Vagal pathways and heart rate variability in recovery after caesarean delivery: a framework for multimodal

Yi Zhang1, Shuang Guo1, Qingjun Zeng1

  • 1Department of Anesthesiology, Wanzhou District Maternal and Child Health Hospital, Chongqing, China.

Frontiers in Physiology
|August 29, 2026
PubMed

Recovery after caesarean delivery involves interacting inflammatory, autonomic, neuroendocrine, nociceptive and psychosocial processes. This Mini Review examines whether vagal pathways and heart rate variability (HRV) can provide a mechanistic and measurable framework for studying that recovery. The inflammatory reflex and cholinergic anti-inflammatory pathway offer a biological rationale: neural signals can restrain cytokine production through an autonomic-immune circuit that includes splenic sympathetic signalling, norepinephrine-responsive acetylcholine-producing T cells and the α7 nicotinic acetylcholine receptor (α7nAChR) on macrophages. However, the anatomy and relative vagal and sympathetic contributions to this circuit remain debated. HRV, particularly the root mean square of successive differences and high-frequency power under standardized recording conditions, indexes cardiac parasympathetic modulation rather than whole-body vagal activity or splenic anti-inflammatory output. Pregnancy is accompanied by substantial autonomic adaptation, and postpartum HRV follows a dynamic trajectory, but existing longitudinal data do not establish when individual values return to pre-pregnancy baselines. In obstetric anaesthesia, HRV has mainly been studied as a preoperative predictor of spinal anaesthesia-induced hypotension; evidence for serial HRV as a recovery measure remains limited. We therefore propose a testable framework in which standardized longitudinal HRV is paired with inflammatory biomarkers, patient-reported recovery and clinical milestones after caesarean delivery. Non-invasive interventions such as transcutaneous auricular vagus nerve stimulation, slow-paced breathing and HRV biofeedback are plausible probes of this framework, but their target engagement and clinical effects require rigorous sham-controlled evaluation. HRV should be treated as a candidate component of multimodal recovery phenotyping, not as a direct measure of the cholinergic anti-inflammatory pathway.

Related Concept Videos

Psychoneuroimmunology: Cardiovascular Disease01:27

Psychoneuroimmunology: Cardiovascular Disease

Psychoneuroimmunology (PNI) is a multidisciplinary field that examines how psychological factors, particularly stress, interact with the immune system and impact physical health. Research in PNI has shown that chronic or traumatic stress can disrupt both the hypothalamic-pituitary-adrenal axis and the sympathetic nervous system. These disruptions contribute to serious health conditions, including cardiovascular diseases.
A key area of focus in PNI is the relationship between stress and coronary...
Electrophysiology of Normal Cardiac Rhythm01:19

Electrophysiology of Normal Cardiac Rhythm

The normal cardiac rhythm is a synchronized electrical activity that facilitates the regular and coordinated contraction of the heart muscle. This process is essential for efficient blood circulation throughout the body. The fundamental elements involved in establishing and maintaining this rhythm include the unique electrical properties of cardiac muscle cells, the sinoatrial (SA) node's pacemaker function, the specialized conducting system, and the ionic mechanisms underlying each phase of...
Regulation of Heart Rates01:31

Regulation of Heart Rates

The regulation of heart rate is a complex process controlled by the autonomic nervous system (ANS), hormonal influences, and intrinsic cardiac mechanisms. The ANS has two main components: the sympathetic nervous system (SNS) and the parasympathetic nervous system (PNS).
The SNS increases heart rate through the release of norepinephrine and epinephrine, which act on beta-1 adrenergic receptors in the heart. This action increases the rate of depolarization in the sinoatrial (SA) node, the heart's...
Blood Studies for Cardiovascular System I: Cardiac Biomarkers01:20

Blood Studies for Cardiovascular System I: Cardiac Biomarkers

Cardiac biomarkers are enzymes, proteins, and hormones released into the blood when cardiac cells are injured. They are powerful tools for triaging.
The essential diagnostic tools for detecting myocardial necrosis and monitoring individuals suspected of having acute coronary syndrome (ACS) include:
Troponins
Troponins, particularly cardiac troponins I and T, are the most precise and sensitive markers of myocardial injury. They are detectable within 4-6 hours of myocardial injury and remain...
Factors Influencing Heart Rate01:30

Factors Influencing Heart Rate

The heart rate, or pulse rate, is a vital indicator of cardiovascular health. It reflects the number of times the heart beats per minute. Various physiological and environmental factors influence heart rate, increasing or decreasing cardiac output. Understanding these factors is crucial for assessing heart function and identifying potential health issues.
Let us explore the significant factors affecting heart rate, including age, body temperature, posture, acute pain, chemical influences,...
Blood Studies for Cardiovascular System II: CRP, Hcy, and Cardiac Natriuretic Peptide Markers01:19

Blood Studies for Cardiovascular System II: CRP, Hcy, and Cardiac Natriuretic Peptide Markers

Cardiac biomarkers are critical in diagnosing, prognosing, and managing cardiovascular diseases. Routine measurement of specific biomarkers such as B-type natriuretic peptide (BNP), C-reactive protein (CRP), and homocysteine (Hcy) is common practice in clinical settings to evaluate heart function and predict cardiovascular events.
These markers indicate stress or strain on the heart muscle:
Natriuretic Peptides (BNP)
Cardiac myocytes produce these hormones in response to ventricular stretching...