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Updated: Jan 24, 2026

Ascending Aortic Constriction in Rats for Creation of Pressure Overload Cardiac Hypertrophy Model
Published on: June 29, 2014
Nanoscale reorganization of sarcoplasmic reticulum in pressure-overload cardiac hypertrophy visualized by dSTORM
Sina Hadipour-Lakmehsari1,2, Amine Driouchi3,4,5, Shin-Haw Lee1,2
1Translational Biology and Engineering Program, Ted Rogers Centre for Heart Research, Toronto, Ontario, M5G 1M1, Canada.
Insights
Pathological cardiac hypertrophy alters the nanoscale organization of key calcium regulators like DHPR, RyR2, SERCA2A, and PLN in cardiomyocytes, impacting heart function.
Area of Science:
- Cardiovascular Biology
- Cellular Physiology
- Biophysics
Background:
- Pathological cardiac hypertrophy involves myocardial thickening and impaired calcium (Ca2+) signaling in cardiomyocytes.
- The nanoscale organization and expression patterns of Ca2+ handling proteins (DHPR, RyR2, PLN, SERCA2A) during hypertrophy are poorly understood.
Purpose of the Study:
- To investigate nanoscale changes in the localization and expression of critical Ca2+ handling proteins during pathological cardiac hypertrophy.
- To understand how these molecular adaptations contribute to cardiac dysfunction.
Main Methods:
- Cardiac pathological hypertrophy was induced in mice using transverse aortic constriction (TAC).
- dSTORM super-resolution microscopy was employed to visualize protein clusters at the nanoscale.
- Quantitative analyses included Voronoi tessellation and 2D Fast Fourier Transform (2D-FFT).
Main Results:
- Pressure overload decreased the density of dihydropyridine receptor (DHPR) and ryanodine receptor 2 (RyR2) clusters.
- Sarco/endoplasmic reticulum Ca2+-ATPase 2A (SERCA2A) cluster density increased, while phospholamban (PLN) showed dynamic changes.
- 2D-FFT analysis indicated DHPR and RyR2 dispersed, whereas SERCA2A and PLN formed denser clusters.
Conclusions:
- Cardiac hypertrophy induces significant nanoscale remodeling of critical Ca2+ handling proteins within cardiomyocytes.
- These molecular and structural alterations provide insights into the pathogenesis of pressure overload-induced cardiomyopathy.
- Understanding these changes is crucial for developing targeted therapies for heart failure.
Abstract:
Pathological cardiac hypertrophy is a debilitating condition characterized by deleterious thickening of the myocardium, dysregulated Ca2+ signaling within cardiomyocytes, and contractile dysfunction. Importantly, the nanoscale organization, localization, and patterns of expression of critical Ca2+ handling regulators including dihydropyridine receptor (DHPR), ryanodine receptor 2 (RyR2), phospholamban (PLN), and sarco/endoplasmic reticulum Ca2+-ATPase 2A (SERCA2A) remain poorly understood, especially during pathological hypertrophy disease progression. In the current study, we induced cardiac pathological hypertrophy via transverse aortic constriction (TAC) on 8-week-old CD1 mice, followed by isolation of cardiac ventricular myocytes. dSTORM super-resolution imaging was then used to visualize proteins at nanoscale resolution at two time points and we quantified changes in protein cluster properties using Voronoi tessellation and 2D Fast Fourier Transform analyses. We showed a decrease in the density of DHPR and RyR2 clusters with pressure-overload cardiac hypertrophy and an increase in the density of SERCA2A protein clusters. PLN protein clusters decreased in density in 2-week TAC but returned to sham levels by 4-week TAC. Furthermore, 2D-FFT analysis revealed changes in molecular organization during pathological hypertrophy, with DHPR and RyR2 becoming dispersed while both SERCA2A and PLN sequestered into dense clusters. Our work reveals molecular adaptations that occur in critical SR proteins at a single molecule during pressure overload-induced cardiomyopathy. Nanoscale alterations in protein localization and patterns of expression of crucial SR proteins within the cardiomyocyte provided insights into the pathogenesis of cardiac hypertrophy, and specific evidence that cardiomyocytes undergo significant structural remodeling during the progression of pathological hypertrophy.
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