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Muscle Coordination and Action01:24

Muscle Coordination and Action

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Muscle coordination is a complex and finely tuned process essential for smooth and purposeful movements like flexion, extension, adduction, abduction, and rotation. The human body orchestrates the actions of various muscles working in concert, each with a specific role. Four functional types describe how muscles work together: agonist, antagonist, synergist, and fixator.
Agonists
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Support reactions in three dimensions help maintain the stability and equilibrium of various structures and systems. These reactions prevent the system from translating and rotating, ensuring the design can withstand external forces and perform its intended function efficiently and safely. Some of the supports providing support reactions in three dimensions are discussed below:
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Nine muscles are involved in arm movements. Two of these, the pectoralis major and latissimus dorsi, originate from the axial skeleton and are called axial muscles. The other seven originate from the scapula and are called the scapular muscles.
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Motor Units01:13

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The motor unit is a fundamental component of the neuromuscular system and plays a crucial role in coordinating muscle contractions. It consists of a somatic motor neuron, which connects and controls multiple skeletal muscle fibers, forming a single functional segment. The axon of the motor neuron branches out and establishes synaptic connections known as neuromuscular junctions with individual muscle fibers within the motor unit.
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Anatomical Movements00:51

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Anatomical movements refer to the various actions or motions that can be performed by the body's joints and muscles. These movements are described using specific terms to provide a standardized way of discussing and understanding the range of motion at different joints.
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Hierarchy of Motor Control01:18

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The hierarchy of motor control refers to the different levels of organization and processing involved in controlling movement in the body. These levels range from higher cortical areas involved in planning and decision-making to lower spinal cord reflexes that respond automatically to external stimuli.
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Related Experiment Video

Updated: Jan 1, 2026

An Emerging Target Paradigm to Evoke Fast Visuomotor Responses on Human Upper Limb Muscles
09:27

An Emerging Target Paradigm to Evoke Fast Visuomotor Responses on Human Upper Limb Muscles

Published on: August 25, 2020

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Target of initial sub-movement in multi-component arm-reaching strategy.

Luka Peternel1, Jan Babič2

  • 1Department of Cognitive Robotics, Delft University of Technology, Mekelweg 2, 2628CD, Delft, The Netherlands. l.peternel@tudelft.nl.

Scientific Reports
|December 29, 2019
PubMed
Summary

Human reaching movements use sub-movements. This study found a temporary target for the initial sub-movement, located in front of the final target, influencing movement dispersion based on distance and target size.

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Frame-by-Frame Video Analysis of Idiosyncratic Reach-to-Grasp Movements in Humans
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Area of Science:

  • Motor control
  • Human movement science
  • Biomechanics

Background:

  • Goal-directed reaching movements are essential for daily activities.
  • These movements often comprise multiple sub-movements, with an initial fast, imprecise phase and a final corrective phase.
  • Understanding the underlying neural and biomechanical strategies is crucial for fields like robotics and rehabilitation.

Purpose of the Study:

  • To investigate the properties of a temporary target used by the initial sub-movement during goal-directed reaching.
  • To determine if the peak spatial dispersion of movement trajectories indicates this temporary target.
  • To examine how reaching movement distance and actual target size influence the temporary target's characteristics.

Main Methods:

  • Analysis of human reaching movement trajectories.
  • Quantification of spatial dispersion in the axis perpendicular to the movement direction.
  • Hypothesis testing regarding the location of peak dispersion relative to the final target.
  • Experimental manipulation of reaching distance and target size.

Main Results:

  • Peak spatial dispersion of movement trajectories was found in front of the final reaching target, supporting its role as a temporary target for the initial sub-movement.
  • Increased reaching movement distance led to greater peak dispersion magnitude and shifted its location further from the final target.
  • Increased actual target size resulted in greater peak dispersion magnitude and shifted its location closer to the final target.

Conclusions:

  • The initial sub-movement in goal-directed reaching appears to target a temporary location, indicated by peak trajectory dispersion.
  • This temporary target's properties are modulated by movement distance and target size, reflecting adaptive motor control strategies.
  • Findings provide insights into the internal mechanisms governing human motor learning and execution.