Jove
Visualize
Contact Us

Related Concept Videos

Peripheral Nervous System: Ganglia and Nerves01:24

Peripheral Nervous System: Ganglia and Nerves

5.8K
The Peripheral Nervous System (PNS) is a crucial component of the body's neural network, extending beyond the central nervous system (CNS) to bridge the gap between the CNS and the external environment. It encompasses nerves, ganglia, and sensory receptors.
Nerves
The nerve is a bundle of axons that serves as the communication highway in the PNS. Each nerve is ensheathed in a protective layer of connective tissue called the epineurium. This outermost layer safeguards the nerve and supports the...
5.8K
Local Anesthetics: Differential Sensitivity of Nerve Fibers01:24

Local Anesthetics: Differential Sensitivity of Nerve Fibers

1.5K
Local anesthetics (LAs) block the sodium channels of nerve trunks, sensory nerve endings, and neuromuscular junctions. Although LAs can block all kinds of nerves, the sensitivity of nerve fibers differs according to nerve types and structures. LAs are known to block myelinated fibers faster than unmyelinated ones. Also, they block pain or sensory neurons at low concentrations without affecting the motor neurons involved in muscle contractions. This helps relieve labor pain without affecting the...
1.5K
Protein-protein Interfaces02:04

Protein-protein Interfaces

14.8K
Many proteins form complexes to carry out their functions, making protein-protein interactions (PPIs) essential for an organism's survival. Most PPIs are stabilized by numerous weak noncovalent chemical forces. The physical shape of the interfaces determines the way two proteins interact. Many globular proteins have closely-matching shapes on their surfaces, which form a large number of weak bonds. Additionally, many PPIs occur between two helices or between a surface cleft and a...
14.8K
Protein-Protein Interfaces02:04

Protein-Protein Interfaces

4.5K
4.5K
Classification of Skeletal Muscle Fibers01:48

Classification of Skeletal Muscle Fibers

59.6K
Skeletal muscles continuously produce ATP to provide the energy that enables muscle contractions. Skeletal muscle fibers can be categorized into three types based on differences in their contraction speed and how they produce ATP, as well as physical differences related to these factors. Most human muscles contain all three muscle fiber types, albeit in varying proportions.
Slow-Twitch Muscle Fibers
Slow oxidative, muscle fibers appear red due to large numbers of capillaries and high levels of...
59.6K
Fiber Reinforced Concrete01:22

Fiber Reinforced Concrete

432
Fiber-reinforced concrete significantly enhances the structural and nonstructural properties of traditional concrete by incorporating fibers like steel, glass, and polymers. These fibers, varying from natural ones such as sisal and cellulose to manufactured ones like polypropylene and Kevlar, are mixed into hydraulic cement with aggregates. Steel fibers, often preferred for their robustness, contribute to improved ductility, toughness, and post-cracking performance. The concrete is classified...
432

You might also read

Related Articles

Articles linked to this work by shared authors, journal, and citation graph.

Sort by
Same author

Selective Activation of Nerve Fiber Subpopulations with Intrafascicular Stimulation.

bioRxiv : the preprint server for biology·2026
Same author

Single-site non-invasive peripheral nerve stimulation with multidimensional encoding enables object differentiation using a myoelectric prosthetic hand.

Journal of neural engineering·2026
Same author

Fascicle-selective kilohertz-frequency neural conduction block with longitudinal intrafascicular electrodes.

Journal of neural engineering·2025
Same author

Emergence of Pathological Slow Waves due to Elevated Neurotransmitter Release.

Annual International Conference of the IEEE Engineering in Medicine and Biology Society. IEEE Engineering in Medicine and Biology Society. Annual International Conference·2025
Same author

An impedance model to estimate the effective active area of neuro-electrode for quality control.

Annual International Conference of the IEEE Engineering in Medicine and Biology Society. IEEE Engineering in Medicine and Biology Society. Annual International Conference·2025
Same author

Accelerating neurotechnology development using an Agile methodology.

Frontiers in neuroscience·2024
JoVE
x logofacebook logolinkedin logoyoutube logo
ABOUT JoVE
OverviewLeadershipBlogJoVE Help Center
AUTHORS
Publishing ProcessEditorial BoardScope & PoliciesPeer ReviewFAQSubmit
LIBRARIANS
TestimonialsSubscriptionsAccessResourcesLibrary Advisory BoardFAQ
RESEARCH
JoVE JournalMethods CollectionsJoVE Encyclopedia of ExperimentsArchive
EDUCATION
JoVE CoreJoVE BusinessJoVE Science EducationJoVE Lab ManualFaculty Resource CenterFaculty Site
Terms & Conditions of Use
Privacy Policy
Policies

Related Experiment Video

Updated: Feb 14, 2026

The Muscle Cuff Regenerative Peripheral Nerve Interface for the Amplification of Intact Peripheral Nerve Signals
07:30

The Muscle Cuff Regenerative Peripheral Nerve Interface for the Amplification of Intact Peripheral Nerve Signals

Published on: January 13, 2022

2.5K

Bionic intrafascicular interfaces for recording and stimulating peripheral nerve fibers.

Ranu Jung1,1, James J Abbas2,2, Sathyakumar Kuntaegowdanahalli1,1

  • 1Department of Biomedical Engineering, Florida International University, EC2602, 10555 W Flagler Street, Miami, FL 33134, USA.

Bioelectronics in Medicine
|February 27, 2018
PubMed
Summary

Bionic intrafascicular interfaces offer precise control and monitoring of internal organs and the brain. Achieving high specificity requires advanced electrode designs for individual nerve fascicles.

Keywords:
autonomic nervous system interfacebiocompatibilityfascicleintrafascicular electrodeneural recordingneural stimulationperipheral nerveperipheral nerve interface

More Related Videos

Implantation and Control of Wireless, Battery-free Systems for Peripheral Nerve Interfacing
07:13

Implantation and Control of Wireless, Battery-free Systems for Peripheral Nerve Interfacing

Published on: October 20, 2021

4.0K
Author Spotlight: Regenerative Peripheral Nerve Interface (RPNI) Surgery in Postamputation Pain Management
03:53

Author Spotlight: Regenerative Peripheral Nerve Interface (RPNI) Surgery in Postamputation Pain Management

Published on: March 15, 2024

3.0K

Related Experiment Videos

Last Updated: Feb 14, 2026

The Muscle Cuff Regenerative Peripheral Nerve Interface for the Amplification of Intact Peripheral Nerve Signals
07:30

The Muscle Cuff Regenerative Peripheral Nerve Interface for the Amplification of Intact Peripheral Nerve Signals

Published on: January 13, 2022

2.5K
Implantation and Control of Wireless, Battery-free Systems for Peripheral Nerve Interfacing
07:13

Implantation and Control of Wireless, Battery-free Systems for Peripheral Nerve Interfacing

Published on: October 20, 2021

4.0K
Author Spotlight: Regenerative Peripheral Nerve Interface (RPNI) Surgery in Postamputation Pain Management
03:53

Author Spotlight: Regenerative Peripheral Nerve Interface (RPNI) Surgery in Postamputation Pain Management

Published on: March 15, 2024

3.0K

Area of Science:

  • Neuroscience
  • Biomedical Engineering
  • Bionics

Background:

  • Peripheral nerves offer potential for internal organ and brain modulation/monitoring.
  • Bionic interface quality and specificity are crucial for neural pathway utilization.

Purpose of the Study:

  • Review the state-of-the-art in bionic intrafascicular interfaces.
  • Discuss challenges and considerations for stimulation and recording.
  • Outline future design directions for these interfaces.

Main Methods:

  • Literature review of current bionic intrafascicular interface technology.
  • Analysis of anatomical organization of peripheral nerves (fascicles).
  • Examination of stimulation and recording specificities.

Main Results:

  • Nerve anatomy presents both opportunities and challenges for specificity.
  • Individual fascicle electrode insertion may be necessary for clinical applications.
  • Current interfaces face limitations in specificity for neural modulation.

Conclusions:

  • Bionic intrafascicular interfaces are key for advanced neural applications.
  • Future designs must address specificity challenges for effective clinical use.
  • Further research is needed to optimize electrode-interface designs for nerve fascicles.