The Nerve System
Created by i254166
THE HUMAN NERVOUS SYSTEM — A COMPLETE, DETAILED LESSON
The human nervous system is the body’s electrochemical communication network, responsible for sensing the environment, processing information, generating behavior, and maintaining internal stability. It is composed of neurons and glial cells, organized into the central nervous system (CNS) and peripheral nervous system (PNS).
1. Major Divisions of the Nervous System
A. Central Nervous System (CNS)
Includes the brain and spinal cord, housed within the skull and vertebral column.
Brain
Weighs ~3 pounds, ~60% fat, and contains ~100 billion neurons.
Divided into cerebrum, cerebellum, and brainstem.
Spinal Cord
A long, thin bundle of nervous tissue that relays signals between brain and body.
Integrates reflexes without requiring conscious brain input.
B. Peripheral Nervous System (PNS)
All neural tissue outside the CNS. Includes nerves and ganglia.
Subdivisions:
Somatic Nervous System — voluntary control of skeletal muscles.
Autonomic Nervous System — involuntary control of organs, glands, and smooth muscle.
Sympathetic (“fight or flight”)
Parasympathetic (“rest and digest”)
2. Neurons — The Functional Units
Neurons are specialized cells that transmit information using electrical impulses and chemical signals.
Structure
Dendrites — receive incoming signals.
Cell body (soma) — integrates signals.
Axon — long projection that sends signals; can be up to 1 meter long.
Myelin sheath — increases conduction speed.
Axon terminals — release neurotransmitters.
Signal Transmission
Electrical: action potentials travel along axons.
Chemical: neurotransmitters cross synapses to activate the next cell.
3. Glial Cells — The Support System
Glial cells provide structural support, insulation, immune defense, and metabolic assistance.
Types include:
Astrocytes — regulate environment, form blood–brain barrier.
Oligodendrocytes — myelinate CNS axons.
Schwann cells — myelinate PNS axons.
Microglia — immune cells of the CNS.
4. Gray Matter vs. White Matter
Gray matter: neuron cell bodies; responsible for processing and interpreting information.
White matter: myelinated axons; responsible for transmitting signals.
In the brain: gray outside, white inside.
In the spinal cord: white outside, gray inside.
5. Major Brain Regions and Their Functions
A. Cerebrum
Largest part of the brain; responsible for higher functions like memory, reasoning, emotions, and voluntary movement.
Cerebral Cortex
Outer gray matter layer with folds (gyri) and grooves (sulci).
Divided into frontal, parietal, temporal, and occipital lobes.
Deep Structures
Basal nuclei — planning and coordinating movement.
Limbic system — emotion, memory, behavior.
B. Diencephalon
Includes:
Thalamus — sensory relay station.
Hypothalamus — homeostasis, hormones, hunger, temperature.
C. Brainstem
Controls vital functions:
Breathing
Heart rate
Blood pressure
Sleep cycles
D. Cerebellum
Coordinates:
Balance
Posture
Fine motor control
6. Spinal Cord Organization
Ascending tracts: carry sensory information to the brain.
Descending tracts: carry motor commands from the brain.
Reflex arcs: rapid, automatic responses processed in the spinal cord.
7. How the Nervous System Works (Functionally)
The nervous system performs three major functions:
1. Sensory Input
Detects internal and external stimuli through receptors.
2. Integration
Processes information in the CNS.
3. Motor Output
Activates muscles or glands to respond.
8. Voluntary vs. Involuntary Control
Somatic Nervous System (Voluntary)
Controls skeletal muscle movement.
Autonomic Nervous System (Involuntary)
Regulates:
Heartbeat
Breathing
Digestion
Metabolism
9. Development of the Nervous System
The nervous system begins forming around 18 days after conception as the neural plate.
Key developmental facts:
Most neurons are generated prenatally and are not replaced later.
~2.5 million neurons are produced per minute during development.
Early reflexes appear by the second prenatal month.
10. How the CNS and PNS Work Together
The CNS processes information; the PNS delivers it.
Examples:
Touching a hot surface → PNS sends signal → CNS interprets → PNS triggers withdrawal reflex.
| Term | Definition |
|---|---|
THE HUMAN NERVOUS SYSTEM — A COMPLETE, DETAILED LESSON
The human nervous system is the body’s electrochemical communication network, responsible for sensing the environment, processing information, generating behavior, and maintaining internal stability. It is composed of neurons and glial cells, organized into the central nervous system (CNS) and peripheral nervous system (PNS).
1. Major Divisions of the Nervous System
A. Central Nervous System (CNS)
Includes the brain and spinal cord, housed within the skull and vertebral column.
Brain
Weighs ~3 pounds, ~60% fat, and contains ~100 billion neurons.
Divided into cerebrum, cerebellum, and brainstem.
Spinal Cord
A long, thin bundle of nervous tissue that relays signals between brain and body.
Integrates reflexes without requiring conscious brain input.
B. Peripheral Nervous System (PNS)
All neural tissue outside the CNS. Includes nerves and ganglia.
Subdivisions:
Somatic Nervous System — voluntary control of skeletal muscles.
Autonomic Nervous System — involuntary control of organs, glands, and smooth muscle.
Sympathetic (“fight or flight”)
Parasympathetic (“rest and digest”)
2. Neurons — The Functional Units
Neurons are specialized cells that transmit information using electrical impulses and chemical signals.
Structure
Dendrites — receive incoming signals.
Cell body (soma) — integrates signals.
Axon — long projection that sends signals; can be up to 1 meter long.
Myelin sheath — increases conduction speed.
Axon terminals — release neurotransmitters.
Signal Transmission
Electrical: action potentials travel along axons.
Chemical: neurotransmitters cross synapses to activate the next cell.
3. Glial Cells — The Support System
Glial cells provide structural support, insulation, immune defense, and metabolic assistance.
Types include:
Astrocytes — regulate environment, form blood–brain barrier.
Oligodendrocytes — myelinate CNS axons.
Schwann cells — myelinate PNS axons.
Microglia — immune cells of the CNS.
4. Gray Matter vs. White Matter
Gray matter: neuron cell bodies; responsible for processing and interpreting information.
White matter: myelinated axons; responsible for transmitting signals.
In the brain: gray outside, white inside.
In the spinal cord: white outside, gray inside.
5. Major Brain Regions and Their Functions
A. Cerebrum
Largest part of the brain; responsible for higher functions like memory, reasoning, emotions, and voluntary movement.
Cerebral Cortex
Outer gray matter layer with folds (gyri) and grooves (sulci).
Divided into frontal, parietal, temporal, and occipital lobes.
Deep Structures
Basal nuclei — planning and coordinating movement.
Limbic system — emotion, memory, behavior.
B. Diencephalon
Includes:
Thalamus — sensory relay station.
Hypothalamus — homeostasis, hormones, hunger, temperature.
C. Brainstem
Controls vital functions:
Breathing
Heart rate
Blood pressure
Sleep cycles
D. Cerebellum
Coordinates:
Balance
Posture
Fine motor control
6. Spinal Cord Organization
Ascending tracts: carry sensory information to the brain.
Descending tracts: carry motor commands from the brain.
Reflex arcs: rapid, automatic responses processed in the spinal cord.
7. How the Nervous System Works (Functionally)
The nervous system performs three major functions:
1. Sensory Input
Detects internal and external stimuli through receptors.
2. Integration
Processes information in the CNS.
3. Motor Output
Activates muscles or glands to respond.
8. Voluntary vs. Involuntary Control
Somatic Nervous System (Voluntary)
Controls skeletal muscle movement.
Autonomic Nervous System (Involuntary)
Regulates:
Heartbeat
Breathing
Digestion
Metabolism
9. Development of the Nervous System
The nervous system begins forming around 18 days after conception as the neural plate.
Key developmental facts:
Most neurons are generated prenatally and are not replaced later.
~2.5 million neurons are produced per minute during development.
Early reflexes appear by the second prenatal month.
10. How the CNS and PNS Work Together
The CNS processes information; the PNS delivers it.
Examples:
Touching a hot surface → PNS sends signal → CNS interprets → PNS triggers withdrawal reflex.
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