FN Archimer Export Format PT J TI Cardiac Molecular-Acclimation Mechanisms in Response to Swimming-Induced Exercise in Atlantic Salmon BT AF CASTRO, Vicente GRISDALE-HELLAND, Barbara HELLAND, Stale J. TORGERSEN, Jacob KRISTENSEN, Torstein CLAIREAUX, Guy FARRELL, Anthony P. TAKLE, Harald AS 1:1,2;2:3,4;3:2,3,4;4:1;5:5;6:6,7;7:8,9;8:1,10; FF 1:;2:;3:;4:;5:;6:;7:;8:; C1 Nofima AS, As, Norway. Norwegian Univ Life Sci UMB, Inst Anim Sci, As, Norway. Aquaculture Prot Ctr, As, Norway. Nofima AS, Sunndalsora, Norway. Norwegian Inst Water Res, Bodo, Norway. Univ Bretagne Occidentale, Lab Sci Environm Marin LEMAR, Plouzane, France. IFREMER, Unite Physiol Fonct Organismes, Plouzane, France. Univ British Columbia, Fac Land & Food Syst, Vancouver, BC V5Z 1M9, Canada. Univ British Columbia, Dept Zool, Vancouver, BC, Canada. AVS Chile SA, Puerto Varas, Chile. C2 NOFIMA AS, NORWAY UNIV LIFE SCIENCE NORWEGIAN, NORWAY AQUACULTURE PROT CTR, NORWAY NOFIMA AS, NORWAY NIVA, NORWAY UBO, FRANCE UBO, FRANCE UNIV BRITISH COLUMBIA, CANADA UNIV BRITISH COLUMBIA, CANADA AVS CHILE SA, CHILE IF 3.534 TC 35 UR https://archimer.ifremer.fr/doc/00127/23825/21745.pdf LA English DT Article AB Cardiac muscle is a principal target organ for exercise-induced acclimation mechanisms in fish and mammals, given that sustained aerobic exercise training improves cardiac output. Yet, the molecular mechanisms underlying such cardiac acclimation have been scarcely investigated in teleosts. Consequently, we studied mechanisms related to cardiac growth, contractility, vascularization, energy metabolism and myokine production in Atlantic salmon pre-smolts resulting from 10 weeks exercise-training at three different swimming intensities: 0.32 (control), 0.65 (medium intensity) and 1.31 (high intensity) body lengths s(-1). Cardiac responses were characterized using growth, immunofluorescence and qPCR analysis of a large number of target genes encoding proteins with significant and well-characterized function. The overall stimulatory effect of exercise on cardiac muscle was dependent on training intensity, with changes elicited by high intensity training being of greater magnitude than either medium intensity or control. Higher protein levels of PCNA were indicative of cardiac growth being driven by cardiomyocyte hyperplasia, while elevated cardiac mRNA levels of MEF2C, GATA4 and ACTA1 suggested cardiomyocyte hypertrophy. In addition, up-regulation of EC coupling-related genes suggested that exercised hearts may have improved contractile function, while higher mRNA levels of EPO and VEGF were suggestive of a more efficient oxygen supply network. Furthermore, higher mRNA levels of PPAR alpha, PGC1 alpha and CPT1 all suggested a higher capacity for lipid oxidation, which along with a significant enlargement of mitochondrial size in cardiac myocytes of the compact layer of fish exercised at high intensity, suggested an enhanced energetic support system. Training also elevated transcription of a set of myokines and other gene products related to the inflammatory process, such as TNF alpha, NF kappa B, COX2, IL1RA and TNF decoy receptor. This study provides the first characterization of the underlying molecular acclimation mechanisms in the heart of exercise-trained fish, which resemble those reported for mammalian physiological cardiac growth. PY 2013 PD JAN SO Plos One SN 1932-6203 PU Public Library Science VL 8 IS 1 UT 000315210400054 DI 10.1371/journal.pone.0055056 ID 23825 ER EF