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Published on: August 8, 2022
Metabolic perturbations in cardiomyopathies: implications for early diagnosis and targeted interventions
Rula Al-Shahrabi1, Ghadeera Al Mansoori2,3, Muna Al-Saffar3,4
1Sharjah Institute for Medical and Health Sciences, University of Sharjah, Sharjah, United Arab Emirates.
Insights
Cardiomyopathy (CM) involves complex metabolic shifts. Reviewing metabolomic studies reveals subtype-specific disruptions in amino acid and energy metabolism, offering insights into disease mechanisms and potential clinical applications.
Area of Science:
- Biochemistry
- Cardiology
- Genomics
Background:
- Cardiomyopathy (CM) encompasses diverse heart muscle diseases with unknown causes, often stemming from metabolic disturbances.
- Metabolic alterations in energy production and substrate use impair heart function and stress response.
- Understanding these metabolic shifts is crucial for diagnosing and treating various CM subtypes.
Purpose of the Study:
- To review metabolomic studies using high-throughput platforms.
- To understand metabolic pathway shifts across different cardiomyopathy subtypes.
- To explore the clinical translational relevance of these metabolic perturbations.
Main Methods:
- Systematic review of metabolomic studies in cardiomyopathy.
- Analysis of high-throughput metabolomic data.
- Comparison of metabolic profiles across CM subtypes.
Main Results:
- Recurring disruptions include altered amino acid metabolism, mitochondrial redox imbalance, and oxidative stress.
- Specific CM subtypes exhibit distinct metabolic profiles: hypertrophic CM (nucleotide remodeling), dilated CM (Krebs cycle intermediates), restrictive CM (amino acid stress), tachycardia-induced CM (fatty acid remodeling), and Takotsubo CM (ketone utilization).
- Metabolomic profiles are subtype-specific, not universal for all cardiomyopathies.
Conclusions:
- A single metabolomic profile cannot encompass all cardiomyopathies.
- Subtype-specific metabolic shifts offer significant insights into disease mechanisms.
- Metabolomics holds diagnostic, prognostic, and therapeutic relevance for cardiomyopathies, enhancing clinical translation.
Abstract:
Cardiomyopathy (CM) is a heterogeneous group of diseases characterized by structural and functional changes in the heart, with the exact cause often remaining unknown. CM can arise from both inherited and acquired metabolic disturbances. Alterations in energy production and substrate utilization impair the heart's contractile function and limit its ability to respond to stress. Given the complexity and dynamic nature of CM, as well as the multiple etiologies involved, we reviewed metabolomic studies employing high-throughput platforms to understand how metabolic pathways shift across CM subtypes and how these perturbations may inform clinical translation. Several recurring disruptions emerge across CM with alterations in amino acid metabolism (valine, leucine, methionine, tryptophan, tyrosine); mitochondrial redox imbalance (NAD/NADH shifts, niacinamide, acylcarnitines); and oxidative stress as central hallmarks. Each subtype, however, displays a different emphasis. For instance, hypertrophic CM is characterized by nucleotide remodeling, particularly in cases involving MYBPC3 mutations; dilated CM shows accumulation of Krebs cycle intermediates and trimethylamine-N-oxide; restrictive CM is associated with amino acid stress related to amyloidosis; tachycardia-induced CM involves fatty acid remodeling and elevated uric acid, while Takotsubo CM is linked to ketone utilization and glutamate excitotoxicity. Overall, a single metabolomic profile cannot capture CM. What emerges from this review is that subtype-specific shifts, and the way they interact, provide meaningful insight into disease mechanisms and highlight pathways with diagnostic, prognostic, and therapeutic relevance. This broader perspective shifts the focus beyond narrow comparisons, making the translational relevance of metabolomics in CM more apparent.
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