Literature DB >> 18487434

In vivo administration of calpeptin attenuates calpain activation and cardiomyocyte loss in pressure-overloaded feline myocardium.

Santhosh K Mani1, Hirokazu Shiraishi, Sundaravadivel Balasubramanian, Kentaro Yamane, Meenakshi Chellaiah, George Cooper, Naren Banik, Michael R Zile, Dhandapani Kuppuswamy.   

Abstract

Calpain activation is linked to the cleavage of several cytoskeletal proteins and could be an important contributor to the loss of cardiomyocytes and contractile dysfunction during cardiac pressure overload (PO). Using a feline right ventricular (RV) PO model, we analyzed calpain activation during the early compensatory period of cardiac hypertrophy. Calpain enrichment and its increased activity with a reduced calpastatin level were observed in 24- to 48-h-PO myocardium, and these changes returned to basal level by 1 wk of PO. Histochemical studies in 24-h-PO myocardium revealed the presence of TdT-mediated dUTP nick-end label (TUNEL)-positive cardiomyocytes, which exhibited enrichment of calpain and gelsolin. Biochemical studies showed an increase in histone H2B phosphorylation and cytoskeletal binding and cleavage of gelsolin, which indicate programmed cardiomyocyte cell death. To test whether calpain inhibition could prevent these changes, we administered calpeptin (0.6 mg/kg iv) by bolus injections twice, 15 min before and 6 h after induction of 24-h PO. Calpeptin blocked the following PO-induced changes: calpain enrichment and activation, decreased calpastatin level, caspase-3 activation, enrichment and cleavage of gelsolin, TUNEL staining, and histone H2B phosphorylation. Although similar administration of a caspase inhibitor, N-benzoylcarbonyl-Val-Ala-Asp-fluoromethylketone (Z-VD-fmk), blocked caspase-3 activation, it did not alleviate other aforementioned changes. These results indicate that biochemical markers of cardiomyocyte cell death, such as sarcomeric disarray, gelsolin cleavage, and TUNEL-positive nuclei, are mediated, at least in part, by calpain and that calpeptin may serve as a potential therapeutic agent to prevent cardiomyocyte loss and preserve myocardial structure and function during cardiac hypertrophy.

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Year:  2008        PMID: 18487434      PMCID: PMC2494745          DOI: 10.1152/ajpheart.00085.2008

Source DB:  PubMed          Journal:  Am J Physiol Heart Circ Physiol        ISSN: 0363-6135            Impact factor:   4.733


  66 in total

1.  Calpain and caspase: can you tell the difference?, by kevin K.W. WangVol. 23, pp. 20-26

Authors: 
Journal:  Trends Neurosci       Date:  2000-02       Impact factor: 13.837

2.  L-arginine administration recovers sarcoplasmic reticulum function in ischemic reperfused hearts by preventing calpain activation.

Authors:  Punam K Chohan; Raja B Singh; Naranjan S Dhalla; Thomas Netticadan
Journal:  Cardiovasc Res       Date:  2005-08-25       Impact factor: 10.787

3.  Load effects on gene expression during cardiac hypertrophy.

Authors:  J D Rozich; M A Barnes; P G Schmid; M R Zile; P J McDermott; G Cooper
Journal:  J Mol Cell Cardiol       Date:  1995-01       Impact factor: 5.000

4.  Ubiquitous calpains promote caspase-12 and JNK activation during endoplasmic reticulum stress-induced apoptosis.

Authors:  Yinfei Tan; Nathalie Dourdin; Chao Wu; Teresa De Veyra; John S Elce; Peter A Greer
Journal:  J Biol Chem       Date:  2006-04-05       Impact factor: 5.157

5.  Human gelsolin prevents apoptosis by inhibiting apoptotic mitochondrial changes via closing VDAC.

Authors:  H Kusano; S Shimizu; R C Koya; H Fujita; S Kamada; N Kuzumaki; Y Tsujimoto
Journal:  Oncogene       Date:  2000-10-05       Impact factor: 9.867

6.  Calpain-dependent calpastatin cleavage regulates caspase-3 activation during apoptosis of Jurkat T cells induced by Entamoeba histolytica.

Authors:  Kyeong Ah Kim; Young Ah Lee; Myeong Heon Shin
Journal:  Int J Parasitol       Date:  2007-04-06       Impact factor: 3.981

7.  Prolonged endoplasmic reticulum stress in hypertrophic and failing heart after aortic constriction: possible contribution of endoplasmic reticulum stress to cardiac myocyte apoptosis.

Authors:  Ken-ichiro Okada; Tetsuo Minamino; Yoshitane Tsukamoto; Yulin Liao; Osamu Tsukamoto; Seiji Takashima; Akio Hirata; Masashi Fujita; Yoko Nagamachi; Takeshi Nakatani; Chikao Yutani; Kentaro Ozawa; Satoshi Ogawa; Hitonobu Tomoike; Masatsugu Hori; Masafumi Kitakaze
Journal:  Circulation       Date:  2004-08-02       Impact factor: 29.690

Review 8.  Calpain and its involvement in the pathophysiology of CNS injuries and diseases: therapeutic potential of calpain inhibitors for prevention of neurodegeneration.

Authors:  Swapan K Ray; Naren L Banik
Journal:  Curr Drug Targets CNS Neurol Disord       Date:  2003-06

9.  Exogenous gelsolin binds to sarcomeric thin filaments without severing.

Authors:  S Gonsior; H Hinssen
Journal:  Cell Motil Cytoskeleton       Date:  1995

10.  Cross-talk between two cysteine protease families. Activation of caspase-12 by calpain in apoptosis.

Authors:  T Nakagawa; J Yuan
Journal:  J Cell Biol       Date:  2000-08-21       Impact factor: 10.539

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  25 in total

Review 1.  Tear me down: role of calpain in the development of cardiac ventricular hypertrophy.

Authors:  Cam Patterson; Andrea L Portbury; Jonathan C Schisler; Monte S Willis
Journal:  Circ Res       Date:  2011-08-05       Impact factor: 17.367

Review 2.  Role of various proteases in cardiac remodeling and progression of heart failure.

Authors:  Alison L Müller; Naranjan S Dhalla
Journal:  Heart Fail Rev       Date:  2012-05       Impact factor: 4.214

3.  Gelsolin (GSN) induces cardiomyocyte hypertrophy and BNP expression via p38 signaling and GATA-4 transcriptional factor activation.

Authors:  Wei-Syun Hu; Tsung-Jung Ho; Peiying Pai; Li-Chin Chung; Chia-Hua Kuo; Sheng-Huang Chang; Fuu-Jen Tsai; Chang-Hai Tsai; Yu-Chi Jie; Ying-Ming Liou; Chih-Yang Huang
Journal:  Mol Cell Biochem       Date:  2014-02-07       Impact factor: 3.396

Review 4.  Evaluation of right ventricular function.

Authors:  Clifford R Greyson
Journal:  Curr Cardiol Rep       Date:  2011-06       Impact factor: 2.931

5.  Rapamycin treatment augments both protein ubiquitination and Akt activation in pressure-overloaded rat myocardium.

Authors:  Rebecca K Harston; John C McKillop; Phillip C Moschella; An Van Laer; Lakeya S Quinones; Catalin F Baicu; Sundaravadivel Balasubramanian; Michael R Zile; Dhandapani Kuppuswamy
Journal:  Am J Physiol Heart Circ Physiol       Date:  2011-02-25       Impact factor: 4.733

6.  Calpain protects the heart from hemodynamic stress.

Authors:  Manabu Taneike; Isamu Mizote; Takashi Morita; Tetsuya Watanabe; Shungo Hikoso; Osamu Yamaguchi; Toshihiro Takeda; Takafumi Oka; Takahito Tamai; Jota Oyabu; Tomokazu Murakawa; Hiroyuki Nakayama; Kazuhiko Nishida; Junji Takeda; Naoki Mochizuki; Issei Komuro; Kinya Otsu
Journal:  J Biol Chem       Date:  2011-07-27       Impact factor: 5.157

7.  Lack of beta3 integrin signaling contributes to calpain-mediated myocardial cell loss in pressure-overloaded myocardium.

Authors:  Geetha Suryakumar; Harinath Kasiganesan; Sundaravadivel Balasubramanian; Dhandapani Kuppuswamy
Journal:  J Cardiovasc Pharmacol       Date:  2010-06       Impact factor: 3.105

8.  Calpain inhibition preserves myocardial structure and function following myocardial infarction.

Authors:  Santhosh K Mani; Sundaravadivel Balasubramanian; Juozas A Zavadzkas; Laura B Jeffords; William T Rivers; Michael R Zile; Rupak Mukherjee; Francis G Spinale; Dhandapani Kuppuswamy
Journal:  Am J Physiol Heart Circ Physiol       Date:  2009-09-04       Impact factor: 4.733

Review 9.  Proteases in cardiometabolic diseases: Pathophysiology, molecular mechanisms and clinical applications.

Authors:  Yinan Hua; Sreejayan Nair
Journal:  Biochim Biophys Acta       Date:  2014-05-09

10.  Identification of the immunoproteasome as a novel regulator of skeletal muscle differentiation.

Authors:  Ziyou Cui; Soyun Michelle Hwang; Aldrin V Gomes
Journal:  Mol Cell Biol       Date:  2013-10-28       Impact factor: 4.272

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