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June 24, 2026Frontiers in Immunology1 citationsOpen Access

Biomolecular mechanisms of cardiac amyloidosis and its cardiovascular pathological basis

LZLi ZhangYJYating JiaoJGJia Guo

Key Result

Cardiac amyloidosis progression reflects the convergence of precursor instability, soluble proteotoxic intermediates, proteostasis failure, immune-inflammatory activation, and extracellular remodeling.

Key Points

  • This review aims to compare the biomolecular mechanisms causing cardiac injury in ATTR and AL amyloidosis.
  • Literature review on cardiac amyloidosis mechanisms
  • Comparison of ATTR and AL pathways
  • Discussion of therapeutic approaches for different amyloidosis subtypes.
  • Identified key mechanisms include misfolding, toxicity, and metabolic stress in cardiac amyloidosis.
  • Noted differences in dominant pathways between ATTR and AL forms.
  • Emphasized the need for tailored therapeutic strategies to address disease heterogeneity.

Structured PICO

P
Population
Patients with cardiac amyloidosis (ATTR and AL)

Understanding the distinct biomolecular mechanisms of ATTR and AL cardiac amyloidosis may improve early diagnosis, risk stratification, and targeted therapy development.

Limitations

  • Precise in vivo role of soluble oligomeric intermediates remains insufficiently resolved
  • Degree to which immune-inflammatory mechanisms actively drive disease progression is unclear
  • Key nodes of proteostasis failure in stressed myocardium are not fully defined
  • Relative reversibility of remodeling after upstream disease control is unknown

Abstract

Cardiac amyloidosis (CA) is a progressive infiltrative cardiomyopathy most commonly caused by transthyretin (ATTR) or immunoglobulin light chain (AL) amyloid deposition in the myocardium, microvasculature, and conduction system, although rarer forms, including apolipoprotein A-I amyloidosis (AApoA-I) and serum amyloid A amyloidosis (AA), may also involve the heart. Although traditionally viewed as a disorder driven mainly by extracellular fibril accumulation, growing evidence indicates that myocardial injury in CA also reflects the effects of soluble toxic intermediates, proteostasis failure, immune-inflammatory activation, and secondary structural remodeling. In this review, we compare the major biomolecular mechanisms underlying cardiac injury in ATTR and AL, beginning with precursor destabilization, misfolding, and oligomer formation, and extending to direct cardiomyocyte toxicity, mitochondrial and metabolic stress, calcium dyshomeostasis, fibroinflammatory remodeling, extracellular matrix reorganization, microvascular dysfunction, and autonomic and electrophysiological abnormalities. We further emphasize that ATTR and AL, while sharing several downstream pathological consequences, differ in their dominant upstream drivers and in the relative contribution of deposition-dependent versus soluble toxicity-mediated injury. This integrated mechanistic framework helps explain disease heterogeneity, persistent dysfunction despite amyloid reduction, and the need for subtype-specific therapeutic strategies. A more precise understanding of these interconnected pathways may improve early diagnosis, risk stratification, and the development of therapies targeting both the initiating protein abnormality and the downstream mechanisms responsible for ongoing myocardial dysfunction.

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Cite This Study

Zhang et al. (2026) conducted a review in Cardiac amyloidosis. Cardiac amyloidosis progression reflects the convergence of precursor instability, soluble proteotoxic intermediates, proteostasis failure, immune-inflammatory activation, and extracellular remodeling.

synapsesocial.com/papers/6a3c2384d15afadd906fa47ahttps://doi.org/10.3389/fimmu.2026.1832739
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