Heat acclimation and exercise training interact when combined in an overriding and trade-off manner: physiologic-genomic linkage

Author:

Kodesh Einat1,Nesher Nir12,Simaan Assi1,Hochner Benny2,Beeri Ronen3,Gilon Dan3,Stern Michael D.4,Gerstenblith Gary5,Horowitz Michal1

Affiliation:

1. Laboratory of Environmental Physiology, Faculty of Dental Medicine,

2. Institute of Life Sciences, The Hebrew University,

3. Cardiovascular Research Center, Heart Institute, Hadassah-Hebrew University Medical Center, Jerusalem, Israel; and

4. Laboratory of Cardiovascular Science, Gerontology Research Center, National Institute on Aging, and

5. Division of Cardiology, Department of Medicine, Johns Hopkins University, Baltimore, Maryland

Abstract

Combined heat acclimation (AC) and exercise training (EX) enhance exercise performance in the heat while meeting thermoregulatory demands. We tested the hypothesis that different stress-specific adaptations evoked by each stressor individually trigger similar cardiac alterations, but when combined, overriding/trade-off interactions take place. We used echocardiography, isolated cardiomyocyte imaging and cDNA microarray techniques to assay in situ cardiac performance, excitation-contraction (EC) coupling features, and transcriptional programs associated with cardiac contractility. Rat groups studied were controls (sedentary 24°C); AC (sedentary, 34°C, 1 mo); normothermic EX (treadmill at 24°C, 1 mo); and heat-acclimated, exercise-trained (EXAC; treadmill at 34°C, 1 mo). Prolonged heat exposure decreased heart rate and contractile velocity and increased end ventricular diastolic diameter. Compared with controls, AC/EXAC cardiomyocytes demonstrated lower l-type Ca2+current ( ICaL) amplitude, higher Ca2+transient (Ca2+T), and a greater Ca2+T-to- ICaLratio; EX alone enhanced ICaLand Ca2+T, whereas aerobic training in general induced cardiac hypertrophy and action potential elongation in EX/EXAC animals. At the genomic level, the transcriptome profile indicated that the interaction between AC and EX yields an EXAC-specific molecular program. Genes affected by chronic heat were linked with the EC coupling cascade, whereas aerobic training upregulated genes involved with Ca2+turnover via an adrenergic/metabolic-driven positive inotropic response. In the EXAC cardiac phenotype, the impact of chronic heat overrides that of EX on EC coupling components and heart rate, whereas EX regulates cardiac morphometry. We suggest that concerted adjustments induced by AC and EX lead to enhanced metabolic and mechanical performance of the EXAC heart.

Publisher

American Physiological Society

Subject

Physiology (medical),Physiology

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