How Machine Perfusion Ameliorates Hepatic Ischaemia Reperfusion Injury
Abstract
:1. Introduction
2. Ischaemia Reperfusion Injury
2.1. Reactive Oxygen Species
2.2. Hepatic Microcirculation
2.3. Cytokines
2.4. Eicosanoids
2.5. Kupffer Cells and Neutrophils
2.6. Complement
3. Machine Perfusion
3.1. Gene Expression
3.2. Autophagy
3.3. Hypothermic Oxygenated Machine Perfusion
3.4. Mitochondrial Respiratory Complex I
3.5. Nrf2-Antioxidant Response Element Signalling Pathway
3.6. Transcription Factor NF-κB
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Acknowledgments
Conflicts of Interest
References
- Millson, C.; Considine, A.; Cramp, M.E.; Holt, A.; Hubscher, S.; Hutchinson, J.; Jones, K.; Leithead, J.; Masson, S.; Menon, K.; et al. Adult liver transplantation: A UK clinical guideline—Part 1: Pre-operation. Frontline Gastroenterol. 2020, 11, 375–384. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Neuberger, J. Liver transplantation in the United Kingdom. Liver Transplant. 2016, 22, 1129–1135. [Google Scholar] [CrossRef]
- NHS Blood and Transplant. Annual Report on Liver Transplantation: Report for 2018/2019; NHS: London, UK, 2019. [Google Scholar]
- Parente, A.; Osei-Bordom, D.-C.; Ronca, V.; Perera, M.T.P.R.; Mirza, D. Organ Restoration with Normothermic Machine Perfusion and Immune Reaction. Front. Immunol. 2020, 11. [Google Scholar] [CrossRef] [PubMed]
- Chouchani, E.T.; Pell, V.R.; Gaude, E.; Aksentijević, D.; Sundier, S.Y.; Robb, E.L.; Logan, A.; Nadtochiy, S.M.; Ord, E.N.J.; Smith, A.C.; et al. Ischaemic accumulation of succinate controls reperfusion injury through mitochondrial ROS. Nature 2014, 515, 431–435. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Mergental, H.; Laing, R.W.; Kirkham, A.J.; Perera, M.T.P.R.; Boteon, Y.L.; Attard, J.; Barton, D.; Curbishley, S.; Wilkhu, M.; Neil, D.A.H.; et al. Transplantation of discarded livers following viability testing with normothermic machine perfusion. Nat. Commun. 2020, 11. [Google Scholar] [CrossRef] [PubMed]
- Lembach, H.; Mckay, S.; Hann, A.; Carvalheiro, A.; Boteon, Y.; Alzoubi, M.; Kadam, P.; Dissanayake, B.; Bartlett, D.; Armstrong, M.; et al. Naples study (normothermic machine perfusion of the liver to enable the sickest first): Preliminary results. Transplantation 2020, 104, S248. [Google Scholar] [CrossRef]
- Sanketh Rampes, D.M. Hepatic Ischaemia-Reperfusion Injury in Liver Transplant Setting: Mechanisms and Protective Strategies. J. Biomed. Res. 2019, 33, 221–234. [Google Scholar] [CrossRef]
- Kalogeris, T.; Baines, C.P.; Krenz, M.; Korthuis, R.J. Cell biology of ischemia/reperfusion injury. Int. Rev. Cell Mol. Biol. 2012, 298, 229–317. [Google Scholar] [CrossRef] [Green Version]
- Nieuwenhuijs, V.B.; De Bruijn, M.T.; Padbury, R.T.; Barritt, G.J. Hepatic ischemia-reperfusion injury: Roles of Ca2+ and other intracellular mediators of impaired bile flow and hepatocyte damage. Dig. Dis. Sci. 2006, 51, 1087–1102. [Google Scholar] [CrossRef]
- Wang, H.G.; Pathan, N.; Ethell, I.M.; Krajewski, S.; Yamaguchi, Y.; Shibasaki, F.; McKeon, F.; Bobo, T.; Franke, T.F.; Reed, J.C. Ca2+-induced apoptosis through calcineurin dephosphorylation of BAD. Science 1999, 284, 339–343. [Google Scholar] [CrossRef]
- Jaeschke, H.; Lemasters, J.J. Apoptosis versus oncotic necrosis in hepatic ischemia/reperfusion injury. Gastroenterology 2003, 125, 1246–1257. [Google Scholar] [CrossRef]
- Granger, D.N.; Kvietys, P.R. Reperfusion injury and reactive oxygen species: The evolution of a concept. Redox Biol. 2015, 6, 524–551. [Google Scholar] [CrossRef] [Green Version]
- Schieber, M.; Chandel, N.S. ROS function in redox signaling and oxidative stress. Curr. Biol. 2014, 24, R453–R462. [Google Scholar] [CrossRef] [Green Version]
- Toyokuni, S. Reactive oxygen species-induced molecular damage and its application in pathology. Pathol. Int. 1999, 49, 91–102. [Google Scholar] [CrossRef]
- Vollmar, B.; Menger, M.D. The hepatic microcirculation: Mechanistic contributions and therapeutic targets in liver injury and repair. Physiol. Rev. 2009, 89, 1269–1339. [Google Scholar] [CrossRef]
- Förstermann, U.; Sessa, W.C. Nitric oxide synthases: Regulation and function. Eur. Heart J. 2012, 33, 829–837. [Google Scholar] [CrossRef] [Green Version]
- Sharma, J.N.; Al-Omran, A.; Parvathy, S.S. Role of nitric oxide in inflammatory diseases. Inflammopharmacology 2007, 15, 252–259. [Google Scholar] [CrossRef]
- Huk, I.; Nanobashvili, J.; Orljanski, W.; Neumayer, C.; Punz, A.; Holzaepfel, A.; Fuegl, A.; Mittlboeck, M.; Polterauer, P.; Roth, E. L-arginine treatment in ischemia/reperfusion injury. Cas. Lek. Ces. 1998, 137, 496–499. [Google Scholar] [PubMed]
- Siriussawakul, A.; Zaky, A.; Lang, J.D. Role of nitric oxide in hepatic ischemia-reperfusion injury. World J. Gastroenterol. 2010, 16, 6079–6086. [Google Scholar] [CrossRef] [PubMed]
- Ozaki, M.; Kawashima, S.; Hirase, T.; Yamashita, T.; Namiki, M.; Inoue, N.; Hirata, K.-I.; Yokoyama, M. Overexpression of Endothelial Nitric Oxide Synthase in Endothelial Cells Is Protective against Ischemia-Reperfusion Injury in Mouse Skeletal Muscle. Am. J. Pathol. 2002, 160, 1335–1344. [Google Scholar] [CrossRef] [Green Version]
- Barker, J.E.; Knight, K.R.; Romeo, R.; Hurley, J.V.; Morrison, W.A.; Stewart, A.G. Targeted disruption of the nitric oxide synthase 2 gene protects against ischaemia/reperfusion injury to skeletal muscle. J. Pathol. 2001, 194, 109–115. [Google Scholar] [CrossRef]
- Ota, T.; Hirai, R.; Urakami, A.; Soga, H.; Nawa, S.; Shimizu, N. Endothelin-1 levels in portal venous blood in relation to hepatic tissue microcirculation disturbance and hepatic cell injury after ischemia/reperfusion. Surg. Today 1997, 27, 313–320. [Google Scholar] [CrossRef]
- Uhlmann, D.; Uhlmann, S.; Spiegel, H.U. Endothelin/nitric oxide balance influences hepatic ischemia-reperfusion injury. J. Cardiovasc. Pharmacol. 2000, 36, S212–S214. [Google Scholar] [CrossRef] [PubMed]
- Kelly, D.M.; Shiba, H.; Nakagawa, S.; Irefin, S.; Eghtesad, B.; Quintini, C.; Aucejo, F.; Hashimoto, K.; Fung, J.J.; Miller, C. Hepatic blood flow plays an important role in ischemia-reperfusion injury. Liver Transpl. 2011, 17, 1448–1456. [Google Scholar] [CrossRef] [PubMed]
- Decker, K. Eicosanoids, signal molecules of liver cells. Semin. Liver Dis. 1985, 5, 175–190. [Google Scholar] [CrossRef] [PubMed]
- Kurebayashi, Y.; Honda, Y. Protection by 16,16-dimethyl prostaglandin E2 and dibutyryl cyclic AMP against complement-mediated hepatic necrosis in rats. Hepatology 1991, 14, 545–550. [Google Scholar] [CrossRef]
- Mizoguchi, Y.; Tsutsui, H.; Miyajima, K.; Sakagami, Y.; Seki, S.; Kobayashi, K.; Yamamoto, S.; Morisawa, S. The protective effects of prostaglandin E1 in an experimental massive hepatic cell necrosis model. Hepatology 1987, 7, 1184–1188. [Google Scholar] [CrossRef]
- Sikujara, O.; Monden, M.; Toyoshima, K.; Okamura, J.; Kosaki, G. Cytoprotective effect of prostaglandin I2 on ischemia-induced hepatic cell injury. Transplantation 1983, 36, 238–243. [Google Scholar] [CrossRef]
- Okabe, K.; Malchesky, P.S.; Nose, Y. Protective effect of prostaglandin I2 on hepatic mitochondrial function of the preserved rat liver. Tohoku J. Exp. Med. 1986, 150, 373–379. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Neumann, U.P.; Kaisers, U.; Langrehr, J.M.; Glanemann, M.; Müller, A.R.; Lang, M.; Jörres, A.; Settmacher, U.; Bechstein, W.O.; Neuhaus, P. Administration of prostacyclin after liver transplantation: A placebo controlled randomized trial. Clin. Transplant. 2000, 14, 70–74. [Google Scholar] [CrossRef] [PubMed]
- Shiratori, Y.; Kiriyama, H.; Fukushi, Y.; Nagura, T.; Takada, H.; Hai, K.; Kamii, K. Modulation of ischemia-reperfusion-induced hepatic injury by Kupffer cells. Dig. Dis. Sci. 1994, 39, 1265–1272. [Google Scholar] [CrossRef]
- Jaeschke, H.; Bautista, A.P.; Spolarics, Z.; Spitzer, J.J. Superoxide generation by neutrophils and Kupffer cells during in vivo reperfusion after hepatic ischemia in rats. J. Leukoc. Biol. 1992, 52, 377–382. [Google Scholar] [CrossRef] [PubMed]
- Fondevila, C.; Shen, X.D.; Tsuchihashi, S.; Uchida, Y.; Freitas, M.C.; Ke, B.; Busuttil, R.W.; Kupiec-Weglinski, J.W. The membrane attack complex (C5b-9) in liver cold ischemia and reperfusion injury. Liver Transpl. 2008, 14, 1133–1141. [Google Scholar] [CrossRef] [Green Version]
- Llacuna, L.; Marí, M.; Lluis, J.M.; García-Ruiz, C.; Fernández-Checa, J.C.; Morales, A. Reactive Oxygen Species Mediate Liver Injury Through Parenchymal Nuclear Factor-κB Inactivation in Prolonged Ischemia/Reperfusion. Am. J. Pathol. 2009, 174, 1776–1785. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Selzner, N.; Selzner, M.; Odermatt, B.; Tian, Y.; Van Rooijen, N.; Clavien, P.A. ICAM-1 triggers liver regeneration through leukocyte recruitment and Kupffer cell–dependent release of TNF-α/IL-6 in mice. Gastroenterology 2003, 124, 692–700. [Google Scholar] [CrossRef] [PubMed]
- Boury, N.M.; Czuprynski, C.J. Listeria monocytogenes infection increases neutrophil adhesion and damage to a murine hepatocyte cell line in vitro. Immunol. Lett. 1995, 46, 111–116. [Google Scholar] [CrossRef]
- Hanschen, M.; Zahler, S.; Krombach, F.; Khandoga, A. Reciprocal Activation between CD4+ T Cells and Kupffer Cells during Hepatic Ischemia-Reperfusion. Transplantation 2008, 86, 710–718. [Google Scholar] [CrossRef] [PubMed]
- Jaeschke, H. Mechanisms of Liver Injury. II. Mechanisms of neutrophil-induced liver cell injury during hepatic ischemia-reperfusion and other acute inflammatory conditions. Am. J. Physiol. Gastrointest. Liver Physiol. 2006, 290, G1083–G1088. [Google Scholar] [CrossRef] [Green Version]
- Leifeld, L.; Cheng, S.; Ramakers, J.; Dumoulin, F.L.; Trautwein, C.; Sauerbruch, T.; Spengler, U. Imbalanced intrahepatic expression of interleukin 12, interferon gamma, and interleukin 10 in fulminant hepatitis B. Hepatology 2002, 36, 1001–1008. [Google Scholar] [CrossRef] [PubMed]
- Lentsch, A.B.; Yoshidome, H.; Kato, A.; Warner, R.L.; Cheadle, W.G.; Ward, P.A.; Edwards, M.J. Requirement for interleukin-12 in the pathogenesis of warm hepatic ischemia/reperfusion injury in mice. Hepatology 1999, 30, 1448–1453. [Google Scholar] [CrossRef]
- Husted, T.L.; Blanchard, J.; Schuster, R.; Shen, H.; Lentsch, A.B. Potential role for IL-23 in hepatic ischemia/reperfusion injury. Inflamm. Res. 2006, 55, 177–178. [Google Scholar] [CrossRef]
- Colletti, L.M.; Remick, D.G.; Burtch, G.D.; Kunkel, S.L.; Strieter, R.M.; Campbell, D.A. Role of tumor necrosis factor-α in the pathophysiologic alterations after hepatic ischemia/reperfusion injury in the rat. J. Clin. Investig. 1990, 85, 1936–1943. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Colletti, L.M.; Kunkel, S.L.; Walz, A.; Burdick, M.D.; Kunkel, R.G.; Wilke, C.A.; Strieter, R.M. Chemokine expression during hepatic ischemia/reperfusion-induced lung injury in the rat. The role of epithelial neutrophil activating protein. J. Clin. Investig. 1995, 95, 134–141. [Google Scholar] [CrossRef]
- Colletti, L.M.; Cortis, A.; Lukacs, N.; Kunkel, S.L.; Green, M.; Strieter, R.M. Tumor necrosis factor up-regulates intercellular adhesion molecule 1, which is important in the neutrophil-dependent lung and liver injury associated with hepatic ischemia and reperfusion in the rat. Shock 1998, 10, 182–191. [Google Scholar] [CrossRef] [PubMed]
- Jaeschke, H.; Farhood, A.; Bautista, A.P.; Spolarics, Z.; Spitzer, J.J. Complement activates Kupffer cells and neutrophils during reperfusion after hepatic ischemia. Am. J. Physiol. 1993, 264, G801–G809. [Google Scholar] [CrossRef]
- Belzer, F.O.; Ashby, B.S.; Gulyassy, P.F.; Powell, M. Successful seventeen-hour preservation and transplantation of human-cadaver kidney. N. Engl. J. Med. 1968, 278, 608–610. [Google Scholar] [CrossRef]
- Eshmuminov, D.; Becker, D.; Bautista Borrego, L.; Hefti, M.; Schuler, M.J.; Hagedorn, C.; Muller, X.; Mueller, M.; Onder, C.; Graf, R.; et al. An integrated perfusion machine preserves injured human livers for 1 week. Nat. Biotechnol. 2020, 38, 189–198. [Google Scholar] [CrossRef]
- Laing, R.W.; Bhogal, R.H.; Wallace, L.; Boteon, Y.; Neil, D.A.H.; Smith, A.; Stephenson, B.T.F.; Schlegel, A.; Hübscher, S.G.; Mirza, D.F.; et al. The Use of an Acellular Oxygen Carrier in a Human Liver Model of Normothermic Machine Perfusion. Transplantation 2017, 101, 2746–2756. [Google Scholar] [CrossRef] [PubMed]
- Ravikumar, R.; Jassem, W.; Mergental, H.; Heaton, N.; Mirza, D.; Perera, M.T.P.R.; Quaglia, A.; Holroyd, D.; Vogel, T.; Coussios, C.C.; et al. Liver Transplantation AfterEx VivoNormothermic Machine Preservation: A Phase 1 (First-in-Man) Clinical Trial. Am. J. Transplant. 2016, 16, 1779–1787. [Google Scholar] [CrossRef]
- Peng, P.; Ding, Z.; He, Y.; Zhang, J.; Wang, X.; Yang, Z. Hypothermic Machine Perfusion Versus Static Cold Storage in Deceased Donor Kidney Transplantation: A Systematic Review and Meta-Analysis of Randomized Controlled Trials. Artif. Organs 2019, 43, 478–489. [Google Scholar] [CrossRef]
- Gallinat, A.; Moers, C.; Treckmann, J.; Smits, J.M.; Leuvenink, H.G.; Lefering, R.; van Heurn, E.; Kirste, G.R.; Squifflet, J.P.; Rahmel, A.; et al. Machine perfusion versus cold storage for the preservation of kidneys from donors ≥ 65 years allocated in the Eurotransplant Senior Programme. Nephrol. Dial. Transplant. 2012, 27, 4458–4463. [Google Scholar] [CrossRef] [Green Version]
- Gallinat, A.; Amrillaeva, V.; Hoyer, D.P.; Kocabayoglu, P.; Benko, T.; Treckmann, J.W.; Van Meel, M.; Samuel, U.; Minor, T.; Paul, A. Reconditioning by end-ischemic hypothermic in-house machine perfusion: A promising strategy to improve outcome in expanded criteria donors kidney transplantation. Clin. Transplant. 2017, 31, e12904. [Google Scholar] [CrossRef] [PubMed]
- Jochmans, I.; Moers, C.; Smits, J.M.; Leuvenink, H.G.; Treckmann, J.; Paul, A.; Rahmel, A.; Squifflet, J.P.; van Heurn, E.; Monbaliu, D.; et al. Machine perfusion versus cold storage for the preservation of kidneys donated after cardiac death: A multicenter, randomized, controlled trial. Ann. Surg. 2010, 252, 756–764. [Google Scholar] [CrossRef] [PubMed]
- Moers, C.; Smits, J.M.; Maathuis, M.-H.J.; Treckmann, J.; Van Gelder, F.; Napieralski, B.P.; Van Kasterop-Kutz, M.; Van Der Heide, J.J.H.; Squifflet, J.-P.; Van Heurn, E.; et al. Machine Perfusion or Cold Storage in Deceased-Donor Kidney Transplantation. N. Engl. J. Med. 2009, 360, 7–19. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Bellini, M.I.; Nozdrin, M.; Yiu, J.; Papalois, V. Machine Perfusion for Abdominal Organ Preservation: A Systematic Review of Kidney and Liver Human Grafts. J. Clin. Med. 2019, 8, 1221. [Google Scholar] [CrossRef] [Green Version]
- Dutkowski, P. First Comparison of Hypothermic Oxygenated PErfusion Versus Static Cold Storage of Human Donation After Cardiac Death Liver Transplants: An International-matched Case Analysis. Ann. Surg. 2015, 262, 770–771. [Google Scholar] [CrossRef] [Green Version]
- Guarrera, J.V.; Henry, S.D.; Samstein, B.; Odeh-Ramadan, R.; Kinkhabwala, M.; Goldstein, M.J.; Ratner, L.E.; Renz, J.F.; Lee, H.T.; Brown, J.R.S.; et al. Hypothermic Machine Preservation in Human Liver Transplantation: The First Clinical Series. Am. J. Transplant. 2010, 10, 372–381. [Google Scholar] [CrossRef]
- Guarrera, J.V.; Henry, S.D.; Samstein, B.; Reznik, E.; Musat, C.; Lukose, T.I.; Ratner, L.E.; Brown, R.S.; Kato, T.; Emond, J.C. Hypothermic Machine Preservation Facilitates Successful Transplantation of “Orphan” Extended Criteria Donor Livers. Am. J. Transplant. 2015, 15, 161–169. [Google Scholar] [CrossRef]
- Van Rijn, R.; Karimian, N.; Matton, A.P.M.; Burlage, L.C.; Westerkamp, A.C.; Van Den Berg, A.P.; De Kleine, R.H.J.; De Boer, M.T.; Lisman, T.; Porte, R.J. Dual hypothermic oxygenated machine perfusion in liver transplants donated after circulatory death. Br. J. Surg. 2017, 104, 907–917. [Google Scholar] [CrossRef] [Green Version]
- Nasralla, D.; Coussios, C.C.; Mergental, H.; Akhtar, M.Z.; Butler, A.J.; Ceresa, C.D.L.; Chiocchia, V.; Dutton, S.J.; García-Valdecasas, J.C.; Heaton, N.; et al. A randomized trial of normothermic preservation in liver transplantation. Nature 2018, 557, 50–56. [Google Scholar] [CrossRef]
- Ghinolfi, D.; Rreka, E.; De Tata, V.; Franzini, M.; Pezzati, D.; Fierabracci, V.; Masini, M.; Cacciatoinsilla, A.; Bindi, M.L.; Marselli, L.; et al. Pilot, Open, Randomized, Prospective Trial for Normothermic Machine Perfusion Evaluation in Liver Transplantation From Older Donors. Liver Transplant. 2019, 25, 436–449. [Google Scholar] [CrossRef] [PubMed]
- Muszynski, J.; Nateri, J.; Nicol, K.; Greathouse, K.; Hanson, L.; Hall, M. Immunosuppressive effects of red blood cells on monocytes are related to both storage time and storage solution. Transfusion 2012, 52, 794–802. [Google Scholar] [CrossRef] [Green Version]
- Jassem, W.; Xystrakis, E.; Ghnewa, Y.G.; Yuksel, M.; Pop, O.; Martinez-Llordella, M.; Jabri, Y.; Huang, X.; Lozano, J.J.; Quaglia, A.; et al. Normothermic Machine Perfusion (NMP) Inhibits Proinflammatory Responses in the Liver and Promotes Regeneration. Hepatology 2019, 70, 682–695. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Boteon, Y.L.; Laing, R.; Mergental, H.; Reynolds, G.M.; Mirza, D.F.; Afford, S.C.; Bhogal, R.H. Mechanisms of autophagy activation in endothelial cell and their targeting during normothermic machine liver perfusion. World J. Gastroenterol. 2017, 23, 8443–8451. [Google Scholar] [CrossRef] [Green Version]
- Glick, D.; Barth, S.; Macleod, K.F. Autophagy: Cellular and molecular mechanisms. J. Pathol. 2010, 221, 3–12. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Goldman, S.J.; Zhang, Y.; Jin, S. Autophagic Degradation of Mitochondria in White Adipose Tissue Differentiation. Antioxid. Redox Signal. 2011, 14, 1971–1978. [Google Scholar] [CrossRef] [Green Version]
- Yang, Z.; Klionsky, D.J. Mammalian autophagy: Core molecular machinery and signaling regulation. Curr. Opin. Cell Biol. 2010, 22, 124–131. [Google Scholar] [CrossRef] [Green Version]
- Bhogal, R.H.; Weston, C.J.; Curbishley, S.M.; Adams, D.H.; Afford, S.C. Autophagy. Autophagy 2012, 8, 545–558. [Google Scholar] [CrossRef] [Green Version]
- Op den Dries, S.; Karimian, N.; Sutton, M.E.; Westerkamp, A.C.; Nijsten, M.W.; Gouw, A.S.; Wiersema-Buist, J.; Lisman, T.; Leuvenink, H.G.; Porte, R.J. Ex vivo normothermic machine perfusion and viability testing of discarded human donor livers. Am. J. Transplant. 2013, 13, 1327–1335. [Google Scholar] [CrossRef]
- Ghislat, G.; Patron, M.; Rizzuto, R.; Knecht, E. Withdrawal of Essential Amino Acids Increases Autophagy by a Pathway Involving Ca2+/Calmodulin-dependent Kinase Kinase-β (CaMKK-β). J. Biol. Chem. 2012, 287, 38625–38636. [Google Scholar] [CrossRef] [Green Version]
- Liu, J.; Bi, X.; Chen, T.; Zhang, Q.; Wang, S.X.; Chiu, J.J.; Liu, G.S.; Zhang, Y.; Bu, P.; Jiang, F. Shear stress regulates endothelial cell autophagy via redox regulation and Sirt1 expression. Cell Death Dis. 2015, 6, e1827. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Guo, F.; Li, X.; Peng, J.; Tang, Y.; Yang, Q.; Liu, L.; Wang, Z.; Jiang, Z.; Xiao, M.; Ni, C.; et al. Autophagy Regulates Vascular Endothelial Cell eNOS and ET-1 Expression Induced by Laminar Shear Stress in an Ex Vivo Perfused System. Ann. Biomed. Eng. 2014, 42, 1978–1988. [Google Scholar] [CrossRef]
- Rockey, D.C. Endothelial dysfunction in advanced liver disease. Am. J. Med. Sci. 2015, 349, 6–16. [Google Scholar] [CrossRef]
- Imber, C.J.; Peter, S.D.; de Cenarruzabeitia, I.L.; Pigott, D.; James, T.; Taylor, R.; Mcguire, J.; Hughes, D.; Butler, A.; Rees, M.; et al. Advantages of normothermic perfusion over cold storage in liver preservation. Transplantation 2002, 73, 701–709. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Xu, H.; Berendsen, T.; Kim, K.; Soto-Gutiérrez, A.; Bertheium, F.; Yarmush, M.L.; Hertl, M. Excorporeal Normothermic Machine Perfusion Resuscitates Pig DCD Livers with Extended Warm Ischemia. J. Surg. Res. 2012, 173, e83–e88. [Google Scholar] [CrossRef] [Green Version]
- Muller, X.; Schlegel, A.; Würdinger, M.; Wendt, M.; Kron, P.; Eshmuminov, D.; Müllhaupt, B.; Clavien, P.A.; Dutkowski, P. Can hypothermic oxygenated perfusion (HOPE) rescue futile DCD liver grafts? HPB 2019, 21, 1156–1165. [Google Scholar] [CrossRef]
- Lazeyras, F.; Buhler, L.; Vallee, J.-P.; Hergt, M.; Nastasi, A.; Ruttimann, R.; Morel, P.; Buchs, J.-B. Detection of ATP by “in line” 31P magnetic resonance spectroscopy during oxygenated hypothermic pulsatile perfusion of pigs’ kidneys. Magn. Reson. Mater. Phys. Biol. Med. 2012, 25, 391–399. [Google Scholar] [CrossRef]
- Schlegel, A.; Kron, P.; Graf, R.; Clavien, P.A.; Dutkowski, P. Hypothermic Oxygenated Perfusion (HOPE) downregulates the immune response in a rat model of liver transplantation. Ann. Surg. 2014, 260, 931–937. [Google Scholar] [CrossRef] [Green Version]
- Schlegel, A.; Muller, X.; Mueller, M.; Stepanova, A.; Kron, P.; De Rougemont, O.; Muiesan, P.; Clavien, P.-A.; Galkin, A.; Meierhofer, D.; et al. Hypothermic oxygenated perfusion protects from mitochondrial injury before liver transplantation. EBioMedicine 2020, 60, 103014. [Google Scholar] [CrossRef]
- Zeng, X.; Wang, S.; Li, S.; Yang, Y.; Fang, Z.; Huang, H.; Wang, Y.; Fan, X.; Ye, Q. Hypothermic oxygenated machine perfusion alleviates liver injury in donation after circulatory death through activating autophagy in mice. Artif. Organs 2019, 43. [Google Scholar] [CrossRef]
- Sharma, L.; Lu, J.; Bai, Y. Mitochondrial Respiratory Complex I: Structure, Function and Implication in Human Diseases. Curr. Med. Chem. 2009, 16, 1266–1277. [Google Scholar] [CrossRef] [Green Version]
- Cecchini, G. Function and Structure of Complex II of the Respiratory Chain. Annu. Rev. Biochem. 2003, 72, 77–109. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Chouchani, E.T.; Pell, V.R.; James, A.M.; Work, L.M.; Saeb-Parsy, K.; Frezza, C.; Krieg, T.; Murphy, M.P. A Unifying Mechanism for Mitochondrial Superoxide Production during Ischemia-Reperfusion Injury. Cell Metab. 2016, 23, 254–263. [Google Scholar] [CrossRef] [Green Version]
- Kim, M.; Stepanova, A.; Niatsetskaya, Z.; Sosunov, S.; Arndt, S.; Murphy, M.P.; Galkin, A.; Ten, V.S. Attenuation of oxidative damage by targeting mitochondrial complex I in neonatal hypoxic-ischemic brain injury. Free. Radic. Biol. Med. 2018, 124, 517–524. [Google Scholar] [CrossRef] [PubMed]
- Stepanova, A.; Kahl, A.; Konrad, C.; Ten, V.; Starkov, A.S.; Galkin, A. Reverse electron transfer results in a loss of flavin from mitochondrial complex I: Potential mechanism for brain ischemia reperfusion injury. J. Cereb. Blood Flow Metab. 2017, 37, 3649–3658. [Google Scholar] [CrossRef] [Green Version]
- Nguyen, T.; Nioi, P.; Pickett, C.B. The Nrf2-Antioxidant Response Element Signaling Pathway and Its Activation by Oxidative Stress. J. Biol. Chem. 2009, 284, 13291–13295. [Google Scholar] [CrossRef] [Green Version]
- Xue, S.; He, W.; Zeng, X.; Tang, Z.; Feng, S.; Zhong, Z.; Xiong, Y.; Wang, Y.; Ye, Q. Hypothermic machine perfusion attenuates ischemia/reperfusion injury against rat livers donated after cardiac death by activating the Keap1/Nrf2-ARE signaling pathway. Mol. Med. Rep. 2018. [Google Scholar] [CrossRef] [Green Version]
- Chen, Z.; Hagler, J.; Palombella, V.J.; Melandri, F.; Scherer, D.; Ballard, D.; Maniatis, T. Signal-induced site-specific phosphorylation targets I kappa B α to the ubiquitin-proteasome pathway. Genes Dev. 1995, 9, 1586–1597. [Google Scholar] [CrossRef] [Green Version]
- Ghosh, S.; May, M.J.; Kopp, E.B. NF-kappa B and Rel proteins: Evolutionarily conserved mediators of immune responses. Annu. Rev. Immunol. 1998, 16, 225–260. [Google Scholar] [CrossRef]
- Li, J.D.; Peng, Y.; Peng, X.Y.; Li, Q.L.; Li, Q. Suppression of Nuclear Factor-κB Activity in Kupffer Cells Protects Rat Liver Graft From Ischemia-Reperfusion Injury. Transplant. Proc. 2010, 42, 1582–1586. [Google Scholar] [CrossRef]
- Luedde, T.; Assmus, U.; Wüstefeld, T.; Meyer Zu Vilsendorf, A.; Roskams, T.; Schmidt-Supprian, M.; Rajewsky, K.; Brenner, D.A.; Manns, M.P.; Pasparakis, M.; et al. Deletion of IKK2 in hepatocytes does not sensitize these cells to TNF-induced apoptosis but protects from ischemia/reperfusion injury. J. Clin. Investig. 2005, 115, 849–859. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Read, M.A.; Neish, A.S.; Luscinskas, F.W.; Palombella, V.J.; Maniatis, T.; Collins, T. The proteasome pathway is required for cytokine-induced endothelial-leukocyte adhesion molecule expression. Immunity 1995, 2, 493–506. [Google Scholar] [CrossRef] [Green Version]
- Oppenheim, J.J.; Zachariae, C.O.C.; Mukaida, N.; Matsushima, K. Properties of the Novel Proinflammatory Supergene “Intercrine” Cytokine Family. Annu. Rev. Immunol. 1991, 9, 617–648. [Google Scholar] [CrossRef] [PubMed]
- Ramachandran, S.; Liaw, J.M.; Jia, J.; Glasgow, S.C.; Liu, W.; Csontos, K.; Upadhya, G.A.; Mohanakumar, T.; Chapman, W.C. Ischemia–reperfusion injury in rat steatotic liver is dependent on NFκB P65 activation. Transpl. Immunol. 2012, 26, 201–206. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Zeng, C.; Hu, X.; He, W.; Wang, Y.; Li, L.; Xiong, Y.; Ye, Q. Hypothermic machine perfusion ameliorates inflammation during ischemia-reperfusion injury via sirtuin-1-mediated deacetylation of nuclear factor-κB p65 in rat livers donated after circulatory death. Mol. Med. Rep. 2017, 16, 8649–8656. [Google Scholar] [CrossRef] [Green Version]
- He, X.; Guo, Z.; Zhao, Q.; Ju, W.; Wang, D.; Wu, L.; Yang, L.; Ji, F.; Tang, Y.; Zhang, Z.; et al. The first case of ischemia-free organ transplantation in humans: A proof of concept. Am. J. Transplant. 2018, 18, 737–744. [Google Scholar] [CrossRef] [Green Version]
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Clarke, G.; Mergental, H.; Hann, A.; Perera, M.T.P.R.; Afford, S.C.; Mirza, D.F. How Machine Perfusion Ameliorates Hepatic Ischaemia Reperfusion Injury. Int. J. Mol. Sci. 2021, 22, 7523. https://doi.org/10.3390/ijms22147523
Clarke G, Mergental H, Hann A, Perera MTPR, Afford SC, Mirza DF. How Machine Perfusion Ameliorates Hepatic Ischaemia Reperfusion Injury. International Journal of Molecular Sciences. 2021; 22(14):7523. https://doi.org/10.3390/ijms22147523
Chicago/Turabian StyleClarke, George, Hynek Mergental, Angus Hann, M. Thamara P. R. Perera, Simon C. Afford, and Darius F. Mirza. 2021. "How Machine Perfusion Ameliorates Hepatic Ischaemia Reperfusion Injury" International Journal of Molecular Sciences 22, no. 14: 7523. https://doi.org/10.3390/ijms22147523
APA StyleClarke, G., Mergental, H., Hann, A., Perera, M. T. P. R., Afford, S. C., & Mirza, D. F. (2021). How Machine Perfusion Ameliorates Hepatic Ischaemia Reperfusion Injury. International Journal of Molecular Sciences, 22(14), 7523. https://doi.org/10.3390/ijms22147523