BackIntroduction to the Nervous System and Nervous Tissue – Study Notes
Study Guide - Smart Notes
Tailored notes based on your materials, expanded with key definitions, examples, and context.
Introduction to the Nervous System and Nervous Tissue
Overview of the Nervous System
The nervous system is a complex network responsible for coordinating the body’s activities by transmitting signals to and from different parts of the body. It is essential for sensation, integration, and response to internal and external stimuli.
Major Functions: Sensory input, integration of data, and motor output.
Central Nervous System (CNS): Consists of the brain and spinal cord; responsible for processing and integrating information.
Peripheral Nervous System (PNS): Composed of nerves and ganglia outside the CNS; transmits signals between the CNS and the rest of the body.
Functional Divisions of the PNS:
Somatic Nervous System: Controls voluntary movements of skeletal muscles.
Autonomic Nervous System: Regulates involuntary functions (e.g., heart rate, digestion).
Nervous System Structure and Function
The nervous system is composed of specialized cells called neurons and supporting cells known as neuroglia. Each type of cell has a unique structure that supports its specific function.
Neurons: The primary signaling cells; consist of a cell body, dendrites, and an axon.
Types of Neurons:
Multipolar: Many dendrites, one axon (most common in CNS).
Bipolar: One dendrite, one axon (found in sensory organs).
Unipolar: Single process that splits into two branches (sensory neurons in PNS).
Neuroglial Cells: Support, protect, and nourish neurons.
CNS Neuroglia: Astrocytes, oligodendrocytes, microglia, ependymal cells.
PNS Neuroglia: Schwann cells, satellite cells.
Electrophysiology of Neurons
Neurons communicate via electrical signals known as action potentials, which depend on the movement of ions across the cell membrane through voltage-gated ion channels.
Voltage-Gated Ion Channels: Essential for initiating and propagating action potentials.
Refractory Periods:
Absolute Refractory Period: No new action potential can be generated.
Relative Refractory Period: A stronger stimulus is required to initiate another action potential.
Conduction Types:
Continuous Conduction: Occurs in unmyelinated axons; slower signal transmission.
Saltatory Conduction: Occurs in myelinated axons; action potentials jump between nodes of Ranvier, increasing speed.
Factors Affecting Conduction Velocity: Axon diameter (larger = faster) and myelination (myelinated = faster).
Neuronal Synapses
Synapses are specialized junctions where neurons communicate with other neurons, muscles, or glands. They can be electrical or chemical in nature.
Electrical Synapses: Allow direct passage of ions and rapid communication.
Chemical Synapses: Use neurotransmitters to transmit signals across a synaptic cleft.
Neurotransmitter and Receptor Relationship: The effect of a neurotransmitter depends on the receptor it binds to.
Events of Chemical Synaptic Transmission: Neurotransmitter release, binding to receptors, and generation of postsynaptic potentials.
Postsynaptic Potentials:
Excitatory Postsynaptic Potential (EPSP): Depolarizes the postsynaptic membrane, increasing the likelihood of an action potential.
Inhibitory Postsynaptic Potential (IPSP): Hyperpolarizes the postsynaptic membrane, decreasing the likelihood of an action potential.
Neurotransmitters
Neurotransmitters are chemical messengers that transmit signals across synapses. Their effect can be excitatory or inhibitory depending on the receptor and location.
Excitatory vs. Inhibitory: The same neurotransmitter can have different effects at different synapses.
Major Classes of Neurotransmitters: Acetylcholine, amino acids (e.g., glutamate, GABA), monoamines (e.g., dopamine, serotonin), neuropeptides.
Common Neurotransmitters in the CNS:
Excitatory: Glutamate
Inhibitory: Gamma-aminobutyric acid (GABA)
Key Equations
Nernst Equation (for equilibrium potential):
Ohm’s Law (for membrane potential):