Krill Oil Treatment Increases Distinct PUFAs and Oxylipins in Adipose Tissue and Liver and Attenuates Obesity-Associated Inflammation via Direct and Indirect Mechanisms

被引:26
作者
Gart, Eveline [1 ,2 ]
Salic, Kanita [1 ]
Morrison, Martine C. [1 ,2 ]
Caspers, Martien [3 ]
van Duyvenvoorde, Wim [1 ]
Heijnk, Marieke [4 ]
Giera, Martin [4 ]
Bobeldijk-Pastorova, Ivana [1 ]
Keijer, Jaap [3 ]
Storsve, Andreas B. [5 ]
Hals, Petter-Arnt [5 ]
Kleemann, Robert [6 ]
机构
[1] Netherlands Org Appl Sci Res TNO, Dept Metab Hlth, NL-2333 CK Leiden, Netherlands
[2] Wageningen Univ, Human & Anim Physiol, NL-6708 WD Wageningen, Netherlands
[3] Netherlands Org Appl Sci Res TNO, Dept Microbiol & Syst Biol, NL-3704 HE Zeist, Netherlands
[4] Leiden Univ Med Ctr, Ctr Prote & Metabol, Albinusdreef 2, NL-2333 ZA Leiden, Netherlands
[5] Aker Biomarine Antarct AS, Oksenoyveien 10, NO-1366 Lysaker, Norway
[6] Leiden Univ Med Ctr, Dept Vasc Surg, NL-2333 ZA Leiden, Netherlands
关键词
krill oil; polyunsaturated fatty acids (PUFAs); obesity; inflammation; oxylipins; adipogenesis; POLYUNSATURATED FATTY-ACIDS; INSULIN-RESISTANCE; LIPID MEDIATORS; NONALCOHOLIC STEATOHEPATITIS; RESOLUTION; EXPRESSION; FIBROSIS; RESOLVINS; ALPHA; CELLS;
D O I
10.3390/nu13082836
中图分类号
R15 [营养卫生、食品卫生]; TS201 [基础科学];
学科分类号
100403 ;
摘要
The development of obesity is characterized by the metabolic overload of tissues and subsequent organ inflammation. The health effects of krill oil (KrO) on obesity-associated inflammation remain largely elusive, because long-term treatments with KrO have not been performed to date. Therefore, we examined the putative health effects of 28 weeks of 3% (w/w) KrO supplementation to an obesogenic diet (HFD) with fat derived mostly from lard. The HFD with KrO was compared to an HFD control group to evaluate the effects on fatty acid composition and associated inflammation in epididymal white adipose tissue (eWAT) and the liver during obesity development. KrO treatment increased the concentrations of EPA and DHA and associated oxylipins, including 18-HEPE, RvE(2) and 14-HDHA in eWAT and the liver. Simultaneously, KrO decreased arachidonic acid concentrations and arachidonic-acid-derived oxylipins (e.g., HETEs, PGD(2), PGE(2), PGF(2)alpha, TXB2). In eWAT, KrO activated regulators of adipogenesis (e.g., PPAR gamma, CEBP alpha, KLF15, STAT5A), induced a shift towards smaller adipocytes and increased the total adipocyte numbers indicative for hyperplasia. KrO reduced crown-like structures in eWAT, and suppressed HFD-stimulated inflammatory pathways including TNF alpha and CCL2/MCP-1 signaling. The observed eWAT changes were accompanied by reduced plasma leptin and increased plasma adiponectin levels over time, and improved insulin resistance (HOMA-IR). In the liver, KrO suppressed inflammatory signaling pathways, including those controlled by IL-1 beta and M-CSF, without affecting liver histology. Furthermore, KrO deactivated hepatic REL-A/p65-NF-kappa B signaling, consistent with increased PPAR alpha protein expression and a trend towards an increase in IkB alpha. In conclusion, long-term KrO treatment increased several anti-inflammatory PUFAs and oxylipins in WAT and the liver. These changes were accompanied by beneficial effects on general metabolism and inflammatory tone at the tissue level. The stimulation of adipogenesis by KrO allows for safe fat storage and may, together with more direct PPAR-mediated anti-inflammatory mechanisms, attenuate inflammation.
引用
收藏
页数:21
相关论文
共 72 条
  • [1] Molecular circuits of resolution: Formation and actions of resolvins and protectins
    Bannenberg, GL
    Chiang, N
    Ariel, A
    Arita, M
    Tjonahen, E
    Gotlinger, KH
    Hong, S
    Serhan, CN
    [J]. JOURNAL OF IMMUNOLOGY, 2005, 174 (07) : 4345 - 4355
  • [2] BLIGH EG, 1959, CAN J BIOCHEM PHYS, V37, P911
  • [3] Apelin, a newly identified adipokine up-regulated by insulin and obesity
    Boucher, J
    Masri, B
    Daviaud, D
    Gesta, S
    Guigné, C
    Mazzucotelli, A
    Castan-Laurell, I
    Tack, I
    Knibiehler, B
    Carpéné, C
    Audigier, Y
    Saulnier-Blache, JS
    Valet, P
    [J]. ENDOCRINOLOGY, 2005, 146 (04) : 1764 - 1771
  • [4] Krill Products: An Overview of Animal Studies
    Burri, Lena
    Johnsen, Line
    [J]. NUTRIENTS, 2015, 7 (05): : 3300 - 3321
  • [5] Omega-3 polyunsaturated fatty acids and inflammatory processes: nutrition or pharmacology?
    Calder, Philip C.
    [J]. BRITISH JOURNAL OF CLINICAL PHARMACOLOGY, 2013, 75 (03) : 645 - 662
  • [6] Plasma eicosanoids as noninvasive biomarkers of liver fibrosis in patients with nonalcoholic steatohepatitis
    Caussy, Cyrielle
    Chuang, Jen-Chieh
    Billin, Andrew
    Hu, Tao
    Wang, Ya
    Subramanian, G. Mani
    Djedjos, C. Stephen
    Myers, Robert P.
    Dennis, Edward A.
    Loomba, Rohit
    [J]. THERAPEUTIC ADVANCES IN GASTROENTEROLOGY, 2020, 13
  • [7] Cluh plays a pivotal role during adipogenesis by regulating the activity of mitochondria
    Cho, Eugene
    Jung, Wonhee
    Joo, Hyun-Yoo
    Park, Eun-Ran
    Kim, Mi-Yeon
    Kim, Su-Bin
    Kim, Kwang Seok
    Lim, Young Bin
    Lee, Kee Ho
    Shin, Hyun Jin
    [J]. SCIENTIFIC REPORTS, 2019, 9 (1)
  • [8] Adipose Organ Development and Remodeling
    Cinti, Saverio
    [J]. COMPREHENSIVE PHYSIOLOGY, 2018, 8 (04) : 1357 - 1431
  • [9] Peroxisome proliferator-activated receptor α negatively regulates the vascular inflammatory gene response by negative cross-talk with transcription factors NF-κB and AP-1
    Delerive, P
    De Bosscher, K
    Besnard, S
    Vanden Berghe, W
    Peters, JM
    Gonzalez, FJ
    Fruchart, JC
    Tedgui, A
    Haegeman, G
    Staels, B
    [J]. JOURNAL OF BIOLOGICAL CHEMISTRY, 1999, 274 (45) : 32048 - 32054
  • [10] Interplay Between Human Adipocytes and T Lymphocytes in Obesity CCL20 as an Adipochemokine and T Lymphocytes as Lipogenic Modulators
    Duffaut, Carine
    Zakaroff-Girard, Alexia
    Bourlier, Virginie
    Decaunes, Pauline
    Maumus, Marie
    Chiotasso, Patrick
    Sengenes, Coralie
    Lafontan, Max
    Galitzky, Jean
    Bouloumie, Anne
    [J]. ARTERIOSCLEROSIS THROMBOSIS AND VASCULAR BIOLOGY, 2009, 29 (10) : 1608 - U484