The p.H222P lamin A/C mutation induces heart failure via impaired mitochondrial calcium uptake in human cardiac laminopathy
Seguret, M.; Jouve, C.; Ruiz-velasco, A.; Deshayes, L.; Guesmia, Z.; Pereira, C.; Wahbi, K.; Fauconnier, J.; Bonne, G.; Muchir, A.; Hulot, J.-S.
Show abstract
BackgroundMutations in the LMNA gene, which encodes lamin A/C, cause a variety of diseases known as laminopathies. Some mutations are particularly associated with the occurrence of dilated cardiomyopathy and heart failure, but the genotype-phenotype relationship and underlying mechanisms are unclear. Here, we used induced pluripotent stem cells (hiPSCs) from a patient carrying a LMNA point mutation (c.665A>C, p.His222Pro) to investigate the mechanisms leading to contractile dysfunction. MethodsLMNA p.H222P mutant and a CRISPR/Cas9 corrected isogenic control hiPSCs clones were differentiated into cardiomyocytes (hiPSC-CMs). Immunofluorescence staining was performed on hiPSC-CMs to quantify their sarcomere organization (SarcOrgScore) using a Matlab code. Ring-shaped cardiac 3D organoids were generated to compare the contractile properties of the two clones. Calcium transients in mutant and corrected hiPSC-CMs were measured by live confocal imaging. Mitochondrial respiration parameters were measured by Seahorse. ResultshiPSC-CMs were generated from the LMNA mutant and the corrected hiPSCs with no difference in the differentiation yield (proportion of troponin-positive cells: 95.0% for LMNA p.H222P vs. 95.1% for Ctrl-iso1, p=0.726). hiPSC-CMs displayed well-formed sarcomeres and their organization was similar between the two cell lines. However, cardiac 3D organoids generated with LMNA p.H222P hiPSC-CMs showed an impaired contractility compared to control organoids. Calcium transient recordings in LMNA p.H222P mutant cardiomyocytes showed a significantly higher calcium transient amplitude with a significantly slower calcium re-uptake. Transcriptomic analyses suggested a global mitochondrial dysfunction and in particular an impaired mitochondrial calcium uptake with a significantly decreased expression of the mitochondrial calcium uniporter (MCU). This decrease in MCU expression was confirmed by western blot and was accompanied by an increased MICU1:MCU, as well as an increased PDH Ser232 and PDH Ser300 phosphorylation, indicating a decreased mitochondrial calcium uptake in the LMNA mutant hiPSC-CMs. Measurement of mitochondrial respiration showed lower basal and maximal respiration in LMNA p.H222P hiPSC-CMs. Consistently, the ATP levels were significantly lower in LMNA p.H222P hiPSC-CMs as compared to isogenic controls. ConclusionsLMNA p.H222P mutant hiPSC-CMs exhibit contractile dysfunction associated with mitochondrial dysfunction with impaired MCU complex activity, decreased mitochondrial calcium homeostasis and reduced mitochondrial energy production. NOVELTY AND SIGNIFICANCEO_ST_ABSWhat is known?C_ST_ABS- Mutations in LMNA, which encodes the nuclear lamins A/C, cause a variety of diseases (called laminopathies), which can involve the cardiac muscle leading to dilated cardiomyopathy and systolic heart failure. - The pathological mechanisms linking the nuclear envelope abnormalities induced by LMNA mutations to the development of a reduced cardiac muscle contractility are not well understood. What new information does this article contribute?- LMNA mutant cardiomyocytes have a profound mitochondrial dysfunction with impaired MCU complex activity, decreased mitochondrial calcium homeostasis, and reduced mitochondrial energy production. - Our study uncovers an unappreciated pathophysiological mechanism and opens new possibilities by suggesting MCU activators as a novel therapeutic for patients with LMNA cardiomyopathy.
Matching journals
The top 6 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Human iPSC-Based Model Reveals NOX4 as Therapeutic Target in Duchenne Cardiomyopathy 97%
- Isogenic sets of hiPSC-CMs harboring KCNH2 mutations capture location-related phenotypic differences 96%
- Modulation of the JAK2-STAT3 pathway promotes expansion and maturation of human iPSCs-derived myogenic progenitor cells 94%
Similar papers in this journal
- Device encapsulated MSCs for adaptive secretome therapy to effectively target ischaemic heart injury 94%
- Intracellular autofluorescence enables the isolation of viable, functional human muscle reserve cells with distinct Pax7 levels and stem cell states. 93%
- Engineering a Controlled Cardiac Multilineage Co-Differentiation Process Using Statistical Design of Experiments 91%
Similar papers in this journal
- Anabolic Factors and Myokines Improve Differentiation of Human Embryonic Stem Cell Derived Skeletal Muscle Cells 94%
- Impact of neurons on patient derived-cardiomyocytes using organ-on-a-chip and iPSC biotechnologies 93%
- Mechanosensitive Ion Channel Piezo1 Regulates Myocyte Fusion during Skeletal Myogenesis 92%
Similar papers in this journal
- Human Erbb2-induced Erk Activity Robustly Stimulates Cycling and Functional Remodeling of Rat and Human Cardiomyocytes 96%
- Crest maturation at the cardiomyocyte surface contributes to a new late postnatal development stage that controls the diastolic function of the adult heart 95%
- Human induced pluripotent stem cell-derived cardiomyocytes to study inflammation-induced diastolic dysfunction 95%
Similar papers in this journal
- Cardiomyocyte-fibroblast interaction regulates ferroptosis and fibrosis after myocardial injury 94%
- Disturbed mitochondrial maturation in cardiolipin remodeling-deficient cardiomyocytes 94%
- PGC-1α in the myofibers regulates the balance between myogenic and adipogenic progenitors affecting muscle regeneration 93%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.