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Salt and water imbalance in chronic heart failure
Gaspare Parrinello1, Daniele Torres, Salvatore Paterna
1Biomedical Department of Internal and Specialty Medicine (Di.Bi.Mi.S.), Heart Failure Out-Patients Clinic, A.O.U. Policlinico Paolo Giaccone, University of Palermo, Piazza delle Cliniche 2, Palermo, Italy.
Insights
In chronic heart failure, maladaptive neurohumoral systems cause fluid retention. Personalized therapy is crucial for managing hydro-saline balance and improving outcomes in heart failure patients.
Area of Science:
- Cardiology
- Nephrology
- Physiology
Background:
- Neurohumoral systems, vital for homeostasis, become maladaptive in chronic heart failure (CHF), driving disease progression and congestion.
- Activation of sympathetic hormones, renin-angiotensin-aldosterone system (RAAS), and altered renal handling of sodium and water lead to a salt- and water-avid state in CHF.
- Reduced cardiac output and arterial vasodilation in CHF trigger neuro-humoral reflexes, with the kidney acting as a key end-organ responsible for fluid retention.
Purpose of the Study:
- To elucidate the complex pathophysiology of hydro-saline imbalance in chronic heart failure.
- To highlight the kidney's role as the end-organ responsible for sodium and water reabsorption in CHF.
- To emphasize the need for individualized, long-term therapeutic strategies in managing CHF-related fluid retention.
Main Methods:
- Review of the neurohumoral and hemodynamic mechanisms underlying fluid retention in CHF.
- Analysis of renal hemodynamic alterations, including efferent arteriolar constriction and its impact on glomerular filtration rate.
- Discussion of the challenges posed by diuretic resistance and worsening renal function in long-term CHF management.
Main Results:
- CHF activates neurohumoral systems (sympathetic, RAAS) and alters renal function, promoting sodium and water reabsorption.
- Glomerular efferent arteriolar constriction increases intraglomerular pressure, promoting tubular reabsorption and contributing to kidney dysfunction.
- Progressive decline in glomerular filtration rate and diuretic resistance complicate fluid management in advanced CHF.
Conclusions:
- CHF pathophysiology involves maladaptive neurohumoral activation and renal dysfunction leading to fluid overload.
- Individualized therapeutic approaches, including tailored diuretic strategies and close monitoring, are essential for managing hydro-saline balance in CHF.
- Personalized management considering patient profiles, comorbidities, and renal function is critical for optimizing long-term outcomes in chronic heart failure.
Abstract:
In chronic heart failure (CHF), neurohumoral systems, which help to maintain circulatory homeostasis, are maladaptive and responsible for disease progression and congestion in the long term. The activation of sympathetic hormones and renin-angiotensin-aldosterone system (RAAS), in addition to non-osmotic vasopressin release, up-regulation of aquoporine 2 and renal sodium transporters, and renal resistance to natriuretic peptide lead to a salt- and water-avid state. A primary decrease in cardiac output and arterial vasodilatation brings about arterial underfilling, which activates neuro-humoral reflexes and systems. The heart disease is the primum movens, but the kidney is the end organ responsible for increased tubular reabsorption of sodium and water. The most important hemodynamic alteration in the kidneys is constriction of glomerular efferent arterioles, which increases intraglomerular pressure and hence glomerular filtration rate. The resulting changes in intrarenal oncotic and hydrostatic pressures promote tubular reabsorption. Over time, a gradually falling glomerular filtration rate, due to CHF progression, medications or chronic kidney injury due to comorbidities, becomes more critical in sodium/water imbalance. Moreover, long-term use of diuretics can lead to a diuretic-resistant state, which necessitates the use of higher doses further activating RAAS, often at the expense of worsening renal function. However, every patient is a case in itself and the general pathophysiology of hydro-saline balance may be different in each subject. A mechanism can prevail over others and the kidney may have different responses to the same diuretic. So, it is necessary to customize each individual's long-term therapy, tailoring medical treatment according to clinical profiles, comorbidities and renal function, introducing active control of body weight by the patient himself, fluid restriction, a less restricted sodium intake, flexibility of diuretic doses, early and personalized ambulatory follow-up, and congestion monitoring by bioelectrical impedance vector analysis, BNP, inferior vena cava ultrasonography or echocardiographic e/e(1) ratio or pulmonary capillary wedge pressure.
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