Sympatholytics: Alpha-2 agonists

Last updated: June 19, 2025

Sympatholytics: Alpha-2 agonists

Emergency Medicine (Clinical Year)

Emergency Medicine (Clinical Year)

Advanced cardiac life support (ACLS): Clinical
Pneumothorax: Clinical
Traumatic brain injury: Clinical
Neck trauma: Clinical
Chest trauma: Clinical
Shock: Clinical
Abdominal trauma: Clinical
Burns: Clinical
Bites and stings: Clinical
Toxidromes: Clinical
Stroke: Clinical
Seizures: Clinical
Dizziness and vertigo: Clinical
Lower back pain: Clinical
Headaches: Clinical
Meningitis, encephalitis and brain abscesses: Clinical
Muscle weakness: Clinical
Advanced cardiac life support (ACLS): Clinical
Supraventricular arrhythmias: Pathology review
Ventricular arrhythmias: Pathology review
Heart blocks: Pathology review
Coronary artery disease: Clinical
Heart failure: Clinical
Syncope: Clinical
Pericardial disease: Clinical
Valvular heart disease: Clinical
Chest trauma: Clinical
Shock: Clinical
Peripheral vascular disease: Clinical
Leg ulcers: Clinical
Aortic aneurysms and dissections: Clinical
Sympatholytics: Alpha-2 agonists
Adrenergic antagonists: Presynaptic
Adrenergic antagonists: Alpha blockers
Adrenergic antagonists: Beta blockers
ACE inhibitors, ARBs and direct renin inhibitors
Loop diuretics
Thiazide and thiazide-like diuretics
Calcium channel blockers
cGMP mediated smooth muscle vasodilators
Class I antiarrhythmics: Sodium channel blockers
Class II antiarrhythmics: Beta blockers
Class III antiarrhythmics: Potassium channel blockers
Class IV antiarrhythmics: Calcium channel blockers and others
Positive inotropic medications
Antiplatelet medications
Blistering skin disorders: Clinical
Bites and stings: Clinical
Burns: Clinical
Diabetes mellitus: Clinical
Hyperthyroidism: Clinical
Hypothyroidism and thyroiditis: Clinical
Parathyroid conditions and calcium imbalance: Clinical
Adrenal insufficiency: Clinical
Neck trauma: Clinical
Insulins
Mineralocorticoids and mineralocorticoid antagonists
Glucocorticoids
Abdominal pain: Clinical
Appendicitis: Clinical
Gastrointestinal bleeding: Clinical
Peptic ulcers and stomach cancer: Clinical
Inflammatory bowel disease: Clinical
Diverticular disease: Clinical
Gallbladder disorders: Clinical
Pancreatitis: Clinical
Cirrhosis: Clinical
Hernias: Clinical
Bowel obstruction: Clinical
Abdominal trauma: Clinical
Laxatives and cathartics
Antidiarrheals
Acid reducing medications
Blood products and transfusion: Clinical
Venous thromboembolism: Clinical
Anticoagulants: Heparin
Anticoagulants: Warfarin
Anticoagulants: Direct factor inhibitors
Thrombolytics
Fever of unknown origin: Clinical
Infective endocarditis: Clinical
Pneumonia: Clinical
Tuberculosis: Pathology review
Diarrhea: Clinical
Urinary tract infections: Clinical
Meningitis, encephalitis and brain abscesses: Clinical
Protein synthesis inhibitors: Aminoglycosides
Antimetabolites: Sulfonamides and trimethoprim
Antituberculosis medications
Miscellaneous cell wall synthesis inhibitors
Protein synthesis inhibitors: Tetracyclines
Cell wall synthesis inhibitors: Penicillins
Miscellaneous protein synthesis inhibitors
Cell wall synthesis inhibitors: Cephalosporins
DNA synthesis inhibitors: Metronidazole
DNA synthesis inhibitors: Fluoroquinolones
Herpesvirus medications
Azoles
Echinocandins
Miscellaneous antifungal medications
Anthelmintic medications
Antimalarials
Anti-mite and louse medications
Hypernatremia: Clinical
Hyponatremia: Clinical
Hyperkalemia: Clinical
Hypokalemia: Clinical
Metabolic and respiratory acidosis: Clinical
Metabolic and respiratory alkalosis: Clinical
Toxidromes: Clinical
Medication overdoses and toxicities: Pathology review
Acute kidney injury: Clinical
Kidney stones: Clinical
Stroke: Clinical
Seizures: Clinical
Headaches: Clinical
Traumatic brain injury: Clinical
Lower back pain: Clinical
Spinal cord disorders: Pathology review
Anticonvulsants and anxiolytics: Barbiturates
Anticonvulsants and anxiolytics: Benzodiazepines
Nonbenzodiazepine anticonvulsants
Migraine medications
Osmotic diuretics
Opioid agonists, mixed agonist-antagonists and partial agonists
Opioid antagonists
Asthma: Clinical
Chronic obstructive pulmonary disease (COPD): Clinical
Acute respiratory distress syndrome: Clinical
Pleural effusion: Clinical
Pneumothorax: Clinical
Bronchodilators: Beta 2-agonists and muscarinic antagonists
Joint pain: Clinical
Hypertensive disorders of pregnancy: Clinical
Antepartum hemorrhage: Clinical
Premature rupture of membranes: Clinical
Postpartum hemorrhage: Clinical
Pediatric infectious rashes: Clinical
Pediatric bone and joint infections: Clinical
Skin and soft tissue infections: Clinical
Substance misuse and addiction: Clinical
Drug misuse, intoxication and withdrawal: Hallucinogens: Pathology review
Psychiatric emergencies: Pathology review

Transcript

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Central anti-adrenergics are a class of medications that’s not very commonly used these days. Their mechanism of action is to target the adrenergic neurons in the central nervous system, and prevent them from effectively releasing the catecholamines: norepinephrine and epinephrine.

So, the nervous system is divided into the central nervous system, so the brain and spinal cord; and the peripheral nervous system, which includes all the nerves that connect the central nervous system to the muscles and organs. The peripheral nervous system can be divided into the somatic nervous system, which controls voluntary movement of our skeletal muscles; and the autonomic nervous system, which controls the involuntary movement of smooth muscles and glands of our organs.

Now, the autonomic nervous system - which includes both the sympathetic and parasympathetic nervous systems - is made up of a relay that includes two neurons. We’ll focus on just the sympathetic nervous system. Signals for the autonomic nervous system start in the hypothalamus, at the base of the brain. Hypothalamic neurons have really long axons that carry signals all the way down to the thoracic and lumbar spinal cord nuclei, where they synapse with preganglionic neuron cell bodies. Here, they release the neurotransmitter norepinephrine, which causes the preganglionic neurons to transmit the signals down their relatively short axon, which exits the central nervous system via the spinal cord. These short nerve fibers reach the nearby sympathetic ganglion, which consists of many postganglionic neuron cell bodies. The postganglionic neurons are also called adrenergic neurons, because they release the neurotransmitter norepinephrine, which is also called noradrenaline; and to a much lesser degree, epinephrine, or adrenaline. These two catecholamines activate the adrenergic receptors on many different organs, which allow the sympathetic nervous system to trigger the fight or flight response that increases the heart rate and blood pressure, as well as slowing digestion. All of this maximizes blood flow to the muscles and brain, and can help you either run away from a threat, or fight it, which is why it’s also called the “fight or flight response.”

Alright, so let’s zoom into the synapse between the hypothalamic neurons and the preganglionic neurons, which can be found throughout the brainstem and spinal cord. The presynaptic terminal contains loads of tiny synaptic vesicles, each of which stores thousands of norepinephrine molecules. But for norepinephrine to be there in the first place, a precursor amino acid, called tyrosine, is taken up by the adrenergic neuron and gets converted to L-dihydroxyphenylalanine, or L-DOPA for short, by an enzyme called tyrosine hydroxylase. Next, L-DOPA is converted by an enzyme called DOPA decarboxylase to dopamine, which is then packaged into the synaptic vesicles. The remaining dopamine will be broken down by a class of enzymes called monoamine oxidases, or MAOs for short. Okay, now once inside the vesicles, dopamine get converted into norepinephrine. And then, whenever the appropriate signal travels down the axon to the axon terminal, these vesicles fuse with the presynaptic membrane in order for norepinephrine to get released (or exocytosed) into the synaptic cleft and take action on the adrenergic receptors of the postsynaptic neuronal membrane. Okay, but this release of norepinephrine is controlled through negative feedback inhibition. So when a pre-synaptic nerve terminal is stimulated to release a bunch of norepinephrine in the synapse, some of it will bind to a special type of receptor called an alpha-2 adrenergic receptor, located on the presynaptic membrane. These alpha-2 receptors then inhibit further release of norepinephrine into the synapse, so the postsynaptic neuron doesn’t get over stimulated.

Alright, so medications that act on adrenergic neurons of the brainstem to inhibit adrenergic signal transmission are called central anti-adrenergics. What these do, is collectively oppose the effects of the sympathetic nervous system. So overall, the heart rate and blood pressure decrease, digestive processes speed up, and the fight-or-flight response gets blocked.

Key Takeaways

Alpha-2 agonists are a class of drugs that bind to alpha-2 adrenergic receptors and activate them, resulting in a range of physiological effects. Alpha-2 adrenergic receptor agonists include clonidine, guanabenz, and guanfacine. These medications stimulate alpha-2 adrenergic receptors on the presynaptic neurons in the CNS, especially those in the medulla. This decreases the release of norepinephrine in the sympathetic neurons, which leads to lower blood pressure. Alpha-2 agonists are used to treat various conditions such as anxiety, depression, attention deficit hyperactivity disorder (ADHD), and pain. Common side effects associated with the use of alpha-2 agonists include dry mouth, constipation, headache, dizziness, drowsiness, and fatigue.

Sources

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