Achievable logoAchievable logo
MBLEx
Sign in
Sign up
Purchase
Textbook
Practice exams
Support
How it works
Exam catalog
Mountain with a flag at the peak
Textbook
1. Anatomy and physiology
2. Kinesiology
3. Pathology & special populations
4. Benefits and effects
5. Assessment and planning
6. Sandbox Folder
6.1 Musculoskeletal system benefits
6.2 Mechanical and reflex effects
6.3 Circulatory system benefits
6.4 Nervous system
6.4.1 Organization
6.4.2 Organization Expanded
6.5 Example
6.6 Stephen sandbox
6.7 Spinal nerves and peripheral nerves
6.8 Conditions
6.9 Proprioceptors
Achievable logoAchievable logo
6.4.2 Organization Expanded
Achievable MBLEx
6. Sandbox Folder
6.4. Nervous system
Our MBLEx course is currently in development and is a work-in-progress.

Organization Expanded

7 min read
Font
Discuss
Share
Feedback

General Organization

At the most general level of organization, the nervous system consists of the central nervous system (CNS) and the peripheral nervous system (PNS). The CNS consists of the brain and the spinal cord, and contains the centers for reaction to environmental stimuli.

Definitions
Central nervous system (CNS)
brain and spinal cord
Peripheral nervous sytem (PNS)
all nervous system tissue outside of the brain and spinal cord

The PNS is divided into sensory and motor branches. The sensory branch is known as the afferent nervous system, and consists of all the neurons that bring information from receptors to the CNS. The motor branch of the PNS, the efferent nervous system, is further divided into somatic and autonomic branches. The somatic nervous system carries information from the CNS to the skeletal muscles, and is generally associated with initiation of voluntary action. An individual impulse travels from the CNS to an effector organ along the axon of a single motor neuron. The autonomic nervous system carries information from the CNS to smooth muscles and glands, and is generally associated with involuntary action. An individual impulse travels from the CNS to an effector organ through a chain of at least two motor neurons.

The autonomic nervous system is divided into sympathetic and parasympathetic branches. The sympathetic nervous system is largely concerned with the diversion of energy to the skeletal muscles, and is generally associated with so called “fight or flight” mechanisms. The parasympathetic nervous system is largely concerned with the diversion of energy to the viscera, and is generally associated with “rest and digest” activities.

Definitions
Effector organs
muscles and glands (responsible for the only observable body actions in the 1600’s)
Sensory receptors
structures that create nervous system impulses that encode data about the external environment or internal environment
Afferent neurons
send sensory information to the brain and spinal cord from other tissues
Efferent neurons
send motor commands to muscles and glands
Somatic nervous system
the division of the nervous system responsible for sending motor commands to skeletel muscles (i.e., moment-to-moment voluntary control)
Autonomic nervous sytem
an umbrella term for the multiple divisions of the peripheral nervous system that manage our bodies’ automatic processes (sympathetic, parasympathetic, enteric)
Sympathetic nervous system
the division of the peripheral nervous system that controls reflexes that support goal-directed activity, including “fight or flight”
Parasympathetic nervous system
the division of the peripheral nervous system that controls reflexes that support bodies’ rest, digest, repair, and growth functions

Example question:

Some of the effects of massage result from the client’s experience of relaxation. What division of the nervous system carries those rest/digest/repair signals to the body’s tissues and organs?

(spoiler)

Answer: Parasympathetic nervous system

White matter and gray matter

Within the nervous system there are areas of white and gray matter. White matter consists of myelinated axons and their associated neuroglia, usually organized into tracts. Gray matter consists of cell bodies, dendrites, and unmyelinated axons along with their associated neuroglia. Collections of cell bodies within the CNS are referred to as nuclei. Nuclei are centers of activity where information is either sent to other parts of the brain or spinal cord or acted on directly.

Definitions
White matter
nervous system tissue that is composed primarily of myelinated axons (the fatty myelin is whitish in appearance)
Gray matter
nervous system tissue that is composed primarily of neuron cell bodies and dendrites

Bundles of axons outside the CNS are called nerves, and usually contain both afferent and efferent fibers. Bundles of axons within the CNS are called tracts. All of the fibers of a particular tract are usually carrying information in the same direction, either toward or away from the brain.

Definitions

Types of white matter

Nerves
bundles of axons outside of the brain and spinal cord
Tracts
bundles of axons inside the brain and spinal cord

Collections of cell bodies outside the CNS are referred to as ganglia; collections of cell bodies within the CNS are called nuclei. Ganglia of the afferent nervous system are located just outside the spinal cord along the dorsal root of each spinal nerve (dorsal root ganglia). Sympathetic nervous system ganglia are located in side branches of spinal nerves close to the spinal cord (prevertebral or sympathetic chain ganglia). Parasympathetic nervous system ganglia are close to or within the tissues of effector organs (terminal ganglia).

Definitions

Types of gray matter

Ganglia
concentrations of neuron cell bodies outside of the brain and spinal cord
Tracts
bundles of axons inside the brain and spinal cord

Example question: Some of the effects of massage result from decreasing the pressure that muscles can exert on nerves. Are nerves gray matter or white matter? What parts of neurons are bundled within nerves?

(spoiler)

answer = Nerves are white matter, because they are bundles of myelinated axons.

ORGANIZATION OF SENSORY RECEPTORS

Our sensory receptors can be grouped into two categories: special sensory receptors that only exist in one or two places in the body, and general sensory receptors, which can be found many places throughout the body. Special sensory receptors include photoreceptors for vision (the rods and cones of the retina: rods for light intensity and cones for color), mechanoreceptors for hearing and equilibrium, and chemoreceptors specialized for smell and taste.

Definitions

“Special sensory receptors”, which are called special because they’re only found in a few areas of the body:

Photoreceptors
The rods and cones in the retina that turn light into nervous system impulses
Mechanoreceptors
The sensory receptors deep in the inner ear that turn the pressure from sound waves and the movement of the head into nervous system impulses
Chemoreceptors
The sensory receptors of the tongue and nose that create the sensations of taste and smell from the presence of chemicals

General sensory receptors include the stretch receptors (also called muscle spindles) and the Golgi tendon organs*, the two primary proprioceptors. The tactile receptors spread throughout the body include all of receptor that help create your sense of touch, including free nerve endings. In areas of the body covered with hair, your sense of touch is aided by hair root plexus receptors, which translate the movement of hair into neural signals. Thermoreceptors code for core temperature and innocuous changes in environmental temperature, while nociceptors encode pain signals related to damaging heat, damaging cold, and other stimuli that may be dangerous to tissue. The interior state of the body is also monitored by baroreceptors that are sensitive to pressure, and chemoreceptors specialized for sensing pH and levels of oxygen, carbon dioxide, toxins, drugs, and hormones.

Definitions

“General sensory receptors”, which are called general because they’re found all over the body:

Muscle spindles / stretch receptors
structures in the bellies of muscles that detect the length of the muscle, protecting it from getting overstretched
Golgi tendon organs
structures in the tendons that detect the force / tension being experienced by the tendon, protecting it from muscle contractions so strong that they tear muscle or tendon
Tactile receptors
all of the various sensory receptors that contribute to our sense of touch
Hair root plexus receptors
sensory receptors that detect the movement of hair shaft
Thermoreceptors
sensory receptors that detect temperature
Nociceptors
sensory receptors that detect pain
Baroreceptors
sensory receptors that detect pressure
Chemoreceptors
sensory receptors that sense the body’s chemistry including pH, oxygen, carbon dioxide, toxins, drugs, and hormones

Touch sensation is transmitted from the skin in specific dermatomal patterns that are largely consistent across individuals. The entire surface of the body can be divided into dermatomes: small bilateral regions for which all of the region’s sensation is transmitted to the CNS by a single pair of spinal nerves. This means that impingement of or damage to individual spinal nerves can impair sensation to just the skin in the corresponding dermatome.

General Organization of the Nervous System

  • CNS: brain and spinal cord; main centers for processing and response
  • PNS: all nervous tissue outside CNS; divided into sensory (afferent) and motor (efferent) branches
  • Efferent (motor) PNS:
    • Somatic: voluntary control of skeletal muscles (single motor neuron pathway)
    • Autonomic: involuntary control of smooth muscle/glands (two-neuron chain)
      • Sympathetic: “fight or flight,” energy to muscles
      • Parasympathetic: “rest and digest,” energy to viscera

White Matter and Gray Matter

  • White matter: myelinated axons (tracts in CNS, nerves in PNS)
  • Gray matter: neuron cell bodies, dendrites, unmyelinated axons (nuclei in CNS, ganglia in PNS)
  • Nerves: bundles of axons outside CNS (white matter)
  • Tracts: bundles of axons inside CNS (white matter)
  • Ganglia: clusters of neuron cell bodies outside CNS (gray matter)
  • Nuclei: clusters of neuron cell bodies inside CNS (gray matter)

Organization of Sensory Receptors

  • Special sensory receptors: localized, specific senses
    • Photoreceptors (vision: rods/cones)
    • Mechanoreceptors (hearing, equilibrium)
    • Chemoreceptors (smell, taste)
  • General sensory receptors: widespread throughout body
    • Muscle spindles/stretch receptors (muscle length)
    • Golgi tendon organs (tendon tension)
    • Tactile receptors (touch, including hair root plexus)
    • Thermoreceptors (temperature)
    • Nociceptors (pain)
    • Baroreceptors (pressure)
    • Chemoreceptors (internal chemistry: pH, gases, toxins)
  • Dermatomes: skin regions innervated by single spinal nerve pair; important for mapping sensory loss
Previous
Next  | 6.5 Example
All rights reserved ©2016 - 2026 Achievable, Inc.

Organization Expanded

General Organization

At the most general level of organization, the nervous system consists of the central nervous system (CNS) and the peripheral nervous system (PNS). The CNS consists of the brain and the spinal cord, and contains the centers for reaction to environmental stimuli.

Definitions
Central nervous system (CNS)
brain and spinal cord
Peripheral nervous sytem (PNS)
all nervous system tissue outside of the brain and spinal cord

The PNS is divided into sensory and motor branches. The sensory branch is known as the afferent nervous system, and consists of all the neurons that bring information from receptors to the CNS. The motor branch of the PNS, the efferent nervous system, is further divided into somatic and autonomic branches. The somatic nervous system carries information from the CNS to the skeletal muscles, and is generally associated with initiation of voluntary action. An individual impulse travels from the CNS to an effector organ along the axon of a single motor neuron. The autonomic nervous system carries information from the CNS to smooth muscles and glands, and is generally associated with involuntary action. An individual impulse travels from the CNS to an effector organ through a chain of at least two motor neurons.

The autonomic nervous system is divided into sympathetic and parasympathetic branches. The sympathetic nervous system is largely concerned with the diversion of energy to the skeletal muscles, and is generally associated with so called “fight or flight” mechanisms. The parasympathetic nervous system is largely concerned with the diversion of energy to the viscera, and is generally associated with “rest and digest” activities.

Definitions
Effector organs
muscles and glands (responsible for the only observable body actions in the 1600’s)
Sensory receptors
structures that create nervous system impulses that encode data about the external environment or internal environment
Afferent neurons
send sensory information to the brain and spinal cord from other tissues
Efferent neurons
send motor commands to muscles and glands
Somatic nervous system
the division of the nervous system responsible for sending motor commands to skeletel muscles (i.e., moment-to-moment voluntary control)
Autonomic nervous sytem
an umbrella term for the multiple divisions of the peripheral nervous system that manage our bodies’ automatic processes (sympathetic, parasympathetic, enteric)
Sympathetic nervous system
the division of the peripheral nervous system that controls reflexes that support goal-directed activity, including “fight or flight”
Parasympathetic nervous system
the division of the peripheral nervous system that controls reflexes that support bodies’ rest, digest, repair, and growth functions

Example question:

Some of the effects of massage result from the client’s experience of relaxation. What division of the nervous system carries those rest/digest/repair signals to the body’s tissues and organs?

(spoiler)

Answer: Parasympathetic nervous system

White matter and gray matter

Within the nervous system there are areas of white and gray matter. White matter consists of myelinated axons and their associated neuroglia, usually organized into tracts. Gray matter consists of cell bodies, dendrites, and unmyelinated axons along with their associated neuroglia. Collections of cell bodies within the CNS are referred to as nuclei. Nuclei are centers of activity where information is either sent to other parts of the brain or spinal cord or acted on directly.

Definitions
White matter
nervous system tissue that is composed primarily of myelinated axons (the fatty myelin is whitish in appearance)
Gray matter
nervous system tissue that is composed primarily of neuron cell bodies and dendrites

Bundles of axons outside the CNS are called nerves, and usually contain both afferent and efferent fibers. Bundles of axons within the CNS are called tracts. All of the fibers of a particular tract are usually carrying information in the same direction, either toward or away from the brain.

Definitions

Types of white matter

Nerves
bundles of axons outside of the brain and spinal cord
Tracts
bundles of axons inside the brain and spinal cord

Collections of cell bodies outside the CNS are referred to as ganglia; collections of cell bodies within the CNS are called nuclei. Ganglia of the afferent nervous system are located just outside the spinal cord along the dorsal root of each spinal nerve (dorsal root ganglia). Sympathetic nervous system ganglia are located in side branches of spinal nerves close to the spinal cord (prevertebral or sympathetic chain ganglia). Parasympathetic nervous system ganglia are close to or within the tissues of effector organs (terminal ganglia).

Definitions

Types of gray matter

Ganglia
concentrations of neuron cell bodies outside of the brain and spinal cord
Tracts
bundles of axons inside the brain and spinal cord

Example question: Some of the effects of massage result from decreasing the pressure that muscles can exert on nerves. Are nerves gray matter or white matter? What parts of neurons are bundled within nerves?

(spoiler)

answer = Nerves are white matter, because they are bundles of myelinated axons.

ORGANIZATION OF SENSORY RECEPTORS

Our sensory receptors can be grouped into two categories: special sensory receptors that only exist in one or two places in the body, and general sensory receptors, which can be found many places throughout the body. Special sensory receptors include photoreceptors for vision (the rods and cones of the retina: rods for light intensity and cones for color), mechanoreceptors for hearing and equilibrium, and chemoreceptors specialized for smell and taste.

Definitions

“Special sensory receptors”, which are called special because they’re only found in a few areas of the body:

Photoreceptors
The rods and cones in the retina that turn light into nervous system impulses
Mechanoreceptors
The sensory receptors deep in the inner ear that turn the pressure from sound waves and the movement of the head into nervous system impulses
Chemoreceptors
The sensory receptors of the tongue and nose that create the sensations of taste and smell from the presence of chemicals

General sensory receptors include the stretch receptors (also called muscle spindles) and the Golgi tendon organs*, the two primary proprioceptors. The tactile receptors spread throughout the body include all of receptor that help create your sense of touch, including free nerve endings. In areas of the body covered with hair, your sense of touch is aided by hair root plexus receptors, which translate the movement of hair into neural signals. Thermoreceptors code for core temperature and innocuous changes in environmental temperature, while nociceptors encode pain signals related to damaging heat, damaging cold, and other stimuli that may be dangerous to tissue. The interior state of the body is also monitored by baroreceptors that are sensitive to pressure, and chemoreceptors specialized for sensing pH and levels of oxygen, carbon dioxide, toxins, drugs, and hormones.

Definitions

“General sensory receptors”, which are called general because they’re found all over the body:

Muscle spindles / stretch receptors
structures in the bellies of muscles that detect the length of the muscle, protecting it from getting overstretched
Golgi tendon organs
structures in the tendons that detect the force / tension being experienced by the tendon, protecting it from muscle contractions so strong that they tear muscle or tendon
Tactile receptors
all of the various sensory receptors that contribute to our sense of touch
Hair root plexus receptors
sensory receptors that detect the movement of hair shaft
Thermoreceptors
sensory receptors that detect temperature
Nociceptors
sensory receptors that detect pain
Baroreceptors
sensory receptors that detect pressure
Chemoreceptors
sensory receptors that sense the body’s chemistry including pH, oxygen, carbon dioxide, toxins, drugs, and hormones

Touch sensation is transmitted from the skin in specific dermatomal patterns that are largely consistent across individuals. The entire surface of the body can be divided into dermatomes: small bilateral regions for which all of the region’s sensation is transmitted to the CNS by a single pair of spinal nerves. This means that impingement of or damage to individual spinal nerves can impair sensation to just the skin in the corresponding dermatome.

Key points

General Organization of the Nervous System

  • CNS: brain and spinal cord; main centers for processing and response
  • PNS: all nervous tissue outside CNS; divided into sensory (afferent) and motor (efferent) branches
  • Efferent (motor) PNS:
    • Somatic: voluntary control of skeletal muscles (single motor neuron pathway)
    • Autonomic: involuntary control of smooth muscle/glands (two-neuron chain)
      • Sympathetic: “fight or flight,” energy to muscles
      • Parasympathetic: “rest and digest,” energy to viscera

White Matter and Gray Matter

  • White matter: myelinated axons (tracts in CNS, nerves in PNS)
  • Gray matter: neuron cell bodies, dendrites, unmyelinated axons (nuclei in CNS, ganglia in PNS)
  • Nerves: bundles of axons outside CNS (white matter)
  • Tracts: bundles of axons inside CNS (white matter)
  • Ganglia: clusters of neuron cell bodies outside CNS (gray matter)
  • Nuclei: clusters of neuron cell bodies inside CNS (gray matter)

Organization of Sensory Receptors

  • Special sensory receptors: localized, specific senses
    • Photoreceptors (vision: rods/cones)
    • Mechanoreceptors (hearing, equilibrium)
    • Chemoreceptors (smell, taste)
  • General sensory receptors: widespread throughout body
    • Muscle spindles/stretch receptors (muscle length)
    • Golgi tendon organs (tendon tension)
    • Tactile receptors (touch, including hair root plexus)
    • Thermoreceptors (temperature)
    • Nociceptors (pain)
    • Baroreceptors (pressure)
    • Chemoreceptors (internal chemistry: pH, gases, toxins)
  • Dermatomes: skin regions innervated by single spinal nerve pair; important for mapping sensory loss

More from Nervous system

  • Organization