Study sheet: Nervous System Physiology

Course Outline

  1. Nervous System Roles and Functions
  2. Organization and Functional Pathways
  3. Nervous Tissue Cell Types
  4. Neuron Anatomy and Synapses
  5. Neuron Classification
  6. Resting and Graded Potentials
  7. Action Potential and Myelin
  8. Synaptic Integration

1. Nervous System Roles and Functions

Essential Points

πŸ“Œ The endocrine system uses hormones carried in the blood and acts slowly but sustainably, whereas the nervous system uses nerve impulses and acts rapidly but briefly and more precisely.

  • The nervous system regulates:

    • digestion
    • respiration
    • body temperature
    • heart rate
    • blood pressure
    • muscle contraction
  • The nervous system supports:

    • reasoning
    • emotion
    • imagination
    • memory
    • thought
    • intuition

Memory Hook

Endocrine action is slow and sustained, whereas nervous action is rapid and brief.

2. Organization and Functional Pathways

Essential Points

  • πŸ”„ Nervous system function proceeds through: reception of information by a receptor, integration and processing, action through motor impulses sent to effectors
  • The central nervous system consists of the brain and spinal cord and analyzes, processes, and coordinates information, whereas the peripheral nervous system consists of all nervous tissue outside the central nervous system.

  • The afferent sensory pathway carries information from receptors to the central nervous system, whereas the efferent motor pathway carries commands from the central nervous system to tissues and organs.

  • The somatic nervous system controls skeletal muscle contractions, whereas the autonomic nervous system involuntarily regulates smooth muscle, cardiac muscle, and glands.

Memory Hook

Receptor β†’ integration β†’ motor action

3. Nervous Tissue Cell Types

β˜… Must-know

  • Neurons compose 10% of nervous tissue and carry messages through nerve impulses, whereas glial cells compose 90% of nervous tissue.

  • Glial cells:

    • support neurons
    • isolate neurons
    • protect neurons
    • produce cerebrospinal fluid
    • form the myelin sheath

Further detail

πŸ“Œ Neurons lose their ability to divide, whereas glial cells provide structural and functional support to nervous tissue.

Memory Hook

Neurons transmit messages, whereas glial cells support, isolate, and protect them.

4. Neuron Anatomy and Synapses

Key Concepts & Definitions

  • Cell body : contains the nucleus, cytoplasm, mitochondria, and other organelles and synthesizes neurotransmitters
  • Dendrite : a highly branched neuronal structure that receives messages and, with the cell body, forms the receptive structure of the neuron
  • Axon : An axon sends a message from the axon hillock to the terminal corpuscles, whose terminal buttons transmit information to another neuron or a receptor cell.
  • Synapse : the meeting point between an axon terminal and a target cell, where a neuron communicates with another neuron or an effector cell through neurotransmitters

Essential Points

  • The direction of a nerve impulse is from the dendrites toward the terminal buttons.

Memory Hook

Dendrites β†’ cell body β†’ axon β†’ terminal buttons

5. Neuron Classification

Essential Points

  • Unipolar neurons include some neurons of the special senses, bipolar neurons include most sensory neurons, and multipolar neurons include all motor neurons and most interneurons.

6. Resting and Graded Potentials

Key Concepts & Definitions

  • Resting potential : The resting potential is the membrane potential of a resting, polarized neuron and is approximately βˆ’70 mV-70\,\text{mV}, with the cytoplasm more negative than the extracellular environment.
  • Graded potential : a temporary, localized membrane change caused by a stimulus, often when neurotransmitters open chemically gated sodium channels and sodium enters the cell

β˜… Must-know

πŸ“Œ When depolarization reaches the excitation threshold of βˆ’55 mV-55\,\text{mV}, an action potential occurs according to the all-or-none law; below that threshold, no action potential occurs.

Further detail

  • The resting membrane potential is maintained by the sodium-potassium pump.

Memory Hook

Resting state β†’ graded potential β†’ threshold

7. Action Potential and Myelin

β˜… Must-know

  • During an action potential, sodium enters through voltage-gated sodium channels and depolarizes the membrane to approximately +30 mV+30\,\text{mV}, potassium then exits and repolarizes the membrane, and continued potassium efflux produces hyperpolarization to approximately βˆ’80 mV-80\,\text{mV}.

πŸ“Œ During the absolute refractory period, the membrane cannot respond to a second stimulus, whereas during the relative refractory period, it can respond only to a stronger-than-normal stimulus.

Further detail

  • In a myelinated axon, depolarization at one node of Ranvier spreads to the next node and triggers a new action potential there.
  • The myelin sheath is formed by neurolemmocytes, also called Schwann cells, in the peripheral nervous system and by oligodendrocytes in the central nervous system.

Memory Hook

Depolarization β†’ repolarization β†’ hyperpolarization

8. Synaptic Integration

Key Concepts & Definitions

  • Summation : the addition of excitatory and inhibitory postsynaptic potentials, either temporally or spatially, at the axon hillock or trigger zone

Essential Points

  • An excitatory neurotransmitter produces an excitatory postsynaptic potential that makes the postsynaptic neuron more likely to generate an action potential, whereas an inhibitory neurotransmitter produces an inhibitory postsynaptic potential that makes it less likely.

  • Opening sodium channels causes depolarization and may trigger an action potential if the threshold is exceeded, whereas opening chloride or additional potassium channels causes hyperpolarization and makes threshold harder to reach.

  • If excitatory postsynaptic potentials outweigh inhibitory postsynaptic potentials, the motor neuron depolarizes beyond threshold and generates an impulse; if inhibitory postsynaptic potentials outweigh excitatory postsynaptic potentials, no impulse occurs.

Memory Hook

PPSEs facilitate firing, whereas PPSIs inhibit firing.

Synthesis Tables

Endocrine and Nervous Regulation

SystemSignalSpeed and duration
Endocrine systemHormones carried in bloodSlow but sustained
Nervous systemNerve impulsesRapid but brief and precise

Central and Peripheral Divisions

DivisionMain componentsMain role
Central nervous systemBrain and spinal cordAnalysis, processing, coordination, and motor commands
Peripheral nervous systemCranial nerves, spinal nerves, and tissue outside the CNSSensory information and motor commands

Test your knowledge

Test your knowledge on Nervous System Physiology with 24 multiple-choice questions with detailed corrections.

1. Which comparison accurately distinguishes nervous and endocrine system signaling?

2. Which activity illustrates the nervous system's role in maintaining homeostasis?

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Review with flashcards

Memorize the key concepts of Nervous System Physiology with 54 interactive flashcards.

How does the endocrine system communicate compared to the nervous system?

The endocrine system uses hormones carried in the blood.

How does the nervous system communicate compared to the endocrine system?

The nervous system uses nerve impulses.

What is the speed and duration difference between endocrine and nervous systems?

The endocrine system acts slowly but sustainably; the nervous system acts rapidly but briefly.

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