1,2- 13 C 2 -Glucose Tracing Approach to Assess Metabolic Alterations of Human Monocytes under Neuroinflammatory Conditions.
Ginevra GiacomelloCarolin OttoJosef PrillerKlemens RuprechtChotima BöttcherMaria Kristina ParrPublished in: Current issues in molecular biology (2023)
Neuroinflammation is one of the common features in most neurological diseases including multiple sclerosis (MScl) and neurodegenerative diseases such as Alzheimer's disease (AD). It is associated with local brain inflammation, microglial activation, and infiltration of peripheral immune cells into cerebrospinal fluid (CSF) and the central nervous system (CNS). It has been shown that the diversity of phenotypic changes in monocytes in CSF relates to neuroinflammation. It remains to be investigated whether these phenotypic changes are associated with functional or metabolic alteration, which may give a hint to their function or changes in cell states, e.g., cell activation. In this article, we investigate whether major metabolic pathways of blood monocytes alter after exposure to CSF of healthy individuals or patients with AD or MScl. Our findings show a significant alteration of the metabolism of monocytes treated with CSF from patients and healthy donors, including higher production of citric acid and glutamine, suggesting a more active glycolysis and tricarboxylic acid (TCA) cycle and reduced production of glycine and serine. These alterations suggest metabolic reprogramming of monocytes, possibly related to the change of compartment (from blood to CSF) and/or disease-related. Moreover, the levels of serine differ between AD and MScl, suggesting different phenotypic alterations between diseases.
Keyphrases
- cerebrospinal fluid
- dendritic cells
- multiple sclerosis
- peripheral blood
- lipopolysaccharide induced
- end stage renal disease
- newly diagnosed
- single cell
- lps induced
- cerebral ischemia
- traumatic brain injury
- chronic kidney disease
- oxidative stress
- ejection fraction
- cell therapy
- endothelial cells
- white matter
- immune response
- stem cells
- cognitive impairment
- protein kinase
- spinal cord injury
- cognitive decline
- neuropathic pain
- subarachnoid hemorrhage
- brain injury
- skeletal muscle
- pluripotent stem cells