Hepatic Dendritic Cells in the Development and Progression of Metabolic Steatohepatitis.

Nahum Méndez-Sánchez, Jacqueline Córdova-Gallardo, Beatriz Barranco-Fragoso, Mohammed Eslam
Author Information
  1. Nahum Méndez-Sánchez: Faculty of Medicine, National Autonomous University of Mexico, Mexico City, Mexico.
  2. Jacqueline Córdova-Gallardo: Faculty of Medicine, National Autonomous University of Mexico, Mexico City, Mexico.
  3. Beatriz Barranco-Fragoso: Department of Gastroenterology, National Medical Center "20 Noviembre", Mexico City, Mexico.
  4. Mohammed Eslam: Storr Liver Centre, Westmead Institute for Medical Research, Westmead Hospital and University of Sydney, Sydney, NSW, Australia.

Abstract

Metabolic Associated Fatty liver disease (MAFLD) is a global health problem and represents the most common cause of chronic liver disease in the world. MAFLD spectrum goes from simple steatosis to cirrhosis, in between metabolic steatohepatitis with progressive fibrosis, which pathogenesis is not completely understood. Hence, the role of the immune system has become an important fact in the trigger of inflammatory cascades in metabolic steatohepatitis and in the activation of hepatic stellate cells (HSCs). Among, the more studied immune cells in the pathogenesis of MAFLD are macrophages, T cells, natural killer and dendritic cells. In particular, hepatic dendritic cells had recently attracted a special attention, with a dual role in the pathogenesis of MAFLD. These cells have the capacity to switch from a tolerant state to active state inducing an inflammatory cascade. Furthermore, these cells play a role in the lipid storage within the liver, having, thus providing a crucial nexus between inflammation and lipid metabolism. In this review, we will discuss the current knowledge on the dual role of dendritic cells in lipid accumulation, as wells as in the triggering of hepatic inflammation and hepatocytes cell death in metabolic steatohepatitis.

Keywords

References

  1. J Hepatol. 2014 May;60(5):1098-9 [PMID: 24418016]
  2. Cell Metab. 2013 Jul 2;18(1):106-17 [PMID: 23823481]
  3. Trends Endocrinol Metab. 2017 Apr;28(4):250-260 [PMID: 27986466]
  4. Gastroenterology. 2011 Oct;141(4):1249-53 [PMID: 21726509]
  5. Int J Mol Sci. 2018 Jul 13;19(7): [PMID: 30011790]
  6. Int Rev Cell Mol Biol. 2019;348:263-299 [PMID: 31810555]
  7. World J Clin Cases. 2018 Dec 6;6(15):922-930 [PMID: 30568947]
  8. Gastroenterology. 2016 Apr;150(4):956-67 [PMID: 26764184]
  9. J Hepatol. 2012 Jan;56(1):291-3 [PMID: 21741924]
  10. Am J Pathol. 2009 Oct;175(4):1473-82 [PMID: 19729473]
  11. Proc Natl Acad Sci U S A. 2002 Jan 8;99(1):351-8 [PMID: 11773639]
  12. Hepatology. 2013 Aug;58(2):589-602 [PMID: 23322710]
  13. J Leukoc Biol. 2007 Jun;81(6):1422-33 [PMID: 17332372]
  14. J Hepatol. 2018 Feb;68(2):268-279 [PMID: 29122391]
  15. Nat Rev Gastroenterol Hepatol. 2020 Jan;17(1):40-52 [PMID: 31641249]
  16. J Autoimmun. 2016 Jan;66:60-75 [PMID: 26358406]
  17. Nature. 1998 Mar 19;392(6673):245-52 [PMID: 9521319]
  18. Science. 2000 Jan 28;287(5453):664-6 [PMID: 10650002]
  19. World J Gastroenterol. 2010 Oct 7;16(37):4652-60 [PMID: 20872965]
  20. Liver Int. 2020 Jun;40(6):1254-1261 [PMID: 32301554]
  21. J Exp Med. 1993 Aug 1;178(2):509-19 [PMID: 8393477]
  22. PLoS One. 2018 Apr 3;13(4):e0195028 [PMID: 29614124]
  23. J Hepatol. 2013 Nov;59(5):1124-6 [PMID: 23727306]
  24. PLoS One. 2012;7(12):e52411 [PMID: 23285030]
  25. Hepatology. 2013 Dec;58(6):2163-75 [PMID: 23813862]
  26. JAMA. 2020 Mar 24;323(12):1175-1183 [PMID: 32207804]
  27. Am J Physiol Endocrinol Metab. 2018 Nov 1;315(5):E758-E770 [PMID: 30086648]
  28. J Hepatol. 2014 May;60(5):1090-6 [PMID: 24412603]
  29. Hepatol Int. 2020 Dec;14(6):889-919 [PMID: 33006093]
  30. Gastroenterology. 2020 May;158(7):1999-2014.e1 [PMID: 32044314]
  31. J Clin Invest. 2009 May;119(5):1335-49 [PMID: 19363291]
  32. Nat Cell Biol. 2011 Mar;13(3):184-90 [PMID: 21364565]
  33. Sci Rep. 2019 Oct 11;9(1):14702 [PMID: 31604965]
  34. J Clin Invest. 1999 Jul;104(2):173-80 [PMID: 10411546]
  35. J Immunol. 2015 Apr 1;194(7):3213-22 [PMID: 25712214]
  36. J Exp Med. 1994 Oct 1;180(4):1263-72 [PMID: 7523569]
  37. Front Immunol. 2015 Apr 20;6:179 [PMID: 25941527]
  38. Mol Cell Biol. 2006 Apr;26(8):3071-84 [PMID: 16581782]
  39. Hepatology. 2007 Dec;46(6):2021-31 [PMID: 18027875]
  40. PLoS One. 2012;7(10):e45078 [PMID: 23110043]
  41. Science. 2006 Apr 28;312(5773):572-6 [PMID: 16645094]
  42. Hepatology. 2019 Sep;70(3):1026-1037 [PMID: 30653691]
  43. Nat Rev Immunol. 2010 Nov;10(11):753-66 [PMID: 20972472]
  44. Cells. 2019 Sep 18;8(9): [PMID: 31540356]
  45. Lancet Gastroenterol Hepatol. 2021 Jan;6(1):73-79 [PMID: 33031758]
  46. J Exp Med. 2000 Feb 7;191(3):411-6 [PMID: 10662786]
  47. Int J Biochem Cell Biol. 2018 Feb;95:93-99 [PMID: 29288054]
  48. PLoS One. 2016 Jul 25;11(7):e0159524 [PMID: 27454866]
  49. J Exp Med. 2000 Mar 20;191(6):927-36 [PMID: 10727455]
  50. Eur J Immunol. 2004 Feb;34(2):355-65 [PMID: 14768040]
  51. Hepatol Int. 2013 Aug 30;7 Suppl 2:771-81 [PMID: 24587847]
  52. Gut. 2012 Mar;61(3):416-26 [PMID: 21813474]
  53. J Hepatol. 2020 Jul;73(1):202-209 [PMID: 32278004]
  54. J Immunol. 2001 Aug 1;167(3):1413-22 [PMID: 11466360]
  55. Hepatology. 2020 Aug;72(2):454-469 [PMID: 31782176]
  56. Hepatology. 2018 Apr;67(4):1499-1515 [PMID: 28921638]
  57. Cell Mol Immunol. 2007 Oct;4(5):321-8 [PMID: 17976311]
  58. Biomed Res Int. 2015;2015:768071 [PMID: 26339640]
  59. Front Immunol. 2018 Nov 09;9:2401 [PMID: 30473690]
  60. Hepatology. 2010 Jan;51(1):130-41 [PMID: 20034047]
  61. Gastroenterology. 2012 Nov;143(5):1158-1172 [PMID: 22982943]
  62. Nat Metab. 2019 Jun;1(6):604-614 [PMID: 31701087]
  63. J Hepatol. 2007 Sep;47(3):338-47 [PMID: 17467113]
  64. Ann Transl Med. 2020 Mar;8(6):400 [PMID: 32355844]
  65. J Mol Endocrinol. 2015 Dec;55(3):169-81 [PMID: 26464382]
  66. J Hepatol. 2017 Jun;66(6):1241-1250 [PMID: 28108233]
  67. Science. 2000 Apr 21;288(5465):522-7 [PMID: 10775112]
  68. Ann Hepatol. 2014 Mar-Apr;13(2):166-78 [PMID: 24552858]
  69. J Hepatol. 2014 Jan;60(1):135-42 [PMID: 23968887]
  70. Immunol Rev. 2010 Mar;234(1):317-34 [PMID: 20193028]
  71. F1000Res. 2020 Jan 28;9:56 [PMID: 32595949]
  72. Annu Rev Immunol. 2009;27:147-63 [PMID: 19302037]
  73. Hepatology. 2014 Jan;59(1):130-42 [PMID: 23832548]
  74. J Hepatol. 2014 Dec;61(6):1376-84 [PMID: 25064435]
  75. J Immunol. 2017 Mar 15;198(6):2223-2231 [PMID: 28264998]
  76. Lancet Gastroenterol Hepatol. 2020 Aug;5(8):713-715 [PMID: 32413341]
  77. Acta Biochim Pol. 2016;63(3):459-67 [PMID: 27262842]
  78. Liver Transpl. 2017 Nov;23(11):1433-1439 [PMID: 28752938]
  79. Mitochondrion. 2006 Feb;6(1):1-28 [PMID: 16406828]
  80. Ann Hepatol. 2020 May - Jun;19(3):227-229 [PMID: 32359519]
  81. Am J Physiol Endocrinol Metab. 2016 Apr 1;310(7):E484-94 [PMID: 26814015]
  82. J Hepatol. 2017 Jun;66(6):1120-1122 [PMID: 28237398]
  83. Nat Med. 2012 Sep;18(9):1407-12 [PMID: 22863787]
  84. J Clin Invest. 2016 Mar 1;126(3):859-64 [PMID: 26808498]
  85. Biochim Biophys Acta. 2013 Jul;1832(7):998-1004 [PMID: 23313573]
  86. Nature. 1995 May 11;375(6527):151-5 [PMID: 7753172]
  87. Dig Dis Sci. 2015 Nov;60(11):3340-50 [PMID: 26143342]
  88. J Hepatol. 2013 Sep;59(3):618-20 [PMID: 23669283]
  89. Cochrane Database Syst Rev. 2010 Jan 20;(1):CD007340 [PMID: 20091629]
  90. Eur J Immunol. 1997 Aug;27(8):1848-52 [PMID: 9295017]
  91. Gastroenterology. 2012 Oct;143(4):1061-72 [PMID: 22705178]
  92. Cell. 2001 Aug 10;106(3):255-8 [PMID: 11509172]
  93. Gastroenterology. 2012 Dec;143(6):1586-1596.e8 [PMID: 22960656]
  94. J Exp Med. 2001 Sep 17;194(6):769-79 [PMID: 11560993]
  95. Lancet Gastroenterol Hepatol. 2021 Jan;6(1):65-72 [PMID: 33181118]
  96. Clin Sci (Lond). 2015 Nov;129(9):797-808 [PMID: 26253086]
  97. Hepatology. 2010 Jun;51(6):1998-2007 [PMID: 20512988]
  98. Nat Rev Gastroenterol Hepatol. 2016 Feb;13(2):88-110 [PMID: 26758786]
  99. J Hepatol. 2020 Jul;73(1):220 [PMID: 32229039]
  100. Front Immunol. 2019 Oct 29;10:2393 [PMID: 31736936]
  101. Nat Rev Immunol. 2017 May;17(5):306-321 [PMID: 28317925]

MeSH Term

Animals
Dendritic Cells
Fatty Liver
Hepatic Stellate Cells
Humans
Inflammation
Lipid Metabolism
Liver
Macrophages

Word Cloud

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