We use cookies to understand how you use our site and to improve your experience. This includes personalizing content and advertising. To learn more, click here. By continuing to use our site, you accept our use of cookies. Cookie Policy.

Features Partner Sites Information LinkXpress hp
Sign In
Advertise with Us

Download Mobile App




Miniature NMR Implant Measures Neuronal Activity

By HospiMedica International staff writers
Posted on 17 Dec 2019
A highly sensitive nuclear magnetic resonance (NMR) implant probe enables brain physiology studies with enhanced spatial and temporal resolution.

Developed at the Max-Planck-Institute for Biological Cybernetics (MPG; Tübingen, Germany), the University of Tübingen (Germany), and the University of Stuttgart (Germany), the capillary monolithic probe combines an ultra-sensitive 300 µm coil with a complete NMR transceiver, enabling in vivo measurements of blood oxygenation and flow in nanoliter volumes at a sampling rate of 200 Hz. More...
To minimize the risk of tissue damage during probe insertion, the multimodal probe possesses a needle-shape with shaft widths of 50-300 μm and shaft thicknesses below 100 μm.

The result is a complementary meta-oxide-semiconductor (CMOS) probe with the versatility of brain imaging technique that analyzes specific neuronal activity of the brain. According to the researchers, the design setup will allow scalable solutions by expanding the collection of data from more than a single area, but on the same device. The scalability will allow the use of other sensing modalities as well, such as electrophysiological, optogenetic, proton spectroscopy, and 31P spectroscopy measurements with high spatial resolution. The study was published on November 25, 2019 in Nature Methods.

“The integrated design of a nuclear magnetic resonance detector on a single chip supremely reduces the typical electromagnetic interference of magnetic resonance signals,” said senior author Klaus Scheffler, PhD, of the MPG department of high-field magnetic resonance. “This enables neuroscientists to gather precise data from minuscule areas of the brain, and to combine them with information from spatial and temporal data of the brain's physiology.”

The researchers suggest the system will allow the capture of localized activity within single layers, and preferably within regions of different cellular components, such as dendrites. In addition, it will allow the assessment of neurovascular coupling on a fine time scale, enabling extremely fast coupling that can help resolve correlations between electrical signals and proton magnetization changes, far below the commonly assumed time lag of several seconds.

Related Links:
Max-Planck-Institute for Biological Cybernetics
University of Tübingen
University of Stuttgart



Gold Member
12-Channel ECG
CM1200B
Biochip Array Technology
Evidence MultiSTAT Drugs of Abuse Urine Multiplex Panel
Fetal Monitor
BT-380
Monitor/Defibrillator
Zenix
Read the full article by registering today, it's FREE! It's Free!
Register now for FREE to HospiMedica.com and get access to news and events that shape the world of Hospital Medicine.
  • Free digital version edition of HospiMedica International sent by email on regular basis
  • Free print version of HospiMedica International magazine (available only outside USA and Canada).
  • Free and unlimited access to back issues of HospiMedica International in digital format
  • Free HospiMedica International Newsletter sent every week containing the latest news
  • Free breaking news sent via email
  • Free access to Events Calendar
  • Free access to LinkXpress new product services
  • REGISTRATION IS FREE AND EASY!
Click here to Register








Channels

Copyright © 2000-2026 Globetech Media. All rights reserved.