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.

Scientific Reports
|May 29, 2019
PubMed

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.

Related Concept Videos

Endoplasmic Reticulum01:39

Endoplasmic Reticulum

The Endoplasmic Reticulum (ER) in eukaryotic cells is a substantial network of interconnected membranes with diverse functions, from calcium storage to biomolecule synthesis. A primary component of the endomembrane system, the ER manufactures phospholipids critical for membrane function throughout the cell. Additionally, the two distinct regions of the ER specialize in the manufacture of specific lipids and proteins.
107.1K
The Endoplasmic Reticulum01:43

The Endoplasmic Reticulum

The endoplasmic reticulum or ER makes up for more than half of the membranes in a cell and accounts for 10% of total cell volume. It is also the primary protein and lipid synthesis factory for most cell organelles, such as the Golgi apparatus, lysosomes, secretory vesicles, and the plasma membrane. Despite being the most extensive and functionally complex subcellular organelle, ER was the last to be discovered. After years of deliberation, Keith Porter and George Palade in the year 1954,...
21.2K
Smooth Endoplasmic Reticulum01:21

Smooth Endoplasmic Reticulum

Smooth endoplasmic reticulum or smooth ER is a sub-organelle with specialized functions in animal cells and plant cells. It is often associated with the tubule morphology of the endoplasmic reticulum.
The ER provides optimal conditions for synthesizing steroid hormones and lipids, such as phospholipids and triglycerides. Traditionally, lipid metabolism was considered to be a smooth ER function. However, there is no direct evidence to prove that rough ER is completely excluded from lipid...
7.8K
Directing Proteins to the Rough Endoplasmic Reticulum01:34

Directing Proteins to the Rough Endoplasmic Reticulum

The organelle-specific signaling sequences direct proteins synthesized in the cytosol to their final destination like ER, mitochondria, peroxisomes, etc. Some of the proteins directed to ER are then trafficked via vesicles to other organelles within the cell or the extracellular environment through the Golgi complex. For example, the rough ER synthesizes soluble proteins for transportation to the lysosomes or secretion out of the cell. It can also synthesize transmembrane proteins that can...
17.2K
Vapor Pressure02:34

Vapor Pressure

When a liquid vaporizes in a closed container, gas molecules cannot escape. As these gas phase molecules move randomly about, they will occasionally collide with the surface of the condensed phase, and in some cases, these collisions will result in the molecules re-entering the condensed phase. The change from the gas phase to the liquid is called condensation. When the rate of condensation becomes equal to the rate of vaporization, neither the amount of the liquid nor the amount of the vapor...
40.1K
Definition and Measurement of Pressure: Atmospheric Pressure, Barometer, and Manometer02:57

Definition and Measurement of Pressure: Atmospheric Pressure, Barometer, and Manometer

Gas pressure is caused by force exerted by gas molecules colliding with the surfaces of objects. Although the force of each collision is very small, any surface of an appreciable area experiences a large number of collisions in a short time, which can result in high pressure.
42.7K