N-Palmitoyl Glutamine Is a Candidate Mediator of Cardiorespiratory Fitness

Jeremy M. Robbins, Beth Israel Deaconess Medical Center
Mark Benson, Beth Israel Deaconess Medical Center
Anthony R.P. Verkerke, Beth Israel Deaconess Medical Center
Gaurav Tiwari, Beth Israel Deaconess Medical Center
Shuliang Deng, Beth Israel Deaconess Medical Center
Prashant Rao, Beth Israel Deaconess Medical Center
Usman A. Tahir, Beth Israel Deaconess Medical Center
Julian Avila-Pacheco, Broad Institute
Xu Shi, Beth Israel Deaconess Medical Center
Yuntian Guan, Beth Israel Deaconess Medical Center
Foje Geh Tendoh, Beth Israel Deaconess Medical Center
Jacob L. Barber, Beth Israel Deaconess Medical Center
Patricia E. Miller, School of Public Health
Andrew S. Perry, Vanderbilt University Medical Center
Michael E. Hall, University of Mississippi School of Medicine
Alexis C. Wood, Baylor College of Medicine
Kent D. Taylor, The Lundquist Institute
Wendy S. Post, Johns Hopkins University School of Medicine
Stephen S. Rich, University of Virginia
Matthew Nayor, Boston University Chobanian & Avedisian School of Medicine
James G. Wilson, Beth Israel Deaconess Medical Center
Gregory D. Lewis, Harvard Medical School
Ravi V. Shah, Beth Israel Deaconess Medical Center
Jerome I. Rotter, The Lundquist Institute
Scott A. Summers, The University of Utah
Laura M. Raffield, UNC School of Medicine
Shingo Kajimura, Beth Israel Deaconess Medical Center
Claude Bouchard, Broad Institute
M. A. Sarzynski, University of South Carolina
M. A. Sarzynski, University of South Carolina
Robert E. Gerszten, Beth Israel Deaconess Medical Center

Abstract

BACKGROUND: – Cardiorespiratory fitness is an integrative measure of cardiometabolic health and predictor of survival, yet little is known about its molecular underpinnings. Small molecule metabolites and lipids are increasingly recognized as exercise-stimulated signaling molecules and candidate molecular transducers of cardiorespiratory fitness.

METHODS: – We performed nontargeted liquid chromatography mass spectrometry–based plasma metabolomics in 654 participants (mean age, 35 years; 55% women) from the HERITAGE Family Study (Health, Risk Factors, Exercise Training, and Genetics) who had cardiorespiratory fitness (maximal oxygen uptake [VO2max]) measured by cardiopulmonary exercise testing and underwent 20 weeks of supervised endurance training. Metabolite–VO2max relationships were assessed using linear regression and tested for replication in FHS (Framingham Heart Study) participants who also underwent cardiopulmonary exercise testing. Metabolite relationships with incident all-cause mortality ascertained in JHS (Jackson Heart Study) and MESA (Multi-Ethnic Study of Atherosclerosis) were tested using Cox regression. Experimental studies of cellular respiration and mitochondrial function were performed in C2C12 myotubes.

RESULTS: – An unknown mass spectrometry peak (mass-to-charge, 385.3056; retention time, 3.69 minutes) had the strongest, positive relationship with VO2max (mL×kg−1min−1) after adjustment for age, sex, race, and lean body mass (β=1.29; false discovery rate q=5.3×10−6); was identified as N-palmitoyl glutamine (N-pal-gln) using tandem mass spectrometry and bioinformatics; and was confirmed with an authentic chemical standard. The biological role of N-pal-gln has not been described previously. The relationship of N-pal-gln with VO2max was validated in 408 participants from the FHS (β=1.2; P=3.8×10−5), and its levels increased after exercise training (log fold change=0.22; q=5.3×10−12). N-pal-gln levels were inversely associated with all-cause mortality in JHS and MESA (hazard ratio, 0.91 and 0.65 [P=0.029 and P=0.028], respectively). Previous studies have shown that structurally related biochemicals modulate energy homeostasis; thus, we performed mitochondrial experiments. N-pal-gln administration led to a dose-dependent increase in mitochondrial:nuclear DNA ratio compared with control treated cells (15% and 20% increases at 6.5 nM and 26 nM N-pal-gln, respectively [P=0.04 and P=0.02]) and improved bioenergetics (N-pal-gln at 26 nM increased the phosphate:oxygen ratio across ADP concentrations from 0 to 100 μM; ANOVA P=0.0027).

CONCLUSIONS: – We identified a novel, lipidated amino acid, N-pal-gln, that is positively associated with VO2max, increases after regular aerobic exercise, and is inversely associated with incident mortality. N-pal-gln stimulates mitochondrial biogenesis and efficiency, demonstrating its potential role as an exercise-stimulated transducer of cardiorespiratory fitness.