This study was conducted as a narrative review. A structured literature search was performed in PubMed, Web of Science, Embase, and the China National Knowledge Infrastructure (CNKI), with a search cutoff date of April 30, 2026. The search focused on the epidemiology, underlying mechanisms, screening, and treatment of coronary artery disease, heart failure, anxiety, depression, and psychological stress. Eligible publications included Chinese-language and English-language guidelines, expert consensus statements, systematic reviews, meta-analyses, clinical trials, observational studies, and relevant preclinical studies. Duplicate records, studies unrelated to the review, reports with insufficient information, articles without accessible full texts, and studies that did not support the main topics of this review were excluded.
After duplicate records were removed, titles and abstracts were screened, followed by full-text assessment. Priority was given to high-quality clinical evidence, while landmark studies were retained and supplemented with relevant high-quality publications from the preceding 3–5 years. The included evidence was classified as clinical, animal, cellular, or theoretical, with preclinical studies used primarily to support potential mechanisms. Evidence relating to interventions was narratively synthesized according to study design, consistency of findings, and potential for clinical translation to assess and compare the maturity of the available evidence.
1. Epidemiology
Anxiety and depression are common comorbidities among patients with cardiovascular disease. Among patients with heart disease, the reported prevalence rates of depressive symptoms, anxiety symptoms, and stress are 31.3%, 32.9%, and 57.7%, respectively5. The overall prevalence of depression among patients with cardiovascular disease is approximately 19%6. Among patients with heart failure, the prevalence of depression of any severity is estimated to be 41.9%7. However, the prevalence of anxiety and depressive symptoms varies substantially among hospitalized patients with heart failure8. Major depression affects approximately 19.8% of patients who survive an acute myocardial infarction9. Patients with myocardial infarction with nonobstructive coronary arteries (MINOCA) or Takotsubo syndrome also frequently report impaired mental health and reduced quality of life after an acute event. However, the available evidence is limited by a high risk of bias10.
Mental disorders and cardiovascular disease have a bidirectional relationship. Large prospective cohort studies in the general population have shown that depression is associated with increased risks of all-cause and cardiovascular mortality11. Among patients with myocardial infarction, studies have found that major depression after hospital discharge is associated with an increased risk of short-term cardiac mortality12. Mental stress-induced myocardial ischemia has been documented in patients with stable coronary artery disease13 and is associated with a higher risk of subsequent cardiovascular events14. Social isolation and living alone are also associated with an increased risk of all-cause mortality among patients with cardiovascular disease15. Mendelian randomization studies further suggest that depression may contribute to the risk of certain cardiovascular outcomes16, supporting early psychological screening and risk-stratified management.
2. Pathophysiological mechanisms
Psychocardiological disease may result from the combined effects of neuroendocrine and autonomic dysregulation, inflammation, mitochondrial dysfunction, gut microbiota dysbiosis, and altered communication between the heart and brain.
1. Neuroendocrine and autonomic regulatory axis
Negative emotional states, such as anxiety and depression, can activate the paraventricular nucleus of the hypothalamus and associated cortical and limbic circuits. This activation promotes the release of corticotropin-releasing hormone (CRH), arginine vasopressin, adrenocorticotropic hormone (ACTH), and cortisol. It also increases sympathetic activity and reduces parasympathetic regulation17, thereby affecting the sinoatrial node, myocardium, and coronary vasculature.

Figure 1: Psychological stress affects the heart through the hypothalamic–pituitary–adrenal axis and the autonomic nervous system. Psychological stress activates the paraventricular nucleus and stimulates the hypothalamic–pituitary–adrenal axis, leading to the release of corticotropin-releasing hormone, arginine vasopressin, adrenocorticotropic hormone, and cortisol. Cortisol acts via glucocorticoid receptors in cardiac macrophages, influencing inflammatory signaling, macrophage polarization, cardiomyocyte injury, and cardiac remodeling. In parallel, increased sympathetic activity affects the sinoatrial node, myocardium, and coronary arteries. The figure also shows regulatory interactions involving cardiomyocyte-derived exosomes, mesenchymal stem cells, and the PD-1/PD-L1 pathway. Abbreviations: PVN, paraventricular nucleus; CRH, corticotropin-releasing hormone; AVP, arginine vasopressin; ACTH, adrenocorticotropic hormone; GR, glucocorticoid receptor; IL-6, interleukin 6; TNF-α, tumor necrosis factor alpha; IL-1β, interleukin 1 beta; miRNA, microRNA; MSC, mesenchymal stem cell; PD-L1, programmed death-ligand 1; HPA, hypothalamic–pituitary–adrenal axis. Please click here to view a larger version of this figure.
Glucocorticoids regulate inflammatory responses and tissue repair through glucocorticoid receptors expressed in macrophages. In experimental models of myocardial infarction, the loss of glucocorticoid receptors in myeloid cells impairs the functional differentiation of monocyte-derived macrophages and is associated with abnormal scar formation, angiogenesis, and ventricular remodeling18. Dysregulated glucocorticoid receptor signaling may therefore alter inflammation and tissue repair after myocardial injury by disrupting macrophage function.
Following myocardial injury, the expression of inflammatory cytokines, including tumor necrosis factor alpha (TNF-α), interleukin 1 beta (IL-1β), and interleukin 6 (IL-6), increases in noncardiomyocytes such as macrophages. These changes are associated with collagen deposition and ventricular remodeling, suggesting that local inflammation and paracrine signaling contribute to the regulation of the myocardial microenvironment19. Injured cardiomyocytes can also release exosomes containing specific microRNAs. Among them, exosomal miR-146a-5p regulates macrophage polarization and the expression of inflammation-related genes, providing preclinical evidence of bidirectional communication between cardiomyocytes and immune cells20.
Preclinical evidence suggests that programmed death-ligand 1 (PD-L1) carried by apoptotic bodies derived from mesenchymal stem cells can interact with programmed cell death protein 1 (PD-1) on macrophages. This interaction induces metabolic reprogramming and promotes a shift from a proinflammatory to an anti-inflammatory phenotype. However, these findings were obtained from a model of acute lung injury, and their relevance to psychological stress-related cardiac injury requires further validation21. In a model of stress-induced cardiomyopathy, PD-1/PD-L1 signaling limited myocardial inflammation. Blocking this pathway prolonged the inflammatory response and delayed recovery of left ventricular structure and function22.
2. Immune-inflammatory and neuroinflammatory axis
Inflammatory activation is an important pathological feature shared by psychocardiological diseases. Patients with cardiovascular disease and depressive symptoms may have elevated inflammatory markers, including C-reactive protein (CRP), IL-6, and TNF-α23. Higher levels of IL-6, TNF-α, and composite inflammatory indices have been associated with the onset of depression, although findings regarding the longitudinal association between CRP and depression remain inconsistent24. Inflammatory mediators may affect the integrity and function of the blood-brain barrier, as well as brain regions involved in emotional regulation25. Neuroinflammation associated with cardiovascular disease may contribute to bidirectional communication between the heart and brain26. Preclinical studies also implicate a proinflammatory microglial phenotype in stress-related depressive-like behaviors. However, direct evidence for this mechanism in human psychocardiological disease remains limited.
The Toll-like receptor 4 (TLR4)/nuclear factor kappa B (NF-κB)/NOD-like receptor family pyrin domain containing 3 (NLRP3) inflammasome cascade represents a potential pathway linking innate immune activation, inflammatory amplification, and vascular endothelial injury.

Figure 2: Lipopolysaccharide/Toll-like receptor 4-mediated inflammatory amplification and atherosclerosis. Lipopolysaccharide activates Toll-like receptor 4 on macrophages, triggering nuclear factor kappa B signaling and mitochondrial reactive oxygen species-dependent activation of the NOD-like receptor family pyrin domain containing 3 inflammasome. These pathways promote the production and maturation of proinflammatory cytokines, including interleukin-1 beta, interleukin-6, and tumor necrosis factor-alpha. Sustained inflammatory signaling contributes to endothelial activation, monocyte recruitment, foam cell formation, lipid accumulation, plaque development, and plaque instability. Abbreviations: LPS, lipopolysaccharide; TLR4, Toll-like receptor 4; NF-κB, nuclear factor kappa B; ROS, reactive oxygen species; NLRP3, NOD-like receptor family pyrin domain containing 3; IL-1β, interleukin 1 beta; IL-6, interleukin 6; TNF-α, tumor necrosis factor alpha; caspase-1, cysteine-aspartic protease 1. Please click here to view a larger version of this figure.
Cellular stress signals, including potassium efflux, mitochondrial reactive oxygen species, and lysosomal damage, can promote NLRP3 inflammasome assembly and caspase-1 activation. These processes drive the maturation and release of IL-1β and IL-1827. Increased expression of NLRP3 and caspase-1 in peripheral blood mononuclear cells from patients with major depressive disorder provides preliminary clinical evidence for the involvement of this pathway28. However, therapies targeting the NLRP3 inflammasome remain at an early stage of development29.
Mitochondrial DNA (mtDNA) released from damaged mitochondria can act as a damage-associated molecular pattern. Cytosolic mtDNA is recognized by cyclic GMP-AMP synthase (cGAS), which catalyzes the production of cyclic GMP-AMP (cGAMP) and subsequently activates the stimulator of interferon genes (STING). Activated STING promotes the expression of type I interferons and proinflammatory cytokines through TANK-binding kinase 1 (TBK1), interferon regulatory factor 3 (IRF3), and NF-κB signaling30. Crosstalk between the cGAS-STING and NLRP3 pathways may connect mitochondrial damage with innate immune activation and inflammatory amplification. Inflammation may also alter neural excitability and synaptic plasticity through the kynurenine pathway31.
3. Mitochondrial dysfunction and metabolic regulation
Mitochondrial dysfunction may provide a mechanistic link among oxidative stress, inflammation, myocardial injury, and emotional disorders. Psychological stress has been associated with alterations in mitochondrial energy metabolism, redox homeostasis, and structural integrity32. Chronic or excessive stress can impair oxidative phosphorylation, reduce adenosine triphosphate (ATP) production, and increase the accumulation of reactive oxygen species (ROS). These changes may disrupt mitochondrial membrane potential, calcium homeostasis, apoptosis, and cellular energy supply, thereby impairing both myocardial contractility and neuronal function.
Mitochondrial quality control involves biogenesis, fusion and fission, and mitophagy. Peroxisome proliferator-activated receptor gamma coactivator 1 alpha (PGC-1α)-dependent mitochondrial biogenesis and mitochondrial dynamics regulated by mitofusin 1 (MFN1), mitofusin 2 (MFN2), optic atrophy 1 (OPA1), and dynamin-related protein 1 (DRP1) jointly maintain mitochondrial network integrity and respiratory efficiency. PTEN-induced kinase 1 (PINK1)/Parkin-mediated mitophagy is also involved in mitochondrial homeostasis and tissue injury in experimental models of cardiovascular disease33. Under conditions of stress and inflammation, disruption of these processes can lead to excessive mitochondrial fragmentation, impaired function, and increased ROS production.
PINK1/Parkin-mediated mitophagy enables the recognition and removal of damaged mitochondria. When mitochondrial membrane potential declines, Parkin is selectively recruited to damaged mitochondria and promotes their autophagic degradation34. In vitro studies further indicate that phosphorylated ubiquitin generated through PINK1 activity recruits autophagy receptors, including optineurin (OPTN) and nuclear dot protein 52 (NDP52), thereby initiating mitophagy35.
When mitochondrial quality control is impaired, damaged mitochondria cannot be efficiently removed, resulting in the persistent accumulation of ROS, mtDNA, and other damage-associated molecules. Figure 3 illustrates the sequence linking defective mitochondrial quality control, danger signal release, and innate immune activation. These damage-associated signals can act as upstream activators of the cGAS-STING and NLRP3 pathways, thereby amplifying innate immune and inflammatory responses.

Figure 3: Inflammatory amplification involving mitochondrial quality-control dysfunction, innate immune activation, and cardiac and cerebral injury. Stress and inflammation can impair mitochondrial quality control and PINK1/Parkin-mediated mitophagy, leading to the accumulation of damaged mitochondria. These mitochondria release mitochondrial DNA, mitochondrial reactive oxygen species, and mitochondrial damage-associated molecular patterns, which activate the cGAS-STING and NLRP3 pathways. The resulting inflammatory response promotes type I interferon and nuclear factor kappa B signaling, caspase-1 activation, and cytokine release. Sustained inflammation may further aggravate mitochondrial injury and contribute to impaired cardiac function, arrhythmia susceptibility, reduced neuronal energy supply, altered synaptic plasticity, and impaired emotional regulation. Abbreviations: ROS, reactive oxygen species; PINK1, PTEN-induced kinase 1; Parkin, Parkin RBR E3 ubiquitin protein ligase; LC3, microtubule-associated protein 1 light chain 3; mtDNA, mitochondrial DNA; mtROS, mitochondrial reactive oxygen species; mtDAMPs, mitochondrial damage-associated molecular patterns; cGAS-STING, cyclic GMP-AMP synthase–stimulator of interferon genes; IFNs, interferons; NF-κB, nuclear factor kappa B; NLRP3, NOD-like receptor family pyrin domain containing 3; IL-1β, interleukin 1 beta; IL-18, interleukin 18; IL-6, interleukin 6; TNF-α, tumor necrosis factor alpha; ATP, adenosine triphosphate. Please click here to view a larger version of this figure.
4. Gut microbiota–gut–heart–brain axis
The gut microbiota contributes to both the gut–heart axis36 and the microbiota–gut–brain axis37 through immune, metabolic, neural, and intestinal barrier-related pathways. Microbial metabolites exert a wide range of biological effects. A human study showed that the gut microbiota metabolizes dietary phosphatidylcholine into trimethylamine, which is subsequently converted to trimethylamine N-oxide (TMAO), and that elevated circulating TMAO levels are associated with cardiovascular risk38. Among patients with heart failure, higher TMAO levels are also associated with poorer clinical outcomes39. Evidence from integrated human and animal studies indicates that dietary L-carnitine can be metabolized by the gut microbiota to generate TMAO and promote atherosclerosis40. TMAO may also increase platelet reactivity and thrombotic potential41. Other microbial metabolites, including short-chain fatty acids and tryptophan-derived metabolites, may contribute to immune regulation, intestinal barrier integrity, and neural function. However, their clinical significance remains unclear.
Metagenomic studies in patients with atherosclerotic cardiovascular disease have shown that alterations in the functional profile of the gut microbiota are associated with disease phenotypes42. Population-based studies have also identified associations between the functions of specific neuroactive gut microorganisms, quality of life, and depression43. Transplantation of gut microbiota from patients with depression into germ-free mice can induce depressive-like behaviors and metabolic alterations44. Similarly, another cross-species transplantation study found that depression-associated gut microbiota induced neurobehavioral changes in recipient rats45.
5. Structural and functional alterations in the heart and brain and cross-organ communication
At the organ level, the mechanisms described above may lead to structural and functional abnormalities in both the heart and brain. Among patients with heart failure, alterations in brain networks have been associated with lower left ventricular ejection fraction, cognitive impairment, and more severe depressive symptoms46. In the brain-to-heart direction, psychological stress and impaired central regulation may induce autonomic and neuroendocrine changes. The central autonomic network, sympathovagal balance, and broader brain–heart axis provide a physiological framework through which negative emotional states may influence heart rate, electrophysiological stability, and coronary vascular tone47.
Preclinical evidence suggests that extracellular vesicles released by cardiac cells may carry microRNAs, proteins, and inflammatory mediators involved in intercellular communication. Cardiac fibroblast-derived exosomes have been shown to alter cardiomyocyte phenotype and promote cardiomyocyte hypertrophy48. However, these findings primarily demonstrate local intercellular communication within the heart and do not prove that exosomes mediate long-distance signaling between the heart and brain in humans. Current clinical evidence provides stronger support for interactions among cardiac function, cerebral perfusion, and autonomic regulation. Evidence for long-range heart–brain communication mediated by extracellular vesicles remains mainly preclinical and theoretical.
3. Treatment strategies
Psychocardiological disease requires patient-centered, integrated management encompassing screening, comprehensive assessment49, intervention, and follow-up. The proposed framework incorporates cardiovascular treatment, psychological interventions, exercise rehabilitation, social support, and digital management, with screening, comprehensive assessment, tiered interventions, and long-term follow-up (Figure 4).

Figure 4: Integrated management framework for psychocardiological disease. The framework illustrates a patient-centered pathway that begins with psychological screening and comprehensive cardiovascular and psychosocial assessment. Patients are then stratified according to clinical risk and directed to appropriate interventions, including cardiovascular treatment, psychological therapy, exercise rehabilitation, social support, pharmacological treatment, and digital management. Long-term follow-up, reassessment, and treatment adjustment are incorporated throughout the pathway. Please click here to view a larger version of this figure.
1. Risk stratification, early identification, and comprehensive assessment
- Psychological screening and comprehensive assessment are essential components of psychocardiological care. They aim to identify anxiety, depression, suicide risk, and psychosocial factors that may affect treatment adherence and to guide risk-stratified referral. The Patient Health Questionnaire-9 (PHQ-9) can be used to assess the presence and severity of depressive symptoms50. The Generalized Anxiety Disorder-7 (GAD-7) is commonly used to screen for generalized anxiety symptoms and evaluate their severity51. The Hospital Anxiety and Depression Scale (HADS) is suitable for the initial assessment of anxiety and depressive symptoms in patients with physical illness52.
Patients with severe symptoms, marked functional impairment, or suicide risk should receive professional psychological evaluation. A comprehensive assessment should include cardiovascular disease severity, cardiac function, arrhythmia risk, metabolic and sleep disorders, concomitant medications, psychological symptoms, social support, and patient preferences. Mechanism-related biomarkers are not yet sufficiently validated for routine risk stratification. Management intensity should correspond to the patient’s level of risk within a pathway combining screening, diagnosis, referral, treatment, and follow-up.
2. Nonpharmacological, psychological, and behavioral interventions
- Structured psychotherapy may be considered for patients with persistent anxiety, depression, or specific psychological disorders. Meta-analyses suggest that psychosocial interventions can reduce anxiety and depressive symptoms among patients with heart failure, although their effects on quality of life, hospitalization, and mortality remain limited53. In the ENRICHD trial, the intervention improved depression and perceived social support but did not increase event-free survival54. Stress management may reduce psychological distress, but its effects on cardiovascular events require further confirmation55.
In patients with heart failure, cognitive behavioral therapy can improve depression and quality of life, but has not improved self-care behaviors or clinical outcomes56. Telephone-based collaborative care has been shown to improve depression and mental health-related quality of life after coronary artery bypass grafting (CABG)57. Hybrid collaborative care may also improve mood, although reductions in rehospitalization and mortality have not been demonstrated58. These findings indicate that improvements in psychological symptoms should not be regarded as evidence of cardiovascular protection.
3. Exercise, physical rehabilitation, and traditional Chinese medicine-based rehabilitation
- Exercise-based cardiac rehabilitation is a standard component of care for eligible patients with coronary heart disease and selected patients with stable heart failure. Meta-analyses indicate that exercise-based cardiac rehabilitation reduces the risks of cardiovascular death, myocardial infarction, and hospitalization among patients with coronary heart disease while also improving health-related quality of life59. The UPBEAT randomized trial showed that both aerobic exercise and sertraline reduced depressive symptoms in patients with coronary heart disease60.
A 2022 meta-analysis suggested that tai chi, when added to standard care, may improve depressive symptoms, exercise capacity, and quality of life in patients with chronic heart failure, with the certainty of evidence ranging from very low to moderate61. Acupuncture may also alleviate depressive symptoms in patients with cardiovascular disease and depression. Nevertheless, the evidence remains uncertain because of limited quality and substantial heterogeneity62.
These interventions should complement, rather than replace, standard cardiovascular and psychological treatments. Exercise prescriptions should be individualized according to cardiovascular risk, cardiac function, exercise capacity, frailty, and psychological status.
4. Pharmacological and targeted biological interventions
- Guideline-directed cardiovascular therapy
- Guideline-directed cardiovascular pharmacotherapy is a standard component of care. Patients with chronic coronary artery disease should receive antiplatelet therapy, lipid-lowering therapy, anti-ischemic treatment, and other secondary prevention measures63. Patients with heart failure should receive appropriate guideline-directed pharmacotherapy based on left ventricular ejection fraction, symptom severity, and comorbidities64.
- Antidepressant therapy
Antidepressants may be prescribed to patients with moderate-to-severe depressive or anxiety disorders following specialist evaluation, with the aim of alleviating psychological symptoms and improving functional impairment. The SADHART trial showed that sertraline had a favorable overall cardiovascular safety profile in patients with recent myocardial infarction or unstable angina and major depression. Its antidepressant effects were more pronounced in patients with recurrent or more severe depression65. The CREATE trial demonstrated that citalopram improved depressive symptoms in patients with coronary heart disease and depression66. The REMIT trial suggested that escitalopram may reduce the occurrence of mental stress-induced myocardial ischemia67.
Antidepressant therapy should generally be initiated at a low dose, with regular monitoring of therapeutic response, adherence, and cardiovascular safety. For patients with cardiovascular disease and depression, treatment efficacy and both cardiovascular and psychiatric safety should be evaluated throughout therapy68. Particular attention should be paid to QTc prolongation, orthostatic hypotension, hyponatremia, bleeding risk, and potential interactions with antiplatelet agents, anticoagulants, and antiarrhythmic drugs. Tricyclic antidepressants are generally not considered first-line treatment for patients with cardiovascular disease because of their potential to cause cardiac conduction abnormalities, anticholinergic adverse effects, and arrhythmias.
- Anti-inflammatory and mechanism-targeted therapies
Anti-inflammatory and mitochondria-targeted interventions remain under investigation. The CANTOS trial showed that canakinumab reduced the risk of certain recurrent cardiovascular events but increased the risk of fatal infection69. However, psychological outcomes were not evaluated, and the findings therefore do not support the use of canakinumab specifically for patients with psychocardiological disease. Therapeutic strategies targeting cGAS-STING and NLRP3 pathways also remain in their early stages, with inadequate validation in clinical populations.
5. Digital and Longitudinal Management
Wearable devices, digital therapeutics, and remote monitoring can supplement standard medical care and extend management beyond clinical settings. Wearable devices can continuously monitor heart rate, electrocardiographic activity, physical activity, and sleep70. Therapist-supported internet-based cognitive behavioral therapy (ICBT) has been shown to improve depressive symptoms and quality of life, although its effects on anxiety remain inconsistent71. Improvements in depression may persist for 6–12 months72. Digital cardiac rehabilitation may improve selected measures of physical activity and functional capacity, but evidence regarding long-term clinical outcomes remains limited73. Smartphone-based cardiac rehabilitation has also been associated with improvements in exercise capacity, health behaviors, quality of life, and anxiety after percutaneous coronary intervention (PCI)74. The eIMPACT intervention reduced depressive symptoms but did not improve several cardiovascular risk biomarkers75.
Digital tools should be integrated into established clinical referral and treatment pathways, with adequate validation of devices and algorithms, protection of data privacy, reduction of the digital divide, and improved accessibility across diverse patient populations.
6. Evidence-based and clinical positioning of interventions
To facilitate clinical comparison of management strategies, this review provides a narrative synthesis of interventions according to study design, consistency of findings, and potential for clinical translation (Supplementary Table 1). The strength of evidence is categorized as substantial, limited, or preliminary. The clinical role of each intervention is classified as standard management or treatment, a potential adjunctive intervention, an exploratory intervention, or an intervention not currently recommended as a priority. These classifications are intended only to describe the maturity, consistency, and scope of the available evidence rather than formal levels of evidence or classes of recommendation used in clinical practice guidelines.