A SERS Optophysiological Probe for the Real-Time Mapping and Simultaneous Determination of the Carbonate Concentration and pH Value in a Live Mouse Brain.
Weikang WangFan ZhaoMingzhi LiChuanping ZhangYuanhua ShaoYang TianPublished in: Angewandte Chemie (International ed. in English) (2019)
To have a profound understanding of the physiological and pathological processes in a brain, both chemical and electrical signals need to be recorded, but this is still very challenging. Herein, micrometer- to nanometer-sized SERS optophysiological probes were created to determine both the CO3 2- concentration and the pH in live brains and neurons because both species play important roles in regulating the acid-base balance in the brain. A ratiometric SERS microarray of eight microprobes with tip sizes of 5 μm was established and used for the first time for real-time mapping and simultaneous quantification of CO3 2- and pH in a live brain. We found that both the CO3 2- concentration and the pH value dramatically decreased under ischemic conditions. The present SERS technique can be combined with electrophysiology without cross-talk to record both electrical and chemical signals in brains. To deepen our understanding of the mechanism of ischemia on the single-cell level, a SERS nanoprobe with a tip size of 200 nm was developed for use in a single neuron.
Keyphrases
- sensitive detection
- gold nanoparticles
- raman spectroscopy
- simultaneous determination
- living cells
- quantum dots
- resting state
- white matter
- single cell
- cerebral ischemia
- high resolution
- label free
- liquid chromatography tandem mass spectrometry
- functional connectivity
- fluorescent probe
- tandem mass spectrometry
- high performance liquid chromatography
- high density
- small molecule
- rna seq
- intellectual disability
- multiple sclerosis
- spinal cord
- high throughput
- ischemia reperfusion injury
- liquid chromatography
- solid phase extraction
- mass spectrometry
- autism spectrum disorder
- nucleic acid