An illustrated chemical synapse
Structure of a typical chemical synapse

A neurotransmitter is a signaling molecule secreted by a neuron to affect another cell across a synapse. The cell receiving the signal, or target cell, may be another neuron, but could also be a gland or muscle cell.

Neurotransmitters are released from synaptic vesicles into the synaptic cleft where they are able to interact with neurotransmitter receptors on the target cell. Some neurotransmitters are also stored in large dense core vesicles. The neurotransmitter's effect on the target cell is determined by the receptor it binds to. Many neurotransmitters are synthesized from simple and plentiful precursors such as amino acids, which are readily available and often require a small number of biosynthetic steps for conversion.

Neurotransmitters are essential to the function of complex neural systems. The exact number of unique neurotransmitters in humans is unknown, but more than 100 have been identified. Common neurotransmitters include glutamate, GABA, acetylcholine, glycine, dopamine and norepinephrine.

Mechanism and cycle

Synthesis

Neurotransmitters are generally synthesized in neurons and are made up of, or derived from, precursor molecules that are found abundantly in the cell. Classes of neurotransmitters include amino acids, monoamines, and peptides. Monoamines are synthesized by altering a single amino acid. For example, the precursor of serotonin is the amino acid tryptophan. Peptide neurotransmitters, or neuropeptides, are protein transmitters which are larger than the classical small-molecule neurotransmitters and are often released together to elicit a modulatory effect. Purine neurotransmitters, like ATP, are derived from nucleic acids. Metabolic products such as nitric oxide and carbon monoxide have also been reported to act like neurotransmitters.

Examples
Amino acidsglycine, glutamate
Monoaminesserotonin, epinephrine, dopamine
Peptidessubstance P, opioids
PurinesATP, GTP
Othernitric oxide, carbon monoxide

Storage

Synaptic vesicles containing neurotransmitters

Neurotransmitters are generally stored in synaptic vesicles, clustered close to the cell membrane at the axon terminal of the presynaptic neuron. However, some neurotransmitters, like the metabolic gases carbon monoxide and nitric oxide, are synthesized and released immediately following an action potential without ever being stored in vesicles.

Release

Generally, a neurotransmitter is released via exocytosis at the presynaptic terminal in response to an electrical signal called an action potential in the presynaptic neuron. However, low-level "baseline" release also occurs without electrical stimulation. Neurotransmitters are released into and diffuse across the synaptic cleft, where they bind to specific receptors on the membrane of the postsynaptic neuron.

Receptor interaction

After being released into the synaptic cleft, neurotransmitters diffuse across the synapse where they are able to interact with receptors on the target cell. The effect of the neurotransmitter is dependent on the identity of the target cell's receptors present at the synapse. Depending on the receptor, binding of neurotransmitters may cause excitation, inhibition, or modulation of the postsynaptic neuron.

Elimination

Acetylcholine is cleaved in the synaptic cleft into acetic acid and choline.

In order to avoid continuous activation of receptors on the post-synaptic or target cell, neurotransmitters must be removed from the synaptic cleft. Neurotransmitters are removed through one of three mechanisms:

  1. Diffusion – neurotransmitters drift out of the synaptic cleft, where they are absorbed by glial cells. These glial cells, usually astrocytes, absorb the excess neurotransmitters. Astrocytes, a type of glial cell in the brain, actively contribute to synaptic communication through astrocytic diffusion or gliotransmission. Neuronal activity triggers an increase in astrocytic calcium levels, prompting the release of gliotransmitters, such as glutamate, ATP, and D-serine. These gliotransmitters diffuse into the extracellular space, interacting with nearby neurons and influencing synaptic transmission. By regulating extracellular neurotransmitter levels, astrocytes help maintain proper synaptic function. This bidirectional communication between astrocytes and neurons add complexity to brain signaling, with implications for brain function and neurological disorders.
  2. Enzyme degradation – proteins called enzymes break the neurotransmitters down.
  3. Reuptake – neurotransmitters are reabsorbed into the pre-synaptic neuron. Transporters, or membrane transport proteins, pump neurotransmitters from the synaptic cleft back into axon terminals (the presynaptic neuron) where they are stored for reuse.

For example, acetylcholine is eliminated by having its acetyl group cleaved by the enzyme acetylcholinesterase; the remaining choline is then taken in and recycled by the pre-synaptic neuron to synthesize more acetylcholine. Other neurotransmitters are able to diffuse away from their targeted synaptic junctions and are eliminated from the body via the kidneys, or destroyed in the liver. Each neurotransmitter has very specific degradation pathways at regulatory points, which may be targeted by the body's regulatory system or medication. Cocaine blocks a dopamine transporter responsible for the reuptake of dopamine. Without the transporter, dopamine diffuses much more slowly from the synaptic cleft and continues to activate the dopamine receptors on the target cell.

Discovery

Until the early 20th century, scientists assumed that the majority of synaptic communication in the brain was electrical. However, through histological examinations by Ramón y Cajal, a 20 to 40nm gap between neurons, known today as the synaptic cleft, was discovered. The presence of such a gap suggested communication via chemical messengers traversing the synaptic cleft, and in 1921 German pharmacologist Otto Loewi confirmed that neurons can communicate by releasing chemicals. Through a series of experiments involving the vagus nerves of frogs, Loewi was able to manually slow the heart rate of frogs by controlling the amount of saline solution present around the vagus nerve. Upon completion of this experiment, Loewi asserted that sympathetic regulation of cardiac function can be mediated through changes in chemical concentrations. Furthermore, Otto Loewi is credited with discovering acetylcholine (ACh) – the first known neurotransmitter.

Identification

To identify neurotransmitters, the following criteria are typically considered:

  1. Synthesis: The chemical must be produced within the neuron or be present in it as a precursor molecule.
  2. Release and response: When the neuron is activated, the chemical must be released and elicit a response in target cells or neurons.
  3. Experimental response: Application of the chemical directly to the target cells should produce the same response observed when the chemical is naturally released from neurons.
  4. Removal mechanism: There must be a mechanism in place to remove the neurotransmitter from its site of action once its signaling role is complete.

However, given advances in pharmacology, genetics, and chemical neuroanatomy, the term "neurotransmitter" can be applied to chemicals that:

  • Carry messages between neurons via influence on the postsynaptic membrane.
  • Have little or no effect on membrane voltage, but have a common carrying function such as changing the structure of the synapse.
  • Communicate by sending reverse-direction messages that affect the release or reuptake of transmitters.

The anatomical localization of neurotransmitters is typically determined using immunocytochemical techniques, which identify the location of either the transmitter substances themselves or of the enzymes that are involved in their synthesis. Immunocytochemical techniques have also revealed that many transmitters, particularly the neuropeptides, are co-localized, that is, a neuron may release more than one transmitter from its synaptic terminal. Various techniques and experiments such as staining, stimulating, and collecting can be used to identify neurotransmitters throughout the central nervous system.

Actions

Neurons communicate with each other through synapses, specialized contact points where neurotransmitters transmit signals. When an action potential reaches the presynaptic terminal, voltage-gated calcium channels open, allowing calcium ions to enter the terminal. This calcium influx triggers the fusion of synaptic vesicles with the presynaptic membrane, leading to the release of neurotransmitters into the synaptic cleft. These neurotransmitters then bind to receptors on the postsynaptic membrane, influencing the receiving neuron in either an inhibitory or excitatory manner. If the overall excitatory influences outweigh the inhibitory influences, the receiving neuron may generate its own action potential, continuing the transmission of information to the next neuron in the network. This process allows for the flow of information and the formation of complex neural networks.

Modulation

A neurotransmitter may have an excitatory, inhibitory or modulatory effect on the target cell. The effect is determined by the receptors the neurotransmitter interacts with at the post-synaptic membrane. Neurotransmitters influence trans-membrane ion flow either to increase (excitatory) or to decrease (inhibitory) the probability that the cell with which it comes in contact will produce an action potential. Synapses containing receptors with excitatory effects are called Type I synapses, while Type II synapses contain receptors with inhibitory effects.

Thus, despite the wide variety of synapses, they all convey only these two types of messages. The two types have different appearances and primarily act on different parts of neurons. Receptors with modulatory effects are spread throughout all synaptic membranes and binding of neurotransmitters sets in motion signaling cascades that help the cell regulate its function. Binding of neurotransmitters to receptors with modulatory effects can have many results. For example, it may increase or decrease in sensitivity to future stimuli by recruiting more or fewer receptors to the synaptic membrane.

Type I (excitatory) synapses are typically located on the shafts or the spines of dendrites, whereas type II (inhibitory) synapses are typically located on the cell body. In addition, Type I synapses have round synaptic vesicles, whereas the vesicles of type II synapses are flattened. The material on the presynaptic and post-synaptic membranes is denser in a Type I synapse than it is in a Type II, and the Type I synaptic cleft is wider. Finally, the active zone on a Type I synapse is larger than that on a Type II synapse.

The different locations of Type I and Type II synapses divide a neuron into two zones: an excitatory dendritic tree and an inhibitory cell body. From an inhibitory perspective, excitation comes in over the dendrites and spreads to the axon hillock to trigger an action potential. If the message is to be stopped, it is best stopped by applying inhibition on the cell body, close to the axon hillock, where the action potential originates. Another way to conceptualize excitatory–inhibitory interaction is to picture excitation overcoming inhibition. If the cell body is normally in an inhibited state, the only way to generate an action potential at the axon hillock is to reduce the cell body's inhibition. In this "open the gates" strategy, the excitatory message is like a racehorse ready to run down the track, but first, the inhibitory starting gate must be removed.

Neurotransmitter actions

As explained above, the only direct action of a neurotransmitter is to activate a receptor. Therefore, the effects of a neurotransmitter system depend on the connections of the neurons that use the transmitter, and the chemical properties of the receptors.

Types

There are many different ways to classify neurotransmitters. They are commonly classified into amino acids, monoamines and peptides.

Some of the major neurotransmitters are:

In addition, over 100 neuroactive peptides have been found, and new ones are discovered regularly. Many of these are co-released along with a small-molecule transmitter. Nevertheless, in some cases, a peptide is the primary transmitter at a synapse. Beta-endorphin is a relatively well-known example of a peptide neurotransmitter because it engages in highly specific interactions with opioid receptors in the central nervous system.[citation needed]

Single ions (such as synaptically released zinc) are also considered neurotransmitters by some, as well as some gaseous molecules such as nitric oxide (NO), carbon monoxide (CO), and hydrogen sulfide (H2S). The gases are produced in the neural cytoplasm and are immediately diffused through the cell membrane into the extracellular fluid and into nearby cells to stimulate production of second messengers. Soluble gas neurotransmitters are difficult to study because they act rapidly and are immediately broken down, existing for only a few seconds.

The most prevalent transmitter is glutamate, which is excitatory at well over 90% of the synapses in the human brain. The next most prevalent is gamma-Aminobutyric Acid, or GABA, which is inhibitory at more than 90% of the synapses that do not use glutamate. Although other transmitters are used in fewer synapses, they may be very important functionally: the great majority of psychoactive drugs exert their effects by altering the actions of some neurotransmitter systems, often acting through transmitters other than glutamate or GABA. Addictive drugs such as cocaine and amphetamines exert their effects primarily on the dopamine system. The addictive opiate drugs act primarily as functional analogs of opioid peptides, which, in turn, regulate dopamine levels.

List of neurotransmitters, peptides, and gaseous signaling molecules

Neurotransmitters
CategoryNameAbbreviationMetabotropicIonotropic
Neurotransmitters Category Name Abbreviation Metabotropic IonotropicSmallTooltip Small molecule: Amino acids (Arg)ArginineArg, Rα2-Adrenergic receptors, imidazoline receptorsNMDA receptorsSmall: Amino acidsAspartateAsp, D–NMDA receptorsSmall: Amino acidsGlutamateGlu, EMetabotropic glutamate receptorsNMDA receptors, kainate receptors, AMPARsSmall: Amino acidsGamma-aminobutyric acidGABAGABAB receptorsGABAA receptors, GABAA-ρ receptorsSmall: Amino acidsGlycineGly, G–NMDA receptors, glycine receptorsSmall: Amino acidsD-serineSer, S–NMDA receptorsSmall: AcetylcholineAcetylcholineAChMuscarinic acetylcholine receptorsNicotinic acetylcholine receptorsSmall: Monoamine (Phe/Tyr)DopamineDADopamine receptors, trace amine-associated receptor 1–Small: Monoamine (Phe/Tyr)Norepinephrine (noradrenaline)NE, NAdAdrenergic receptors–Small: Monoamine (Phe/Tyr)Epinephrine (adrenaline)Epi, AdAdrenergic receptors–Small: Monoamine (Trp)Serotonin (5-hydroxytryptamine)5-HTSerotonin receptors (all except 5-HT3)5-HT3Small: Monoamine (His)HistamineHHistamine receptors–Small: Trace amine (Phe)PhenethylaminePEATrace amine-associated receptors TAAR1, TAAR2–Small: Trace amine (Phe)N-methylphenethylamineNMPEATAAR1–Small: Trace amine (Phe/Tyr)TyramineTYRTAAR1, TAAR2–Small: Trace amine (Phe/Tyr)OctopamineOctTAAR1–Small: Trace amine (Phe/Tyr)SynephrineSynTAAR1–Small: Trace amine (Trp)TryptamineTAAR1, various serotonin receptors–Small: Trace amine (Trp)N-methyltryptamineNMTTAAR1, various serotonin receptors–LipidAnandamideAEACannabinoid receptors–Lipid2-Arachidonoylglycerol2-AGCannabinoid receptors–Lipid2-Arachidonyl glyceryl ether2-AGECannabinoid receptors–LipidN-Arachidonoyl dopamineNADACannabinoid receptorsTRPV1LipidVirodhamineCannabinoid receptors–Small: PurineAdenosineAdoAdenosine receptors–Small: PurineAdenosine triphosphateATPP2Y receptorsP2X receptorsSmall: PurineNicotinamide adenine dinucleotideβ-NADP2Y receptorsP2X receptors Neuropeptides Category Name Abbreviation Metabotropic IonotropicBombesin-like peptidesBombesinBBR1-2-3–Bombesin-like peptideGastrin releasing peptideGRP––Bombesin-like peptideNeuromedin BNMBNeuromedin B receptor–BradykininsBradykininB1, B2Calcitonin/CGRP familyCalcitoninCalcitonin receptor–Calcitonin/CGRP familyCalcitonin gene-related peptideCGRPCALCRLCorticotropin-releasing factorsCorticotropin-releasing hormoneCRHCRHR1–Corticotropin-releasing factorsUrocortinCRHR1–GalaninsGalaninGALR1, GALR2, GALR3–GalaninsGalanin-like peptideGALR1, GALR2, GALR3–GastrinsGastrinCholecystokinin B receptor–GastrinsCholecystokininCCKCholecystokinin receptorsGraninsChromogranin AChgA––MelanocortinsAdrenocorticotropic hormoneACTHACTH receptor–MelanocortinsProopiomelanocortinPOMCMelanocortin 4 receptor–MelanocortinsMelanocyte-stimulating hormonesMSHMelanocortin receptorsNeurohypophysealsVasopressinAVPVasopressin receptors–NeurohypophysealsOxytocinOTOxytocin receptor–NeurohypophysealsNeurophysin I––NeurohypophysealsNeurophysin II––NeurohypophysealsCopeptin––NeuromedinsNeuromedin UNmUNmUR1, NmUR2–Neuropeptide B/WNeuropeptide BNPBNPBW1, NPBW2–Neuropeptide B/WNeuropeptide SNPSNeuropeptide S receptors–Neuropeptide YNeuropeptide YNYNeuropeptide Y receptors–Neuropeptide YPancreatic polypeptidePP––Neuropeptide YPeptide YYPYY––OpioidsEnkephalinsδ-Opioid receptor–OpioidsDynorphinsκ-Opioid receptor–OpioidsNeoendorphinsκ-Opioid receptor–OpioidsEndorphinsμ-Opioid receptors–OpioidsEndomorphinsμ-Opioid receptors–OpioidsMorphineμ-Opioid receptors–OpioidsNociceptin/orphanin FQN/OFQNociceptin receptorsOrexinsOrexin AOX-AOrexin receptors–OrexinsOrexin BOX-BOrexin receptorsParathyroid hormone familyParathyroid hormone-related proteinPTHrP––RFamidesKisspeptinKiSSGPR54–RFamidesNeuropeptide FFNPFFNPFF1, NPFF2–RFamidesProlactin-releasing peptidePrRPPrRPR–RFamidesPyroglutamylated RFamide peptideQRFPGPR103SecretinsSecretinSecretin receptor–SecretinsMotilinMotilin receptor–SecretinsGlucagonGlucagon receptor–SecretinsGlucagon-like peptide-1GLP-1Glucagon-like peptide 1 receptor–SecretinsGlucagon-like peptide-2GLP-2Glucagon-like peptide 2 receptor–SecretinsVasoactive intestinal peptideVIPVasoactive intestinal peptide receptors–SecretinsGrowth hormone–releasing hormoneGHRHGrowth hormone–releasing hormone receptor–SecretinsPituitary adenylate cyclase-activating peptidePACAPADCYAP1R1–SomatostatinsSomatostatinSomatostatin receptorsTachykininsNeurokinin A––TachykininsNeurokinin B––TachykininsSubstance P––TachykininsNeuropeptide K––OtherAgouti-related peptideAgRPMelanocortin receptor –OtherN-AcetylaspartylglutamateNAAGMetabotropic glutamate receptor 3 (mGluR3)–OtherCocaine- and amphetamine-regulated transcriptCARTUnknown Gi/Go-coupled receptor–OtherGonadotropin-releasing hormoneGnRHGnRHR– OtherThyrotropin-releasing hormoneTRHTRHR–OtherMelanin-concentrating hormoneMCHMCHR 1,2– Gasotransmitters Category Name Abbreviation Metabotropic IonotropicGaseous signaling moleculeNitric oxideNOSoluble guanylyl cyclase–Gaseous signaling moleculeCarbon monoxideCO–Heme bound to potassium channelsGaseous signaling moleculeHydrogen sulfideH2S––
SmallTooltip Small molecule: Amino acids (Arg)ArginineArg, Rα2-Adrenergic receptors, imidazoline receptorsNMDA receptors
Small: Amino acidsAspartateAsp, DNMDA receptors
Small: Amino acidsGlutamateGlu, EMetabotropic glutamate receptorsNMDA receptors, kainate receptors, AMPARs
Small: Amino acidsGamma-aminobutyric acidGABAGABAB receptorsGABAA receptors, GABAA-ρ receptors
Small: Amino acidsGlycineGly, GNMDA receptors, glycine receptors
Small: Amino acidsD-serineSer, SNMDA receptors
Small: AcetylcholineAcetylcholineAChMuscarinic acetylcholine receptorsNicotinic acetylcholine receptors
Small: Monoamine (Phe/Tyr)DopamineDADopamine receptors, trace amine-associated receptor 1
Small: Monoamine (Phe/Tyr)Norepinephrine (noradrenaline)NE, NAdAdrenergic receptors
Small: Monoamine (Phe/Tyr)Epinephrine (adrenaline)Epi, AdAdrenergic receptors
Small: Monoamine (Trp)Serotonin (5-hydroxytryptamine)5-HTSerotonin receptors (all except 5-HT3)5-HT3
Small: Monoamine (His)HistamineHHistamine receptors
Small: Trace amine (Phe)PhenethylaminePEATrace amine-associated receptors TAAR1, TAAR2
Small: Trace amine (Phe)N-methylphenethylamineNMPEATAAR1
Small: Trace amine (Phe/Tyr)TyramineTYRTAAR1, TAAR2
Small: Trace amine (Phe/Tyr)OctopamineOctTAAR1
Small: Trace amine (Phe/Tyr)SynephrineSynTAAR1
Small: Trace amine (Trp)TryptamineTAAR1, various serotonin receptors
Small: Trace amine (Trp)N-methyltryptamineNMTTAAR1, various serotonin receptors
LipidAnandamideAEACannabinoid receptors
Lipid2-Arachidonoylglycerol2-AGCannabinoid receptors
Lipid2-Arachidonyl glyceryl ether2-AGECannabinoid receptors
LipidN-Arachidonoyl dopamineNADACannabinoid receptorsTRPV1
LipidVirodhamineCannabinoid receptors
Small: PurineAdenosineAdoAdenosine receptors
Small: PurineAdenosine triphosphateATPP2Y receptorsP2X receptors
Small: PurineNicotinamide adenine dinucleotideβ-NADP2Y receptorsP2X receptors
CategoryNameAbbreviationMetabotropicIonotropic
Bombesin-like peptidesBombesinBBR1-2-3
Bombesin-like peptideGastrin releasing peptideGRP
Bombesin-like peptideNeuromedin BNMBNeuromedin B receptor
BradykininsBradykininB1, B2
Calcitonin/CGRP familyCalcitoninCalcitonin receptor
Calcitonin/CGRP familyCalcitonin gene-related peptideCGRPCALCRL
Corticotropin-releasing factorsCorticotropin-releasing hormoneCRHCRHR1
Corticotropin-releasing factorsUrocortinCRHR1
GalaninsGalaninGALR1, GALR2, GALR3
GalaninsGalanin-like peptideGALR1, GALR2, GALR3
GastrinsGastrinCholecystokinin B receptor
GastrinsCholecystokininCCKCholecystokinin receptors
GraninsChromogranin AChgA
MelanocortinsAdrenocorticotropic hormoneACTHACTH receptor
MelanocortinsProopiomelanocortinPOMCMelanocortin 4 receptor
MelanocortinsMelanocyte-stimulating hormonesMSHMelanocortin receptors
NeurohypophysealsVasopressinAVPVasopressin receptors
NeurohypophysealsOxytocinOTOxytocin receptor
NeurohypophysealsNeurophysin I
NeurohypophysealsNeurophysin II
NeurohypophysealsCopeptin
NeuromedinsNeuromedin UNmUNmUR1, NmUR2
Neuropeptide B/WNeuropeptide BNPBNPBW1, NPBW2
Neuropeptide B/WNeuropeptide SNPSNeuropeptide S receptors
Neuropeptide YNeuropeptide YNYNeuropeptide Y receptors
Neuropeptide YPancreatic polypeptidePP
Neuropeptide YPeptide YYPYY
OpioidsEnkephalinsδ-Opioid receptor
OpioidsDynorphinsκ-Opioid receptor
OpioidsNeoendorphinsκ-Opioid receptor
OpioidsEndorphinsμ-Opioid receptors
OpioidsEndomorphinsμ-Opioid receptors
OpioidsMorphineμ-Opioid receptors
OpioidsNociceptin/orphanin FQN/OFQNociceptin receptors
OrexinsOrexin AOX-AOrexin receptors
OrexinsOrexin BOX-BOrexin receptors
Parathyroid hormone familyParathyroid hormone-related proteinPTHrP
RFamidesKisspeptinKiSSGPR54
RFamidesNeuropeptide FFNPFFNPFF1, NPFF2
RFamidesProlactin-releasing peptidePrRPPrRPR
RFamidesPyroglutamylated RFamide peptideQRFPGPR103
SecretinsSecretinSecretin receptor
SecretinsMotilinMotilin receptor
SecretinsGlucagonGlucagon receptor
SecretinsGlucagon-like peptide-1GLP-1Glucagon-like peptide 1 receptor
SecretinsGlucagon-like peptide-2GLP-2Glucagon-like peptide 2 receptor
SecretinsVasoactive intestinal peptideVIPVasoactive intestinal peptide receptors
SecretinsGrowth hormone–releasing hormoneGHRHGrowth hormone–releasing hormone receptor
SecretinsPituitary adenylate cyclase-activating peptidePACAPADCYAP1R1
SomatostatinsSomatostatinSomatostatin receptors
TachykininsNeurokinin A
TachykininsNeurokinin B
TachykininsSubstance P
TachykininsNeuropeptide K
OtherAgouti-related peptideAgRPMelanocortin receptor
OtherN-AcetylaspartylglutamateNAAGMetabotropic glutamate receptor 3 (mGluR3)
OtherCocaine- and amphetamine-regulated transcriptCARTUnknown Gi/Go-coupled receptor
OtherGonadotropin-releasing hormoneGnRHGnRHR
OtherThyrotropin-releasing hormoneTRHTRHR
OtherMelanin-concentrating hormoneMCHMCHR 1,2
CategoryNameAbbreviationMetabotropicIonotropic
Gaseous signaling moleculeNitric oxideNOSoluble guanylyl cyclase
Gaseous signaling moleculeCarbon monoxideCOHeme bound to potassium channels
Gaseous signaling moleculeHydrogen sulfideH2S

Neurotransmitter systems

Neurons expressing certain types of neurotransmitters sometimes form distinct systems, where activation of the system affects large volumes of the brain, called volume transmission. Major neurotransmitter systems include the noradrenaline (norepinephrine) system, the dopamine system, the serotonin system, and the cholinergic system, among others. Trace amines have a modulatory effect on neurotransmission in monoamine pathways (i.e., dopamine, norepinephrine, and serotonin pathways) throughout the brain via signaling through trace amine-associated receptor1. A brief comparison of these systems follows:

Neurotransmitter systems in the brain
SystemPathway origin and projectionsRegulated cognitive processes and behaviors
Noradrenaline systemNoradrenergic pathways: Locus coeruleus (LC) projections LC → Amygdala and Hippocampus LC → Brain stem and Spinal cord LC → Cerebellum LC → Cerebral cortex LC → Hypothalamus LC → Tectum LC → Thalamus LC → Ventral tegmental area Lateral tegmental field (LTF) projections LTF → Brain stem and Spinal cord LTF → Olfactory bulbanxiety arousal (wakefulness) circadian rhythm cognitive control and working memory (co-regulated by dopamine) feeding and energy homeostasis medullary control of respiration negative emotional memory nociception (perception of pain) reward (minor role)
Dopamine systemDopaminergic pathways: Ventral tegmental area (VTA) projections VTA → Amygdala VTA → Cingulate cortex VTA → Hippocampus VTA → Ventral striatum (Mesolimbic pathway) VTA → Olfactory bulb VTA → Prefrontal cortex (Mesocortical pathway) Nigrostriatal pathway Substantia nigra pars compactaDorsal striatum Tuberoinfundibular pathway Arcuate nucleusMedian eminence Hypothalamospinal projection HypothalamusSpinal cord Incertohypothalamic pathway Zona incerta → Hypothalamusarousal (wakefulness) aversion cognitive control and working memory (co-regulated by norepinephrine) emotion and mood motivation (motivational salience) motor function and control positive reinforcement reward (primary mediator) sexual arousal, orgasm, and refractory period (via neuroendocrine regulation)
Histamine systemHistaminergic pathways: Tuberomammillary nucleus (TMN) projections TMN → Cerebral cortex TMN → Hippocampus TMN → Neostriatum TMN → Nucleus accumbens TMN → Amygdala TMN → Hypothalamusarousal (wakefulness) feeding and energy homeostasis learning memory
Serotonin systemSerotonergic pathways: Caudal nuclei (CN): Raphe magnus, raphe pallidus, and raphe obscurus Caudal projections CN → Cerebral cortex CN → Thalamus CN → Caudate-putamen and nucleus accumbens CN → Substantia nigra and ventral tegmental area CN → Cerebellum CN → Spinal cord Rostral nuclei (RN): Nucleus linearis, dorsal raphe, medial raphe, and raphe pontis Rostral projections RN → Amygdala RN → Cingulate cortex RN → Hippocampus RN → Hypothalamus RN → Neocortex RN → Septum RN → Thalamus RN → Ventral tegmental areaarousal (wakefulness) body temperature regulation emotion and mood, potentially including aggression feeding and energy homeostasis reward (minor role) sensory perception
Acetylcholine systemCholinergic pathways: Forebrain cholinergic nuclei (FCN): Nucleus basalis of Meynert, medial septal nucleus, and diagonal band Forebrain nuclei projections FCN → Hippocampus FCN → Cerebral cortex FCN → Limbic cortex and sensory cortex Striatal tonically active cholinergic neurons (TAN) TAN → Medium spiny neuron Brainstem cholinergic nuclei (BCN): Pedunculopontine nucleus, laterodorsal tegmentum, medial habenula, and parabigeminal nucleus Brainstem nuclei projections BCN → Ventral tegmental area BCN → Thalamusarousal (wakefulness) emotion and mood learning motor function motivation (motivational salience) short-term memory reward (minor role)
Adrenaline systemAdrenergic pathways: Rostral ventrolateral medulla (RVLM) projections RVLM → Spinal cord RVLM → Brain stem RVLM → Hypothalamusmedullary control of respiration sympathetic nervous system feeding and energy homeostasis arousal stress

Effects

Drug effects

Understanding how drugs affect neurotransmitters constitutes a major area of research in neuroscience. Many neuroscientists believe that these studies can improve understanding of the neural circuits involved in neurological and psychiatric disorders, and may contribute to the development of more effective treatments, as well as strategies for prevention and, potentially, cures.

Drugs can influence behavior by altering neurotransmitter activity in the nervous system. Some drugs affect neurotransmitter synthesis by altering the activity of the enzymes involved in their production. When neurotransmitter synthesis is inhibited, the amount of neurotransmitter available for release decreases, thus reducing neurotransmitter activity. Other drugs act by stimulating or blocking the release of specific neurotransmitters. Some drugs also interfere with neurotransmitter storage by causing synaptic vesicles to leak, thereby reducing the amount of neurotransmitter released into the synapse.

Drugs that prevent a neurotransmitter from binding to its receptor are known as receptor antagonists. For example, antipsychotic drugs such as haloperidol, chlorpromazine, and clozapine act primarily as antagonists at dopamine receptors in the brain. In contrast, receptor agonists bind to receptors and mimic the effects of endogenous neurotransmitters. An example is morphine, an opioid receptor agonist that mimics the actions of endogenous opioid peptides such as β-endorphin to relieve pain.

Other drugs prolong the activity of neurotransmitters after their release by blocking neurotransmitter reuptake or inhibiting enzymes responsible for neurotransmitter degradation. Finally, some drugs interfere with the generation or propagation of action potentials by blocking ion channels involved in neuronal signaling. For example, tetrodotoxin blocks voltage-gated sodium channels, thereby preventing neural conduction in both the central and peripheral nervous systems; as a result, tetrodotoxin is highly toxic and can be lethal.

Drugs targeting the neurotransmitter of major systems affect the whole system, which can explain the complexity of action of some drugs. Cocaine, for example, blocks the re-uptake of dopamine back into the presynaptic neuron, leaving the neurotransmitter molecules in the synaptic gap for an extended period of time. Since the dopamine remains in the synapse longer, the neurotransmitter continues to bind to the receptors on the postsynaptic neuron, eliciting a pleasurable emotional response. Physical addiction to cocaine may result from prolonged exposure to excess dopamine in the synapses, which leads to the downregulation of some post-synaptic receptors. After the effects of the drug wear off, an individual can become depressed due to decreased probability of the neurotransmitter binding to a receptor. Fluoxetine is a selective serotonin re-uptake inhibitor (SSRI), which blocks re-uptake of serotonin by the presynaptic cell, which increases the amount of serotonin present at the synapse and furthermore allows it to remain there longer, providing potential for the effect of naturally released serotonin. AMPT prevents the conversion of tyrosine to L-DOPA, the precursor to dopamine; reserpine prevents dopamine storage within vesicles; and deprenyl inhibits monoamine oxidase (MAO)-B and thus increases dopamine levels.

Drug–neurotransmitter interactions
DrugInteracts withReceptor interactionTypeEffects
Botulinum toxin (Botox)AcetylcholineAntagonistBlocks acetylcholine release in PNS Prevents muscle contractions
Black widow spider venomAcetylcholineAgonistPromotes acetylcholine release in PNS Stimulates muscle contractions
NeostigmineAcetylcholineInterferes with acetylcholinerase activity Increases effects of ACh at receptors Used to treat myasthenia gravis
NicotineAcetylcholineNicotinic (skeletal muscle)AgonistIncreases ACh activity Increases attention Reinforcing effects
d-tubocurarineAcetylcholineNicotinic (skeletal muscle)AntagonistDecreases activity at receptor site
CurareAcetylcholineNicotinic (skeletal muscle)AntagonistDecreases ACh activity Prevents muscle contractions
MuscarineAcetylcholineMuscarinic (heart and smooth muscle)AgonistIncreases ACh activity Toxic
AtropineAcetylcholineMuscarinic (heart and smooth muscle)AntagonistBlocks pupil constriction Blocks saliva production
Scopolamine (hyoscine)AcetylcholineMuscarinic (heart and smooth muscle)AntagonistTreats motion sickness and postoperative nausea and vomiting
AMPTDopamine/norepinephrineInactivates tyrosine hydroxylase and inhibits dopamine production
ReserpineDopaminePrevents storage of dopamine and other monoamines in synaptic vesicles Causes sedation and depression
ApomorphineDopamineD2 receptor (presynaptic autoreceptors/postsynaptic receptors)Antagonist (low dose) / direct agonist (high dose)Low dose: blocks autoreceptors High dose: stimulates postsynaptic receptors
AmphetamineDopamine/norepinephrineIndirect agonistReleases dopamine, noradrenaline, and serotonin Blocks reuptake
MethamphetamineDopamine/norepinephrineReleases dopamine and noradrenaline Blocks reuptake
MethylphenidateDopamineBlocks reuptake Enhances attention and impulse control in ADHD
CocaineDopamineIndirect agonistBlocks reuptake into presynapse Blocks voltage-dependent sodium channels Can be used as a topical anesthetic (eye drops)
DeprenylDopamineAgonistInhibits MAO-B Prevents destruction of dopamine
ChlorpromazineDopamineD2 ReceptorsAntagonistBlocks D2 receptors Alleviates hallucinations
MPTPDopamineResults in Parkinson-like symptoms
PCPASerotonin (5-HT)AntagonistDisrupts serotonin synthesis by blocking the activity of tryptophan hydroxylase
OndansetronSerotonin (5-HT)5-HT3 receptorsAntagonistReduces side effects of chemotherapy and radiation Reduces nausea and vomiting
BuspironeSerotonin (5-HT)5-HT1A receptorsPartial agonistTreats symptoms of anxiety and depression
FluoxetineSerotonin (5-HT)supports 5-HT reuptakeSSRIInhibits reuptake of serotonin Treats depression, some anxiety disorders, and OCD Common examples: Prozac and Sarafem
FenfluramineSerotonin (5-HT)Causes release of serotonin Inhibits reuptake of serotonin Used as an appetite suppressant
Lysergic acid diethylamideSerotonin (5-HT)Post-synaptic 5-HT2A receptorsDirect agonistProduces visual perception distortions Stimulates 5-HT2A receptors in forebrain
Methylenedioxy­methamphetamine (MDMA)Serotonin (5-HT)/norepinephrine-dopaminePotent SNDRA(Serotonin-Norepinephrine-Dopamine Releasing Agent) Along with Mild/Weak SNDRI(Serotonin-Norepinephrine-Dopamine Reuptake inhibitor) effectStimulates release of serotonin and norepinephrine and inhibits the reuptake Causes excitatory and hallucinogenic effects
StrychnineGlycineAntagonistCauses severe muscle spasms
DiphenhydramineHistamineCrosses blood–brain barrier to cause drowsiness
Tetrahydrocannabinol (THC)EndocannabinoidsCannabinoid (CB) receptorsAgonistProduces analgesia and sedation Increases appetite Cognitive effects
RimonabantEndocannabinoidsCannabinoid (CB) receptorsAntagonistSuppresses appetite Used in smoking cessation
MAFPEndocannabinoidsInhibits FAAH Used in research to increase cannabinoid system activity
AM1172EndocannabinoidsBlocks cannabinoid reuptake Used in research to increase cannabinoid system activity
Anandamide (endogenous)Cannabinoid (CB) receptors; 5-HT3 receptorsReduce nausea and vomiting
CaffeineAdenosineAdenosine receptorsAntagonistBlocks adenosine receptors Increases wakefulness
PCPGlutamateNMDA receptorIndirect antagonistBlocks PCP binding site Prevents calcium ions from entering neurons Impairs learning
AP5GlutamateNMDA receptorAntagonistBlocks glutamate binding site on NMDA receptor Impairs synaptic plasticity and certain forms of learning
KetamineGlutamateNMDA receptorAntagonistUsed as anesthesia Induces trance-like state, helps with pain relief and sedation
NMDAGlutamateNMDA receptorAgonistUsed in research to study NMDA receptor Ionotropic receptor
AMPAGlutamateAMPA receptorAgonistUsed in research to study AMPA receptor Ionotropic receptor
AllyglycineGABAInhibits GABA synthesis Causes seizures
MuscimolGABAGABA receptorAgonistCauses sedation
BicuculineGABAGABA receptorAntagonistCauses Seizures
BenzodiazepinesGABAGABAA receptorIndirect agonistsAnxiolytic, sedation, memory impairment, muscle relaxation
BarbituratesGABAGABAA receptorIndirect agonistsSedation, memory impairment, muscle relaxation
AlcoholGABAGABA receptorIndirect agonistSedation, memory impairment, muscle relaxation Also affects glutamate, glycine, acetylcholine, serotonin and dopamine.
PicrotoxinGABAGABAA receptorIndirect antagonistHigh doses cause seizures
TiagabineGABAAntagonistGABA transporter antagonist Increase availability of GABA Reduces the likelihood of seizures
MoclobemideNorepinephrineAgonistBlocks MAO-A to treat depression
IdazoxanNorepinephrinealpha-2 adrenergic autoreceptorsAgonistBlocks alpha-2 autoreceptors Used to study norepinephrine system
Fusaric acidNorepinephrineInhibits activity of dopamine beta-hydroxylase which blocks the production of norepinephrine Used to study norepinephrine system without affecting dopamine system
Opiates (opium, morphine, heroin, and oxycodone)OpioidsOpioid receptorAgonistsAnalgesia, sedation, and reinforcing effects
NaloxoneOpioidsAntagonistReverses opiate intoxication or overdose symptoms (i.e. problems with breathing)

Agonists

An agonist is a chemical capable of binding to a receptor, such as a neurotransmitter receptor, and initiating the same reaction typically produced by the binding of the endogenous substance. An agonist of a neurotransmitter will thus initiate the same receptor response as the transmitter. In neurons, an agonist drug may activate neurotransmitter receptors either directly or indirectly. Direct-binding agonists can be further characterized as full agonists, partial agonists, inverse agonists.

Direct agonists act similar to a neurotransmitter by binding directly to its associated receptor site(s), which may be located on the presynaptic neuron or postsynaptic neuron, or both. Typically, neurotransmitter receptors are located on the postsynaptic neuron, while neurotransmitter autoreceptors are located on the presynaptic neuron, as is the case for monoamine neurotransmitters; in some cases, a neurotransmitter utilizes retrograde neurotransmission, a type of feedback signaling in neurons where the neurotransmitter is released postsynaptically and binds to target receptors located on the presynaptic neuron. Nicotine, a compound found in tobacco, is a direct agonist of most nicotinic acetylcholine receptors, mainly located in cholinergic neurons. Opiates, such as morphine, heroin, hydrocodone, oxycodone, codeine, and methadone, are μ-opioid receptor agonists; this action mediates their euphoriant and pain relieving properties.

Indirect agonists increase the binding of neurotransmitters at their target receptors by stimulating the release or preventing the reuptake of neurotransmitters. Some indirect agonists trigger neurotransmitter release and prevent neurotransmitter reuptake. Amphetamine, for example, is an indirect agonist of postsynaptic dopamine, norepinephrine, and serotonin receptors in each their respective neurons; it produces both neurotransmitter release into the presynaptic neuron and subsequently the synaptic cleft and prevents their reuptake from the synaptic cleft by activating TAAR1, a presynaptic G protein-coupled receptor, and binding to a site on VMAT2, a type of monoamine transporter located on synaptic vesicles within monoamine neurons.

Antagonists

An antagonist is a chemical that acts within the body to reduce the physiological activity of another chemical substance (such as an opiate); especially one that opposes the action on the nervous system of a drug or a substance occurring naturally in the body by combining with and blocking its nervous receptor.

There are two main types of antagonist: direct-acting Antagonist and indirect-acting Antagonists:

  1. Direct-acting antagonist- which takes up space present on receptors which are otherwise taken up by neurotransmitters themselves. This results in neurotransmitters being blocked from binding to the receptors. An example of one of the most common is called Atropine.
  2. Indirect-acting antagonist- drugs that inhibit the release/production of neurotransmitters (e.g., reserpine).

Drug antagonists

An antagonist is a drug that binds to a receptor without activating it, meaning it has no intrinsic activity. By occupying the receptor, it blocks or reduces the effect of an agonist, such as a drug, hormone, or neurotransmitter, that would normally bind to and activate the receptor. Antagonists are often described as receptor "blockers" and may be classified as competitive or irreversible.

A competitive antagonist competes with an agonist for binding to the receptor. As the concentration of the antagonist increases, agonist binding is progressively inhibited, resulting in a decrease in the physiological response. A high concentration of an antagonist can completely inhibit the response. This inhibition can be reversed by increasing the agonist concentration, since the agonist and antagonist compete for binding to the receptor. Competitive antagonists, therefore, can be characterized as shifting the dose–response relationship for the agonist to the right. In the presence of a competitive antagonist, it takes an increased concentration of the agonist to produce the same response observed in the absence of the antagonist.

An irreversible antagonist binds so strongly to the receptor that it renders the receptor unavailable for binding to the agonist. Irreversible antagonists may even form covalent chemical bonds with the receptor. In either case, if the concentration of the irreversible antagonist is high enough, the number of unbound receptors remaining for agonist binding may be so low that even high concentrations of the agonist do not produce the maximum biological response.

Biosynthetic pathways for catecholamines and trace amines in the human brain L-Phenylalanine L-Tyrosine L-DOPA Epinephrine Phenethylamine p-Tyramine Dopamine Norepinephrine N-Methylphenethylamine N-Methyltyramine p-Octopamine Synephrine 3-Methoxytyramine AADC AADC AADC primary pathway PNMT PNMT PNMT PNMT AAAH AAAH brain CYP2D6 minor pathway COMT DBH DBH In humans, catecholamines and phenethylaminergic trace amines are derived from the amino acid L-phenylalanine.

Diseases and disorders

The following sections describe how imbalances or dysfunction in specific neurotransmitters—dopamine, serotonin, and glutamate—have been tentatively linked to various mental or neurological disorders.

Dopamine

For example, problems in producing dopamine (mainly in the substantia nigra) can result in Parkinson's disease, a disorder that affects a person's ability to move as they want to, resulting in stiffness, tremors or shaking, and other symptoms. Some studies suggest that having too little or too much dopamine or problems using dopamine in the thinking and feeling regions of the brain may play a role in disorders like schizophrenia or attention deficit hyperactivity disorder (ADHD). Dopamine is also involved in addiction and drug use, as most recreational drugs cause an influx of dopamine in the brain (especially opioid and methamphetamines) that produces a pleasurable feeling, which is why users constantly crave drugs.

Serotonin

Similarly, after some research suggested that drugs that block the recycling, or reuptake, of serotonin seemed to help some people diagnosed with depression, it was theorized that people with depression might have lower-than-normal serotonin levels. Though widely popularized, this theory was not borne out in subsequent research. Therefore, selective serotonin reuptake inhibitors (SSRIs) are used to increase the amounts of serotonin in synapses.

Glutamate

CAPON binds nitric oxide synthase, regulating NMDA receptor–mediated glutamate neurotransmission

Furthermore, problems with producing or using glutamate have been suggestively and tentatively linked to many mental disorders, including autism, obsessive–compulsive disorder (OCD), schizophrenia, and depression. Having too much glutamate has been linked to neurological diseases such as Parkinson's disease, multiple sclerosis, Alzheimer's disease, stroke, and ALS (amyotrophic lateral sclerosis).

Neurotransmitter imbalance

Generally, there are no scientifically established "norms" for appropriate levels or "balances" of different neurotransmitters. In most cases, it is practically impossible to measure neurotransmitter levels in the brain or body at any given moment. Neurotransmitters regulate each other's release, and weak consistent imbalances in this mutual regulation were linked to temperament in healthy people. However, significant imbalances or disruptions in neurotransmitter systems are associated with various diseases and mental disorders, including Parkinson's disease, depression, insomnia, Attention Deficit Hyperactivity Disorder (ADHD), anxiety, memory loss, dramatic weight changes, and addictions. Some of these conditions are also related to neurotransmitter switching, a phenomenon where neurons change the type of neurotransmitters they release. Chronic physical or emotional stress can be a contributor to neurotransmitter system changes. Genetics also plays a role in neurotransmitter activities.

Apart from recreational use, medications that directly and indirectly interact with one or more transmitter or its receptor are commonly prescribed for psychiatric and psychological issues. Notably, drugs interacting with serotonin and norepinephrine are prescribed to patients with problems such as depression and anxiety—though the notion that there is much solid medical evidence to support such interventions has been widely criticized. Studies shown that dopamine imbalance has an influence on multiple sclerosis and other neurological disorders.

See also

Notes

External links

  • Purves, Dale; Augustine, George J.; Fitzpatrick, David; Katz, Lawrence C.; LaMantia, Anthony-Samuel; McNamara, James O.; Williams, S. Mark (2001). "Chapter 6. Neurotransmitters". (2nded.). Sunderland (MA): Sinauer Associates. ISBN0-87893-742-0.
  • Holz, Ronald W.; Fisher, Stephen K. (1999). "Chapter 10. Synaptic Transmission and Cellular Signaling: An Overview". In Siegel, George J; Agranoff, Bernard W; Albers, R Wayne; Fisher, Stephen K; Uhler, Michael D (eds.). (6thed.). Philadelphia: Lippincott-Raven. ISBN0-397-51820-X.