The molecular basis of aerobic metabolic remodeling differs between oxidative muscle and liver of threespine sticklebacks in response to cold acclimation

Julieanna I. Orczewska1, Götz Hartleben2, Kristin M. O’Brien2
1Institute of Arctic Biology, and Department of Biology and Wildlife, University of Alaska Fairbanks, Fairbanks, Alaska 99775, USA
2Institute of Arctic Biology and Department of Biology and Wildlife, University of Alaska Fairbanks, Fairbanks, Alaska

Tóm tắt

We sought to determine the molecular basis of elevations in aerobic metabolic capacity in the oxidative muscle and liver of Gasterosteus aculeatus in response to cold acclimation. Fishes were cold- or warm-acclimated for 9 wk and harvested on days 1, 2, and 3 and weeks 1, 4, and 9 of cold acclimation at 8°C, and on day 1 and week 9 of warm acclimation at 20°C. Mitochondrial volume density was quantified using transmission electron microscopy and stereological techniques in warm- and cold-acclimated fishes harvested after 9 wk at 20 or 8°C. Changes in aerobic metabolic capacity were assessed by measuring the maximal activity of citrate synthase (CS) and cytochrome- c oxidase (COX) in fishes harvested throughout the acclimation period. Transcript levels of the aerobic metabolic genes CS, COXIII, and COXIV, and known regulators of mitochondrial biogenesis, including peroxisome proliferator-activated receptor-γ coactivators-1α and -1β (PGC-1α and PGC-1β), nuclear respiratory factor-1 (NRF-1), and mitochondrial transcription factor-A were measured in fishes harvested throughout the acclimation period using quantitative real-time PCR. The maximal activities of CS and COX increased in response to cold acclimation in both tissues, but mitochondrial volume density only increased in oxidative muscle ( P < 0.05). The time course for changes in aerobic metabolic capacity differed between liver and muscle. The expression of CS increased within 1 wk of cold acclimation in liver and was correlated with an increase in mRNA levels of NRF-1 and PGC-1β. Transcript levels of aerobic metabolic genes increased later in oxidative muscle, between weeks 4 and 9 of cold acclimation and were correlated with an increase in mRNA levels of NRF-1 and PGC-1α. These results show that aerobic metabolic remodeling differs between liver and muscle in response to cold acclimation and may be triggered by different stimuli.

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Tài liệu tham khảo

10.1152/ajpregu.1998.275.3.R905

10.1073/pnas.78.9.5381

10.1186/1471-2229-4-14

10.1016/S1097-2765(04)00179-0

Campbell CM, 1978, Comp Biochem Physiol, 61, 165

10.1016/S1673-8527(08)60099-5

10.1111/j.1365-2818.1981.tb01265.x

10.1038/nature06322

10.1038/labinvest.3700208

10.1152/ajpregu.1996.271.1.R42

Edwards K, 2004, Real-Time PCR: An Essential Guide

10.1152/ajpregu.1989.256.1.R1

10.1093/hmg/ddh109

10.1146/annurev.biochem.76.060305.152028

10.1242/jeb.024034

10.1152/ajpregu.90815.2008

10.1038/sj.emboj.7601633

10.1242/jeb.036939

10.1210/er.2006-0037

10.1146/annurev.ph.57.030195.000315

10.1152/ajpregu.1988.255.4.R622

10.1074/mcp.M800137-MCP200

Hochachka PW, 2002, Biochemical Adaptation: Mechanism and Process in Physiological Evolution, 10.1093/oso/9780195117028.001.0001

10.1146/annurev.physiol.010908.163119

10.1021/bi052475e

10.1093/nar/gkn993

Ibarz A, 2010, Proteomics, 10, 963, 10.1002/pmic.200900528

10.1073/pnas.0705070104

10.1152/ajpregu.1984.246.4.R471

10.1007/BF00213216

10.1111/j.1095-8649.1980.tb02746.x

10.1016/j.freeradbiomed.2009.08.007

10.1101/gad.1177604

10.1016/j.mito.2005.08.002

10.1086/physzool.58.1.30161216

10.1042/bj3160607

10.1242/jeb.02628

10.1016/j.cell.2006.11.013

Leary SC, 1998, J Exp Biol, 201, 3377, 10.1242/jeb.201.24.3377

10.1242/jeb.014951

10.1074/jbc.C100631200

10.1242/jeb.02268

10.1152/ajpregu.00111.2003

10.1042/bj2960231

Mathews CK, 1996, Biochemistry

10.1113/jphysiol.2006.119032

Moerland TS, 1995, Biochemistry and Molecular Biology of Fishes

10.1016/S0168-9525(01)02238-7

10.1038/ng1897

10.1126/science.1079368

O'Brien KM, 2000, J Exp Biol, 203, 1287, 10.1242/jeb.203.8.1287

10.1186/1471-2199-6-21

10.1016/S0891-5849(99)00032-5

10.1023/B:BILE.0000019559.84305.47

10.1242/jeb.01016

10.1016/S0092-8674(00)81410-5

10.1007/s11064-004-2445-7

10.1016/j.bbrc.2003.09.076

10.1196/annals.1427.006

10.1023/A:1022681828846

10.1152/physrev.00025.2007

10.1002/0471223891

10.1021/bi9914053

10.1002/jez.1402010102

Sidell BD, 1998, J Exp Biol, 201, 1118, 10.1242/jeb.201.8.1119

10.1002/jez.1401990208

10.1046/j.1432-1327.2000.00936.x

10.1016/j.cbpc.2004.05.003

10.1002/jez.1402180308

10.1016/j.freeradbiomed.2008.11.024

10.1242/jcs.03318

10.1101/gad.1295005

Trueman RJ, 2000, J Exp Biol, 203, 641, 10.1242/jeb.203.3.641

10.1002/jez.1402320102

10.1002/jez.1402580302

Weibel ER, 1979, Stereological Methods

10.1083/jcb.30.1.23

10.1016/0076-6879(67)10048-7

10.1016/0005-2736(81)90101-2

10.1007/978-1-4615-8513-8

10.1126/science.1071163