Molecular distinction between physiological and pathological cardiac hypertrophy: experimental findings and

Bianca C Bernardo1, Kate L Weeks, Lynette Pretorius

  • 1Cardiac Hypertrophy Laboratory, Baker IDI Heart & Diabetes Institute, Melbourne, Australia.

Insights

Pathological cardiac hypertrophy, linked to heart failure, involves fibrosis and dysfunction. Physiological hypertrophy, like the athlete's heart, is adaptive and reversible, offering potential therapeutic insights.

Area of Science:

  • Cardiovascular Medicine
  • Molecular Biology
  • Physiology

Background:

  • Cardiac hypertrophy, an increase in heart mass, presents as pathological (disease-related) or physiological (exercise-induced).
  • Pathological cardiac hypertrophy is a major risk factor for heart failure, characterized by fibrosis, cell death, and impaired function.
  • Physiological cardiac hypertrophy, exemplified by the 'athlete's heart,' is adaptive, reversible, and maintains normal cardiac function.

Purpose of the Study:

  • To review experimental findings on pathological and physiological cardiac hypertrophy.
  • To focus on signaling pathways and molecular mechanisms driving different types of cardiac hypertrophy.
  • To explore potential therapeutic strategies for heart failure based on understanding cardiac hypertrophy.

Main Methods:

  • Review of experimental findings on pathological and physiological cardiac hypertrophy.
  • Analysis of signaling pathways involved in cardiac hypertrophy.
  • Discussion of molecular mechanisms including protein synthesis, metabolism, fibrosis, and cell death.
  • Summary of gene, microRNA, and protein profiling studies.
  • Consideration of gender and sex hormone influences.

Main Results:

  • Clear functional, structural, metabolic, and molecular differences exist between pathological and physiological hypertrophy.
  • Signaling pathways play a causal role in the development of both types of hypertrophy.
  • Profiling studies reveal differentially expressed genes, microRNAs, and proteins in hypertrophy models.

Conclusions:

  • Understanding the molecular mechanisms of physiological hypertrophy may offer therapeutic benefits for pathological cardiac hypertrophy and heart failure.
  • Investigating signaling pathways and molecular differences is crucial for developing new treatments.
  • Gender and sex hormones also influence cardiac hypertrophy, a factor to consider in therapeutic strategies.

Related Concept Videos

Cellular Adaptation II: Hypertrophy01:26

Cellular Adaptation II: Hypertrophy

Hypertrophy is the increase in the size of individual cells, resulting in the enlargement of a tissue or organ. Unlike hyperplasia, which involves an increase in cell number, hypertrophy is characterized by an increase in cell volume. This process often occurs in response to higher functional demand or hormonal stimulation, leading to the production of more structural proteins and organelles, thereby enhancing the cells' work capacity.There are two primary types of hypertrophy: physiological...
Cardiomyopathy III: Hypertrophic Cardiomyopathy01:29

Cardiomyopathy III: Hypertrophic Cardiomyopathy

Hypertrophic cardiomyopathy, or HCM, is an autosomal dominant genetic disorder characterized by asymmetric left ventricular hypertrophy without ventricular dilation. It is more common in men and is typically diagnosed in young, athletic adults.EtiologyHCM is primarily genetic and is caused by mutations in genes encoding sarcomeric proteins. Researchers have identified over 1400 mutations across at least 11 different genes. Among these, the most frequently occurring mutations are found in the...
Heart Failure II: Pathophysiology01:29

Heart Failure II: Pathophysiology

Systolic Heart Failure and Compensatory MechanismsSystolic heart failure (also termed HFrEF, Heart Failure with Reduced Ejection Fraction) is the most prevalent type of heart filure. It results in a decreased volume of blood being pumped from the ventricle. The aortic arch and carotid sinuses have baroreceptors that detect reduced blood pressure, triggering the sympathetic nervous system (SNS) to release epinephrine and norepinephrine. Initially, this response aims to boost heart rate and...
Cardiomyopathy V: Interprofessional Care01:29

Cardiomyopathy V: Interprofessional Care

Managing cardiomyopathy involves addressing underlying or precipitating causes, treating heart failure with medications, and implementing dietary changes and a balanced exercise and rest regimen.Lifestyle ModificationsCardiomyopathy patients should adopt a low-sodium diet to reduce fluid retention and manage heart failure. A personalized exercise and rest plan helps maintain physical fitness without overstraining the heart. Avoiding alcohol and tobacco is essential to prevent further damage to...
Pathophysiology of Cardiac Performance01:29

Pathophysiology of Cardiac Performance

Typical heart performance is influenced by heart rate, rhythm, myocardial contraction, and metabolism or blood flow. The cardiac muscle exhibits distinct electrophysiological features, including pacemaker activity and calcium channel control, which play a vital role in the heart's response to various drugs. The autonomic nervous system, comprising the sympathetic and parasympathetic branches, regulates heart rate. Sympathetic activation increases heart rate, while parasympathetic activation...
Pathophysiology of Heart Failure01:17

Pathophysiology of Heart Failure

Heart failure (HF) is a progressive syndrome involving ventricles that leads to inadequate cardiac output. It can be classified based on location and output or ejection fraction. Ejection fraction (EF) is an essential measurement in the diagnosis and surveillance of HF. Reduced EF corresponds to systolic heart failure (HFrEF). However, HF with preserved ejection fraction (HFpEF) is becoming increasingly prevalent. Also known as diastolic HF, this form of HF is related to aging. The...