How can I measure brain acetylcholine levels in vivo? Advantages and caveats of commonly used approaches

J Neurochem. 2023 Oct;167(1):3-15. doi: 10.1111/jnc.15943. Epub 2023 Aug 24.

Abstract

The neurotransmitter acetylcholine (ACh) plays a central role in the regulation of multiple cognitive and behavioral processes, including attention, learning, memory, motivation, anxiety, mood, appetite, and reward. As a result, understanding ACh dynamics in the brain is essential for elucidating the neural mechanisms underlying these processes. In vivo measurements of ACh in the brain have been challenging because of the low concentrations and rapid turnover of this neurotransmitter. Here, we review a number of techniques that have been developed to measure ACh levels in the brain in vivo. We follow this with a deeper focus on use of genetically encoded fluorescent sensors coupled with fiber photometry, an accessible technique that can be used to monitor neurotransmitter release with high temporal resolution and specificity. We conclude with a discussion of methods for analyzing fiber photometry data and their respective advantages and disadvantages. The development of genetically encoded fluorescent ACh sensors is revolutionizing the field of cholinergic signaling, allowing temporally precise measurement of ACh release in awake, behaving animals. Use of these sensors has already begun to contribute to a mechanistic understanding of cholinergic modulation of complex behaviors.

Keywords: MRS; PET; acetylcholine; amperometry; fiber photometry; fluorescent tracers; microdialysis.

Publication types

  • Review
  • Research Support, N.I.H., Extramural
  • Research Support, Non-U.S. Gov't

MeSH terms

  • Acetylcholine*
  • Animals
  • Brain* / physiology
  • Cholinergic Agents
  • Learning / physiology
  • Microdialysis
  • Neurotransmitter Agents

Substances

  • Acetylcholine
  • Neurotransmitter Agents
  • Cholinergic Agents