induces broad metabolic changes, including increased glycolytic activity in DGCs. Increased glucose metabolism in response to stimulation is accompanied by mobilization of endogenous inosine into pentose phosphates, via the action of purine nucleotide phosphorylase (PNP). The PNP reaction is an integral part of the neuronal response to stimulation, as inhibiting PNP leaves DGCs energetically impaired during recovery from strong activation. Performing MSI on brain slices bridges the gap between live cell physiology and the deep chemical analysis enabled by mass spectrometry.
Keyphrases
- mass spectrometry
- gas chromatography
- liquid chromatography
- high resolution
- cerebral ischemia
- liver failure
- high performance liquid chromatography
- capillary electrophoresis
- single cell
- respiratory failure
- aortic dissection
- gene expression
- signaling pathway
- electronic health record
- multiple sclerosis
- spinal cord
- cell therapy
- tandem mass spectrometry
- intensive care unit
- big data
- mesenchymal stem cells
- blood brain barrier
- genome wide
- artificial intelligence
- spinal cord injury
- extracorporeal membrane oxygenation
- acute respiratory distress syndrome
- photodynamic therapy
- simultaneous determination