Related Experiment Video
Updated: Mar 26, 2026

Analysis of Cardiomyocyte Development using Immunofluorescence in Embryonic Mouse Heart
Published on: March 26, 2015
Calreticulin secures calcium-dependent nuclear pore competency required for cardiogenesis
Randolph S Faustino1, Atta Behfar1, Jody Groenendyk2
1Center for Regenerative Medicine, Division of Cardiovascular Diseases, Mayo Clinic, Rochester, MN, USA.
Abstract:
Calreticulin deficiency causes myocardial developmental defects that culminate in an embryonic lethal phenotype. Recent studies have linked loss of this calcium binding chaperone to failure in myofibrillogenesis through an as yet undefined mechanism. The purpose of the present study was to identify cellular processes corrupted by calreticulin deficiency that precipitate dysregulation of cardiac myofibrillogenesis related to acquisition of cardiac phenotype. In an embryonic stem cell knockout model, calreticulin deficit (crt(-/-)) compromised nucleocytoplasmic transport of nuclear localization signal-dependent and independent pathways, disrupting nuclear import of the cardiac transcription factor MEF2C. The expression of nucleoporins and associated nuclear transport proteins in derived crt(-/-) cardiomyocytes revealed an abnormal nuclear pore complex (NPC) configuration. Altered protein content in crt(-/-) cells resulted in remodeled NPC architecture that caused decreased pore diameter and diminished probability of central channel occupancy versus wild type counterparts. Ionophore treatment of impaired calcium handling in crt(-/-) cells corrected nuclear pore microarchitecture and rescued nuclear import resulting in normalized myofibrillogenesis. Thus, calreticulin deficiency alters nuclear pore function and structure, impeding myofibrillogenesis in nascent cardiomyocytes through a calcium dependent mechanism. This essential role of calreticulin in nucleocytoplasmic communication competency ties its regulatory action with proficiency of cardiac myofibrillogenesis essential for proper cardiac development.
Insights
Calreticulin deficiency impairs cardiac development by disrupting nucleocytoplasmic transport and nuclear pore complex function. Restoring calcium handling rescues myofibrillogenesis, highlighting calreticulin's role in cardiac cell communication.
Area of Science:
- Cardiovascular Biology
- Cellular Biology
- Developmental Biology
Background:
- Calreticulin deficiency leads to embryonic lethal myocardial defects.
- Loss of calreticulin is linked to myofibrillogenesis failure via an unknown mechanism.
- Understanding calreticulin's role in cardiac development is crucial.
Purpose of the Study:
- To identify cellular processes disrupted by calreticulin deficiency.
- To elucidate the mechanism linking calreticulin deficit to cardiac myofibrillogenesis dysregulation.
- To investigate calreticulin's role in the acquisition of cardiac phenotype.
Main Methods:
- Utilized an embryonic stem cell knockout model for calreticulin deficit (crt(-/-)).
- Analyzed nucleocytoplasmic transport pathways and nuclear import of MEF2C.
- Examined nucleoporin and nuclear transport protein expression in crt(-/-) cardiomyocytes.
- Investigated the effect of ionophore treatment on nuclear pore structure and function.
Main Results:
- Calreticulin deficit compromised nucleocytoplasmic transport, disrupting MEF2C nuclear import.
- crt(-/-) cardiomyocytes exhibited abnormal nuclear pore complex (NPC) configuration with reduced pore diameter.
- Ionophore treatment corrected NPC microarchitecture, rescued nuclear import, and normalized myofibrillogenesis.
Conclusions:
- Calreticulin deficiency alters nuclear pore function and structure, impeding cardiac myofibrillogenesis.
- This disruption occurs through a calcium-dependent mechanism.
- Calreticulin is essential for nucleocytoplasmic communication, vital for proper cardiac development.
More Related Videos
Related Concept Videos
Regulation of Nuclear Protein Sorting
Nuclear Protein Sorting
Proteins targeted to the nucleus carry nuclear localization signals or NLS recognized by import receptors in the cytosol. Similarly, proteins with nuclear export signals are recognized by export receptors. Import and export receptors are...
Insertion of Single-pass Transmembrane Proteins in the RER
Integral transmembrane proteins possess transmembrane and extra membrane domains. The transmembrane domains are primarily made of 20-25 hydrophobic amino acids arranged in a helical secondary confirmation. These...
Protein Folding Quality Check in the RER
Insertion of Multi-pass Transmembrane Proteins in the RER
The multipass transmembrane proteins are the type IV integral membrane proteins with multiple topogenic sequences determining their spatial arrangement in the ER membrane. Nearly all multipass proteins lack a cleavable signal sequence and use...
ER Retrieval Pathway
The ER uses many checkpoints to prevent the entry of incorrectly folded or a resident protein as cargo onto a transport vesicle. These mechanisms...

