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A Comparison of LKB1/AMPK/mTOR Metabolic Axis Response to Global Ischaemia in Brain, Heart, Liver and Kidney in a Rat Model of Cardiac Arrest

Overview
Journal BMC Cell Biol
Publisher Biomed Central
Specialty Cell Biology
Date 2018 Jun 21
PMID 29921218
Citations 18
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Abstract

Background: Cellular energy failure in high metabolic rate organs is one of the underlying causes for many disorders such as neurodegenerative diseases, cardiomyopathies, liver and renal failures. In the past decade, numerous studies have discovered the cellular axis of LKB1/AMPK/mTOR as an essential modulator of cell homeostasis in response to energy stress. Through regulating adaptive mechanisms, this axis adjusts the energy availability to its demand by a systematized control on metabolism. Energy stress, however, could be sensed at different levels in various tissues, leading to applying different strategies in response to hypoxic insults.

Methods: Here the immediate strategies of high metabolic rate organs to time-dependent short episodes of ischaemia were studied by using a rat model (n = 6/group) of cardiac arrest (CA) (15 and 30 s, 1, 2, 4 and 8 min CA). Using western blot analysis, we examined the responses of LKB1/AMPK/mTOR pathway in brain, heart, liver and kidney from 15 s up to 8 min of global ischaemia. The ratio of ADP/ATP was assessed in all ischemic and control groups, using ApoSENSOR bioluminescent assay kit.

Results: Brain, followed by kidney showed the early dephosphorylation response in AMPK (Thr) and LKB1 (Ser); in the absence of ATP decline (ADP/ATP elevation). Dephosphorylation of AMPK was followed by rephosphorylation and hyperphosphorylation, which was associated with a significant ATP decline. While heart's activity of AMPK and LKB1 remained at the same level during short episodes of ischaemia, liver's LKB1 was dephosphorylated after 2 min. AMPK response to ischaemia in liver was mainly based on an early alternative and a late constant hyperphosphorylation. No significant changes was observed in mTOR activity in all groups.

Conclusion: Together our results suggest that early AMPK dephosphorylation followed by late hyperphosphorylation is the strategy of brain and kidney in response to ischaemia. While the liver seemed to get benefit of its AMPK system in early ischameia, possibly to stabilize ATP, the level of LKB1/AMPK activity in heart remained unchanged in short ischaemic episodes up to 8 min. Further researches must be conducted to elucidate the molecular mechanism underlying LKB1/AMPK response to oxygen supply.

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References
1.
Jeon S . Regulation and function of AMPK in physiology and diseases. Exp Mol Med. 2016; 48(7):e245. PMC: 4973318. DOI: 10.1038/emm.2016.81. View

2.
Sundararaman A, Amirtham U, Rangarajan A . Calcium-Oxidant Signaling Network Regulates AMP-activated Protein Kinase (AMPK) Activation upon Matrix Deprivation. J Biol Chem. 2016; 291(28):14410-29. PMC: 4938166. DOI: 10.1074/jbc.M116.731257. View

3.
Hwang S, Kim H . The functions of mTOR in ischemic diseases. BMB Rep. 2011; 44(8):506-11. DOI: 10.5483/bmbrep.2011.44.8.506. View

4.
Dyck J, Lopaschuk G . AMPK alterations in cardiac physiology and pathology: enemy or ally?. J Physiol. 2006; 574(Pt 1):95-112. PMC: 1817803. DOI: 10.1113/jphysiol.2006.109389. View

5.
Mantovani J, Roy R . Re-evaluating the general(ized) roles of AMPK in cellular metabolism. FEBS Lett. 2010; 585(7):967-72. DOI: 10.1016/j.febslet.2010.12.015. View