Baroreceptors

Last updated: February 24, 2023

Baroreceptors

MSNV 699: Pathophysiology

MSNV 699: Pathophysiology

Cardiovascular system anatomy and physiology
Normal heart sounds
Abnormal heart sounds
Blood pressure, blood flow, and resistance
Measuring cardiac output (Fick principle)
Pressures in the cardiovascular system
Baroreceptors
Chemoreceptors
Renin-angiotensin-aldosterone system
Cardiac contractility
Cardiac conduction system
Myocardial infarction
Angina pectoris
Aortic dissection
Aneurysms
Tricuspid valve disease
Mitral valve disease
Pulmonary valve disease
Aortic valve disease
Hypertrophic cardiomyopathy
Skin anatomy and physiology
Wound healing
Hair, skin and nails
Atopic dermatitis
Psoriasis
Lichen planus
Vitiligo
Albinism
Burns
Actinic keratosis
Skin cancer
Endocrine system anatomy and physiology
Thyroid hormones
Cortisol
Synthesis of adrenocortical hormones
Calcitonin
Parathyroid hormone
Vitamin D
Cushing syndrome
Diabetes mellitus
Hyperparathyroidism
Hypoparathyroidism
Hypothyroidism
Hyperthyroidism
Toxic multinodular goiter
Graves disease
Thyroid cancer
Pheochromocytoma
Neuroblastoma
Gastrointestinal system anatomy and physiology
Pancreatic secretion
Liver anatomy and physiology
Bile secretion and enterohepatic circulation
Carbohydrates and sugars
Proteins
Fats and lipids
Prebiotics and probiotics
Vitamins and minerals
Barrett esophagus
Mallory-Weiss syndrome
Gastroesophageal reflux disease (GERD)
Boerhaave syndrome
Peptic ulcer
Gastritis
Colorectal polyps
Ulcerative colitis
Gallstones
Cirrhosis
Non-alcoholic fatty liver disease
Alcohol-associated liver disease
Hemochromatosis
Viral hepatitis
Portal hypertension
Hirschsprung disease
Pyloric stenosis
Oral cancer
Benign liver tumors
Blood components
Coagulation (secondary hemostasis)
Clot retraction and fibrinolysis
Platelet plug formation (primary hemostasis)
Role of Vitamin K in coagulation
Iron deficiency anemia
Alpha-thalassemia
Beta-thalassemia
Anemia of chronic disease
Aplastic anemia
Autoimmune hemolytic anemia
Sickle cell disease (NORD)
Von Willebrand disease
Hemophilia
Acute leukemia
Chronic leukemia
Hodgkin lymphoma
Non-Hodgkin lymphoma
Polycythemia vera (NORD)
Essential thrombocythemia (NORD)
Skeletal system anatomy and physiology
Cartilage structure and growth
Bone remodeling and repair
Fibrous, cartilage, and synovial joints
Rheumatoid arthritis
Gout
Systemic lupus erythematosus
Raynaud phenomenon
Amyloidosis
Scleroderma
Fibromyalgia
Osteoarthritis
Paget disease of bone
Osteoporosis
Legg-Calve-Perthes disease
Osteomalacia and rickets
Osgood-Schlatter disease (traction apophysitis)
Septic arthritis
Osteomyelitis
Lordosis, kyphosis, and scoliosis
Rotator cuff tear
Meniscus tear
Sprained ankle
Compartment syndrome
Bone tumors
Developmental dysplasia of the hip
Nervous system anatomy and physiology
Anatomy and physiology of the eye
Anatomy and physiology of the ear
Neuron action potential
Sympathetic nervous system
Parasympathetic nervous system
Adrenergic receptors
Cholinergic receptors
Cerebellum
Optic pathways and visual fields
Cranial nerves
Brachial plexus
Seizures and epilepsy
Migraine
Tension headache
Cluster headache
Alzheimer disease
Frontotemporal dementia
Vascular dementia
Dementia with Lewy bodies
Multiple sclerosis
Muscular dystrophy
Bell palsy
Concussion and traumatic brain injury
Cauda equina syndrome
Neurogenic bladder
Parkinson disease
Sciatica
Carpal tunnel syndrome
Eustachian tube dysfunction
Glaucoma
Major depressive disorder
Major depressive disorder with seasonal pattern
Suicide
Bipolar and related disorders
Generalized anxiety disorder
Post-traumatic stress disorder
Schizophrenia
Alcohol use disorder
Tobacco use disorder
Cannabis use disorder
Opioid use disorder
Cocaine use disorder
Cluster A personality disorders
Cluster B personality disorders
Cluster C personality disorders
Autism spectrum disorder
Attention deficit hyperactivity disorder
Learning disability
Delirium
Renal system anatomy and physiology
Movement of water between body compartments
Renal clearance
Osmoregulation
Antidiuretic hormone
Regulation of renal blood flow
Glomerular filtration
Proximal convoluted tubule
Loop of Henle
Potassium homeostasis
Phosphate, calcium and magnesium homeostasis
Sodium homeostasis
The role of the kidney in acid-base balance
Diabetic nephropathy
Lower urinary tract infection
Acute pyelonephritis
Chronic pyelonephritis
Kidney stones
Urinary incontinence
Hydronephrosis
Polycystic kidney disease
Estrogen and progesterone
Menstrual cycle
Menopause
Oxytocin and prolactin
Pregnancy
Anatomy and physiology of the female reproductive system
Anatomy and physiology of the male reproductive system
Testosterone
Development of the reproductive system
Puberty and Tanner staging
Ovarian cyst
Endometriosis
Uterine fibroid
Endometritis
Amenorrhea
Benign prostatic hyperplasia
Pelvic inflammatory disease
Cervical cancer
Endometrial cancer
Breast cancer
Respiratory system anatomy and physiology
Pneumonia
Asthma
Chronic bronchitis
Emphysema
Nasal polyps
Sinusitis
Bacterial epiglottitis
Allergic rhinitis
Upper respiratory tract infection
Laryngitis
Retropharyngeal and peritonsillar abscesses
Pulmonary hypertension
Lung cancer
Mesothelioma
Sleep apnea
Restrictive lung diseases

Transcript

Watch video only

“Baro-“ means pressure or stretch, so baroreceptors are special nerve cells or receptors that sense blood pressure, by the way that the walls of the blood vessels stretch. That information is sent from the baroreceptors to the brain to help keep blood pressure balanced.

Alright, baroreceptors are actually groups of nerve endings located within the blood vessel walls. and they can be classified into two types based on their location: the arterial ones and the cardiopulmonary ones. The arterial baroreceptors can be found on the wall of the aortic arch as well as on the wall of the carotid sinus, which is basically a bulge of the internal carotid artery just above its split from the common carotid artery in the neck. In the aortic arch, these nerve endings join up to form the vagus, or tenth (X) cranial nerve, and in the carotid sinus, they form the glossopharyngeal, or ninth (IX) cranial nerve. Both of these cranial nerves travel up towards the brainstem, carrying information about the stretch they sense in the arteries. They synapse at the nucleus tractus solitarius in the medulla oblongata of the brainstem, which then relays the information to the cardiovascular centers. The cardiovascular centers are areas in the lower one-third of the pons and medulla oblongata of the brainstem, responsible for the autonomic or involuntary control of the cardiac and vascular function. They do that by coordinating the sympathetic and parasympathetic branches of the autonomic nervous system. There are two main cardiovascular centers - the first is the vasomotor control center, which controls the diameter of the blood vessels, using the sympathetic nerve fibers to cause vasoconstriction. The second is the cardiac control center, which is further divided into the cardiac accelerator and cardiac decelerator centers. The cardiac accelerator center speeds up the heart rate and increases cardiac contractility through the sympathetic outflow tract, while the cardiac decelerator center slows down the heart rate through the parasympathetic outflow tract. Notice that both the sympathetic and parasympathetic system affect the heart rate, but that only the sympathetic system has an effect on the diameter of the blood vessels and the contractility of the heart muscle. This whole process is known as the baroreceptor reflex, or baroreflex in short, and takes place in seconds to minutes, allowing us to rapidly adjust our blood pressure.

Okay, so, as blood pulses through the carotid sinus and the aortic arch, the arterial walls get stretched out and in response, the baroreceptors start firing more nerve impulses up to those cardiovascular centers. The higher the pressure, the higher the frequency of nerve impulses. So, let’s say you’re running to catch the bus and your blood pressure rises. The increased pressure stretches the walls of the aortic arch and the carotid sinus, and the baroreceptors start firing at an increased frequency. The glossopharyngeal and vagus nerve carry that increased signal to the cardiovascular centers of the brainstem. To bring the pressure back down to normal, these centers inhibit the sympathetic and stimulate the parasympathetic nervous systems. Specifically, the vasomotor center decreases the vasoconstrictive effect of the sympathetic nervous system. In other words, the arterioles dilate, decreasing total peripheral arterial resistance, and there’s decreased constriction of veins, which allows blood to pool in the periphery rather than returning to the heart. Decreased venous return means there’s less preload - less diastolic filling of the heart - and that also decreases cardiac output. Meanwhile, remember that the cardiac accelerator center is also inhibited, reducing the sympathetic effect on the heart, and letting the heart work slower and less forcefully, in other words decreasing the heart rate and contractility, while the cardiac decelerator center is activated, boosting the parasympathetic effects on the heart, which again slows down the heart rate. Combined, these effects result in a decreased cardiac output (CO). Since blood pressure (BP), roughly equals cardiac output (CO) times total peripheral resistance (TPR), the decrease in cardiac output CO and the decrease in total peripheral resistance (TPR) means that blood pressure (BP) will decrease back down to normal as well. Hopefully, by that point, you’ve made the bus!

On the flip side, let’s say that you’re in a terrible traumatic accident and start losing a lot of blood, causing your blood pressure to fall. The decreased pressure causes the walls of the aortic arch and carotid sinus to become less stretched, and the baroreceptors start firing less frequently. The glossopharyngeal and vagus nerve carry that decreased signal to the cardiovascular centers of the brainstem. To bring the pressure back up to normal, these centers stimulate the sympathetic and inhibit the parasympathetic nervous systems. Specifically, the vasomotor center increases the vasoconstrictive effect of the sympathetic nervous system. In other words, the arterioles narrow, increasing total peripheral arterial resistance, and there’s increased constriction of veins, which returns more blood to the heart rather than allowing it to pool in the periphery. Increased venous return means there’s more preload, and that also increases cardiac output. Meanwhile, remember that the cardiac accelerator center is also stimulated, increasing the sympathetic effect on the heart, and letting the heart work faster and more forcefully, in other words increasing the heart rate and contractility, while the cardiac decelerator center is deactivated, reducing the parasympathetic effects on the heart, which again speeds up the heart rate. Combined, these effects result in an increased cardiac output (CO) and an increase in total peripheral resistance (TPR) which raises the blood pressure (BP) back to normal. In this case, these changes can save your life.

Key Takeaways

Baroreceptors are a type of mechanoreceptors that sense changes in blood pressure, and send signals to the brain that control heart rate and vascular tone. When blood pressure rises, baroreceptor activity increases, which leads to a decrease in heart rate and an increase in vascular tone.

When blood pressure falls, baroreceptor activity decreases, leading to an increase in heart rate and a decrease in vascular tone. There are two types, arterial, and cardiovascular baroreceptors. Arterial baroreceptors are located in high-pressure regions, namely in the aortic arch, and the carotid bodies, whereas cardiovascular baroreceptors are located within the heart's atria, ventricles, and pulmonary vessels.