Jove
Visualize
Contáctanos

Videos de Conceptos Relacionados

Forced Transdifferentiation01:28

Forced Transdifferentiation

1.9K
Transdifferentiation, also known as lineage reprogramming, was first discovered by Selman and Kafatos in 1974 in silkmoths. They observed that the moths’ cuticle-producing cells transformed into salt-producing cells. Many such cases of natural transdifferentiation occur in organisms. In humans, pancreatic alpha cells can become beta cells. In newts, the loss of the eye’s lens causes the pigmented epithelial cells to transdifferentiate into the lens cells.
Artificial...
1.9K
Conduction System of the Heart01:20

Conduction System of the Heart

1.3K
The cardiac conduction system produces and transmits electrical impulses that prompt myocardial contraction, ensuring efficient heart function. This intricate system ensures that the heart beats in a coordinated and efficient manner, beginning with the atria and then the ventricles. The conduction system optimizes cardiac output by maintaining this precise sequence, which is crucial for adequate blood circulation.
This system relies on the unique properties of nodal and Purkinje cells:...
1.3K
Tissues01:25

Tissues

38.0K
Tissues are a group of cells that share a common embryonic origin. Microscopic observation reveals that the cells in a tissue share morphological features and are arranged in an orderly pattern to perform specific functions. From an evolutionary perspective, tissues appear in more complex organisms. Although there are many types of cells in the human body, they are organized into four broad categories of tissues: epithelial, connective, muscle, and nervous. Each of these categories is...
38.0K
Conductors and Insulators01:19

Conductors and Insulators

8.7K
Some materials may easily let electrical charges pass through them, while others obstruct their flow. The former are called conductors and the latter insulators. The atomic structures of materials determine whether they are conductors or insulators of electricity.
Most metals are conductors. Their atomic configuration is such that one or more electron(s) are loosely bound to the nucleus in each atom. Thus, a sea of mobile electrons are available in them, known as free electrons. Their easy...
8.7K
Theory of Metallic Conduction01:17

Theory of Metallic Conduction

1.4K
The conduction of free electrons inside a conductor is best described by quantum mechanics. However, a classical model makes predictions close to the results of quantum mechanics. It is called the theory of metallic conduction.
In this theory, Newton's second law of motion is used to determine the acceleration of an electron in the presence of an applied electric field. Then, its velocity is expressed via this acceleration.
An electron moves through the crystal, containing positive ions,...
1.4K
Electrical Conductivity01:13

Electrical Conductivity

1.2K
In perfect conductors, the electric field inside is always zero due to the abundance of free electrons, which nullify any field by flowing. As a result, any residual charge resides on the surface.
In a practical conductor, an applied electric field may be sustained, causing a flow of electrons, which produce a current. The differential form of the current, the current density, is related to the electric field.
More generally, it is related to the force per unit charge, which involves the...
1.2K

También podría leer

Artículos Relacionados

Artículos vinculados a este trabajo por autores compartidos, revista y gráfico de citas.

Ordenar por
Same author

Time-Multiplexed Organic Electrochemical Transistor for Saliva-Based Rapid Detection of Viral Proteins.

Advanced science (Weinheim, Baden-Wurttemberg, Germany)·2026
Same author

On the fundamentals of organic mixed ionic/electronic conductors.

Journal of materials chemistry. C·2026
Same author

Side Chains Override Crystallinity in n-Type Organic Mixed Conductors.

Advanced materials (Deerfield Beach, Fla.)·2026
Same author

Tunable Stability and Performance of Fused Thienothiophene Based Polymers for Organic Electrochemical Transistors and Artificial Synapse Based on A Side Chain Reorganization Strategy.

Advanced materials (Deerfield Beach, Fla.)·2025
Same author

A Retina-Inspired Organic Iono-Optoelectronic Synapse.

Advanced materials (Deerfield Beach, Fla.)·2025
Same author

Organic Electrochemical Synaptic Transistors with Improved Retention for Logic and Biosignal Processing.

Advanced materials (Deerfield Beach, Fla.)·2025
JoVE
x logofacebook logolinkedin logoyoutube logo
ACERCA DE JoVE
Visión GeneralLiderazgoBlogCentro de Ayuda JoVE
AUTORES
Proceso de PublicaciónConsejo EditorialAlcance y PolíticasRevisión por ParesPreguntas FrecuentesEnviar
BIBLIOTECARIOS
TestimoniosSuscripcionesAccesoRecursosConsejo Asesor de BibliotecasPreguntas Frecuentes
INVESTIGACIÓN
JoVE JournalMethods CollectionsJoVE Encyclopedia of ExperimentsArchivo
EDUCACIÓN
JoVE CoreJoVE BusinessJoVE Science EducationJoVE Lab ManualCentro de Recursos para ProfesoresSitio de Profesores
Términos y Condiciones de Uso
Política de Privacidad
Políticas

Video Experimental Relacionado

Updated: Aug 9, 2025

Fabrication of Myogenic Engineered Tissue Constructs
13:43

Fabrication of Myogenic Engineered Tissue Constructs

Published on: May 1, 2009

10.6K

La transformación de los tejidos en materia conductora

Sahika Inal1

  • 1Biological and Environmental Science and Engineering Division, King Abdullah University of Science and Technology (KAUST), Thuwal 23955-6900, Saudi Arabia.

Science (New York, N.Y.)
|February 23, 2023
PubMed
Resumen

Los investigadores desarrollaron un nuevo método para crear polímeros blandos conductores eléctricos directamente dentro del tejido vivo. Este avance abre posibilidades para aplicaciones biomédicas avanzadas y ingeniería de tejidos in situ.

Más Videos Relacionados

Author Spotlight: Computing the Effects of a Local Radiofrequency Hyperthermia Intervention on Tumor Biomechanics
10:23

Author Spotlight: Computing the Effects of a Local Radiofrequency Hyperthermia Intervention on Tumor Biomechanics

Published on: December 1, 2023

504
Modeling Biological Membranes with Circuit Boards and Measuring Electrical Signals in Axons: Student Laboratory Exercises
13:56

Modeling Biological Membranes with Circuit Boards and Measuring Electrical Signals in Axons: Student Laboratory Exercises

Published on: January 18, 2011

22.8K

Videos de Experimentos Relacionados

Last Updated: Aug 9, 2025

Fabrication of Myogenic Engineered Tissue Constructs
13:43

Fabrication of Myogenic Engineered Tissue Constructs

Published on: May 1, 2009

10.6K
Author Spotlight: Computing the Effects of a Local Radiofrequency Hyperthermia Intervention on Tumor Biomechanics
10:23

Author Spotlight: Computing the Effects of a Local Radiofrequency Hyperthermia Intervention on Tumor Biomechanics

Published on: December 1, 2023

504
Modeling Biological Membranes with Circuit Boards and Measuring Electrical Signals in Axons: Student Laboratory Exercises
13:56

Modeling Biological Membranes with Circuit Boards and Measuring Electrical Signals in Axons: Student Laboratory Exercises

Published on: January 18, 2011

22.8K

Área de la Ciencia:

  • Ciencia de los biomateriales
  • Química de los polímeros
  • Ingeniería de tejidos

Sus antecedentes:

  • Los polímeros conductores blandos ofrecen propiedades electrónicas y mecánicas únicas para aplicaciones biomédicas.
  • Los métodos actuales para integrar polímeros conductores en los tejidos son a menudo invasivos o de alcance limitado.
  • El desarrollo de técnicas de fabricación in situ es crucial para una integración perfecta con los sistemas biológicos.

Objetivo del estudio:

  • Para sintetizar un polímero suave conductor de electricidad directamente dentro del tejido vivo.
  • Demostrar la viabilidad de la polimerización in situ para la creación de biomateriales funcionales.
  • Explorar el potencial de esta técnica para aplicaciones biomédicas avanzadas.

Principales métodos:

  • Utilizó una nueva estrategia de polimerización in situ.
  • Monómeros precursores introducidos en el entorno de los tejidos vivos.
  • La polimerización desencadenada dentro de la matriz del tejido para formar el polímero conductor.

Principales resultados:

  • Con éxito sintetizó un polímero suave conductor eléctrico in situ dentro de un tejido vivo.
  • El polímero sintetizado exhibió una conductividad y propiedades mecánicas deseables.
  • Biocompatibilidad demostrada del proceso de polimerización in situ y del polímero resultante.

Conclusiones:

  • La síntesis in situ de polímeros blandos conductores eléctricos dentro del tejido vivo es posible.
  • Este enfoque proporciona un método mínimamente invasivo para crear biomateriales electrónicos funcionales.
  • La tecnología tiene una promesa significativa para aplicaciones en medicina regenerativa, interfaces neuronales y biosensores.