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Scanning Electron Microscopy of Macerated Tissue to Visualize the Extracellular Matrix
Published on: June 14, 2016
Thyroid hormone induces myocardial matrix degradation by activating matrix metalloproteinase-1
Sreerupa Ghose Roy1, Sumita Mishra, Goutam Ghosh
1Molecular Endocrinology Laboratory, Indian Institute of Chemical Biology, 4, Raja S.C. Mullick Road, Kolkata 700032, India.
Insights
Hyperthyroidism accelerates collagen breakdown in the heart via MMP-1, suppressing TIMPs, which regulates myocardial extracellular matrix remodeling. This contrasts with dexamethasone-induced hypertrophy, which increases collagen deposition.
Area of Science:
- Cardiovascular Physiology
- Molecular Biology
- Endocrinology
Background:
- Hyperthyroidism causes left ventricular hypertrophy and cardiac dysfunction.
- Interstitial fibrosis is typically absent in hyperthyroid hearts, despite hypertrophy.
- Mechanisms of myocardial extracellular matrix remodeling in hyperthyroidism require investigation.
Purpose of the Study:
- To investigate the regulation of myocardial extracellular matrix (ECM) remodeling in a rat model of hyperthyroidism.
- To compare ECM remodeling in triiodothyronine-induced hyperthyroidism with dexamethasone-induced hypertrophy.
Main Methods:
- Cardiac hypertrophy was induced in Sprague-Dawley rats using triiodothyronine and dexamethasone for 15 days.
- Heart/Body weight ratio, natriuretic peptide mRNA levels, collagen deposition, procollagen and mature collagen levels were assessed.
- Matrix metalloproteinase-1 (MMP-1) activity and tissue inhibitor of metalloproteinases (TIMPs) levels were measured.
Main Results:
- Triiodothyronine and dexamethasone increased heart/body weight ratio and natriuretic peptide mRNA.
- Triiodothyronine decreased collagen-I and -III deposition, while dexamethasone increased it.
- Triiodothyronine increased procollagen mRNA/protein but decreased mature collagen, with elevated MMP-1 and reduced TIMPs-3/-4.
- Dexamethasone increased mature collagen levels.
Conclusions:
- Accelerated collagen breakdown by MMP-1, due to suppressed TIMPs, regulates ECM in hyperthyroid rat myocardium.
- This mechanism differs from dexamethasone-induced hypertrophy, which involves increased collagen deposition.
- Understanding these distinct ECM remodeling pathways is crucial for managing cardiac complications in hyperthyroidism.
Abstract:
Hyperthyroid patients develop left ventricular hypertrophy associated with alterations of several cardiac parameters such as heart rate, cardiac output, cardiac contraction and hemodynamic overload leading to cardiac complications. Although cardiac hypertrophy and contractile abnormality occur, interstitial fibrosis in the heart usually does not take place in hyperthyroid condition. Therefore, in the present study, the mechanism regulating myocardial extracellular matrix (ECM) remodeling in hyperthyroid condition was investigated. Cardiac hypertrophy was developed in Sprague-Dawley rats by administration of 3,5,3'-triiodo-L-thyronine (triiodothyronine, 8 microg/100g BW, ip, SID) and glucocorticosteroid, dexamethasone (DEX, 35 microg/100g BW, po, SID), which is also an inducer of hypertrophy for 15 days. Heart/Body weight ratio and atrial and brain natriuretic peptide mRNAs were significantly increased in both triiodothyronine- and DEX-treated rats compared to control. Collagens-I and -III deposition in the left ventricular sections was reduced in triiodothyronine-treated rats, whereas in DEX-treated animals those were increased compared to control. While mRNA and protein levels of procollagens-I and -III were increased with triiodothyronine (p<0.01), the levels of mature collagens-I and -III were decreased. The levels of the mature collagens were increased with DEX compared to control. MMP-1 activity in the serum and left ventricle was higher with reduced levels of TIMPs-3 and -4 in the left ventricle of triiodothyronine-treated rats. The results suggest that accelerated breakdown of collagens-I and -III by MMP-1 due to suppression of the endogenous TIMPs plays an important role in regulating the ECM in myocardium of hyperthyroid rat.
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