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1.
J Vis Exp ; (112)2016 06 14.
Article in English | MEDLINE | ID: mdl-27340841

ABSTRACT

Fibrosis is a component of all forms of heart disease regardless of etiology, and while much progress has been made in the field of cardiac matrix biology, there are still major gaps related to how the matrix is formed, how physiological and pathological remodeling differ, and most importantly how matrix dynamics might be manipulated to promote healing and inhibit fibrosis. There is currently no treatment option for controlling, preventing, or reversing cardiac fibrosis. Part of the reason is likely the sheer complexity of cardiac scar formation, such as occurs after myocardial infarction to immediately replace dead or dying cardiomyocytes. The extracellular matrix itself participates in remodeling by activating resident cells and also by helping to guide infiltrating cells to the defunct lesion. The matrix is also a storage locker of sorts for matricellular proteins that are crucial to normal matrix turnover, as well as fibrotic signaling. The matrix has additionally been demonstrated to play an electromechanical role in cardiac tissue. Most techniques for assessing fibrosis are not qualitative in nature, but rather provide quantitative results that are useful for comparing two groups but that do not provide information related to the underlying matrix structure. Highlighted here is a technique for visualizing cardiac matrix ultrastructure. Scanning electron microscopy of decellularized heart tissue reveals striking differences in structure that might otherwise be missed using traditional quantitative research methods.


Subject(s)
Cardiomyopathies/pathology , Extracellular Matrix/ultrastructure , Microscopy, Electron, Scanning/methods , Myocardium/ultrastructure , Animals , Cell Movement/physiology , Extracellular Matrix/chemistry , Fibrosis , Humans , Mice , Myocardium/cytology , Myocardium/pathology , Signal Transduction , Swine
2.
Cell Mol Bioeng ; 9(1): 107-115, 2016 Mar.
Article in English | MEDLINE | ID: mdl-28042345

ABSTRACT

Despite recent advances in biomimetic substrates, there is still only limited understanding of how the extracellular matrix (ECM) functions in the maintenance of cardiomyocyte (CM) phenotype. In this study, we designed electrospun substrates inspired by morphologic features of non-failing and failing human heart ECM, and examined how these substrates regulate phenotypes of adult and neonatal rat ventricular CMs (ARVM and NRVM, respectively). We found that poly(ε-caprolactone) fiber substrates designed to mimic the organized ECM of a non-failing human heart maintained healthy CM phenotype (evidenced by cell morphology, organized actin/myomesin bands and expression of ß-MYH7 and SCN5A.1 and SCN5A.2) compared to both failing heart ECM-mimetic substrates and tissue culture plates. Moreover, culture of ARVMs and NRVMs on aligned substrates showed differences in m- and z-line alignment; with ARVMs aligning parallel to the ECM fibers and the NRVMs aligning perpendicular to the fibers. The results provide new insight into cardiac tissue engineering by illustrating the importance models that mimic the cardiac ECM microenvironment in vitro.

3.
J Am Heart Assoc ; 3(5): e000773, 2014 Oct 23.
Article in English | MEDLINE | ID: mdl-25341890

ABSTRACT

BACKGROUND: Neuregulin-1ß (NRG-1ß) is a growth factor critical for cardiac development and repair with therapeutic potential for heart failure. We previously showed that the glial growth factor 2 (GGF2) isoform of NRG-1ß improves cardiac function in rodents after myocardial infarction (MI), but its efficacy in a large animal model of cardiac injury has not been examined. We therefore sought to examine the effects of GGF2 on ventricular remodeling, cardiac function, and global transcription in post-MI swine, as well as potential mechanisms for anti-remodeling effects. METHODS AND RESULTS: MI was induced in anesthetized swine (n=23) by intracoronary balloon occlusion. At 1 week post-MI, survivors (n=13) received GGF2 treatment (intravenous, biweekly for 4 weeks; n=8) or were untreated (n=5). At 5 weeks post-MI, fractional shortening was higher (32.8% versus 25.3%, P=0.019), and left ventricular (LV) end-diastolic dimension lower (4.5 versus 5.3 cm, P=0.003) in GGF2-treated animals. Treatment altered expression of 528 genes, as measured by microarrays, including collagens, basal lamina components, and matricellular proteins. GGF2-treated pigs exhibited improvements in LV cardiomyocyte mitochondria and intercalated disk structures and showed less fibrosis, altered matrix structure, and fewer myofibroblasts (myoFbs), based on trichrome staining, electron microscopy, and immunostaining. In vitro experiments with isolated murine and rat cardiac fibroblasts demonstrate that NRG-1ß reduces myoFbs, and suppresses TGFß-induced phospho-SMAD3 as well as αSMA expression. CONCLUSIONS: These results suggest that GGF2/NRG-1ß prevents adverse remodeling after injury in part via anti-fibrotic effects in the heart.


Subject(s)
Heart Failure/drug therapy , Myocardium/pathology , Neuregulin-1/pharmacology , Ventricular Function, Left/drug effects , Ventricular Remodeling/drug effects , Actins/metabolism , Animals , Cells, Cultured , Disease Models, Animal , Dose-Response Relationship, Drug , Fibrosis , Gene Expression Regulation/drug effects , Heart Failure/genetics , Heart Failure/metabolism , Heart Failure/pathology , Heart Failure/physiopathology , Male , Mice, Inbred C57BL , Myocardial Contraction/drug effects , Myocardium/metabolism , Myofibroblasts/drug effects , Myofibroblasts/metabolism , Myofibroblasts/pathology , Phosphorylation , Rats, Sprague-Dawley , Smad3 Protein/metabolism , Swine , Time Factors , Transcription, Genetic/drug effects , Ventricular Remodeling/genetics
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