# baroreceptor reflex | Symptoms, Causes, Tests and Treatment | OSANG

> The baroreceptor reflex is an autonomic feedback mechanism in which baroreceptors located in the carotid sinus and aortic arch detect changes in blood pressure and trans…

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## Page content

Autonomic Medicine

## baroreceptor reflex

Baroreflex · I49.8

The baroreflex is a feedback mechanism of the autonomic nervous system that quickly regulates heart rate and vascular resistance in response to changes in blood pressure, and plays a key role in maintaining circulatory system homeostasis.

## At a glance

The baroreceptor reflex is an autonomic feedback mechanism in which baroreceptors located in the carotid sinus and aortic arch detect changes in blood pressure and transmit afferent signals to the medulla to control sympathetic and parasympathetic nerve output. When blood pressure rises, heart rate and vascular resistance decrease through parasympathetic nerve activation and sympathetic nerve inhibition, and when blood pressure falls, the opposite reaction occurs. Baroreflex sensitivity (BRS) is an independent predictor of cardiovascular risk and decreases with hypertension, heart failure, diabetes, and aging.

- 01Definition and Overview

- 02Pathophysiology and mechanism

- 03symptoms

- 04diagnosis

- 05Treatment and Management

- 06Complications and Prognosis

## Definition and Overview

The baroreflex is an autonomic nervous system feedback mechanism that maintains blood pressure homeostasis by detecting changes in arterial blood pressure and quickly controlling heart rate and vascular resistance. This reflex operates on a pulse-by-pulse basis and is the fastest blood pressure control mechanism, responding to blood pressure fluctuations within seconds.

The baroreceptor reflex consists of the afferent pathway, medullary integration center, and efferent pathway, and regulates the sympathetic-parasympathetic balance of the autonomic nervous system in real time.

## Pathophysiology and mechanism

### Location and structure of baroreceptors

Baroreceptors are mechanoreceptors that respond to changes in blood pressure and are mainly distributed in two locations.

- Carotid sinus: Located where the common carotid artery branches into the internal carotid artery and external carotid artery, it responds most sensitively in the normal blood pressure range.

- Aortic arch: Located at the origin of the aorta, it serves to complement the carotid sinus baroreceptors.

### Afferent signaling

Signals from carotid sinus baroreceptors are transmitted to the nucleus tractus solitarius (NTS) of the medulla via the glossopharyngeal nerve (9th cranial nerve), and signals from aortic arch baroreceptors are transmitted to the nucleus tractus solitarius (NTS) of the medulla via the vagus nerve (10th cranial nerve).

As blood pressure rises, the baroreceptor firing rate increases and the afferent signal to the NTS becomes stronger. Conversely, when blood pressure falls, the firing rate decreases.

### medullary integration and efferent reactions

NTS regulates the two efferent pathways based on the signals received.

- Parasympathetic nerve pathway: NTS → nucleus ambiguus and dorsal motor nucleus of vagus → cardiac sinoatrial node → decreased heart rate

- Sympathetic pathway: NTS → release of inhibition through nucleus ambiguus → spinal thoracic sympathetic preganglionic neurons → increased heart rate and vasoconstriction

When blood pressure rises, parasympathetic nerve activation and sympathetic nerve inhibition occur simultaneously, causing heart rate to decrease and blood vessels to relax. The opposite reaction occurs when blood pressure falls.

### Baroreceptor reflex sensitivity

Baroreflex sensitivity (BRS) is expressed as the change in heart rate interval (R-R interval) (ms/mmHg) that occurs per 1 mmHg change in blood pressure. The higher the BRS, the better the baroreceptor reflex function.

In a study of patients surviving myocardial infarction, the 2-year mortality rate in the group with a BRS of less than 3 ms/mmHg was significantly higher than that in the group with a BRS of 3 ms/mmHg or more.

## symptoms

Baroreceptor reflex abnormality itself does not cause direct symptoms, but when function deteriorates, the following clinical problems may appear.

- Orthostatic hypotension: Failure to compensate for blood pressure when standing.

- Postprandial hypotension: A drop in blood pressure after a meal.

- Exercise intolerance: Impaired blood pressure and heart rate control during exercise

- Nocturnal hypertension: loss of blood pressure drop during sleep (non-dipping pattern)

- Increased blood pressure volatility: Widening the range of intraday blood pressure fluctuations

Abnormalities in baroreceptor reflex function have been reported in some patients with POTS (orthostatic tachycardia syndrome), and may be related to excessive heart rate increases when standing.

## diagnosis

### Baroreceptor reflex sensitivity measurement method

phenylephrine method After increasing blood pressure with intravenous phenylephrine administration, changes in heart rate are recorded to calculate BRS. This is the most widely used standard method.

Carotid massage Directly stimulating the carotid sinus induces a reflex response. In addition to diagnosis, it is also used to identify arrhythmias.

Spontaneous BRS analysis (spontaneous BRS) It is a non-invasive method of calculating BRS from spontaneous blood pressure-heart rate correlation by simultaneously recording continuous blood pressure measurement device and electrocardiogram.

sequence method This method calculates the slope from spontaneous continuous changes in systolic blood pressure and R-R interval, and is well standardized.

### Normal and abnormal standards

The normal value of BRS varies depending on age and method, but generally, less than 3 ms/mmHg is considered low and is associated with increased cardiovascular risk. BRS tends to decrease with age.

## Treatment and Management

Management of the underlying disease and correction of lifestyle habits are given priority rather than direct treatment for decreased baroreceptor reflex function.

### Non-pharmacological approach

- Regular aerobic exercise: Exercise training has been reported to improve BRS

- Heart Rate Variability (HRV) Biofeedback: Autonomic Control Training

- Compression stockings and increased fluid intake: Relieve orthostatic symptoms

### medication

- Treatment of causative diseases (hypertension, heart failure, diabetes)

- ACE inhibitors and angiotensin receptor blockers have been reported to be effective in improving BRS.

- Beta blockers regulate heart rate, but their effects on BRS are mixed.

### electrical stimulation therapy

The carotid baroreceptor stimulation device is being studied as a treatment to lower blood pressure by activating BRS in patients with refractory hypertension.

## Complications and Prognosis

BRS decline is an independent predictor of cardiovascular mortality. In the ATRAMI (Autonomic Tone and Reflexes After Myocardial Infarction) study, the 2-year cardiac death risk ratio of patients with a BRS of less than 3 ms/mmHg after myocardial infarction was statistically significantly higher than that of the normal BRS group.

BRS degradation is observed in the following conditions:

- high blood pressure

- Diabetic autonomic neuropathy

- heart failure

- aging

- smoking

- sleep apnea

Conversely, in people who have excellent cardiopulmonary exercise capacity and exercise regularly, BRS tends to remain high.

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This information is provided for medical educational purposes and is not a substitute for individual medical care or treatment. If you have any symptoms, be sure to seek professional advice. Inquiries: Osang Neurosurgery 1599-5453 | osns.co.kr

## Frequently asked questions

### Q01What is the baroreceptor reflex?

The baroreceptor reflex is an autonomic response in which the body automatically adjusts heart rate and blood vessels to return blood pressure to a normal range when blood pressure suddenly changes. Baroreceptors located in the carotid and aorta detect changes in blood pressure and transmit signals to the heart and blood vessels through the medulla of the brain.

### Q02How does your body react when your blood pressure suddenly rises?

When blood pressure rises, baroreceptors detect this and activate the parasympathetic nerve (vagus nerve) and inhibit the sympathetic nerve. As a result, the heart rate slows, blood vessels dilate, and blood pressure decreases. This process happens automatically within seconds.

### Q03What is the baroreceptor reflex sensitivity (BRS) test?

The BRS test is a test that measures the size of the heart rate response according to changes in blood pressure. Methods include phenylephrine injection, carotid artery massage, or simultaneous recording of electrocardiogram and blood pressure to analyze spontaneous BRS. The lower your BRS, the higher your risk of cardiovascular events.

### Q04Are baroreceptor reflex abnormalities related to syncope?

Yes, there is a relationship. If the baroreceptor reflex function is reduced, blood pressure cannot be sufficiently controlled when standing, which may result in orthostatic hypotension or vasovagal syncope. Baroreceptor reflex abnormalities are also common in patients with POTS (orthostatic tachycardia syndrome).

### Q05Does the baroreceptor reflex become weaker as we age?

Yes, with aging, BRS is lowered due to decreased elasticity of the baroreceptors themselves and decreased central processing functions. This is one of the reasons for orthostatic hypotension, increased blood pressure variability, and increased risk of cardiovascular events in older adults.

## Related articles

- Irritable Bowel Syndrome

- sympathetic nervous system

- Aging and autonomic nervous system

- Autonomic dysfunction after stroke

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