"Microelectrodes" is a descriptor in the National Library of Medicine's controlled vocabulary thesaurus,
MeSH (Medical Subject Headings). Descriptors are arranged in a hierarchical structure,
which enables searching at various levels of specificity.
Electrodes with an extremely small tip, used in a voltage clamp or other apparatus to stimulate or record bioelectric potentials of single cells intracellularly or extracellularly. (Dorland, 28th ed)
Descriptor ID |
D008839
|
MeSH Number(s) |
E07.305.250.500
|
Concept/Terms |
Microelectrodes- Microelectrodes
- Microelectrode
- Electrodes, Miniaturized
- Electrode, Miniaturized
- Miniaturized Electrode
- Miniaturized Electrodes
|
Below are MeSH descriptors whose meaning is more general than "Microelectrodes".
Below are MeSH descriptors whose meaning is more specific than "Microelectrodes".
This graph shows the total number of publications written about "Microelectrodes" by people in this website by year, and whether "Microelectrodes" was a major or minor topic of these publications.
To see the data from this visualization as text,
click here.
Year | Major Topic | Minor Topic | Total |
---|
2003 | 0 | 3 | 3 |
2004 | 0 | 1 | 1 |
2008 | 0 | 1 | 1 |
2009 | 0 | 1 | 1 |
2012 | 0 | 1 | 1 |
2021 | 1 | 0 | 1 |
2022 | 0 | 1 | 1 |
2024 | 0 | 1 | 1 |
2025 | 1 | 0 | 1 |
To return to the timeline,
click here.
Below are the most recent publications written about "Microelectrodes" by people in Profiles.
-
Huang S, Xiao R, Lin S, Wu Z, Lin C, Jang G, Hong E, Gupta S, Lu F, Chen B, Liu X, Sahasrabudhe A, Zhang Z, He Z, Crosby AJ, Sumaria K, Liu T, Wang Q, Rao S. Anisotropic hydrogel microelectrodes for intraspinal neural recordings in vivo. Nat Commun. 2025 Jan 28; 16(1):1127.
-
Huang S, Liu X, Lin S, Glynn C, Felix K, Sahasrabudhe A, Maley C, Xu J, Chen W, Hong E, Crosby AJ, Wang Q, Rao S. Control of polymers' amorphous-crystalline transition enables miniaturization and multifunctional integration for hydrogel bioelectronics. Nat Commun. 2024 Apr 25; 15(1):3525.
-
Fan X, Zhang X, Ping J. Graphene-Enabled High-Performance Electrokinetic Focusing and Sensing. ACS Nano. 2022 07 26; 16(7):10852-10858.
-
Zhang X, Chia E, Fan X, Ping J. Flow-sensory contact electrification of graphene. Nat Commun. 2021 03 19; 12(1):1755.
-
Belasen A, Youn Y, Gee L, Prusik J, Lai B, Ramirez-Zamora A, Rizvi K, Yeung P, Shin DS, Argoff C, Pilitsis JG. The Effects of Mechanical and Thermal Stimuli on Local Field Potentials and Single Unit Activity in Parkinson's Disease Patients. Neuromodulation. 2016 Oct; 19(7):698-707.
-
Przybyszewski AW, Kagan I, Snodderly DM. Primate area V1: largest response gain for receptive fields in the straight-ahead direction. Neuroreport. 2014 Oct 01; 25(14):1109-15.
-
Ramirez-Zamora A, Levine D, Sommer DB, Dalfino J, Novak P, Pilitsis JG. Intraparenchymal cyst development after deep brain stimulator placement. Stereotact Funct Neurosurg. 2013; 91(5):338-41.
-
Li C, Wu Z, Hartings JA, Rajan N, Chahine N, Cheyuo C, Wang P, Wu PM, Golanov EV, Ahn CH, Narayan RK. Brain-friendly amperometric enzyme biosensor based on encapsulated oxygen generating biomaterial. Annu Int Conf IEEE Eng Med Biol Soc. 2012; 2012:6003-6.
-
Novak P, Przybyszewski AW, Barborica A, Ravin P, Margolin L, Pilitsis JG. Localization of the subthalamic nucleus in Parkinson disease using multiunit activity. J Neurol Sci. 2011 Nov 15; 310(1-2):44-9.
-
Gold JI, Law CT, Connolly P, Bennur S. Relationships between the threshold and slope of psychometric and neurometric functions during perceptual learning: implications for neuronal pooling. J Neurophysiol. 2010 Jan; 103(1):140-54.