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Force01:06

Force

34.4K
Forces affect every moment of our life. Our bodies are held to the Earth by force, and they are held together by the forces of charged particles. When we open a door, walk down a street, lift a fork, or touch a baby's face, we are applying force. Our body's atoms are held together by electrical forces, and the core of an atom, called the nucleus, is held together by the strongest force known to us—nuclear force.
The study of motion is called kinematics, but kinematics only...
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Types of Forces01:09

Types of Forces

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In most situations, forces can be grouped into two categories: contact forces and field forces.  Contact forces occur as a result of direct physical contact between objects. Field forces, however, act without the necessity of physical contact between objects. They depend on the presence of a "field" in the region of space surrounding the body under consideration. You can think of a field as a property of space that is detectable by the forces it exerts. Scientists think there...
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An Introduction to Mechanics01:28

An Introduction to Mechanics

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Humans have been making ships, shelters, pyramids, weapons, agricultural equipment, and many more items without recording the process or theory behind them for centuries. It would be challenging to document the evolution of mechanics from its origin to the present.
According to records, the history of mechanics starts with Aristotle (384–322 BC). He related mechanics to physical theory, aiming for a universal synthesis.
Newton defined mechanics as the branch of physical science that...
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Introduction to force01:25

Introduction to force

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Consider water flowing from a nozzle to a turbine vane. As the water hits the turbine vane, it exerts a force that causes it to move along the flow of direction. Force is an impact that changes an object's motion, shape, or orientation. Forces can be caused by physical contact, such as a push or pull, or through non-contact interactions, such as magnetic or gravitational forces. Force is a vector quantity with both magnitude and direction, and is measured in newtons (N) in the SI unit...
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Upward Impending Motion01:21

Upward Impending Motion

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A square-threaded screw jack is a mechanical device widely used for lifting heavy loads or applying considerable force. Its operation is based on converting the force applied at its handle into a torsional moment, causing the upward impending motion of the screw. This movement is accomplished by overcoming the static friction between the threads of the screw and the jack.
To better comprehend how a screw jack functions, consider the completely unraveled thread as a block in contact with the...
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Stability of structures01:14

Stability of structures

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In mechanical engineering, the stability of systems under various forces is critical for designing durable and efficient structures. One fundamental way to explore these concepts is by analyzing systems like two rods connected at a pivot point, O, with a torsional spring of spring constant k at the pivot point. This system is similar in appearance to a scissor jack used to change tires on a car. In this case, the arms of the linkage (equivalent to the rods in this system) are entirely vertical,...
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Updated: Apr 12, 2026

Probing the Roles of Physical Forces in Early Chick Embryonic Morphogenesis
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Probing the Roles of Physical Forces in Early Chick Embryonic Morphogenesis

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SnapShot: Fuerzas mecánicas en desarrollo I

Laurynas Pasakarnis1, David Dreher1, Damian Brunner1

  • 1Department of Molecular Life Sciences, University of Zurich, 8057 Zürich, Switzerland.

Cell
|April 23, 2016
PubMed
Resumen

Los motores celulares de actina y miosina generan fuerzas esenciales para el desarrollo de los tejidos. La comprensión de estas dinámicas citoesqueléticas revela mecanismos de deformación celular y disposición de contacto durante la morfogénesis.

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Área de la Ciencia:

  • Biología del desarrollo
  • Biología celular
  • La biofísica

Sus antecedentes:

  • Los filamentos de actina (F-actina) y los motores de miosina son componentes cruciales del citoesqueleto.
  • Estos elementos generan fuerzas que impulsan la morfogénesis de los tejidos en los organismos en desarrollo.
  • Ellos controlan la deformación celular y la organización del contacto celular.

Objetivo del estudio:

  • Para resaltar los procesos morfogenéticos clave impulsados por la F-actina y la miosina.
  • Mostrar cómo el análisis de estos procesos ha avanzado en la comprensión de la generación de fuerza citoesquelética.
  • Proporcionar una visión concisa de las funciones de la F-actina/miosina en la biología del desarrollo.

Principales métodos:

  • Revisión de la investigación establecida sobre la F-actina y la miosina en desarrollo.
  • Selección de procesos morfogenéticos representativos para una discusión detallada.
  • Análisis de los datos experimentales que demuestran la generación de fuerza citoesquelética.

Principales resultados:

  • Las estructuras de F-actina y los motores de miosina son fundamentales para generar fuerzas en el desarrollo de los tejidos.
  • Estas fuerzas median cambios específicos en la forma de la célula y regulan la adhesión celular.
  • Estudios pioneros han aclarado mecanismos distintos de generación de fuerza impulsada por F-actina / miosina.

Conclusiones:

  • La F-actina y la miosina son indispensables para impulsar la morfogénesis tisular.
  • Comprender estas dinámicas citoesqueléticas es clave para descifrar los procesos de desarrollo.
  • Este trabajo sintetiza ideas críticas sobre la generación de fuerza mediada por F-actina / miosina en el desarrollo.