Structure and function of neurons
Structure and function
of cells of nervous system
Brain - It is the organ that moves the muscles. It is very flexible in that it makes us behave in different ways according to the environment , let us learn from our experiences and all these abilities are possible by billions of cells found in nervous system called neurons.
Types of neurons:
Sensory neurons - A neuron that detect changes in the external or internal environment , gathers these information and sends them to the CNS
Motor neurons - located within the central nervous system and control contraction of muscles and secretion of the glands , control movements of body
Interneuron - located entirely within the CNS . This is of two types:
Brain - It is the organ that moves the muscles. It is very flexible in that it makes us behave in different ways according to the environment , let us learn from our experiences and all these abilities are possible by billions of cells found in nervous system called neurons.
Types of neurons:
Sensory neurons - A neuron that detect changes in the external or internal environment , gathers these information and sends them to the CNS
Motor neurons - located within the central nervous system and control contraction of muscles and secretion of the glands , control movements of body
Interneuron - located entirely within the CNS . This is of two types:
1.Local interneurons - Form circuits with nearby neurons and analyse small pieces of information
2.Relay interneurons - Connect circuits of local interneurons from one region of the brain to another
Cells of nervous system:
Most important cells of nervous system:
1.Neurons and their supporting cells
2.Blood - brain barrier
Most important cells of nervous system:
1.Neurons and their supporting cells
2.Blood - brain barrier
Neurons:
Neurons or nerve cells are
the information processing and information transmitting element of the nervous
system.
Basic structure of a typical neuron consists of:
A. Cell body or Soma - the cell body containing the nucleus
Basic structure of a typical neuron consists of:
A. Cell body or Soma - the cell body containing the nucleus
B. Dendrites - tree like structure attached to the Soma receive information from the terminal button of the neurones
C .Axons - long tube covered in balance sheet transfer the information from cell body to the terminal button. The message that it carries is called action potential, it starts at the end of the cell body and travel towards the terminal button.
It is always of same size
and duration when it reaches where axon branches ,it splits but does not reduce
its size .
Axoplasm - The jelly like substance in the axon
Types of neurons according to the way in which their axon and dendrites leave the soma :
1. Multipolar neuron - Most common types in the CNS ,In this the soma give rise to one axon and many dendrites attached to the Soma
2. Bipolar neuron - A neuron with one axon and one dendrites attached to the soma , these are usually sensory neurones
3. Unipolar neuron - A neuron with one stalk attached , which divides into two branches with one branch receiving sensory information and other sending information to the CNS .
Dendrites of unipolar
neurons mostly detect the touch temperature changes
D. Terminal buttons - It is present at the end of the branch of an axon , forms synapses with another neuron and sends information to that neuron , it also secretes a chemical called neurotransmitters ,when an action potential travelling down the axon reaches there .
D. Terminal buttons - It is present at the end of the branch of an axon , forms synapses with another neuron and sends information to that neuron , it also secretes a chemical called neurotransmitters ,when an action potential travelling down the axon reaches there .
Any individual neuron receive
information from the terminal button of axons of other neuron and the terminal
button of its axon forms synapse with the other neuron.
Internal structure of neuron:
A. Membrane - Boundary of the cell made of double layer of lipid substance.
Embedded in the membrane are variety of protein molecules with special functions:
Internal structure of neuron:
A. Membrane - Boundary of the cell made of double layer of lipid substance.
Embedded in the membrane are variety of protein molecules with special functions:
Some of these protein detects substances
outside the cell , some pass information and some control access to the
interior of the cell, some acts as transporters carrying certain molecules in
and out of the cell ,these are important in transmitting the information.
Importance of proteins in
cell function
1. It provides shape - by cytoskeleton formed by microtubules
and protein fibres linked to each other forming a cohesive mass and gives the
cell its shape
2. Serves as enzyme - it causes particular molecules to
join together or split apart
3. Help transporting substance within the cell
The system that transport
items rapidly and effectively through the axoplasm called is called axoplasmic
transport
The transport is done by long protein strands called microtubules which is bundle of 13 filaments arrange around a hollow Core
It is of two types:
Anterograde axoplasmic transport which is movement from the cell body to the terminal buttons , this is very fast
Retrograde axoplasmic transport carries substance from the terminal button back to the soma , this is half as fast as the anterograde transport .
The transport is done by long protein strands called microtubules which is bundle of 13 filaments arrange around a hollow Core
It is of two types:
Anterograde axoplasmic transport which is movement from the cell body to the terminal buttons , this is very fast
Retrograde axoplasmic transport carries substance from the terminal button back to the soma , this is half as fast as the anterograde transport .
Energy for both the
transport is provided by mitochondria through ATP
B. Cytoplasm - Jelly like substance containing specialised structure
Such as:
Mitochondria -It breaks down the nutrients , provide energy to the cell . It produces chemical adenosine tri-phosphate ( ATP ) which is used as energy source in the cell
C. Nucleus - Structure in centre of the cell containing the chromosome. chromosome is a strand of DNA carries genetic information , portion of chromosome called genes is the functional unit of chromosome , it directs synthesis of proteins
Such as:
Mitochondria -It breaks down the nutrients , provide energy to the cell . It produces chemical adenosine tri-phosphate ( ATP ) which is used as energy source in the cell
C. Nucleus - Structure in centre of the cell containing the chromosome. chromosome is a strand of DNA carries genetic information , portion of chromosome called genes is the functional unit of chromosome , it directs synthesis of proteins
Supporting cells of nervous
system
Neurones contain only half
the volume of the CNS . Rest consists of supporting cells. They provide
nutrients ,support and protection to the neurons
Glia - also called glial cells , surrounds the neurons ,holds them together , control supply of nutrients , insulate neurons from another so that information don't get mixed , destroy and removes carcasses of dead neurones
Three Types of glial cells
1. Astrocytes provide physical support , control the chemical composition of the fluid surrounding the neurons and provide nourishment ,serves as a matrix that holds neurons together in place
When neurons die , astrocytes clean up the debris. When astrocytes contact a piece of debris from a dead neuron ,they push themselves against it, engulfing and digesting it ,this process is called phagocytosis
2. Oligodendrocytes in CNS provide support to axon and produce myelin sheath , myelin is 80% lipid and 20% protein. It forms a tube surrounding the axon , these tubes consists of series of segments ,with small portion of uncoated axon between the segments.
Glia - also called glial cells , surrounds the neurons ,holds them together , control supply of nutrients , insulate neurons from another so that information don't get mixed , destroy and removes carcasses of dead neurones
Three Types of glial cells
1. Astrocytes provide physical support , control the chemical composition of the fluid surrounding the neurons and provide nourishment ,serves as a matrix that holds neurons together in place
When neurons die , astrocytes clean up the debris. When astrocytes contact a piece of debris from a dead neuron ,they push themselves against it, engulfing and digesting it ,this process is called phagocytosis
2. Oligodendrocytes in CNS provide support to axon and produce myelin sheath , myelin is 80% lipid and 20% protein. It forms a tube surrounding the axon , these tubes consists of series of segments ,with small portion of uncoated axon between the segments.
These bare portions of axon are called nodes
of Ranvier
These serves to facilitate
rapid conduction of Action potential ,as these bare portion enable impulses to
jump from one node to another called saltatory conduction.
3. Microglia - Smallest glial cells, serves as one of the representation of the immune system in the brain, protect brain from microorganisms.
4. Schwann cells (In pns) - Support axon and produce myelin in PNS.
3. Microglia - Smallest glial cells, serves as one of the representation of the immune system in the brain, protect brain from microorganisms.
4. Schwann cells (In pns) - Support axon and produce myelin in PNS.
Blood brain barrier
Discovered by Paul Ehrlich. It is a semi permeable barrier between the blood and the brain .Produced by the cells in the walls of the brain capillaries.
The presence of blood
brain barrier makes it easier to regulate the composition of fluid that enters
brain. Blood - brain barrier is not uniform throughout the CNS, it is
relatively permeable in area called area postrema , region of the medulla
where the blood - brain barrier is weak ,poisons can be detected there and can
initiate vomiting
Communication within the neurons
Measuring electrical potential of Axons:
A Micro electrode is used to measure the activity of an individual neuron .
inside of Axon is
negatively charged as compared to the outside .Difference is -70 MV. Thus, the inside of the membrane of an Axon
is -70 MV called the membrane potential. It is the difference in
electrical potential inside and outside the cell (Potential is stored up energy)
The message that it
conducts down the axon consists of brief change in the membrane potential
To study these changes and potential we can use an Oscilloscope, it measure voltage and also produce a record of these voltage graphically.
To study these changes and potential we can use an Oscilloscope, it measure voltage and also produce a record of these voltage graphically.
Resting potential-It is the membrane potential when the membrane is at
rest, approximately -70 mv.
If the membrane potential
is altered, the membrane potential suddenly reverses itself so that the inside
becomes more positive
and the outside becomes more negative. The membrane potential then quickly returns to normal but it overshoot as it passes is resting potential (-70mv) and becomes hyperpolarized that is become more negative for a short time this whole process takes about 2 milliseconds
This very Rapid reversal of membrane potential is called action potential
The voltage level the triggers an action potential is called threshold of excitation
Reason for membrane potential:
1. Force of diffusion - The process whereby molecules distribute themselves evenly throughout the medium by moving from regions of high concentration to regions of low concentration
2.Force of electrostatic pressure- When some substance called electrolytes dissolved in water it splits into parts called ions .Ions are of 2 types : Cations - Positively charged and Anions - Negatively charged.
and the outside becomes more negative. The membrane potential then quickly returns to normal but it overshoot as it passes is resting potential (-70mv) and becomes hyperpolarized that is become more negative for a short time this whole process takes about 2 milliseconds
This very Rapid reversal of membrane potential is called action potential
The voltage level the triggers an action potential is called threshold of excitation
Reason for membrane potential:
1. Force of diffusion - The process whereby molecules distribute themselves evenly throughout the medium by moving from regions of high concentration to regions of low concentration
2.Force of electrostatic pressure- When some substance called electrolytes dissolved in water it splits into parts called ions .Ions are of 2 types : Cations - Positively charged and Anions - Negatively charged.
The force exerted by
attraction or repulsion between the ions is called electrostatic pressure
.
The force moves ions from
higher concentration to lower concentration region.
3. Ions in extra and intracellular fluid
Intracellular fluid - Fluid within the cell
3. Ions in extra and intracellular fluid
Intracellular fluid - Fluid within the cell
Extracellular fluid -Fluid
outside the cell
Four important ions of these ions are:
A. Organic ions (A-)
B. Chloride ions(Cl-)
C. Sodium ions(Na+)
D. Potassium ions(K+)
Organic ions (A-) ,negatively charged are found only in the intracellular fluid
Potassium ions ( K+) are found predominantly in the intracellular fluid
Sodium (Na+) and chloride (Cl-) ions are also present in the intracellular fluid but lesser in number however these are present in predominantly or in larger number outside or extracellular fluid
Reasons for such distributions of ions inside and outside of the cells:
A. Organic ions- is present only in intracellular fluid because the membrane is not permeable or impermeable to it and it contributes to membrane potential
B. Potassium ions - it is present predominantly in intracellular fluid that is inside the Axon , so the force of diffusion tries to push it outside of the cell but outside of the cell is more positively charged than the inside so the electrostatic pressure tends to keep it inside.
As K+ is positively charged and outside the cell is positively charged and as we know similar forces repel each other so potassium ions remains inside the cell.
C. Chloride - Present in greater concentration outside the cell ,so, the force of diffusion push it inside the cell but because inside is more negatively charged and chloride is also negatively charged and similar charges repels each other so, they remain where they are. The two opposite force of diffusion and force of electrostatic pressure tends to balance each other and so it remains where it is.
D. Sodium ions - Present in higher concentration outside the cell and is pushed inside the cell by force of diffusion.
Four important ions of these ions are:
A. Organic ions (A-)
B. Chloride ions(Cl-)
C. Sodium ions(Na+)
D. Potassium ions(K+)
Organic ions (A-) ,negatively charged are found only in the intracellular fluid
Potassium ions ( K+) are found predominantly in the intracellular fluid
Sodium (Na+) and chloride (Cl-) ions are also present in the intracellular fluid but lesser in number however these are present in predominantly or in larger number outside or extracellular fluid
Reasons for such distributions of ions inside and outside of the cells:
A. Organic ions- is present only in intracellular fluid because the membrane is not permeable or impermeable to it and it contributes to membrane potential
B. Potassium ions - it is present predominantly in intracellular fluid that is inside the Axon , so the force of diffusion tries to push it outside of the cell but outside of the cell is more positively charged than the inside so the electrostatic pressure tends to keep it inside.
As K+ is positively charged and outside the cell is positively charged and as we know similar forces repel each other so potassium ions remains inside the cell.
C. Chloride - Present in greater concentration outside the cell ,so, the force of diffusion push it inside the cell but because inside is more negatively charged and chloride is also negatively charged and similar charges repels each other so, they remain where they are. The two opposite force of diffusion and force of electrostatic pressure tends to balance each other and so it remains where it is.
D. Sodium ions - Present in higher concentration outside the cell and is pushed inside the cell by force of diffusion.
Since, sodium is
positively charged and inside of the cell is negatively charged so, electrostatic
force does not prevent it from entering the cell because the negative charge
inside attract the positively charged sodium Ion .
But in spite of the fact
that two forces tends to push sodium inside the cell it is present in higher
concentration outside of the cell .
This is because of the
presence of Sodium Potassium pump
Sodium Potassium pump continuously pushes sodium out of the cell.
Sodium Potassium pump continuously pushes sodium out of the cell.
The pump consists of large
number of Sodium Potassium Transporter proteins embedded in the membrane which
works by the energy produced by ATP molecules. The pump exchanges Sodium for
Potassium, pushing three sodium ions outside of the cell for every two potassium inside the cell.
The Action Potential
Both electrostatic and diffusion forces push sodium into the cell but because the membrane is not so permeable to Sodium and also the Sodium - Potassium pump keeps its outside , So, the intracellular level of sodium is low.
The Action Potential
Both electrostatic and diffusion forces push sodium into the cell but because the membrane is not so permeable to Sodium and also the Sodium - Potassium pump keeps its outside , So, the intracellular level of sodium is low.
However, during the
action potential the membrane becomes more permeable to sodium , forces of
diffusion and electrostatic process would cause sodium to rush inside the cell .
The sudden influx of positively charged sodium ions would change the membrane
potential and cause a action potential to occur.
Reason for this increase in permeability of sodium ions:
This is due to a type of protein molecules which provide ion channels that allows ions to enter or leave the cells . The more number of Ion channels are open more is the permeability.
Reason for this increase in permeability of sodium ions:
This is due to a type of protein molecules which provide ion channels that allows ions to enter or leave the cells . The more number of Ion channels are open more is the permeability.
Process of action potential
(1) When the threshold of excitation is reached the opening of sodium ion channels increases the permeability of sodium and it rushes inside the cell
The sodium ions change the membrane potential from -70 mv to approximately +40 mv, decreasing the membrane potential or depolarization .
Because these channels are
opened by changes in the membrane potential it is also called voltage
dependent Ion channels
(2) The potassium channel in the membrane are less sensitive and require higher depolarization to open so they open later than the sodium channels
(3) When action potential reaches its peak sodium channels are blocked and cannot open until the membrane once again goes back to its resting potential so at this point sodium cannot enter the cell.
(4) Now the potassium (K+) ion channel opens and because of depolarization the inside is more positively charged so potassium ion is rushed outside of the cell by diffusion in electrostatic force.
(5) While returning to its normal value the membrane overshoots is resting value because the potassium ions moves outside the cell this is called hyperpolarization and then gradually returns to normal and extra potassium ions soon diffuses away and membrane becomes at resting potential.
(2) The potassium channel in the membrane are less sensitive and require higher depolarization to open so they open later than the sodium channels
(3) When action potential reaches its peak sodium channels are blocked and cannot open until the membrane once again goes back to its resting potential so at this point sodium cannot enter the cell.
(4) Now the potassium (K+) ion channel opens and because of depolarization the inside is more positively charged so potassium ion is rushed outside of the cell by diffusion in electrostatic force.
(5) While returning to its normal value the membrane overshoots is resting value because the potassium ions moves outside the cell this is called hyperpolarization and then gradually returns to normal and extra potassium ions soon diffuses away and membrane becomes at resting potential.
Conduction of action potential:
Basic characteristics of action potential :
1. Follows the all or none law all or none law states
that an action potential will either occur or does not occur ,no in between
2. Once fire it always goes down the axon to its end
3. Action
potential always remains the same size without increasing or decreasing in size.
4. When an action potential reaches a point where the axon
branches it splits but does not decreases in size .
5. Also follows the rate law , high rate of firing (firing
refers to production of action potential) causes of strong effect ,low firing
rate cause low effect.
6. Saltatory conduction- In this the action potential jumps from one nodes of ranvier to
another.
Benefits of saltatory conduction-it
consumes less energy and it conducts message at a very high speed.
Communication between neurons:
Neurons
communicate primarily through synaptic transmission which is the
transmission of message from one neuron to another through a synapse
Synapse- the space\gap formed between the dendrites of a neuron and terminal button of another neuron
Neurotransmitters -information is transmitted by neurotransmitter released by the terminal buttons
Neurotransmitter produced postsynaptic potential that increases or decreases the rate of firing
postsynaptic
potential is of two types :
depolarization and hyperpolarization
Postsynaptic potential - changes
in the membrane of the postsynaptic neuron produced by the release of
neurotransmitter from the presynaptic membrane at the synapse .
Neurotransmitters are natural
ligands and attach to a particular binding site at postsynaptic membrane
Presynaptic membrane - is the
membrane of the terminal button and releases the neurotransmitter
Postsynaptic membrane -is a
member of the opposite neuron (dendrite) , opposite to the presynaotic membrane
which receives the neurotransmitter
Synaptic cleft- the space
between presynaptic membrane and postsynaptic membrane
Synaptic vesicles - bead like
structures found in terminal button producing and containing neurotransmitters
Dendritic spine -structures
present on the dendrites which forms a synapse with the terminal button
Structure of synapse
synapse
can be formed at three places:
On dendrites called axodendritic
on
Soma call axosomatic
on
axon called axoaxonic
The presynaptic membrane located on terminal button and the postsynaptic membrane located on opposite neuron receives the neurotransmitters. The two membrane faces each other across the synaptic cleft
Release
of Neurotransmitters:
Synaptic
vesicles fuses with membrane ,then break open and spill their contents into the
synaptic cleft.
Activation of neurons
Neurotransmitter producer depolarization or hyperpolarization in presynaptic membrane by:Diffusing across the synaptic cleft ,and attaching to the binding site in the postsynaptic membrane.
Binding
site is present in the receptor molecules, in the postsynaptic membrane called postsynaptic
receptor
During
the binding process the postsynaptic receptor opens neurotransmitter dependent
Ion channels mainly sodium or potassium channels.
With
the opening of channel specific ions rushes into the cell.
In
short, neurotransmitter causes the iron channel to open, causes certain ions to
enter the cell and changing the membrane potential.
Neurotransmitters
main job is to open the Ion channels.
It does this by 2 method:
1.Direct method – In this ,The neurotransmitter molecules attaches to the ion channels which causes it to open this is also called Ionotropic receptor
1.Direct method – In this ,The neurotransmitter molecules attaches to the ion channels which causes it to open this is also called Ionotropic receptor
2.Indirect
method - Some receptors contain metabotropic receptors , these don't
open the Ion channels by themselves but start a change of events which causes
it to open.
Metabotropic
receptors are located near another protein call G- protein.
When
neurotransmitter attached to metabotropic receptors it activates G-protein,
G-protein inturn activates an enzyme ,that enzyme stimulates production of
chemical called second messenger .
second
messenger because a neurotransmitter in the first messengers.
Second
messenger then causes the Ion channels to open .
Cyclic
AMP was the first second messenger discovered
Postsynaptic potential
It is of two types:
It is of two types:
1.Depolarization (excitatory)
2.Hyperpolarization (inhibitory)
Whether
the postsynaptic membrane is excitatory and inhibitory is determined by the
type of Ion channels they open in the postsynaptic membrane.
Three
major types of Ion channels in the postsynaptic membrane are :
1.Sodium,
2.Potassium
and
3.Chloride
Sodium-
Opening of sodium channel causes excitatory post synaptic potentian .When
sodium channels are open sodium comes in the cell and causes depolarization
which is an excitatory postsynaptic potential.
Potassium channel causes inhibitory postsynaptic potential(IPSP). when potassium ion channels are open potassium ion moves out of the cell causing hyperpolarization which is an inhibitory postsynaptic potential
Chloride the opening of chloride channel causes the chloride to enter the cell . The inflow of chloride brings the membrane back to its resting potential of -70 MV . It neutralizes the post synaptic potential.
Potassium channel causes inhibitory postsynaptic potential(IPSP). when potassium ion channels are open potassium ion moves out of the cell causing hyperpolarization which is an inhibitory postsynaptic potential
Chloride the opening of chloride channel causes the chloride to enter the cell . The inflow of chloride brings the membrane back to its resting potential of -70 MV . It neutralizes the post synaptic potential.
Termination of postsynaptic potential
It is terminated by two method :
1.Re-uptake
- Rapid removal of neurotransmitter from the synaptic cleft by re-entering in the terminal button.
2.Enzymatic deactivation- The destruction of the neurotransmitter by an enzyme after its release
Effect of postsynaptic potential
2.Enzymatic deactivation- The destruction of the neurotransmitter by an enzyme after its release
Effect of postsynaptic potential
1.Excitatory
post synaptic potential (EPSP)- causes a neuron to fire
2.Inhibitory
post synaptic potential (IPSC)- causes a neuron to stop firing
The rate of firing of a neuron depends upon the relative activity of excitatory and inhibitory postsynaptic potential.
The rate of firing of a neuron depends upon the relative activity of excitatory and inhibitory postsynaptic potential.
The
interaction effect of excitatory and inhibitory postsynaptic potential on a
particular neurone is called neural integration
Therefore if the activity of excitatory postsynaptic potential goes up rates of firing also goes up .If activity of inhibitory synapse goes up rate of firing goes down.
Therefore if the activity of excitatory postsynaptic potential goes up rates of firing also goes up .If activity of inhibitory synapse goes up rate of firing goes down.
Autoreceptors - receptors on
the neurons that response to the neurotransmitters that they themselves
produced is called autoreceptors .
The
autoreceptors don't control Ion channels, they only control internal process
such a synthesis and release of neurotransmitter. These are metabotropic
receptors.
Axoaxonic synapse
Axodendritic and axosomatic synapses causes IPSP and EPSP.
Axoaxonic synapse
Axodendritic and axosomatic synapses causes IPSP and EPSP.
However
,the type of synapse, the axoaxonic synapse alters the amount of
neurotransmitter released by the terminal button .
They
causes pre synaptic modulation, i.e, modulates the amount of neurotransmitter
released.
If
it increases the neurotransmitter release it causes presynaptic facilitation.
If
it decreases the neurotransmitter released it is called presynaptic
inhibition
Neuromodulators - Beside
releasing neurotransmitters the terminal button of neuron also release
neuromodulators. It travels faster and disperses more widely than a neurotransmitter
secreted in large amount.
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