Small-hairpin RNA and pharmacological targeting of neutral sphingomyelinase prevent diaphragm weakness in rats with heart failure and reduced ejection fraction

被引:17
作者
Coblentz, Philip D. [1 ]
Ahn, Bumsoo [1 ]
Hayward, Linda F. [2 ]
Yoo, Jeung-Ki [1 ]
Christou, Demetra D. [1 ]
Ferreira, Leonardo F. [1 ]
机构
[1] Univ Florida, Coll Hlth & Human Performance, Dept Appl Physiol & Kinesiol, Gainesville, FL USA
[2] Univ Florida, Coll Vet Med, Dept Physiol Sci, Gainesville, FL 32610 USA
关键词
ceramide; mitochondria; myocardial infarction; oxidants; skeletal muscle; tachypnea; SKELETAL-MUSCLE; POSTMYOCARDIAL INFARCTION; CONTRACTILE DYSFUNCTION; NIEMANN-PICK; INHIBITION; CERAMIDE; MECHANISMS; INCREASES; MODEL; ACID;
D O I
10.1152/ajplung.00516.2018
中图分类号
Q4 [生理学];
学科分类号
071003 [生理学];
摘要
Coblentz PD, Ahn B, Hayward LF, Yoo JK, Christou DD, Ferreira LF. Small-hairpin RNA and pharmacological targeting of neutral sphingomyelinase prevent diaphragm weakness in rats with heart failure and reduced ejection fraction. Am J Physiol Lung Cell Mol Physiol 316: L679-L690, 2019. First published January 31, 2019; doi: 10.1152/ajplung.00516.2018.-Heart failure with reduced ejection fraction (HFREF) increases neutral sphingomyelinase (NSMase) activity and mitochondrial reactive oxygen species (ROS) emission and causes diaphragm weakness. We tested whether a systemic pharmacological NSMase inhibitor or short-hairpin RNA (shRNA) targeting NSMase isoform 3 (NSMase3) would prevent diaphragm abnormalities induced by HFREF caused by myocardial infarction. In the pharmacological intervention, we used intraperitoneal injection of GW4869 or vehicle. In the genetic intervention, we injected adeno-associated virus serotype 9 (AAV9) containing shRNA targeting NSMase3 or a scrambled sequence directly into the diaphragm. We also studied acid sphingomyelinase-knockout mice. GW4869 prevented the increase in diaphragm ceramide content, weakness, and tachypnea caused by HFREF. For example, maximal specific forces (in N/cm(2)) were vehicle [sham 31 +/- 2 and HFREF 26 +/- 2 (P < 0.05)] and GW4869 (sham 31 +/- 2 and HFREF 31 +/- 1). Respiratory rates were (in breaths/min) vehicle [sham 61 +/- 3 and HFREF 84 +/- 11 (P < 0.05)] and GW4869 (sham 66 +/- 2 and HFREF 72 +/- 2). AAV9-NSMase3 shRNA prevented heightening of diaphragm mitochondrial ROS and weakness [in N/cm(2), AAV9-scrambled shRNA: sham 31 +/- 2 and HFREF 27 +/- 2 (P < 0.05); AAV9-NSMase3 shRNA: sham 30 +/- 1 and HFREF 30 +/- 1] but displayed tachypnea. Both wild-type and ASMase-knockout mice with HFREF displayed diaphragm weakness. Our study suggests that activation of NSMase3 causes diaphragm weakness in HFREF, presumably through accumulation of ceramide and elevation in mitochondrial ROS. Our data also reveal a novel inhibitory effect of GW4869 on tachypnea in HFREF likely mediated by changes in neural control of breathing.
引用
收藏
页码:L679 / L690
页数:12
相关论文
共 62 条
[1]
Neutral sphingomyelinase inhibition participates to the benefits of N-acetylcysteine treatment in post-myocardial infarction failing heart rats [J].
Adamy, Christophe ;
Mulder, Paul ;
Khouzami, Lara ;
Andrieu-Abadie, Nathalie ;
Defer, Nicole ;
Candiani, Gabriele ;
Pavoine, Catherine ;
Caramelle, Philippe ;
Souktani, Richard ;
Le Corvoisier, Philippe ;
Perier, Magali ;
Kirsch, Matthias ;
Damy, Thibaud ;
Berdeaux, Alain ;
Levade, Thierry ;
Thuillez, Christian ;
Hittinger, Luc ;
Pecker, Francoise .
JOURNAL OF MOLECULAR AND CELLULAR CARDIOLOGY, 2007, 43 (03) :344-353
[2]
Diaphragm Abnormalities in Patients with End-Stage Heart Failure: NADPH Oxidase Upregulation and Protein Oxidation [J].
Ahn, Bumsoo ;
Coblentz, Philip D. ;
Beharry, Adam W. ;
Patel, Nikhil ;
Judge, Andrew R. ;
Moylan, Jennifer. S. ;
Hoopes, Charles W. ;
Bonnell, Mark R. ;
Ferreira, Leonardo F. .
FRONTIERS IN PHYSIOLOGY, 2017, 7
[3]
NAD(P)H oxidase subunit p47phox is elevated, and p47phox knockout prevents diaphragm contractile dysfunction in heart failure [J].
Ahn, Bumsoo ;
Beharry, Adam W. ;
Frye, Gregory S. ;
Judge, Andrew R. ;
Ferreira, Leonardo F. .
AMERICAN JOURNAL OF PHYSIOLOGY-LUNG CELLULAR AND MOLECULAR PHYSIOLOGY, 2015, 309 (05) :L497-L505
[4]
Phrenic Nerve Stimulation Increases Human Diaphragm Fiber Force after Cardiothoracic Surgery [J].
Ahn, Bumsoo ;
Beaver, Thomas ;
Martin, Tomas ;
Hess, Philip ;
Brumback, Babette A. ;
Ahmed, Shakeel ;
Smith, Barbara K. ;
Leeuwenburgh, Christiaan ;
Martin, A. Daniel ;
Ferreira, Leonardo F. .
AMERICAN JOURNAL OF RESPIRATORY AND CRITICAL CARE MEDICINE, 2014, 190 (07) :837-839
[5]
The Targeting of Plasmalemmal Ceramide to Mitochondria during Apoptosis [J].
Babiychuk, Eduard B. ;
Atanassoff, Alexander P. ;
Monastyrskaya, Katia ;
Brandenberger, Christina ;
Studer, Daniel ;
Allemann, Catherine ;
Draeger, Annette .
PLOS ONE, 2011, 6 (08)
[6]
Involvement of neutral sphingomyelinase in the angiotensin II signaling pathway [J].
Bautista-Perez, Rocio ;
del Valle-Mondragon, Leonardo ;
Cano-Martinez, Agustina ;
Perez-Mendez, Oscar ;
Escalante, Bruno ;
Franco, Martha .
AMERICAN JOURNAL OF PHYSIOLOGY-RENAL PHYSIOLOGY, 2015, 308 (10) :F1178-F1187
[7]
Bielawski J, 2010, ADV EXP MED BIOL, V688, P46
[8]
A search for ceramide binding proteins using bifunctional lipid analogs yields CERT-related protein StarD7 [J].
Bockelmann, Svenja ;
Mina, John G. M. ;
Korneev, Sergei ;
Hassan, Dina G. ;
Mueller, Dagmar ;
Hilderink, Angelika ;
Vlieg, Hedwich C. ;
Raijmakers, Reinout ;
Heck, Albert J. R. ;
Haberkant, Per ;
Holthuis, Joost C. M. .
JOURNAL OF LIPID RESEARCH, 2018, 59 (03) :515-530
[9]
Diaphragm dysfunction caused by sphingomyelinase requires the p47phox subunit of NADPH oxidase [J].
Bost, Elaina R. ;
Frye, Gregory S. ;
Ahn, Bumsoo ;
Ferreira, Leonardo F. .
RESPIRATORY PHYSIOLOGY & NEUROBIOLOGY, 2015, 205 :47-52
[10]
Diaphragm muscle weakness in mice is early-onset post-myocardial infarction and associated with elevated protein oxidation [J].
Bowen, T. Scott ;
Mangner, Norman ;
Werner, Sarah ;
Glaser, Stefanie ;
Kullnick, Yvonne ;
Schrepper, Andrea ;
Doenst, Torsten ;
Oberbach, Andreas ;
Linke, Axel ;
Steil, Leif ;
Schuler, Gerhard ;
Adams, Volker .
JOURNAL OF APPLIED PHYSIOLOGY, 2015, 118 (01) :11-19