REFERENCES

1. Cozzo AJ, Fuller AM, Makowski L. Contribution of adipose tissue to development of cancer. Compr Physiol 2018;8:237-82.

2. Alwarawrah Y, Kiernan K, MacIver NJ. Changes in nutritional status impact immune cell metabolism and function. Front Immunol 2018;9:1055.

3. Martinez-Useros J, Garcia-Foncillas J. Obesity and colorectal cancer: molecular features of adipose tissue. J Transl Med 2016;14:21.

4. Matafome P, Seica R. Function and dysfunction of adipose tissue. Adv Neurobiol 2017;19:3-31.

5. Longo M, Zatterale F, Naderi J, Parrillo L, Formisano P, et al. Adipose Tissue dysfunction as determinant of obesity-associated metabolic complications. Int J Mol Sci 2019;20.

6. Guzik TJ, Skiba DS, Touyz RM, Harrison DG. The role of infiltrating immune cells in dysfunctional adipose tissue. Cardiovasc Res 2017;113:1009-23.

7. Del Corno M, Conti L, Gessani S. Innate lymphocytes in adipose tissue homeostasis and their alterations in obesity and colorectal cancer. Front Immunol 2018;9:2556.

8. Meiliana A, Dewi NM, Wijaya A. Adipose tissue, inflammation (meta-inflammation) and obesity management. Indones Biomed J 2015;7:129-46.

9. Masoodi M, Kuda O, Rossmeisl M, Flachs P, Kopecky J. Lipid signaling in adipose tissue: connecting inflammation & metabolism. Biochim Biophys Acta 2015;1851:503-18.

10. Saini RK, Keum YS. Omega-3 and omega-6 polyunsaturated fatty acids: dietary sources, metabolism, and significance - a review. Life Sci 2018;203:255-67.

11. Calder PC. Functional roles of fatty acids and their effects on human health. JPEN J Parenter Enteral Nutr 2015;39:18S-32.

12. Ralston JC, Lyons CL, Kennedy EB, Kirwan AM, Roche HM. Fatty acids and NLRP3 inflammasome-mediated inflammation in metabolic tissues. Annu Rev Nutr 2017;37:77-102.

13. Rocha DM, Bressan J, Hermsdorff HH. The role of dietary fatty acid intake in inflammatory gene expression: a critical review. Sao Paulo Med J 2017;135:157-68.

14. van der Beek CM, Dejong CHC, Troost FJ, Masclee AAM, Lenaerts K. Role of short-chain fatty acids in colonic inflammation, carcinogenesis, and mucosal protection and healing. Nutr Rev 2017;75:286-305.

15. Hodson L, Skeaff CM, Fielding BA. Fatty acid composition of adipose tissue and blood in humans and its use as a biomarker of dietary intake. Prog Lipid Res 2008;47:348-80.

16. Vaittinen M, Mannisto V, Kakela P, Agren J, Tiainen M, et al. Interorgan cross talk between fatty acid metabolism, tissue inflammation, and FADS2 genotype in humans with obesity. Obesity (Silver Spring) 2017;25:545-52.

17. Garaulet M, Perez-Llamas F, Perez-Ayala M, Martinez P, de Medina FS, et al. Site-specific differences in the fatty acid composition of abdominal adipose tissue in an obese population from a Mediterranean area: relation with dietary fatty acids, plasma lipid profile, serum insulin, and central obesity. Am J Clin Nutr 2001;74:585-91.

18. Richelsen B, Pedersen SB, Moller-Pedersen T, Bak JF. Regional differences in triglyceride breakdown in human adipose tissue: effects of catecholamines, insulin, and prostaglandin E2. Metabolism 1991;40:990-6.

19. Raclot T, Groscolas R. Differential mobilization of white adipose tissue fatty acids according to chain length, unsaturation, and positional isomerism. J Lipid Res 1993;34:1515-26.

20. Merino DM, Ma DW, Mutch DM. Genetic variation in lipid desaturases and its impact on the development of human disease. Lipids Health Dis 2010;9:63.

21. Wajchenberg BL. Subcutaneous and visceral adipose tissue: their relation to the metabolic syndrome. Endocr Rev 2000;21:697-738.

22. Ibrahim MM. Subcutaneous and visceral adipose tissue: structural and functional differences. Obes Rev 2010;11:11-8.

23. Mathis D. Immunological goings-on in visceral adipose tissue. Cell Metab 2013;17:851-9.

24. Esser N, Legrand-Poels S, Piette J, Scheen AJ, Paquot N. Inflammation as a link between obesity, metabolic syndrome and type 2 diabetes. Diabetes Res Clin Pract 2014;105:141-50.

25. Keane KN, Calton EK, Carlessi R, Hart PH, Newsholme P. The bioenergetics of inflammation: insights into obesity and type 2 diabetes. Eur J Clin Nutr 2017;71:904-12.

26. D'Archivio M, Scazzocchio B, Giammarioli S, Fiani ML, Vari R, et al. omega3-PUFAs exert anti-inflammatory activity in visceral adipocytes from colorectal cancer patients. PLoS One 2013;8:e77432.

27. Del Corno M, D'Archivio M, Conti L, Scazzocchio B, Vari R, et al. Visceral fat adipocytes from obese and colorectal cancer subjects exhibit distinct secretory and omega6 polyunsaturated fatty acid profiles and deliver immunosuppressive signals to innate immunity cells. Oncotarget 2016;7:63093-105.

28. Gong J, Campos H, McGarvey S, Wu Z, Goldberg, et al. Genetic variation in stearoyl-CoA desaturase 1 is associated with metabolic syndrome prevalence in Costa Rican adults. J Nutr 2011;141:2211-8.

29. Scazzocchio B, Vari R, Silenzi A, Giammarioli S, Masotti A, et al. Dietary habits affect fatty acid composition of visceral adipose tissue in subjects with colorectal cancer or obesity. Eur J Nutr 2019; doi: 10.1007/s00394-019-02003-7.

30. May-Wilson S, Sud A, Law PJ, Palin K, Tuupanen S, et al. Pro-inflammatory fatty acid profile and colorectal cancer risk: A Mendelian randomisation analysis. Eur J Cancer 2017;84:228-38.

31. Iggman D, Arnlov J, Cederholm T, Riserus U. Association of adipose tissue fatty acids with cardiovascular and all-cause mortality in elderly men. JAMA Cardiol 2016;1:745-53.

32. van Dijk SJ, Feskens EJ, Bos MB, Hoelen DW, Heijligenberg R, et al. A saturated fatty acid-rich diet induces an obesity-linked proinflammatory gene expression profile in adipose tissue of subjects at risk of metabolic syndrome. Am J Clin Nutr 2009;90:1656-64.

33. Garaulet M, Hernandez-Morante JJ, Tebar FJ, Zamora S. Relation between degree of obesity and site-specific adipose tissue fatty acid composition in a Mediterranean population. Nutrition 2011;27:170-6.

34. Phinney SD, Tang AB, Johnson SB, Holman RT. Reduced adipose 18:3 omega 3 with weight loss by very low calorie dieting. Lipids 1990;25:798-806.

35. Hudgins LC, Hirsch J. Changes in abdominal and gluteal adipose-tissue fatty acid compositions in obese subjects after weight gain and weight loss. Am J Clin Nutr 1991;53:1372-7.

36. Tang AB, Nishimura KY, Phinney SD. Preferential reduction in adipose tissue alpha-linolenic acid (18:3 omega 3) during very low calorie dieting despite supplementation with 18:3 omega 3. Lipids 1993;28:987-93.

37. Kunesova M, Hlavaty P, Tvrzicka E, Stankova B, Kalouskova P, et al. Fatty acid composition of adipose tissue triglycerides after weight loss and weight maintenance: the DIOGENES study. Physiol Res 2012;61:597-607.

38. Walle P, Takkunen M, Mannisto V, Vaittinen M, Kakela P, et al. Alterations in fatty acid metabolism in response to obesity surgery combined with dietary counseling. Nutr Diabetes 2017;7:e285.

39. Neacsu O, Cleveland K, Xu H, Tchkonia TT, Kirkland JL, et al. IGF-I attenuates FFA-induced activation of JNK1 phosphorylation and TNFalpha expression in human subcutaneous preadipocytes. Obesity (Silver Spring) 2013;21:1843-9.

40. Youssef-Elabd EM, McGee KC, Tripathi G, Aldaghri N, Abdalla MS, et al. Acute and chronic saturated fatty acid treatment as a key instigator of the TLR-mediated inflammatory response in human adipose tissue, in vitro. J Nutr Biochem 2012;23:39-50.

41. Murumalla RK, Gunasekaran MK, Padhan JK, Bencharif K, Gence L, et al. Fatty acids do not pay the toll: effect of SFA and PUFA on human adipose tissue and mature adipocytes inflammation. Lipids Health Dis 2012;11:175.

42. Ferguson JF, Roberts-Lee K, Borcea C, Smith HM, Midgette Y, et al. Omega-3 polyunsaturated fatty acids attenuate inflammatory activation and alter differentiation in human adipocytes. J Nutr Biochem 2019;64:45-9.

43. Lee KR, Midgette Y, Shah R. Fish oil derived omega 3 fatty acids suppress adipose NLRP3 inflammasome signaling in human obesity. J Endocr Soc 2019;3:504-15.

44. Donninelli G, Del Corno M, Pierdominici M, Scazzocchio B, Vari R, et al. Distinct blood and visceral adipose tissue regulatory t cell and innate lymphocyte profiles characterize obesity and colorectal cancer. Front Immunol 2017;8:643.

45. Del Corno M, Baldassarre A, Calura E, Conti L, Martini P, et al. Transcriptome profiles of human visceral adipocytes in obesity and colorectal cancer unravel the effects of body mass index and polyunsaturated fatty acids on genes and biological processes related to tumorigenesis. Front Immunol 2019;10:265.

46. Ralston JC, Matravadia S, Gaudio N, Holloway GP, Mutch DM. Polyunsaturated fatty acid regulation of adipocyte FADS1 and FADS2 expression and function. Obesity (Silver Spring) 2015;23:725-8.

47. Pietraszek A, Gregersen S, Hermansen K. Acute effects of dietary fat on inflammatory markers and gene expression in first-degree relatives of type 2 diabetes patients. Rev Diabet Stud 2011;8:477-89.

48. Meneses ME, Camargo A, Perez-Martinez P, Delgado-Lista J, Cruz-Teno C, et al. Postprandial inflammatory response in adipose tissue of patients with metabolic syndrome after the intake of different dietary models. Mol Nutr Food Res 2011;55:1759-70.

49. Calder PC. Omega-3 fatty acids and inflammatory processes: from molecules to man. Biochem Soc Trans 2017;45:1105-15.

50. Itariu BK, Zeyda M, Hochbrugger EE, Neuhofer A, Prager G, et al. Long-chain n-3 PUFAs reduce adipose tissue and systemic inflammation in severely obese nondiabetic patients: a randomized controlled trial. Am J Clin Nutr 2012;96:1137-49.

51. de Mello VD, Dahlman I, Lankinen M, Kurl S, Pitkanen L, et al. The effect of different sources of fish and camelina sativa oil on immune cell and adipose tissue mRNA expression in subjects with abnormal fasting glucose metabolism: a randomized controlled trial. Nutr Diabetes 2019;9:1.

52. Ferguson JF, Xue C, Hu Y, Li M, Reilly MP. Adipose tissue RNASeq reveals novel gene-nutrient interactions following n-3 PUFA supplementation and evoked inflammation in humans. J Nutr Biochem 2016;30:126-32.

53. Shah RD, Xue C, Zhang H, Tuteja S, Li M, et al. Expression of calgranulin genes S100A8, S100A9 and S100A12 is modulated by n-3 PUFA during inflammation in adipose tissue and mononuclear cells. Plos One 2017;12:e0169614.

54. Kratz M, Kuzma JN, Hagman DK, van Yserloo B, Matthys CC, et al. n3 PUFAs do not affect adipose tissue inflammation in overweight to moderately obese men and women. J Nutr 2013;143:1340-7.

55. Holt PR, Aleman JO, Walker JM, Jiang CS, Liang Y, et al. Docosahexaenoic acid supplementation is not anti-inflammatory in adipose tissue of healthy obese postmenopausal women. Int J Nutr 2017;1:31-49.

56. Huerta AE, Prieto-Hontoria PL, Fernandez-Galilea M, Escote X, Martinez JA, et al. Effects of dietary supplementation with EPA and/or alpha-lipoic acid on adipose tissue transcriptomic profile of healthy overweight/obese women following a hypocaloric diet. Biofactors 2017;43:117-31.

57. Plat J, Jellema A, Ramakers J, Mensink RP. Weight loss, but not fish oil consumption, improves fasting and postprandial serum lipids, markers of endothelial function, and inflammatory signatures in moderately obese men. J Nutr 2007;137:2635-40.

58. Klingel SL, Valsesia A, Astrup A, Kunesova M, Saris WHM, et al. FADS1 genotype is distinguished by human subcutaneous adipose tissue fatty acids, but not inflammatory gene expression. Int J Obes (Lond) 2018; doi: 10.1038/s41366-018-0169-z.

59. Gonzalez-Plaza JJ, Gutierrez-Repiso C, Garcia-Serrano S, Rodriguez-Pacheco F, Garrido-Sanchez L, et al. Effect of Roux-en-Y gastric bypass-induced weight loss on the transcriptomic profiling of subcutaneous adipose tissue. Surg Obes Relat Dis 2016;12:257-63.

60. Clement K, Viguerie N, Poitou C, Carette C, Pelloux V, et al. Weight loss regulates inflammation-related genes in white adipose tissue of obese subjects. Faseb J 2004;18:1657-69.

61. Capel F, Viguerie N, Vega N, Dejean S, Arner P, et al. Contribution of energy restriction and macronutrient composition to changes in adipose tissue gene expression during dietary weight-loss programs in obese women. J Clin Endocrinol Metab 2008;93:4315-22.

62. Viguerie N, Vidal H, Arner P, Holst C, Verdich C, et al. Adipose tissue gene expression in obese subjects during low-fat and high-fat hypocaloric diets. Diabetologia 2005;48:123-31.

63. Aleman JO, Iyengar NM, Walker JM, Milne GL, Da Rosa JC, et al. Effects of rapid weight loss on systemic and adipose tissue inflammation and metabolism in obese postmenopausal women. J Endocr Soc 2017;1:625-37.

64. Dahlman I, Linder K, Arvidsson Nordstrom E, Andersson I, Liden J, et al. Changes in adipose tissue gene expression with energy-restricted diets in obese women. Am J Clin Nutr 2005;81:1275-85.

65. Jordan BF, Gourgue F, Cani PD. Adipose tissue metabolism and cancer progression: novel insights from gut microbiota? Curr Pathobiol Rep 2017;5:315-22.

66. Currie E, Schulze A, Zechner R, Walther TC, Farese RV Jr. Cellular fatty acid metabolism and cancer. Cell Metab 2013;18:153-61.

67. Balaban S, Shearer RF, Lee LS, van Geldermalsen M, Schreuder M, et al. Adipocyte lipolysis links obesity to breast cancer growth: adipocyte-derived fatty acids drive breast cancer cell proliferation and migration. Cancer Metab 2017;5:1.

68. Wen YA, Xing X, Harris JW, Zaytseva YY, Mitov MI, et al. Adipocytes activate mitochondrial fatty acid oxidation and autophagy to promote tumor growth in colon cancer. Cell Death Dis 2017;8:e2593.

69. Nkondjock A, Shatenstein B, Maisonneuve P, Ghadirian P. Specific fatty acids and human colorectal cancer: an overview. Cancer Detect Prev 2003;27:55-66.

70. Pakiet A, Kobiela J, Stepnowski P, Sledzinski T, Mika A. Changes in lipids composition and metabolism in colorectal cancer: a review. Lipids Health Dis 2019;18:29.

71. Berry EM, Zimmerman J, Peser M, Ligumsky M. Dietary fat, adipose tissue composition, and the development of carcinoma of the colon. J Natl Cancer Inst 1986;77:93-7.

72. Neoptolemos JP, Clayton H, Heagerty AM, Nicholson MJ, Johnson B, et al. Dietary fat in relation to fatty acid composition of red cells and adipose tissue in colorectal cancer. Br J Cancer 1988;58:575-9.

73. Okuno M, Hamazaki K, Ogura T, Kitade H, Matsuura T, et al. Abnormalities in fatty acids in plasma, erythrocytes and adipose tissue in Japanese patients with colorectal cancer. In Vivo 2013;27:203-10.

74. Giuliani A, Ferrara F, Scimo M, Angelico F, Olivieri L, et al. Adipose tissue fatty acid composition and colon cancer: a case-control study. Eur J Nutr 2014;53:1029-37.

75. Cottet V, Vaysse C, Scherrer ML, Ortega-Deballon P, Lakkis Z, et al. Fatty acid composition of adipose tissue and colorectal cancer: a case-control study. Am J Clin Nutr 2015;101:192-201.

76. Mosconi E, Minicozzi A, Marzola P, Cordiano C, Sbarbati A. (1) H-MR spectroscopy characterization of the adipose tissue associated with colorectal tumor. J Magn Reson Imaging 2014;39:469-74.

77. Wilczek MM, Olszewski R, Krupienicz A. Trans-fatty acids and cardiovascular disease: urgent need for legislation. Cardiology 2017;138:254-8.

78. Bakker N, Van’t Veer P, Zock PL. Adipose fatty acids and cancers of the breast, prostate and colon: an ecological study. EURAMIC Study Group. Int J Cancer 1997;72:587-91.

79. Dela Cruz M, Wali RK, Bianchi LK, Radosevich AJ, Crawford SE, et al. Colonic mucosal fatty acid synthase as an early biomarker for colorectal neoplasia: modulation by obesity and gender. Cancer Epidemiol Biomarkers Prev 2014;23:2413-21.

80. Notarnicola M, Messa C, Caruso MG. A significant role of lipogenic enzymes in colorectal cancer. Anticancer Res 2012;32:2585-90.

81. Ortega FJ, Mayas D, Moreno-Navarrete JM, Catalan V, Gomez-Ambrosi J, et al. The gene expression of the main lipogenic enzymes is downregulated in visceral adipose tissue of obese subjects. Obesity (Silver Spring) 2010;18:13-20.

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