Phasic oxygen dynamics confounds fast choline-sensitive biosensor signals in the brain of behaving rodents.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 33587035.
- Also identified by DOI 10.7554/eLife.61940 and PMC identifier 7932690.
- Licence recorded as CC BY.
- The licence permits redistribution, so the abstract is shown in full and the full text is available from the publisher.
Abstract
Cholinergic fast time-scale modulation of cortical physiology is critical for cognition, but direct local measurement of neuromodulators in vivo is challenging. Choline oxidase (ChOx)-based electrochemical biosensors have been used to capture fast cholinergic signals in behaving animals. However, these transients might be biased by local field potential and O<sub>2</sub>-evoked enzymatic responses. Using a novel Tetrode-based Amperometric ChOx (TACO) sensor, we performed highly sensitive and selective simultaneous measurement of ChOx activity (COA) and O<sub>2</sub>. In vitro and in vivo experiments, supported by mathematical modeling, revealed that non-steady-state enzyme responses to O<sub>2</sub> give rise to phasic COA dynamics. This mechanism accounts for most of COA transients in the hippocampus, including those following locomotion bouts and sharp-wave/ripples. Our results suggest that it is unfeasible to probe phasic cholinergic signals under most behavioral paradigms with current ChOx biosensors. This confound is generalizable to any oxidase-based biosensor, entailing rigorous controls and new biosensor designs.
Medical subject headings
- Alcohol Oxidoreductases
- Brain
- Choline
- Oxygen