Pharmacodynamics: Drug-receptor interactions

Last updated: September 16, 2023

Pharmacodynamics: Drug-receptor interactions

Fysio Review

Fysio Review

Pharmacodynamics: Drug-receptor interactions
Pharmacodynamics: Agonist, partial agonist and antagonist
Pharmacokinetics: Drug absorption and distribution
Pharmacokinetics: Drug elimination and clearance
Opioid agonists, mixed agonist-antagonists and partial agonists
Opioid use disorder
Glycolysis
Liver anatomy and physiology
Body temperature regulation (thermoregulation)
Olfactory transduction and pathways
Neuromuscular junction and motor unit
Anatomy and physiology of the eye
Photoreception
Blood pressure, blood flow, and resistance
Microcirculation and Starling forces
Neuron action potential
Menopause
Progestins and antiprogestins
Estrogens and antiestrogens
Renin-angiotensin-aldosterone system
Baroreceptors
Chemoreceptors
Cardiac conduction system
ECG basics
Pressures in the cardiovascular system
Resistance to blood flow
Measuring cardiac output (Fick principle)
Stroke volume, ejection fraction, and cardiac output
Cardiac contractility
Frank-Starling relationship
Cardiac preload
Cardiac afterload
Law of Laplace
Cardiac and vascular function curves
Altering cardiac and vascular function curves
Cardiac cycle
Pressure-volume loops
Changes in pressure-volume loops
Cardiac work
Physiological changes during exercise
Excitability and refractory periods
Action potentials in myocytes
Action potentials in pacemaker cells
ECG normal sinus rhythm
Endocrine system anatomy and physiology
Hunger and satiety
Adrenocorticotropic hormone
Oxytocin and prolactin
Antidiuretic hormone
Thyroid hormones
Insulin
Cortisol
Estrogen and progesterone
Testosterone
Parathyroid hormone
Phosphate, calcium and magnesium homeostasis
Calcitonin
Vitamin D
Anatomy and physiology of the ear
Auditory transduction and pathways
Vestibulo-ocular reflex and nystagmus
Taste and the tongue
Gastrointestinal system anatomy and physiology
Enteric nervous system
Gastric motility
Chewing and swallowing
Carbohydrates and sugars
Fats and lipids
Proteins
Pancreatic secretion
Bile secretion and enterohepatic circulation
Blood components
Erythropoietin
Platelet plug formation (primary hemostasis)
Coagulation (secondary hemostasis)
Complement system
Innate immune system
T-cell development
B-cell development
MHC class I and MHC class II molecules
T-cell activation
B-cell activation, differentiation, and contraction
Cell-mediated immunity of natural killer and CD8 cells
Cell-mediated immunity of CD4 cells
Antibody classes
Somatic hypermutation and affinity maturation
B- and T-cell memory
Bone remodeling and repair
Muscular system anatomy and physiology
Slow twitch and fast twitch muscle fibers
Muscle contraction
Nervous system anatomy and physiology
Ascending and descending spinal tracts
Pyramidal and extrapyramidal tracts
Muscle spindles and golgi tendon organs
Somatosensory receptors
Somatosensory pathways
Sympathetic nervous system
Adrenergic receptors
Cholinergic receptors
Parasympathetic nervous system
Basal ganglia: Direct and indirect pathway of movement
Memory
Sleep
Learning
Body fluid compartments
Movement of water between body compartments
Hydration
Glomerular filtration
Regulation of renal blood flow
Urea recycling
Tubular reabsorption of glucose
Tubular reabsorption and secretion of weak acids and bases
Proximal convoluted tubule
Loop of Henle
Distal convoluted tubule
Sodium homeostasis
Osmoregulation
Buffering and Henderson-Hasselbalch equation
Physiologic pH and buffers
The role of the kidney in acid-base balance
Acid-base map and compensatory mechanisms
Respiratory acidosis
Metabolic acidosis
Plasma anion gap
Respiratory alkalosis
Metabolic alkalosis
Puberty and Tanner staging
Anatomy and physiology of the female reproductive system
Anatomy and physiology of the male reproductive system
Pregnancy
Respiratory system anatomy and physiology
Lung volumes and capacities
Alveolar surface tension and surfactant
Ventilation
Airflow, pressure, and resistance
Gas exchange in the lungs, blood and tissues
Oxygen binding capacity and oxygen content
Oxygen-hemoglobin dissociation curve
Carbon dioxide transport in blood
Pulmonary chemoreceptors and mechanoreceptors
Breathing control
Pulmonary changes at high altitude and altitude sickness
Pulmonary changes during exercise
Parkinson disease
Anti-parkinson medications
Restrictive lung diseases
Arterial disease
Huntington disease
Introduction to pharmacology
Pharmacokinetics: Drug metabolism
Cholinomimetics: Direct agonists
Cholinomimetics: Indirect agonists (anticholinesterases)
Muscarinic antagonists
Sympathomimetics: Direct agonists
Sympatholytics: Alpha-2 agonists
Adrenergic antagonists: Presynaptic
Adrenergic antagonists: Beta blockers
Adrenergic antagonists: Alpha blockers
Selective serotonin reuptake inhibitors
Serotonin and norepinephrine reuptake inhibitors
Tricyclic antidepressants
Monoamine oxidase inhibitors
Atypical antidepressants
Typical antipsychotics
Atypical antipsychotics
Lithium
Nonbenzodiazepine anticonvulsants
Anticonvulsants and anxiolytics: Barbiturates
Anticonvulsants and anxiolytics: Benzodiazepines
Psychomotor stimulants
ACE inhibitors, ARBs and direct renin inhibitors
Thiazide and thiazide-like diuretics
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
Lipid-lowering medications: Statins
Lipid-lowering medications: Fibrates
Miscellaneous lipid-lowering medications
Positive inotropic medications
Hypoglycemics: Insulin secretagogues
Insulins
Miscellaneous hypoglycemics
Mineralocorticoids and mineralocorticoid antagonists
Hyperthyroidism medications
Acid reducing medications
Anticoagulants: Heparin
Anticoagulants: Warfarin
Anticoagulants: Direct factor inhibitors
Antiplatelet medications
Thrombolytics
Glucocorticoids
Acetaminophen (Paracetamol)
Non-steroidal anti-inflammatory drugs
Migraine medications
General anesthetics
Local anesthetics
Neuromuscular blockers
Medications for neurodegenerative diseases
Opioid antagonists
Osmotic diuretics
Carbonic anhydrase inhibitors
Loop diuretics
Potassium sparing diuretics
Androgens and antiandrogens
Bronchodilators: Beta 2-agonists and muscarinic antagonists
Alcohol use disorder
Substance misuse and addiction: Clinical
Gluconeogenesis
Hypertension: Clinical
Tobacco use disorder
Anemia: Clinical
Metabolic and respiratory acidosis: Clinical
Breathing cycle and regulation
Bipolar and related disorders
Schizophrenia
Amnesia
Attention deficit hyperactivity disorder
Diabetes mellitus
Diabetes mellitus: Clinical
Diabetes mellitus: Pathology review
Hypertension
Dyslipidemias: Pathology review
Ischemic stroke

Transcript

Watch video only

Pharmacodynamics refers to the mechanisms and effects of medications within the body. Or more simply, it’s what medications do to the body and how they do it.

In order to have an effect, most medications have to reach their target cells and bind to a receptor. Receptors are specialized proteins both inside the cell and on the cell membrane that can bind to a ligand and get triggered to alter their shape or activity. This gives rise to a signal cascade of intracellular molecules, known as the second messengers, which, ultimately, results in some change in the cell’s function.

Intracellular receptors are typically located in the cytoplasm or nucleus of the cell and recognize small, hydrophobic, meaning water- hating, ligands. These include molecules like steroids, which are happy to diffuse across the phospholipid membrane. Once bound to their ligand, the receptor- ligand complex attaches to specific DNA sequences that activate or inhibit specific genes.

On the cell membrane are cell-surface receptors, which are embedded into the plasma membrane and bind to ligands too large or hydrophilic to pass through. Based on their structure and properties, cell- surface receptors fall into three main types: ligand-gated ion channels, enzyme coupled receptors, and G-protein coupled receptors.

Starting with ligand-gated ion channels, also known as the ionotropic receptors, these form channels or pores that are generally closed. Once they bind a specific ligand, they open up and allow ions like chloride, calcium, sodium, and potassium to passively flow through the membrane, down their gradient, and trigger the signaling pathway.

Next are enzyme-coupled receptors, which are usually single-pass transmembrane proteins, meaning that they have only one transmembrane segment. The extracellular end of these receptors binds to medications, and their intracellular end has enzyme activity. The enzymatic domain is usually a protein kinase known as the tyrosine kinase, which phosphorylates other molecules. When a ligand binds, it triggers a conformational change in the enzymatic domain to form high-affinity binding sites for the second messengers. These second messengers get phosphorylated by the tyrosine kinases before heading off to activate other proteins in the signal pathway.

Finally, there are the G-protein coupled receptors, also known as seven-pass transmembrane receptors, which means they are really long proteins that have one end that sits outside the cell, and then the snake-like protein dips in and out of the cell membrane seven times, and finally ends on the inside of the cell. A ligand binds to the end sitting outside the cell, and the end of the protein that’s within the cell activates guanine nucleotide-binding proteins or G proteins, which contain an alpha, beta, and gamma subunit. Normally, the alpha subunit binds to a guanosine diphosphate or GDP molecule and the G protein is inactive. When a ligand binds to the receptor, the G protein changes shape, causing the alpha subunit to release the GDP and allowing a guanosine triphosphate or GTP, to bind. This causes the alpha subunit to detach and trigger other proteins in the signalling pathway.

Sources

  1. "Katzung & Trevor's Pharmacology Examination and Board Review,12th Edition" McGraw-Hill Education / Medical (2018)
  2. "Rang and Dale's Pharmacology" Elsevier (2019)
  3. "Recent Insights from Molecular Dynamics Simulations for G Protein-Coupled Receptor Drug Discovery" International Journal of Molecular Sciences (2019)
  4. "Catalytic Receptors" British Journal of Pharmacology (2007)
  5. "Goodman and Gilman's The Pharmacological Basis of Therapeutics, 13th Edition" McGraw-Hill Education / Medical (2017)