Literature DB >> 25283328

Reduced signaling of PI3K-Akt and RAS-MAPK pathways is the key target for weight-loss-induced cancer prevention by dietary calorie restriction and/or physical activity.

Joseph Standard1, Yu Jiang1, Miao Yu1, Xiaoyu Su1, Zhihui Zhao2, Jianteng Xu1, Jie Chen1, Brenee King1, Lizhi Lu3, John Tomich4, Richard Baybutt5, Weiqun Wang6.   

Abstract

Weight control through either dietary calorie restriction (DCR) or exercise has been associated with cancer prevention in animal models. However, the underlying mechanisms are not fully defined. Bioinformatics using genomics, proteomics and lipidomics was employed to elucidate the molecular targets of weight control in a mouse skin cancer model. SENCAR mice were randomly assigned into four groups for 10 weeks: ad-libitum-fed sedentary control, ad-libitum-fed exercise (AE), exercise but pair-fed isocaloric amount of control (PE) and 20% DCR. Two hours after topical TPA treatment, skin epidermis was analyzed by Affymetrix for gene expression, DIGE for proteomics and lipidomics for phospholipids. Body weights were significantly reduced in both DCR and PE but not AE mice versus the control. Among 39,000 transcripts, 411, 67 and 110 genes were significantly changed in DCR, PE and AE, respectively. The expression of genes relevant to PI3K-Akt and Ras-MAPK signaling was effectively reduced by DCR and PE but not AE as measured through GenMAPP software. Proteomics analysis identified ~120 proteins, with 27 proteins significantly changed by DCR, including up-regulated apolipoprotein A-1, a key antioxidant protein that decreases Ras-MAPK activity. Of the total 338 phospholipids analyzed by lipidomics, 57 decreased by PE including 5 phophatidylinositol species that serve as PI3K substrates. Although a full impact has not been determined yet, it appears that the reduction of both Ras-MAPK and PI3K-Akt signaling pathways is a cancer preventive target that has been consistently demonstrated by three bioinformatics approaches.
Copyright © 2014 Elsevier Inc. All rights reserved.

Entities:  

Keywords:  Bioinformatics; Cancer prevention; Dietary calorie restriction; Exercise; Weigh control

Mesh:

Substances:

Year:  2014        PMID: 25283328      PMCID: PMC4252505          DOI: 10.1016/j.jnutbio.2014.07.010

Source DB:  PubMed          Journal:  J Nutr Biochem        ISSN: 0955-2863            Impact factor:   6.048


  37 in total

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Review 3.  Weight control, endocrine hormones and cancer prevention.

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Authors:  C Martins; B Kulseng; N A King; J J Holst; J E Blundell
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Review 8.  Generation and biological activities of oxidized phospholipids.

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9.  Effects of dietary calorie restriction or exercise on the PI3K and Ras signaling pathways in the skin of mice.

Authors:  Linglin Xie; Yu Jiang; Ping Ouyang; Jie Chen; Hieu Doan; Betty Herndon; Jessica E Sylvester; Ke Zhang; Agostino Molteni; Marie Reichle; Rongqing Zhang; Mark D Haub; Richard C Baybutt; Weiqun Wang
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Review 1.  Understanding the molecular mechanisms of cancer prevention by dietary phytochemicals: From experimental models to clinical trials.

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2.  Caloric restriction reduces the systemic progression of mouse AApoAII amyloidosis.

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3.  Dietary restriction protects against diethylnitrosamine-induced hepatocellular tumorigenesis by restoring the disturbed gene expression profile.

Authors:  Ting Duan; Wenjie Sun; Mohan Zhang; Juan Ge; Yansu He; Jun Zhang; Yifan Zheng; Wei Yang; Han-Ming Shen; Jun Yang; Xinqiang Zhu; Peilin Yu
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Review 4.  Impacts of exercise interventions on different diseases and organ functions in mice.

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Review 6.  Exercise and colorectal cancer: prevention and molecular mechanisms.

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7.  Discovery of exercise-related genes and pathway analysis based on comparative genomes of Mongolian originated Abaga and Wushen horse.

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8.  Calorie restriction for human aging: is there a potential benefit for cancer?

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9.  Exercise Activates p53 and Negatively Regulates IGF-1 Pathway in Epidermis within a Skin Cancer Model.

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  9 in total

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