Literature DB >> 25457061

Adipose tissue lipolysis and energy metabolism in early cancer cachexia in mice.

Kara L Kliewer1, Jia-Yu Ke, Min Tian, Rachel M Cole, Rebecca R Andridge, Martha A Belury.   

Abstract

Cancer cachexia is a progressive metabolic disorder that results in depletion of adipose tissue and skeletal muscle. A growing body of literature suggests that maintaining adipose tissue mass in cachexia may improve quality-of-life and survival outcomes. Studies of lipid metabolism in cachexia, however, have generally focused on later stages of the disorder when severe loss of adipose tissue has already occurred. Here, we investigated lipid metabolism in adipose, liver and muscle tissues during early stage cachexia - before severe fat loss - in the colon-26 murine model of cachexia. White adipose tissue mass in cachectic mice was moderately reduced (34-42%) and weight loss was less than 10% of initial body weight in this study of early cachexia. In white adipose depots of cachectic mice, we found evidence of enhanced protein kinase A - activated lipolysis which coincided with elevated total energy expenditure and increased expression of markers of brown (but not white) adipose tissue thermogenesis and the acute phase response. Total lipids in liver and muscle were unchanged in early cachexia while markers of fatty oxidation were increased. Many of these initial metabolic responses contrast with reports of lipid metabolism in later stages of cachexia. Our observations suggest intervention studies to preserve fat mass in cachexia should be tailored to the stage of cachexia. Our observations also highlight a need for studies that delineate the contribution of cachexia stage and animal model to altered lipid metabolism in cancer cachexia and identify those that most closely mimic the human condition.

Entities:  

Keywords:  ACOX, acyl CoA oxidase; ATGL, adipose triglyceride lipase; COX, cytochrome c oxidase subunits; CPT, carnitine palmitoyltransferase; CRP, C-reactive protein; DIO, iodothyronine deiodinase; GYK, glycerokinase; H&E, hematoxylin and eosin; HSL, hormone sensitive lipase; LPL, lipoprotein lipase; MuRF, muscle ring finger protein; PGC, peroxisome proliferator activated receptor gamma coactivator; PKA, protein kinase A; PPAR, peroxisome proliferator activated receptor; PRDM, PR domain zinc finger protein; RER, respiratory exchange ratio.; TEE, total energy expenditure; UCP, uncoupling protein; colon-26 adenocarcinoma; eWAT, epididymal white adipose tissue; early cachexia; energy expenditure; iBAT, interscapular brown adipose tissue; iWAT, inguinal white adipose tissue; lipid metabolism; lipolysis; thermogenesis

Mesh:

Substances:

Year:  2014        PMID: 25457061      PMCID: PMC4622729          DOI: 10.4161/15384047.2014.987075

Source DB:  PubMed          Journal:  Cancer Biol Ther        ISSN: 1538-4047            Impact factor:   4.742


  67 in total

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2.  Morphology, metabolism, microcirculation, and strength of skeletal muscles in cancer-related cachexia.

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3.  Effects of experimental weight perturbation on skeletal muscle work efficiency, fuel utilization, and biochemistry in human subjects.

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4.  Validation of the Consensus-Definition for Cancer Cachexia and evaluation of a classification model--a study based on data from an international multicentre project (EPCRC-CSA).

Authors:  D Blum; G B Stene; T S Solheim; P Fayers; M J Hjermstad; V E Baracos; K Fearon; F Strasser; S Kaasa
Journal:  Ann Oncol       Date:  2014-02-20       Impact factor: 32.976

5.  The impact of body composition on the regulation of lipolysis during short-term fasting.

Authors:  S Klein; V R Young; G L Blackburn; B R Bistrian; R R Wolfe
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7.  Lipolysis and lipid oxidation in weight-losing cancer patients and healthy subjects.

Authors:  S D Zuijdgeest-van Leeuwen; J W van den Berg; J L Wattimena; A van der Gaast; G R Swart; J H Wilson; P C Dagnelie
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8.  Mild calorie restriction induces fat accumulation in female C57BL/6J mice.

Authors:  Xingsheng Li; Mark B Cope; Maria S Johnson; Daniel L Smith; Tim R Nagy
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9.  Adipose triglyceride lipase contributes to cancer-associated cachexia.

Authors:  Suman K Das; Sandra Eder; Silvia Schauer; Clemens Diwoky; Hannes Temmel; Barbara Guertl; Gregor Gorkiewicz; Kuppusamy P Tamilarasan; Pooja Kumari; Michael Trauner; Robert Zimmermann; Paul Vesely; Guenter Haemmerle; Rudolf Zechner; Gerald Hoefler
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10.  Cancer cachexia is associated with a decrease in skeletal muscle mitochondrial oxidative capacities without alteration of ATP production efficiency.

Authors:  Cloé M Julienne; Jean-François Dumas; Caroline Goupille; Michelle Pinault; Cécile Berri; Anne Collin; Sophie Tesseraud; Charles Couet; Stephane Servais
Journal:  J Cachexia Sarcopenia Muscle       Date:  2012-05-31       Impact factor: 12.910

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  27 in total

1.  The Colon-26 Carcinoma Tumor-bearing Mouse as a Model for the Study of Cancer Cachexia.

Authors:  Andrea Bonetto; Joseph E Rupert; Rafael Barreto; Teresa A Zimmers
Journal:  J Vis Exp       Date:  2016-11-30       Impact factor: 1.355

2.  Association of Weight Change after Colorectal Cancer Diagnosis and Outcomes in the Kaiser Permanente Northern California Population.

Authors:  Jeffrey A Meyerhardt; Candyce H Kroenke; Carla M Prado; Marilyn L Kwan; Adrienne Castillo; Erin Weltzien; Elizabeth M Cespedes Feliciano; Jingjie Xiao; Bette J Caan
Journal:  Cancer Epidemiol Biomarkers Prev       Date:  2016-12-16       Impact factor: 4.254

3.  Early-Onset Physical Inactivity and Metabolic Dysfunction in Tumor-bearing Mice Is Associated with Accelerated Cachexia.

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Review 4.  Cancer, Phase Angle and Sarcopenia: The Role of Diet in Connection with Lung Cancer Prognosis.

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Authors:  Mangala Hegde; Uzini Devi Daimary; Sosmitha Girisa; Aviral Kumar; Ajaikumar B Kunnumakkara
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6.  3D bioprinted white adipose model forin vitrostudy of cancer-associated cachexia induced adipose tissue remodeling.

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Review 8.  The role of adipose tissue in cancer-associated cachexia.

Authors:  Janina A Vaitkus; Francesco S Celi
Journal:  Exp Biol Med (Maywood)       Date:  2016-12-08

Review 9.  Understanding cachexia in the context of metastatic progression.

Authors:  Anup K Biswas; Swarnali Acharyya
Journal:  Nat Rev Cancer       Date:  2020-03-31       Impact factor: 60.716

10.  Interleukin-6 induces fat loss in cancer cachexia by promoting white adipose tissue lipolysis and browning.

Authors:  Jun Han; Qingyang Meng; Lei Shen; Guohao Wu
Journal:  Lipids Health Dis       Date:  2018-01-16       Impact factor: 3.876

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