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1.
Cell Biochem Funct ; 42(4): e4066, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38822669

ABSTRACT

Collagen crosslinking, mediated by lysyl oxidase, is an adaptive mechanism of the cardiac repair process initiated by cardiac fibroblasts postmyocardial injury. However, excessive crosslinking leads to cardiac wall stiffening, which impairs the contractile properties of the left ventricle and leads to heart failure. In this study, we investigated the role of periostin, a matricellular protein, in the regulation of lysyl oxidase in cardiac fibroblasts in response to angiotensin II and TGFß1. Our results indicated that periostin silencing abolished the angiotensin II and TGFß1-mediated upregulation of lysyl oxidase. Furthermore, the attenuation of periostin expression resulted in a notable reduction in the activity of lysyl oxidase. Downstream of periostin, ERK1/2 MAPK signaling was found to be activated, which in turn transcriptionally upregulates the serum response factor to facilitate the enhanced expression of lysyl oxidase. The periostin-lysyl oxidase association was also positively correlated in an in vivo rat model of myocardial infarction. The expression of periostin and lysyl oxidase was upregulated in the collagen-rich fibrotic scar tissue of the left ventricle. Remarkably, echocardiography data showed a reduction in the left ventricular wall movement, ejection fraction, and fractional shortening, indicative of enhanced stiffening of the cardiac wall. These findings shed light on the mechanistic role of periostin in the collagen crosslinking initiated by activated cardiac fibroblasts. Our findings signify periostin as a possible therapeutic target to reduce excessive collagen crosslinking that contributes to the structural remodeling associated with heart failure.


Subject(s)
Cell Adhesion Molecules , Fibroblasts , Protein-Lysine 6-Oxidase , Rats, Sprague-Dawley , Animals , Protein-Lysine 6-Oxidase/metabolism , Fibroblasts/metabolism , Rats , Cell Adhesion Molecules/metabolism , Male , MAP Kinase Signaling System , Myocardium/metabolism , Myocardium/cytology , Angiotensin II/pharmacology , Angiotensin II/metabolism , Mitogen-Activated Protein Kinase 3/metabolism , Transforming Growth Factor beta1/metabolism , Mitogen-Activated Protein Kinase 1/metabolism , Myocardial Infarction/metabolism , Myocardial Infarction/pathology , Cells, Cultured , Disease Models, Animal , Periostin
2.
Circ Res ; 134(12): 1791-1807, 2024 Jun 07.
Article in English | MEDLINE | ID: mdl-38843293

ABSTRACT

Cardiac macrophages represent a functionally diverse population of cells involved in cardiac homeostasis, repair, and remodeling. With recent advancements in single-cell technologies, it is possible to elucidate specific macrophage subsets based on transcriptional signatures and cell surface protein expression to gain a deep understanding of macrophage diversity in the heart. The use of fate-mapping technologies and parabiosis studies have provided insight into the ontogeny and dynamics of macrophages identifying subsets derived from embryonic and adult definitive hematopoietic progenitors that include tissue-resident and bone marrow monocyte-derived macrophages, respectively. Within the heart, these subsets have distinct tissue niches and functional roles in the setting of homeostasis and disease, with cardiac resident macrophages representing a protective cell population while bone marrow monocyte-derived cardiac macrophages have a context-dependent effect, triggering both proinflammatory tissue injury, but also promoting reparative functions. With the increased understanding of the clinical relevance of cardiac macrophage subsets, there has been an increasing need to detect and measure cardiac macrophage compositions in living animals and patients. New molecular tracers compatible with positron emission tomography/computerized tomography and positron emission tomography/ magnetic resonance imaging have enabled investigators to noninvasively and serially visualize cardiac macrophage subsets within the heart to define associations with disease and measure treatment responses. Today, advancements within this thriving field are poised to fuel an era of clinical translation.


Subject(s)
Macrophages , Myocardium , Animals , Macrophages/metabolism , Humans , Myocardium/metabolism , Myocardium/cytology
3.
Sci Rep ; 14(1): 10365, 2024 05 06.
Article in English | MEDLINE | ID: mdl-38710778

ABSTRACT

Cardiac fibroblasts (CFs) are essential for preserving myocardial integrity and function. They can detect variations in cardiac tissue stiffness using various cellular mechanosensors, including the Ca2+ permeable mechanosensitive channel Piezo1. Nevertheless, how CFs adapt the mechanosensitive response to stiffness changes remains unclear. In this work we adopted a multimodal approach, combining the local mechanical stimulation (from 10 pN to 350 nN) with variations of culture substrate stiffness. We found that primary rat CFs cultured on stiff (GPa) substrates showed a broad Piezo1 distribution in the cell with particular accumulation at the mitochondria membrane. CFs displayed a force-dependent behavior in both calcium uptake and channel activation probability, showing a threshold at 300 nN, which involves both cytosolic and mitochondrial Ca2+ mobilization. This trend decreases as the myofibroblast phenotype within the cell population increases, following a possible Piezo1 accumulation at focal adhesion sites. In contrast, the inhibition of fibroblasts to myofibroblasts transition with soft substrates (kPa) considerably reduces both mechanically- and chemically-induced Piezo1 activation and expression. Our findings shed light on how Piezo1 function and expression are regulated by the substrate stiffness and highlight its involvement in the environment-mediated modulation of CFs mechanosensitivity.


Subject(s)
Fibroblasts , Ion Channels , Mechanotransduction, Cellular , Membrane Proteins , Animals , Ion Channels/metabolism , Rats , Fibroblasts/metabolism , Fibroblasts/cytology , Cells, Cultured , Calcium/metabolism , Myofibroblasts/metabolism , Myofibroblasts/physiology , Myocardium/metabolism , Myocardium/cytology , Cellular Microenvironment
4.
Nat Commun ; 15(1): 4170, 2024 May 16.
Article in English | MEDLINE | ID: mdl-38755186

ABSTRACT

Endothelial cells are a heterogeneous population with various organ-specific and conserved functions that are critical to organ development, function, and regeneration. Here we report a Sox17-Erg direct reprogramming approach that uses cardiac fibroblasts to create differentiated endothelial cells that demonstrate endothelial-like molecular and physiological functions in vitro and in vivo. Injection of these induced endothelial cells into myocardial infarct sites after injury results in improved vascular perfusion of the scar region. Furthermore, we use genomic analyses to illustrate that Sox17-Erg reprogramming instructs cardiac fibroblasts toward an arterial-like identity. This results in a more efficient direct conversion of fibroblasts into endothelial-like cells when compared to traditional Etv2-based reprogramming. Overall, this Sox17-Erg direct reprogramming strategy offers a robust tool to generate endothelial cells both in vitro and in vivo, and has the potential to be used in repairing injured tissue.


Subject(s)
Cellular Reprogramming , Endothelial Cells , Fibroblasts , SOXF Transcription Factors , Animals , Fibroblasts/metabolism , Fibroblasts/cytology , SOXF Transcription Factors/metabolism , SOXF Transcription Factors/genetics , Endothelial Cells/metabolism , Endothelial Cells/cytology , Mice , Cellular Reprogramming/genetics , Myocardial Infarction/pathology , Cell Differentiation , Myocardium/cytology , Myocardium/metabolism , HMGB Proteins/metabolism , HMGB Proteins/genetics , Male , Mice, Inbred C57BL
5.
BMC Med Ethics ; 25(1): 61, 2024 May 21.
Article in English | MEDLINE | ID: mdl-38773517

ABSTRACT

Certain organoid subtypes are particularly sensitive. We explore whether moral intuitions about the heartbeat warrant unique moral consideration for newly advanced contracting cardiac organoids. Despite the heartbeat's moral significance in organ procurement and abortion discussions, we argue that this significance should not translate into moral implications for cardiac organoids.


Subject(s)
Morals , Organoids , Humans , Tissue and Organ Procurement/ethics , Heart/physiology , Myocardium/cytology
6.
J Mech Behav Biomed Mater ; 155: 106571, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38744118

ABSTRACT

Cardiac fibrosis refers to the abnormal accumulation of extracellular matrix within the cardiac muscle, leading to increased stiffness and impaired heart function. From a rheological standpoint, knowledge about myocardial behavior is still lacking, partially due to a lack of appropriate techniques to investigate the rheology of in vitro cardiac tissue models. 3D multicellular cardiac spheroids are powerful and versatile platforms for modeling healthy and fibrotic cardiac tissue in vitro and studying how their mechanical properties are modulated. In this study, cardiac spheroids were created by co-culturing neonatal rat ventricular cardiomyocytes and fibroblasts in definite ratios using the hanging-drop method. The rheological characterization of such models was performed by Atomic Force Microscopy-based stress-relaxation measurements on the whole spheroid. After strain application, a viscoelastic bi-exponential relaxation was observed, characterized by a fast relaxation time (τ1) followed by a slower one (τ2). In particular, spheroids with higher fibroblasts density showed reduction for both relaxation times comparing to control, with a more pronounced decrement of τ1 with respect to τ2. Such response was found compatible with the increased production of extracellular matrix within these spheroids, which recapitulates the main feature of the fibrosis pathophysiology. These results demonstrate how the rheological characteristics of cardiac tissue vary as a function of cellular composition and extracellular matrix, confirming the suitability of such system as an in vitro preclinical model of cardiac fibrosis.


Subject(s)
Fibrosis , Myocytes, Cardiac , Rheology , Spheroids, Cellular , Animals , Spheroids, Cellular/cytology , Spheroids, Cellular/pathology , Rats , Myocytes, Cardiac/cytology , Fibroblasts/cytology , Myocardium/cytology , Myocardium/pathology , Myocardium/metabolism , Rats, Wistar , Models, Biological
8.
Methods Mol Biol ; 2803: 3-12, 2024.
Article in English | MEDLINE | ID: mdl-38676881

ABSTRACT

The extracellular matrix (ECM) forms most of the tissue microenvironment and is in a constant and dynamic equilibrium with cells. The decellularization process employs physical or chemical methods, or a combination of them, to remove the cellular components of tissues and organs while preserving the architecture and composition of the ECM. Depending on the methodology used, the decellularized ECM (dECM) is then suitable for research or clinical applications. Here, we describe an optimized protocol for the efficient decellularization of the human myocardium to generate 3D scaffolds of well-preserved cardiac extracellular matrix that can be used for in vitro or in vivo studies.


Subject(s)
Decellularized Extracellular Matrix , Myocardium , Tissue Engineering , Tissue Scaffolds , Humans , Tissue Scaffolds/chemistry , Myocardium/cytology , Myocardium/metabolism , Tissue Engineering/methods , Decellularized Extracellular Matrix/chemistry , Extracellular Matrix/metabolism , Extracellular Matrix/chemistry , Cellular Microenvironment
9.
Methods Mol Biol ; 2803: 35-48, 2024.
Article in English | MEDLINE | ID: mdl-38676883

ABSTRACT

The lack of a precise noninvasive, clinical evaluation method for cardiac fibrosis hinders the development of successful treatments that can effectively work in physiological settings, where tissues and organs are interconnected and moderating drug responses. To address this challenge and advance personalized medicine, researchers have turned to human-induced pluripotent stem (iPS) cells, which can be differentiated to resemble the human heart in terms of structure, function and cellular composition. In this chapter, we present an assay protocol that uses these iPS cells to generate heart organoids for the in vitro evaluation of cardiac fibrosis. By establishing this biological platform, we pave the way for conducting phenotype evaluation and treatment screening in a multiscale approach, aiming to discover effective interventions for the treatment of cardiac fibrosis.


Subject(s)
Cell Differentiation , Fibrosis , Induced Pluripotent Stem Cells , Organoids , Humans , Induced Pluripotent Stem Cells/cytology , Organoids/pathology , Organoids/cytology , Myocardium/pathology , Myocardium/cytology , Cell Culture Techniques/methods , Myocytes, Cardiac/cytology , Myocytes, Cardiac/pathology , Cells, Cultured
10.
Methods Mol Biol ; 2803: 61-74, 2024.
Article in English | MEDLINE | ID: mdl-38676885

ABSTRACT

Testing drugs in vivo and in vitro have been essential elements for the discovery of new therapeutics. Due to the recent advances in in vitro cell culture models, such as human-induced pluripotent stem cell-derived cardiomyocytes and 3D multicell type organoid culture methods, the detection of adverse cardiac events prior to human clinical trials has improved. However, there are still numerous therapeutics whose adverse cardiac effects are not detected until human trials due to the inability of these cell cultures to fully model the complex multicellular organization of an intact human myocardium. Cardiac tissue slices are a possible alternative solution. Myocardial slices are a 300-micron thin snapshot of the myocardium, capturing a section of the adult heart in a 1 × 1 cm section. Using a culture method that incorporates essential nutrients and electrical stimulation, tissue slices can be maintained in culture for 6 days with full viability and functionality. With the addition of mechanical stimulation and humoral cues, tissue slices can be cultured for 12 days. Here we provide detailed methods for how to culture cardiac tissue slices under continuous mechanical stimulation in the cardiac tissue culture model (CTCM) device. The CTCM incorporates four essential factors for maintaining tissue slices in culture for 12 days: mechanical stimulation, electrical stimulation, nutrients, and humoral cues. The CTCM can also be used to model disease conditions, such as overstretch-induced cardiac hypertrophy. The versatility of the CTCM illustrates its potential to be a medium-throughput screening platform for personalized drug testing.


Subject(s)
Myocardium , Myocytes, Cardiac , Tissue Culture Techniques , Humans , Myocardium/cytology , Myocardium/metabolism , Myocytes, Cardiac/cytology , Myocytes, Cardiac/physiology , Tissue Culture Techniques/methods , Animals , Heart/physiology , Electric Stimulation , Stress, Mechanical
11.
Sci Rep ; 14(1): 9795, 2024 04 29.
Article in English | MEDLINE | ID: mdl-38684844

ABSTRACT

Cardiac fibrosis contributes to the development of heart failure, and is the response of cardiac fibroblasts (CFs) to pressure or volume overload. Limiting factors in CFs research are the poor availability of human cells and the tendency of CFs to transdifferentiate into myofibroblasts when cultured in vitro. The possibility to generate CFs from induced pluripotent stem cells (iPSC), providing a nearly unlimited cell source, opens new possibilities. However, the behaviour of iPSC-CFs under mechanical stimulation has not been studied yet. Our study aimed to assess the behaviour of iPSC-CFs under mechanical stretch and pro-fibrotic conditions. First, we confirm that iPSC-CFs are comparable to primary CFs at gene, protein and functional level. Furthermore, iPSC-derived CFs adopt a pro-fibrotic response to transforming growth factor beta (TGF-ß). In addition, mechanical stretch inhibits TGF-ß-induced fibroblast activation in iPSC-CFs. Thus, the responsiveness to cytokines and mechanical stimulation of iPSC-CFs demonstrates they possess key characteristics of primary CFs and may be useful for disease modelling.


Subject(s)
Fibroblasts , Induced Pluripotent Stem Cells , Transforming Growth Factor beta , Induced Pluripotent Stem Cells/cytology , Induced Pluripotent Stem Cells/metabolism , Humans , Fibroblasts/metabolism , Fibroblasts/cytology , Transforming Growth Factor beta/metabolism , Transforming Growth Factor beta/pharmacology , Stress, Mechanical , Cells, Cultured , Cell Differentiation , Myocardium/cytology , Myocardium/metabolism , Myofibroblasts/metabolism , Myofibroblasts/cytology , Fibrosis
12.
Stem Cells Transl Med ; 13(5): 425-435, 2024 May 14.
Article in English | MEDLINE | ID: mdl-38502194

ABSTRACT

The ultimate goal of cardiac tissue engineering is to generate new muscle to repair or replace the damaged heart. This requires advances in stem cell technologies to differentiate billions of cardiomyocytes, together with advanced biofabrication approaches such as 3D bioprinting to achieve the requisite structure and contractile function. In this concise review, we cover recent progress in 3D bioprinting of cardiac tissue using pluripotent stem cell-derived cardiomyocytes, key design criteria for engineering aligned cardiac tissues, and ongoing challenges in the field that must be addressed to realize this goal.


Subject(s)
Bioprinting , Myocytes, Cardiac , Printing, Three-Dimensional , Tissue Engineering , Myocytes, Cardiac/cytology , Myocytes, Cardiac/metabolism , Humans , Tissue Engineering/methods , Bioprinting/methods , Animals , Cell Differentiation , Pluripotent Stem Cells/cytology , Tissue Scaffolds/chemistry , Myocardium/cytology , Myocardium/metabolism
13.
Nature ; 627(8005): 854-864, 2024 Mar.
Article in English | MEDLINE | ID: mdl-38480880

ABSTRACT

The heart, which is the first organ to develop, is highly dependent on its form to function1,2. However, how diverse cardiac cell types spatially coordinate to create the complex morphological structures that are crucial for heart function remains unclear. Here we integrated single-cell RNA-sequencing with high-resolution multiplexed error-robust fluorescence in situ hybridization to resolve the identity of the cardiac cell types that develop the human heart. This approach also provided a spatial mapping of individual cells that enables illumination of their organization into cellular communities that form distinct cardiac structures. We discovered that many of these cardiac cell types further specified into subpopulations exclusive to specific communities, which support their specialization according to the cellular ecosystem and anatomical region. In particular, ventricular cardiomyocyte subpopulations displayed an unexpected complex laminar organization across the ventricular wall and formed, with other cell subpopulations, several cellular communities. Interrogating cell-cell interactions within these communities using in vivo conditional genetic mouse models and in vitro human pluripotent stem cell systems revealed multicellular signalling pathways that orchestrate the spatial organization of cardiac cell subpopulations during ventricular wall morphogenesis. These detailed findings into the cellular social interactions and specialization of cardiac cell types constructing and remodelling the human heart offer new insights into structural heart diseases and the engineering of complex multicellular tissues for human heart repair.


Subject(s)
Body Patterning , Heart , Myocardium , Animals , Humans , Mice , Heart/anatomy & histology , Heart/embryology , Heart Diseases/metabolism , Heart Diseases/pathology , Heart Ventricles/anatomy & histology , Heart Ventricles/cytology , Heart Ventricles/embryology , In Situ Hybridization, Fluorescence , Models, Animal , Myocardium/cytology , Myocytes, Cardiac/cytology , Myocytes, Cardiac/metabolism , Single-Cell Gene Expression Analysis
14.
Cell Prolif ; 57(5): e13593, 2024 May.
Article in English | MEDLINE | ID: mdl-38185757

ABSTRACT

Ischemic heart disease, especially myocardial infarction (MI), is one of the leading causes of death worldwide, and desperately needs effective treatments, such as cell therapy. Cardiopulmonary progenitors (CPPs) are stem cells for both heart and lung, but their repairing role in damaged heart is still unknown. Here, we obtained CPPs from E9.5 mouse embryos, maintained their stemness while expanding, and identified their characteristics by scRNA-seq, flow cytometry, quantitative reverse transcription-polymerase chain reaction, and differentiation assays. Moreover, we employed mouse MI model to investigate whether CPPs could repair the injured heart. Our data identified that CPPs exhibit hybrid fibroblastic, endothelial, and mesenchymal state, and they could differentiate into cell lineages within the cardiopulmonary system. Moreover, intramyocardial injection of CPPs improves cardiac function through CPPs exosomes (CPPs-Exo) by promotion of cardiomyocytic proliferation and vascularization. To uncover the underlying mechanism, we used miRNA-seq, bulk RNA-seq, and bioinformatic approaches, and found the highly expressed miR-27b-3p in CPPs-Exo and its target gene Sik1, which can influence the transcriptional activity of CREB1. Therefore, we postulate that CPPs facilitate cardiac repair partially through the SIK1-CREB1 axis via exosomal miR-27b-3p. Our study offers a novel insight into the role of CPPs-Exo in heart repair and highlights the potential of CPPs-Exo as a promising therapeutic strategy for MI.


Subject(s)
Cyclic AMP Response Element-Binding Protein , Exosomes , MicroRNAs , Animals , MicroRNAs/genetics , MicroRNAs/metabolism , Exosomes/metabolism , Mice , Cyclic AMP Response Element-Binding Protein/metabolism , Cyclic AMP Response Element-Binding Protein/genetics , Protein Serine-Threonine Kinases/metabolism , Protein Serine-Threonine Kinases/genetics , Myocardial Infarction/metabolism , Myocardial Infarction/genetics , Myocardial Infarction/therapy , Stem Cells/metabolism , Stem Cells/cytology , Cell Proliferation , Cell Differentiation , Lung/metabolism , Mice, Inbred C57BL , Myocardium/metabolism , Myocardium/cytology
15.
Int J Mol Sci ; 24(21)2023 Oct 25.
Article in English | MEDLINE | ID: mdl-37958542

ABSTRACT

One of the largest challenges to the implementation of cardiac cell therapy is identifying selective reparative targets to enhance stem/progenitor cell therapeutic efficacy. In this work, we hypothesized that such a target could be an urokinase-type plasminogen activator receptor (uPAR)-a glycosyl-phosphatidyl-inositol-anchored membrane protein, interacting with urokinase. uPAR is able to form complexes with various transmembrane proteins such as integrins, activating intracellular signaling pathway and thus regulating multiple cell functions. We focused on studying the CD117+ population of cardiac mesenchymal progenitor cells (MPCs), expressing uPAR on their surface. It was found that the number of CD117+ MPCs in the heart of the uPAR-/- mice is lower, as well as their ability to proliferate in vitro compared with cells from wild-type animals. Knockdown of uPAR in CD117+ MPCs of wild-type animals was accompanied by a decrease in survival rate and Akt signaling pathway activity and by an increase in the level of caspase activity in these cells. That suggests the role of uPAR in supporting cell survival. After intramyocardial transplantation of uPAR(-) MPCs, reduced cell retention and angiogenesis stimulation were observed in mice with myocardial infarction model compared to uPAR(+) cells transplantation. Taken together, the present results appear to prove a novel mechanism of uPAR action in maintaining the survival and angiogenic properties of CD117+ MPCs. These results emphasize the importance of the uPAR as a potential pharmacological target for the regulation of reparative properties of myocardial mesenchymal progenitor cells.


Subject(s)
Mesenchymal Stem Cells , Myocardium , Receptors, Urokinase Plasminogen Activator , Animals , Mice , Integrins , Mesenchymal Stem Cells/metabolism , Receptors, Urokinase Plasminogen Activator/genetics , Receptors, Urokinase Plasminogen Activator/metabolism , Signal Transduction , Urokinase-Type Plasminogen Activator/genetics , Urokinase-Type Plasminogen Activator/metabolism , Myocardium/cytology
16.
Nature ; 623(7988): 863-871, 2023 Nov.
Article in English | MEDLINE | ID: mdl-37914933

ABSTRACT

The thick filament is a key component of sarcomeres, the basic units of striated muscle1. Alterations in thick filament proteins are associated with familial hypertrophic cardiomyopathy and other heart and muscle diseases2. Despite the central importance of the thick filament, its molecular organization remains unclear. Here we present the molecular architecture of native cardiac sarcomeres in the relaxed state, determined by cryo-electron tomography. Our reconstruction of the thick filament reveals the three-dimensional organization of myosin, titin and myosin-binding protein C (MyBP-C). The arrangement of myosin molecules is dependent on their position along the filament, suggesting specialized capacities in terms of strain susceptibility and force generation. Three pairs of titin-α and titin-ß chains run axially along the filament, intertwining with myosin tails and probably orchestrating the length-dependent activation of the sarcomere. Notably, whereas the three titin-α chains run along the entire length of the thick filament, titin-ß chains do not. The structure also demonstrates that MyBP-C bridges thin and thick filaments, with its carboxy-terminal region binding to the myosin tails and directly stabilizing the OFF state of the myosin heads in an unforeseen manner. These results provide a foundation for future research investigating muscle disorders involving sarcomeric components.


Subject(s)
Cardiac Myosins , Myocardium , Sarcomeres , Connectin/chemistry , Connectin/metabolism , Connectin/ultrastructure , Cryoelectron Microscopy , Electron Microscope Tomography , Myocardium/chemistry , Myocardium/cytology , Myocardium/ultrastructure , Sarcomeres/chemistry , Sarcomeres/metabolism , Sarcomeres/ultrastructure , Cardiac Myosins/chemistry , Cardiac Myosins/metabolism , Cardiac Myosins/ultrastructure
17.
Nature ; 619(7971): 801-810, 2023 Jul.
Article in English | MEDLINE | ID: mdl-37438528

ABSTRACT

The function of a cell is defined by its intrinsic characteristics and its niche: the tissue microenvironment in which it dwells. Here we combine single-cell and spatial transcriptomics data to discover cellular niches within eight regions of the human heart. We map cells to microanatomical locations and integrate knowledge-based and unsupervised structural annotations. We also profile the cells of the human cardiac conduction system1. The results revealed their distinctive repertoire of ion channels, G-protein-coupled receptors (GPCRs) and regulatory networks, and implicated FOXP2 in the pacemaker phenotype. We show that the sinoatrial node is compartmentalized, with a core of pacemaker cells, fibroblasts and glial cells supporting glutamatergic signalling. Using a custom CellPhoneDB.org module, we identify trans-synaptic pacemaker cell interactions with glia. We introduce a druggable target prediction tool, drug2cell, which leverages single-cell profiles and drug-target interactions to provide mechanistic insights into the chronotropic effects of drugs, including GLP-1 analogues. In the epicardium, we show enrichment of both IgG+ and IgA+ plasma cells forming immune niches that may contribute to infection defence. Overall, we provide new clarity to cardiac electro-anatomy and immunology, and our suite of computational approaches can be applied to other tissues and organs.


Subject(s)
Cellular Microenvironment , Heart , Multiomics , Myocardium , Humans , Cell Communication , Fibroblasts/cytology , Glutamic Acid/metabolism , Heart/anatomy & histology , Heart/innervation , Ion Channels/metabolism , Myocardium/cytology , Myocardium/immunology , Myocardium/metabolism , Myocytes, Cardiac/cytology , Neuroglia/cytology , Pericardium/cytology , Pericardium/immunology , Plasma Cells/immunology , Receptors, G-Protein-Coupled/metabolism , Sinoatrial Node/anatomy & histology , Sinoatrial Node/cytology , Sinoatrial Node/physiology , Heart Conduction System/anatomy & histology , Heart Conduction System/cytology , Heart Conduction System/metabolism
18.
Signal Transduct Target Ther ; 8(1): 114, 2023 03 14.
Article in English | MEDLINE | ID: mdl-36918543

ABSTRACT

Cardiac aging is evident by a reduction in function which subsequently contributes to heart failure. The metabolic microenvironment has been identified as a hallmark of malignancy, but recent studies have shed light on its role in cardiovascular diseases (CVDs). Various metabolic pathways in cardiomyocytes and noncardiomyocytes determine cellular senescence in the aging heart. Metabolic alteration is a common process throughout cardiac degeneration. Importantly, the involvement of cellular senescence in cardiac injuries, including heart failure and myocardial ischemia and infarction, has been reported. However, metabolic complexity among human aging hearts hinders the development of strategies that targets metabolic susceptibility. Advances over the past decade have linked cellular senescence and function with their metabolic reprogramming pathway in cardiac aging, including autophagy, oxidative stress, epigenetic modifications, chronic inflammation, and myocyte systolic phenotype regulation. In addition, metabolic status is involved in crucial aspects of myocardial biology, from fibrosis to hypertrophy and chronic inflammation. However, further elucidation of the metabolism involvement in cardiac degeneration is still needed. Thus, deciphering the mechanisms underlying how metabolic reprogramming impacts cardiac aging is thought to contribute to the novel interventions to protect or even restore cardiac function in aging hearts. Here, we summarize emerging concepts about metabolic landscapes of cardiac aging, with specific focuses on why metabolic profile alters during cardiac degeneration and how we could utilize the current knowledge to improve the management of cardiac aging.


Subject(s)
Aging , Cellular Senescence , Heart Diseases , Myocytes, Cardiac , Humans , Aging/metabolism , Aging/pathology , Heart Failure/metabolism , Heart Failure/pathology , Molecular Biology , Myocardium/cytology , Myocardium/metabolism , Myocytes, Cardiac/metabolism , Myocytes, Cardiac/pathology , Cellular Senescence/physiology , Heart Diseases/metabolism , Heart Diseases/pathology
19.
J Biol Chem ; 299(4): 103064, 2023 04.
Article in English | MEDLINE | ID: mdl-36841480

ABSTRACT

Gßγ subunits mediate many different signaling processes in various compartments of the cell, including the nucleus. To gain insight into the functions of nuclear Gßγ signaling, we investigated the functional role of Gßγ signaling in the regulation of GPCR-mediated gene expression in primary rat neonatal cardiac fibroblasts. We identified a novel, negative, regulatory role for the Gß1γ dimer in the fibrotic response. Depletion of Gß1 led to derepression of the fibrotic response at the mRNA and protein levels under basal conditions and an enhanced fibrotic response after sustained stimulation of the angiotensin II type I receptor. Our genome-wide chromatin immunoprecipitation experiments revealed that Gß1 colocalized and interacted with RNA polymerase II on fibrotic genes in an angiotensin II-dependent manner. Additionally, blocking transcription with inhibitors of Cdk9 prevented association of Gßγ with transcription complexes. Together, our findings suggest that Gß1γ is a novel transcriptional regulator of the fibrotic response that may act to restrict fibrosis to conditions of sustained fibrotic signaling. Our work expands the role for Gßγ signaling in cardiac fibrosis and may have broad implications for the role of nuclear Gßγ signaling in other cell types.


Subject(s)
Fibroblasts , GTP-Binding Protein beta Subunits , GTP-Binding Protein gamma Subunits , Gene Expression Regulation , Myocardium , RNA Polymerase II , Transcription, Genetic , Animals , Rats , Angiotensin II/metabolism , Cell Nucleus/genetics , Cell Nucleus/metabolism , Fibroblasts/metabolism , GTP-Binding Protein beta Subunits/genetics , GTP-Binding Protein beta Subunits/metabolism , GTP-Binding Protein gamma Subunits/genetics , GTP-Binding Protein gamma Subunits/metabolism , RNA Polymerase II/genetics , RNA Polymerase II/metabolism , Signal Transduction/physiology , Myocardium/cytology , Myocardium/pathology , Fibrosis
20.
J Cell Biol ; 221(6)2022 06 06.
Article in English | MEDLINE | ID: mdl-35482005

ABSTRACT

Tissue-resident macrophages play essential functions in the maintenance of tissue homeostasis and repair. Recently, the endocardium has been reported as a de novo hemogenic site for the contribution of hematopoietic cells, including cardiac macrophages, during embryogenesis. These observations challenge the current consensus that hematopoiesis originates from the hemogenic endothelium within the yolk sac and dorsal aorta. Whether the developing endocardium has such a hemogenic potential requires further investigation. Here, we generated new genetic tools to trace endocardial cells and reassessed their potential contribution to hematopoietic cells in the developing heart. Fate-mapping analyses revealed that the endocardium contributed minimally to cardiac macrophages and circulating blood cells. Instead, cardiac macrophages were mainly derived from the endothelium during primitive/transient definitive (yolk sac) and definitive (dorsal aorta) hematopoiesis. Our findings refute the concept of endocardial hematopoiesis, suggesting that the developing endocardium gives rise minimally to hematopoietic cells, including cardiac macrophages.


Subject(s)
Cell Lineage , Heart , Macrophages , Myocardium , Animals , Aorta/cytology , Endocardium/cytology , Heart/embryology , Hematopoiesis/genetics , Myocardium/cytology , Yolk Sac/cytology
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