Hypothalamic-pituitary-adrenal axis activation and glucocorticoid-responsive gene expression in skeletal muscle and liver of Apc mice

被引:24
作者
Martin, Agnes [1 ]
Castells, Josiane [1 ]
Allibert, Valentine [1 ]
Emerit, Andrea [2 ]
Zolotoff, Cindy [1 ]
Cardot-Ruffino, Victoire [3 ]
Gallot, Yann S. [4 ]
Vernus, Barbara [5 ]
Chauvet, Veronique [3 ]
Bartholin, Laurent [3 ]
Schaeffer, Laurent [2 ]
Durieux, Anne-Cecile [1 ]
Hourde, Christophe [6 ]
Favier, Francois B. [5 ]
Mazelin, Laetitia [2 ]
Freyssenet, Damien [1 ]
机构
[1] Univ Lyon, UJM St Etienne, Lab Interuniv Biol Motricite, EA7424, F-42023 St Etienne, France
[2] Univ Lyon, Inst NeuroMyoGene INMG, Univ Lyon 1, CNRS UMR 5310,INSERM,U1217, Lyon, France
[3] Univ Lyon, Ctr Leon Berard, Ctr Rech Cancerol Lyon CRCL, Univ Claude Bernard Lyon 1,INSERM 1052,CNRS 5286, Lyon, France
[4] Univ Evry, Univ Paris Saclay, IRBA, LBEPS, Evry, France
[5] Univ Montpellier, INRA, Dynam Musculaire & Metab, Montpellier, France
[6] Univ Savoie Mt Blanc, Lab Interuniv Biol Motricite, Le Bourget Du Lac, France
关键词
Cancer cachexia; Glucocorticoid; Hypothalamic-pituitary-adrenal axis; Liver; Metabolism; Skeletal muscle; CANCER CACHEXIA; HEPATIC GLUCONEOGENESIS; PROTEIN-TURNOVER; RECEPTOR; TISSUE; HYPERCATABOLISM; ADENOCARCINOMA; METABOLISM; INDUCTION; ATROPHY;
D O I
10.1002/jcsm.12939
中图分类号
R592 [老年病学]; C [社会科学总论];
学科分类号
03 ; 0303 ; 100203 ;
摘要
Background Cancer patients at advanced stages experience a severe depletion of skeletal muscle compartment together with a decrease in muscle function, known as cancer cachexia. Cachexia contributes to reducing quality of life, treatment efficiency, and lifespan of cancer patients. However, the systemic nature of the syndrome is poorly documented. Here, we hypothesize that glucocorticoids would be important systemic mediators of cancer cachexia. Methods To explore the role of glucocorticoids during cancer cachexia, biomolecular analyses were performed on several tissues (adrenal glands, blood, hypothalamus, liver, and skeletal muscle) collected from Apc(Min/+) male mice, a mouse model of intestine and colon cancer, aged of 13 and 23 weeks, and compared with wild type age-matched C57BL/6J littermates. Results Twenty-three-week-old Apc mice recapitulated important features of cancer cachexia including body weight loss (-16%, P < 0.0001), muscle atrophy (gastrocnemius muscle: -53%, P < 0.0001), and weakness (-50% in tibialis anterior muscle force, P < 0.0001), increased expression of atrogens (7-fold increase in MuRF1 transcript level, P < 0.0001) and down-regulation of Akt-mTOR pathway (3.3-fold increase in 4EBP1 protein content, P < 0.0001), together with a marked transcriptional rewiring of hepatic metabolism toward an increased expression of gluconeogenic genes (Pcx: +90%, Pck1: +85%), and decreased expression of glycolytic (Slc2a2: -40%, Gk: -30%, Pklr: -60%), ketogenic (Hmgcs2: -55%, Bdh1: -80%), lipolytic/fatty oxidation (Lipe: -50%, Mgll: -60%, Cpt2: -60%, Hadh: -30%), and lipogenic (Acly: -30%, Acacb: -70%, Fasn: -45%) genes. The hypothalamic pituitary-adrenal axis was activated, as evidenced by the increase in the transcript levels of genes encoding corticotropin-releasing hormone in the hypothalamus (2-fold increase, P < 0.01), adrenocorticotropic hormone receptor (3.4-fold increase, P < 0.001), and steroid biosynthesis enzymes (Cyp21a1, P < 0.0001, and Cyp11b1, P < 0.01) in the adrenal glands, as well as by the increase in corticosterone level in the serum (+73%, P < 0.05), skeletal muscle (+17%, P < 0.001), and liver (+24%, P < 0.05) of cachectic 23-week-old Apc mice. A comparative transcriptional analysis with dexamethasone-treated C57BL/6J mice indicated that the activation of the hypothalamic-pituitary-adrenal axis in 23-week-old Apc(Min/+) mice was significantly associated with the transcription of glucocorticoid-responsive genes in skeletal muscle (P < 0.05) and liver (P < 0.001). The transcriptional regulation of glucocorticoid-responsive genes was also observed in the gastrocnemius muscle of Lewis lung carcinoma tumour-bearing mice and in KPC mice (tibialis anterior muscle and liver). Conclusions These findings highlight the role of the hypothalamic-pituitary-adrenal-glucocorticoid pathway in the transcriptional regulation of skeletal muscle catabolism and hepatic metabolism during cancer cachexia. They also provide the paradigm for the design of new therapeutic strategies.
引用
收藏
页码:1686 / 1703
页数:18
相关论文
共 41 条
[1]   Orphan disease status of cancer cachexia in the USA and in the European Union: a systematic review [J].
Anker, Markus S. ;
Holcomb, Richard ;
Muscaritoli, Maurizio ;
von Haehling, Stephan ;
Haverkamp, Wilhelm ;
Jatoi, Aminah ;
Morley, John E. ;
Strasser, Florian ;
Landmesser, Ulf ;
Coats, Andrew J. S. ;
Anker, Stefan D. .
JOURNAL OF CACHEXIA SARCOPENIA AND MUSCLE, 2019, 10 (01) :22-34
[2]   Cancer-associated cachexia [J].
Baracos, Vickie E. ;
Martin, Lisa ;
Korc, Murray ;
Guttridge, Denis C. ;
Fearon, Kenneth C. H. .
NATURE REVIEWS DISEASE PRIMERS, 2018, 4
[3]   Identification of ubiquitin ligases required for skeletal muscle atrophy [J].
Bodine, SC ;
Latres, E ;
Baumhueter, S ;
Lai, VKM ;
Nunez, L ;
Clarke, BA ;
Poueymirou, WT ;
Panaro, FJ ;
Na, EQ ;
Dharmarajan, K ;
Pan, ZQ ;
Valenzuela, DM ;
DeChiara, TM ;
Stitt, TN ;
Yancopoulos, GD ;
Glass, DJ .
SCIENCE, 2001, 294 (5547) :1704-1708
[4]   Cancer- and endotoxin-induced cachexia require intact glucocorticoid signaling in skeletal muscle [J].
Braun, Theodore P. ;
Grossberg, Aaron J. ;
Krasnow, Stephanie M. ;
Levasseur, Peter R. ;
Szumowski, Marek ;
Zhu, Xin Xia ;
Maxson, Julia E. ;
Knoll, J. Gabriel ;
Barnes, Anthony P. ;
Marks, Daniel L. .
FASEB JOURNAL, 2013, 27 (09) :3572-3582
[5]   Regulation of mTOR function in response to hypoxia by REDD1 and the TSC1/TSC2 tumor suppressor complex [J].
Brugarolas, J ;
Lei, K ;
Hurley, RL ;
Manning, BD ;
Reiling, JH ;
Hafen, E ;
Witter, LA ;
Ellisen, LW ;
Kaelin, WG .
GENES & DEVELOPMENT, 2004, 18 (23) :2893-2904
[6]   TUMOR-NECROSIS-FACTOR-ALPHA MEDIATES CHANGES IN TISSUE PROTEIN-TURNOVER IN A RAT CANCER CACHEXIA MODEL [J].
COSTELLI, P ;
CARBO, N ;
TESSITORE, L ;
BAGBY, GJ ;
LOPEZSORIANO, FJ ;
ARGILES, JM ;
BACCINO, FM .
JOURNAL OF CLINICAL INVESTIGATION, 1993, 92 (06) :2783-2789
[7]   Understanding the mechanisms and treatment options in cancer cachexia [J].
Fearon, Kenneth ;
Arends, Jann ;
Baracos, Vickie .
NATURE REVIEWS CLINICAL ONCOLOGY, 2013, 10 (02) :90-99
[8]   Tumor-Induced IL-6 Reprograms Host Metabolism to Suppress Anti-tumor Immunity [J].
Flint, Thomas R. ;
Janowitz, Tobias ;
Connell, Claire M. ;
Roberts, Edward W. ;
Denton, Alice E. ;
Coll, Anthony P. ;
Jodrell, Duncan I. ;
Fearon, Douglas T. .
CELL METABOLISM, 2016, 24 (05) :672-684
[9]  
GOLDBERG AL, 1969, J BIOL CHEM, V244, P3223
[10]   Fenofibrate prevents skeletal muscle loss in mice with lung cancer [J].
Goncalves, Marcus D. ;
Hwang, Seo-Kyoung ;
Pauli, Chantal ;
Murphy, Charles J. ;
Cheng, Zhe ;
Hopkins, Benjamin D. ;
Wu, David ;
Loughran, Ryan M. ;
Emerling, Brooke M. ;
Zhang, Guoan ;
Fearon, Douglas T. ;
Cantley, Lewis C. .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2018, 115 (04) :E743-E752