Inflammatory Cytokines as Uremic Toxins: “Ni Son Todos Los Que Estan, Ni Estan Todos Los Que Son”
Abstract
1. Introduction
2. Inflammation in Chronic Kidney Disease
3. Cytokines and Uremic Toxins
4. Cytokines as Uremic Toxins
4.1. IL-1β and IL-18
4.2. IL-6
4.3. TNFα
4.4. IL-8
4.5. IL-10
5. Adipokines
5.1. Adiponectin
5.2. Leptin
5.3. Resistin
6. Which Additional Cytokines Should Be in Listed as Potential Uremic Toxins?
7. Conclusions and Future Directions
Acknowledgments
Conflicts of Interest
References
- Wang, H.; Naghavi, M.; Allen, C.; Barber, R.M.; Bhutta, Z.A.; Carter, A.; Casey, D.C.; Charlson, F.J.; Chen, A.Z.; Coates, M.M.; et al. Global, regional, and national life expectancy, all-cause mortality, and cause-specific mortality for 249 causes of death, 19802015: A systematic analysis for the Global Burden of Disease Study 2015. Lancet 2016, 388, 1459–1544. [Google Scholar] [CrossRef] [Scilit]
- Ortiz, A.; Covic, A.; Fliser, D.; Fouque, D.; Goldsmith, D.; Kanbay, M.; Mallamaci, F.; Massy, Z.A.; Rossignol, P.; Vanholder, R.; et al. Epidemiology, contributors to, and clinical trials of mortality risk in chronic kidney failure. Lancet 2014, 383, 1831–1843. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Vanholder, R.; Glorieux, G. The intestine and the kidneys: A bad marriage can be hazardous. Clin. Kidney J. 2015, 8, 168–179. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Elewa, U.; Sanchez-Niño, M.D.; Martin-Cleary, C.; Fernandez-Fernandez, B.; Egido, J.; Ortiz, A. Cardiovascular risk biomarkers in CKD: The inflammation link and the road less traveled. Int. Urol. Nephrol. 2012, 44, 1731–1744. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Heine, G.H.; Ortiz, A.; Massy, Z.A.; Lindholm, B.; Wiecek, A.; Martínez-Castelao, A.; Covic, A.; Goldsmith, D.; Süleymanlar, G.; London, G.M.; et al. Monocyte subpopulations and cardiovascular risk in chronic kidney disease. Nat. Rev. Nephrol. 2012, 8, 362–369. [Google Scholar] [PubMed]
- Sanchez-Niño, M.D.; Benito-Martin, A.; Gonalves, S.; Sanz, A.B.; Ucero, A.C.; Izquierdo, M.C.; Ramos, A.M.; Berzal, S.; Selgas, R.; Ruíz-Ortega, M.; et al. TNF superfamily: A growing saga of kidney injury modulators. Mediat. Inflamm. 2010, 2010, 182958. [Google Scholar]
- Vanholder, R.; De Smet, R.; Glorieux, G.; Argilés, A.; Baurmeister, U.; Brunet, P.; Clark, W.; Cohen, G.; De Deyn, P.P.; Deppisch, R.; et al. Review on uremic toxins: Classification, concentration, and interindividual variability. Kidney Int. 2003, 63, 1934–1943. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Uremic-Toxins.org. Data Base. Available online: http://www.uremic-toxins.org/DataBase.html (accessed on 20 October 2016).
- Duranton, F.; Cohen, G.; De Smet, R.; Rodriguez, M.; Jankowski, J.; Vanholder, R.; Argiles, A.; Abou Deif, O.; Drueke, T.; Baurmeister, U.; et al. Normal and Pathologic Concentrations of Uremic Toxins. J. Am. Soc. Nephrol. 2012, 23, 1258–1270. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Kohan, D.E. Role of collecting duct endothelin in control of renal function and blood pressure. Am. J. Physiol. Regul. Integr. Comp. Physiol. 2013, 305, R659–R668. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Sanz, A.B.; Sanchez-Niño, M.D.; Izquierdo, M.C.; Gonzalez-Espinoza, L.; Ucero, A.C.; Poveda, J.; Ruiz-Andres, O.; Ruiz-Ortega, M.; Selgas, R.; Egido, J.; Ortiz, A. Macrophages and recently identified forms of cell death. Int. Rev. Immunol. 2014, 33, 9–22. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Gupta, J.; Mitra, N.; Kanetsky, P.A.; Devaney, J.; Wing, M.R.; Reilly, M.; Shah, V.O.; Balakrishnan, V.S.; Guzman, N.J.; Girndt, M.; et al. Association between albuminuria, kidney function, and inflammatory biomarker profile in CKD in CRIC. Clin. J. Am. Soc. Nephrol. 2012, 7, 1938–1946. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Hung, A.M.; Ellis, C.D.; Shintani, A.; Booker, C.; Ikizler, T.A. IL-1β Receptor Antagonist Reduces Inflammation in Hemodialysis Patients. J. Am. Soc. Nephrol. 2011, 22, 437–442. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Tanino, A.; Okura, T.; Nagao, T.; Kukida, M.; Pei, Z.; Enomoto, D.; Miyoshi, K.; Okamura, H.; Higaki, J. Interleukin-18 deficiency protects against renal interstitial fibrosis in aldosterone/salt-treated mice. Clin. Sci. 2016, 130, 1727–1739. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Sahar, S.; Dwarakanath, R.S.; Reddy, M.A.; Lanting, L.; Todorov, I.; Natarajan, R. Angiotensin II enhances interleukin-18 mediated inflammatory gene expression in vascular smooth muscle cells: A novel cross-talk in the pathogenesis of atherosclerosis. Circ. Res. 2005, 96, 1064–1071. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Formanowicz, D.; Wanic-Kossowska, M.; Pawliczak, E.; Radom, M.; Formanowicz, P. Usefulness of serum interleukin-18 in predicting cardiovascular mortality in patients with chronic kidney disease—Systems and clinical approach. Sci. Rep. 2015, 5, 18332. [Google Scholar] [PubMed]
- Robertson, M.J.; Kline, J.; Bauman, J.; Gardner, O.; Jonak, Z.; Koch, K.M.; Murray, S.C.; Weisenbach, J.; Toso, J. A phase I trial evaluating the safety and biological activity of iboctadekin (rhIL-18) in combination with rituximab in patients with CD20+ B-cell non-Hodgkin’s lymphoma. J. Clin. Oncol. 2009, 27, 8566. [Google Scholar]
- Ren, H.; Zhang, Y.; Yao, Y.; Guo, T.; Wang, H.; Mei, H.; Hu, Y. Association between the interleukin-6 genetic polymorphism 174 G/C and thrombosis disorder risk. Medicine 2016, 95, e4030. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Nechemia-Arbely, Y.; Barkan, D.; Pizov, G.; Shriki, A.; Rose-John, S.; Galun, E.; Axelrod, J.H. IL-6/IL-6R axis plays a critical role in acute kidney injury. J. Am. Soc. Nephrol. 2008, 19, 1106–1115. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Pecoits-Filho, R. Interleukin-6 is an independent predictor of mortality in patients starting dialysis treatment. Nephrol. Dial. Transpl. 2002, 17, 1684–1688. [Google Scholar] [CrossRef] [Scilit]
- Memoli, B.; Grandaliano, G.; Soccio, M.; Postiglione, L.; Guida, B.; Bisesti, V.; Esposito, P.; Procino, A.; Marrone, D.; Michael, A. In Vivo Modulation of Soluble “Antagonistic” IL-6 Receptor Synthesis and Release in ESRD. J. Am. Soc. Nephrol. 2005, 16, 1099–1107. [Google Scholar] [PubMed]
- Sun, J.; Axelsson, J.; Machowska, A.; Heimbürger, O.; Bárány, P.; Lindholm, B.; Lindström, K.; Stenvinkel, P.; Qureshi, A.R. Biomarkers of Cardiovascular Disease and Mortality Risk in Patients with Advanced CKD. Clin. J. Am. Soc. Nephrol. 2016, 11, 1163–1172. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Petruzzelli, M.; Schweiger, M.; Schreiber, R.; Campos-Olivas, R.; Tsoli, M.; Allen, J.; Swarbrick, M.; Rose-John, S.; Rincon, M.; Robertson, G.; et al. A switch from white to brown fat increases energy expenditure in cancer-associated cachexia. Cell Metab. 2014, 20, 433–447. [Google Scholar] [PubMed]
- Stouthard, J.M.; Romijn, J.A.; Van der Poll, T.; Endert, E.; Klein, S.; Bakker, P.J.; Veenhof, C.H.; Sauerwein, H.P. Endocrinologic and metabolic effects of interleukin-6 in humans. Am. J. Physiol. 1995, 268, 813–819. [Google Scholar]
- Jones, S.A.; Scheller, J.; Rose-John, S. Science in medicine Therapeutic strategies for the clinical blockade of IL-6/gp130 signaling. Cell 2011, 121, 3375–3383. [Google Scholar]
- Swerdlow, D.I.; Holmes, M.V.; Kuchenbaecker, K.B.; Engmann, J.E.L.; Shah, T.; Sofat, R.; Guo, Y.; Chung, C.; Peasey, A.; Pfister, R.; et al. The interleukin-6 receptor as a target for prevention of coronary heart disease: A mendelian randomisation analysis. Lancet 2012, 379, 1214–1224. [Google Scholar] [PubMed]
- Ridker, P.M.; Lüscher, T.F. Anti-inflammatory therapies for cardiovascular disease. Eur. Heart J. 2014, 35, 1782–1791. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Ortiz, A.; Bustos, C.; Alonso, J.; Alcázar, R.; López-Armada, M.J.; Plaza, J.J.; González, E.; Egido, J. Involvement of tumor necrosis factor-alpha in the pathogenesis of experimental and human glomerulonephritis. Adv. Nephrol. Necker Hosp. 1995, 24, 53–77. [Google Scholar] [PubMed]
- Roach, D.R.; Bean, G.D.; Demangel, C.; France, M.P.; Briscoe, H.; Britton, W.J. TNF Regulates Chemokine Induction Essential for Cell Recruitment, Granuloma Formation, and Clearance of Mycobacterial Infection. J. Immunol. 2002, 168, 4620–4627. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Moreno, J.A.; Izquierdo, M.C.; Sanchez-Niño, M.D.; Suárez-Alvarez, B.; Lopez-Larrea, C.; Jakubowski, A.; Blanco, J.; Ramirez, R.; Selgas, R.; Ruiz-Ortega, M.; et al. The inflammatory cytokines TWEAK and TNFα reduce renal klotho expression through NFκB. J. Am. Soc. Nephrol. 2011, 22, 1315–1325. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Sakurai, Y.; Zhang, X.U.; Wolfe, R.R. Short-term effects of tumor necrosis factor on energy and substrate metabolism in dogs. J. Clin. Invest. 1993, 91, 2437–2445. [Google Scholar] [PubMed]
- Al-Aly, Z. Arterial calcification: A tumor necrosis factor-alpha mediated vascular Wnt-opathy. Transl. Res. 2008, 151, 233–239. [Google Scholar] [PubMed]
- Hénaut, L.; Sanz, A.B.; Martin-Sanchez, D.; Carrasco, S.; Villa-Bellosta, R.; Aldamiz-Echevarria, G.; Massy, Z.A.; Sanchez-Nino, M.D.; Ortiz, A. TWEAK favors phosphate-induced calcification of vascular smooth muscle cells through canonical and non-canonical activation of NFκB. Cell Death Dis. 2016, 7, e2305. [Google Scholar] [PubMed]
- Buendía, P.; De Oca, A.M.; Madueño, J.A.; Merino, A.; Martín-Malo, A.; Aljama, P.; Ramírez, R.; Rodríguez, M.; Carracedo, J. Endothelial microparticles mediate inflammation-induced vascular calcification. FASEB J. 2015, 29, 173–181. [Google Scholar] [PubMed]
- Stenvinkel, P.; Ketteler, M.; Johnson, R.J.; Lindholm, B.; Pecoits-Filho, R.; Riella, M.; Heimbürger, O.; Cederholm, T.; Girndt, M. IL-10, IL-6, and TNF-α: Central factors in the altered cytokine network of uremia—The good, the bad, and the ugly. Kidney Int. 2005, 67, 1216–1233. [Google Scholar] [PubMed]
- Cohen, S.D.; Phillips, T.M.; Khetpal, P.; Kimmel, P.L. Cytokine patterns and survival in haemodialysis patients. Nephrol. Dial. Transpl. 2010, 25, 1239–1243. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Ortiz, A.; Massy, Z.A.; Fliser, D.; Lindholm, B.; Wiecek, A.; Martínez-Castelao, A.; Covic, A.; Goldsmith, D.; Süleymanlar, G.; London, G.M.; et al. Clinical usefulness of novel prognostic biomarkers in patients on hemodialysis. Nat. Rev. Nephrol. 2011, 8, 141–150. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Gómez-Chiarri, M.; Ortíz, A.; Lerma, J.L.; López-Armada, M.J.; Mampaso, F.; González, E.; Egido, J. Involvement of tumor necrosis factor and platelet-activating factor in the pathogenesis of experimental nephrosis in rats. Lab Investig. 1994, 70, 449–459. [Google Scholar] [PubMed]
- Egido, J.; Gómez-Chiarri, M.; Ortíz, A.; Bustos, C.; Alonso, J.; Gómez-Guerrero, C.; Gómez-Garre, D.; López-Armada, M.J.; Plaza, J.; Gonzalez, E. Role of tumor necrosis factor-alpha in the pathogenesis of glomerular diseases. Kidney Int. Suppl. 1993, 39, 59–64. [Google Scholar]
- Yamanaka, H. TNF as a Target of Inflammation in Rheumatoid Arthritis. Endocr. Metab. Immune Disord. Drug Targets 2015, 15, 129–134. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Kim, H.W.; Lee, C.-K.; Cha, H.-S.; Choe, J.-Y.; Park, E.-J.; Kim, J. Effect of anti-tumor necrosis factor alpha treatment of rheumatoid arthritis and chronic kidney disease. Rheumatol. Int. 2015, 35, 727–734. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Edrees, A.F.; Misra, S.N.; Abdou, N.I. Anti-tumor necrosis factor (TNF) therapy in rheumatoid arthritis: Correlation of TNF-alpha serum level with clinical response and benefit from changing dose or frequency of infliximab infusions. Clin. Exp. Rheumatol. 2005, 23, 469–474. [Google Scholar] [PubMed]
- Don, B.R.; Kim, K.; Li, J.; Dwyer, T.; Alexander, F.; Kaysen, G.A. The effect of etanercept on suppression of the systemic inflammatory response in chronic hemodialysis patients. Clin. Nephrol. 2010, 73, 431–438. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Levine, S.J. Molecular mechanisms of soluble cytokine receptor generation. J. Biol. Chem. 2008, 283, 14177–14181. [Google Scholar] [PubMed]
- Neirynck, N.; Glorieux, G.; Schepers, E.; Verbeke, F.; Vanholder, R. Soluble tumor necrosis factor receptor 1 and 2 predict outcomes in advanced chronic kidney disease: A prospective cohort study. PLoS ONE 2015, 10, e0122073. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Gohda, T.; Niewczas, M.A.; Ficociello, L.H.; Walker, W.H.; Skupien, J.; Rosetti, F.; Cullere, X.; Johnson, A.C.; Crabtree, G.; Smiles, A.M. Circulating TNF Receptors 1 and 2 Predict Stage 3 CKD in Type 1 Diabetes. J. Am. Soc. Nephrol. 2012, 23, 516–524. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Niewczas, M.A.; Gohda, T.; Skupien, J.; Smiles, A.M.; Walker, W.H.; Rosetti, F.; Cullere, X.; Eckfeldt, J.H.; Doria, A.; Mayadas, T.N.; et al. Circulating TNF Receptors 1 and 2 Predict ESRD in Type 2 Diabetes. J. Am. Soc. Nephrol. 2012, 23, 507–515. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Izumi, Y.; Yabe, D.; Taniguchi, A.; Fukushima, M.; Nakai, Y.; Hosokawa, M.; Okumura, T.; Nin, K.; Matsumoto, K.; Nishimura, F.; et al. Circulating TNF receptor 2 is associated with the development of chronic kidney disease in non-obese Japanese patients with type 2 diabetes. Diabetes Res. Clin. Pract. 2013, 99, 145–150. [Google Scholar] [PubMed]
- Carlsson, A.C.; Nordquist, L.; Larsson, T.E.; Carrero, J.-J.; Larsson, A.; Lind, L.; Ärnlöv, J. Soluble Tumor Necrosis Factor Receptor 1 is Associated with Glomerular Filtration Rate Progression and Incidence of Chronic Kidney Disease in Two Community-Based Cohorts of Elderly Individuals. Cardiorenal Med. 2015, 5, 278–288. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Bemelmans, M.H.; Gouma, D.J.; Buurman, W.A. Tissue distribution and clearance of soluble murine TNF receptors in mice. Cytokine 1994, 6, 608–615. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Gardam, M.A.; Keystone, E.C.; Menzies, R.; Manners, S.; Skamene, E.; Long, R.V.D. Anti-tumour necrosis factor agents and tuberculosis risk: Mechanisms of action and clinical management. Lancet Infect. Dis. 2003, 3, 148–155. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Romanowski, K.; Clark, E.G.; Levin, A.; Cook, V.J.; Johnston, J.C. Tuberculosis and chronic kidney disease: An emerging global syndemic. Kidney Int. 2016, 90, 34–40. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Tocci, G.; Goletti, D.; Marino, V.; Matucci, A.; Milano, G.M.; Cantini, F.; Scarpa, R. Cardiovascular outcomes and tumour necrosis factor antagonists in chronic inflammatory rheumatic disease: A focus on rheumatoid arthritis. Expert Opin. Drug Saf. 2016, 15 (Suppl. 1), 55–61. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- European Medicines Agency. Enbrel. Summary of Product Characteristics. Available online: http://www.ema.europa.eu/docs/en_GB/document_library/EPAR_Product_Information/human/000262/WC500027361.pdf (accessed on 23 December 2016).
- Brat, D.J.; Bellail, A.C.; Van Meir, E.G. The role of interleukin-8 and its receptors in gliomagenesis and tumoral angiogenesis. Neuro-Oncology 2005, 7, 122–133. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- David, J.; Dominguez, C.; Hamilton, D.; Palena, C. The IL-8/IL-8R Axis: A Double Agent in Tumor Immune Resistance. Vaccines 2016, 4, 22. [Google Scholar] [CrossRef] [Scilit]
- Panichi, V.; Taccola, D.; Rizza, G.M.; Consani, C.; Ghiadoni, L.; Filippi, C.; Cristofani, R.; Panicucci, E.; Migliori, M.; Sidoti, A.; et al. Interleukin-8 is a powerful prognostic predictor of all-cause and cardiovascular mortality in dialytic patients. Nephron Clin. Pract. 2006, 102, 51–59. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Bangsgaard, N.; Houtkamp, M.; Schuurhuis, D.H.; Parren, P.W.H.I.; Baadsgaard, O.; Niessen, H.W.M.; Skov, L. Neutralization of IL-8 prevents the induction of dermatologic adverse events associated with the inhibition of epidermal growth factor receptor. PLoS ONE 2012, 7, e39706. [Google Scholar] [CrossRef] [Scilit]
- Skov, L.; Beurskens, F.J.; Zachariae, C.O.C.; Reitamo, S.; Teeling, J.; Satijn, D.; Knudsen, K.M.; Boot, E.P.; Hudson, D.; Baadsgaard, O.; et al. IL-8 as Antibody Therapeutic Target in Inflammatory Diseases: Reduction of Clinical Activity in Palmoplantar Pustulosis. J. Immunol. 2008, 181, 669–679. [Google Scholar] [PubMed]
- Oft, M. IL-10: Master switch from tumor-promoting inflammation to antitumor immunity. Cancer Immunol. Res. 2014, 2, 194–199. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Mu, W.; Ouyang, X.; Agarwal, A.; Zhang, L.; Long, D.A.; Cruz, P.E.; Roncal, C.A.; Glushakova, O.Y.; Chiodo, V.A.; Atkinson, M.A.; et al. IL-10 Suppresses Chemokines, Inflammation, and Fibrosis in a Model of Chronic Renal Disease. J. Am. Soc. Nephrol. 2005, 16, 3651–3660. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Naing, A.; Papadopoulos, K.P.; Autio, K.A.; Ott, P.A.; Patel, M.R.; Wong, D.J.; Falchook, G.S.; Pant, S.; Whiteside, M.; Rasco, D.R.; et al. Safety, antitumor activity, and immune activation of pegylated recombinant human interleukin-10 (AM0010) in patients with advanced solid tumors. J. Clin. Oncol. 2016, 34, 3562–3569. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Tilg, H.; van Montfrans, C.; van den Ende, A.; Kaser, A.; van Deventer, S.J.H.; Schreiber, S.; Gregor, M.; Ludwiczek, O.; Rutgeerts, P.; Gasche, C.; et al. Treatment of Crohn’s disease with recombinant human interleukin-10 induces the proinflammatory cytokine interferon gamma. Gut 2002, 50, 191–195. [Google Scholar] [PubMed]
- Yilmaz, M.I.; Solak, Y.; Saglam, M.; Cayci, T.; Acikel, C.; Unal, H.U.; Eyileten, T.; Oguz, Y.; Sari, S.; Carrero, J.J.; et al. The relationship between IL-10 levels and cardiovascular events in patients with CKD. Clin. J. Am. Soc. Nephrol. 2014, 9, 1207–1216. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Weber, C.; Sigrist, M.; Romann, A.; Chiarelli, G.; Levin, A. Novel biomarkers do not correlate with severity of vascular stiffness in ckd patients with severe co-morbid disease. Nephron Clin. Pract. 2011, 119, 261–268. [Google Scholar]
- Irndt, M.A.G.; Lrich, C.H.U.; Aul, H.A.K.; Ester, U.R.S.; Ester, M.A.S.; Saar, H. Uremia-associated immune defect: The IL-10—CRP axis. Kidney Int. Suppl. 2003, 63, 76–79. [Google Scholar] [CrossRef] [Scilit]
- Teta, D. Adipokines as uremic toxins. J. Ren. Nutr. 2012, 22, 81–85. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Nagy, K.; Nagaraju, S.P.; Rhee, C.M.; Mathe, Z.; Molnar, M.Z. Adipocytokines in renal transplant recipients. Clin. Kidney J. 2016, 9, 359–373. [Google Scholar] [PubMed]
- Ohashi, K.; Iwatani, H.; Kihara, S.; Nakagawa, Y.; Komura, N.; Fujita, K.; Maeda, N.; Nishida, M.; Katsube, F.; Shimomura, I.; Ito, T.; Funahashi, T. Exacerbation of albuminuria and renal fibrosis in subtotal renal ablation model of adiponectin-knockout mice. Arterioscler. Thromb. Vasc. Biol. 2007, 27, 1910–1917. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Liu, M.; Liu, F. Regulation of adiponectin multimerization, signaling and function. Best Pract. Res. Clin. Endocrinol. Metab. 2014, 28, 25–31. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Jia, T.; Carrero, J.J.; Lindholm, B.; Stenvinkel, P. The complex role of adiponectin in chronic kidney disease. Biochimie 2012, 94, 2150–2156. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Zoccali, C.; Mallamaci, F.; Tripepi, G.; Benedetto, F.A.; Cutrupi, S.; Parlongo, S.; Malatino, L.S.; Bonanno, G.; Seminara, G.; Rapisarda, F.; et al. Adiponectin, metabolic risk factors, and cardiovascular events among patients with end-stage renal disease. J. Am. Soc. Nephrol. 2002, 13, 134–141. [Google Scholar] [PubMed]
- Yu, Z.Z.; Ni, Z.H.; Gu, L.Y.; Lin, A.W.; Fang, W.; Yao, Q.; Lindholm, B.; Qian, J.Q. Adiponectin is related to carotid artery plaque and a predictor of cardiovascular outcome in a cohort of non-diabetic peritoneal dialysis patients. Blood Purif. 2008, 26, 386–393. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Ohashi, N.; Kato, A.; Misaki, T.; Sakakima, M.; Fujigaki, Y.; Yamamoto, T.; Hishida, A. Association of serum adiponectin levels with all-cause mortality in hemodialysis patients. Intern. Med. 2008, 47, 485–491. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Drechsler, C.; Krane, V.; Winkler, K.; Dekker, F.; Wanner, C. Changes in adiponectin and the risk of sudden death, stroke, myocardial infarction, and mortality in hemodialysis patients. Kidney Int. 2009, 76, 567–575. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Zhang, F.; Chen, Y.; Heiman, M.; DiMarchi, R. Leptin: Structure, Function and Biology. Vitam. Horm. 2005, 71, 345–372. [Google Scholar] [PubMed]
- Heimburger, O.; Lonnqvist, F.; Danielsson, A.; Nordenstrom, J.; Stenvinkel, P. Serum immunoreactive leptin concentration and its relation to the body fat content in chronic renal failure. J. Am. Soc. Nephrol. 1997, 8, 1423–1430. [Google Scholar] [PubMed]
- Sharma, K.; Ziyadeh, F.N. The emerging role of transforming growth factor-beta in kidney diseases. Am. J. Physiol. 1994, 266, 829–842. [Google Scholar]
- Li, L.; Mamputu, J.-C.; Wiernsperger, N.; Renier, G. Signaling Pathways Involved in Human Vascular Smooth Muscle Cell Proliferation and Matrix Metalloproteinase-2 Expression Induced by Leptin. Diabetes 2005, 54, 2227–2234. [Google Scholar] [PubMed]
- Sierra-Honigmann, M.R.; Nath, A.K.; Murakami, C.; García-Cardeña, G.; Papapetropoulos, A.; Sessa, W.C.; Madge, L.A.; Schechner, J.S.; Schwabb, M.B.; Polverini, P.J.; Flores-Riveros, J.R. Biological action of leptin as an angiogenic factor. Science 1998, 281, 1683–1686. [Google Scholar] [PubMed]
- Wallaschofski, H.; Kobsar, A.; Sokolova, O.; Siegemund, A.; Stepan, H.; Faber, R.; Eigenthaler, M.; Lohmann, T. Differences in platelet activation by prolactin and leptin. Horm. Metab. Res. 2004, 36, 453–457. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Carlyle, M.; Jones, O.B.; Kuo, J.J.; Hall, J.E. Chronic cardiovascular and renal actions of leptin: Role of adrenergic activity. Hypertension 2002, 39, 496–501. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Tsuji, K.; Maeda, T.; Kawane, T.; Matsunuma, A.; Horiuchi, N. Leptin stimulates fibroblast growth factor 23 expression in bone and suppresses renal 1α,25-dihydroxyvitamin D3 synthesis in leptin-deficient mice. J. Bone Miner. Res. 2010, 25, 1711–1723. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Cheung, W.W.; Ding, W.; Gunta, S.S.; Gu, Y.; Tabakman, R.; Klapper, L.N.; Gertler, A.; Mak, R.H. A Pegylated Leptin Antagonist Ameliorates CKD-Associated Cachexia in Mice. J. Am. Soc. Nephrol. 2014, 25, 119–128. [Google Scholar] [PubMed]
- Cheung, W.; Yu, P.X.; Little, B.M.; Cone, R.D.; Marks, D.L.; Mak, R.H. Role of leptin and melanocortin signaling in uremia-associated cachexia. J. Clin. Invest. 2005, 115, 1659–1665. [Google Scholar] [PubMed]
- Odamaki, M.; Furuya, R.; Yoneyama, T.; Nishikino, M.; Hibi, I.; Miyaji, K.; Kumagai, H. Association of the serum leptin concentration with weight loss in chronic hemodialysis patients. Am. J. Kidney Dis. 1999, 33, 361–368. [Google Scholar] [PubMed]
- Castaneda-Sceppa, C.; Sarnak, M.J.; Wang, X.; Greene, T.; Madero, M.; Kusek, J.W.; Beck, G.; Kopple, J.D.; Levey, A.S.; Menon, V. Role of adipose tissue in determining muscle mass in patients with chronic kidney disease. J. Ren. Nutr. 2007, 17, 314–322. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Rodríguez-Carmona, A.; Pérez Fontán, M.; Cordido, F.; García Falcón, T.; García-Buela, J. Hyperleptinemia is not correlated with markers of protein malnutrition in chronic renal failure. Nephron 2000, 86, 274–280. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Scholze, A.; Rattensperger, D.; Zidek, W.; Tepel, M. Low serum leptin predicts mortality in patients with chronic kidney disease stage 5. Obesity 2007, 15, 1617–1622. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Kalantar-Zadeh, K. So, is leptin good or bad in chronic kidney disease? Obesity 2007, 15, 1343–1344. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Díez, J.J.; Bossola, M.; Fernández-Reyes, M.J.; Di Stasio, E.; Tazza, L.; Luciani, G.; Codoceo, R.; Iglesias, P.; Rodríguez, A.; González, E.; et al. Relationship between leptin and all-cause and cardiovascular mortality in chronic hemodialysis patients. Nefrologia 2011, 31, 206–212. [Google Scholar] [PubMed]
- Zoccali, C.; Postorino, M.; Marino, C.; Pizzini, P.; Cutrupi, S.; Tripepi, G. Waist circumference modifies the relationship between the adipose tissue cytokines leptin and adiponectin and all-cause and cardiovascular mortality in haemodialysis patients. J. Intern. Med. 2011, 269, 172–181. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Steppan, C.M.; Bailey, S.T.; Bhat, S.; Brown, E.J.; Banerjee, R.R.; Wright, C.M.; Patel, H.R.; Ahima, R.S.; Lazar, M.A. The hormone resistin links obesity to diabetes. Nature 2001, 409, 307–312. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Axelsson, J.; Bergsten, A.; Qureshi, A.R.; Heimbürger, O.; Bárány, P.; Lönnqvist, F.; Lindholm, B.; Nordfors, L.; Alvestrand, A.; Stenvinkel, P. Elevated resistin levels in chronic kidney disease are associated with decreased glomerular filtration rate and inflammation, but not with insulin resistance. Kidney Int. 2006, 69, 596–604. [Google Scholar]
- Codoñer-Franch, P.; Alonso-Iglesias, E. Resistin: Insulin resistance to malignancy. Clin. Chim. Acta 2015, 438, 46–54. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Fontana, A.; Spadaro, S.; Copetti, M.; Spoto, B.; Salvemini, L.; Pizzini, P.; Frittitta, L.; Mallamaci, F.; Pellegrini, F.; Trischitta, V.; et al. Association between resistin levels and all-cause and cardiovascular mortality: A new study and a systematic review and meta-analysis. PLoS ONE 2015, 10, e0120419. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Spoto, B.; Mattace-Raso, F.; Sijbrands, E.; Pizzini, P.; Cutrupi, S.; D’Arrigo, G.; Tripepi, G.; Zoccali, C.; Mallamaci, F. Resistin and all-cause and cardiovascular mortality: Effect modification by adiponectin in end-stage kidney disease patients. Nephrol. Dial. Transpl. 2013, 28 (Suppl. 4), 181–187. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Roubicek, T.; Bartlova, M.; Krajickova, J.; Haluzikova, D.; Mraz, M.; Lacinova, Z.; Kudla, M.; Teplan, V.; Haluzik, M. Increased production of proinflammatory cytokines in adipose tissue of patients with end-stage renal disease. Nutrition 2009, 25, 762–768. [Google Scholar] [PubMed]
- Wallquist, C.; Mansouri, L.; Norrbäck, M.; Hylander, B.; Jacobson, S.H.; Lundahl, J. Early Changes in Monocyte Adhesion Molecule Expression and Tumor Necrosis Factor-α Levels in Chronic Kidney Disease—A 5-Year Prospective Study. Am. J. Nephrol. 2016, 44, 268–275. [Google Scholar] [CrossRef] [Scilit]
- Azim, A.A.; Farag, A.S.; El-Maleek Hassan, D.A.; Abdu, S.M.; Lashin, S.M.; Abdelaziz, N. Role of Interleukin-2 in Uremic Pruritus Among Attendants of AL-Zahraa Hospital Dialysis Unit. Indian J. Dermatol. 2015, 60, 211. [Google Scholar] [PubMed]
- Gaspari, A.A.; Lotze, M.T.; Rosenberg, S.A.; Stern, J.B.; Katz, S.I. Dermatologic changes associated with interleukin 2 administration. JAMA 1987, 258, 1624–1629. [Google Scholar] [PubMed]
- Mehta, N.N.; Matthews, G.J.; Krishnamoorthy, P.; Shah, R.; Mclaughlin, C.; Patel, P.; Budoff, M.; Chen, J.; Wolman, M.; Go, A.; He, J.; et al. Higher plasma CXCL12 levels predict incident myocardial infarction and death in chronic kidney disease: Findings from the Chronic Renal Insufficiency Cohort study the Chronic Renal Insufficiency Cohort (CRIC) Study Investigators. Eur. Heart J. 2014, 35, 2115–2122. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Shah, R.; Matthews, G.J.; Shah, R.Y.; McLaughlin, C.; Chen, J.; Wolman, M.; Master, S.R.; Chai, B.; Xie, D.; Rader, D.J.; et al. Serum Fractalkine (CX3CL1) and Cardiovascular Outcomes and Diabetes: Findings from the Chronic Renal Insufficiency Cohort (CRIC) Study. Am. J. Kidney Dis. 2015, 66, 266–273. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Moreno, J.A.; Moreno, S.; Rubio-Navarro, A.; Sastre, C.; Blanco-Colio, L.M.; Gómez-Guerrero, C.; Ortiz, A.; Egido, J. Targeting chemokines in proteinuria-induced renal disease. Expert Opin. Ther. Targets 2012, 16, 833–845. [Google Scholar] [PubMed]
- Perez-Gomez, M.V.; Sanchez-Niño, M.D.; Sanz, A.B.; Zheng, B.; Martín-Cleary, C.; Ruiz-Ortega, M.; Ortiz, A.; Fernandez-Fernandez, B. Targeting inflammation in diabetic kidney disease: early clinical trials. Expert Opin. Investig. Drugs 2016, 3784, 1–14. [Google Scholar]
- Uchida, E.; Anan, F.; Masaki, T.; Kaneda, K.; Nawata, T.; Eshima, N.; Saikawa, T.; Yoshimatsu, H. Monocyte chemoattractant protein-1 is associated with silent cerebral infarction in patients on haemodialysis. Intern. Med. J. 2012, 42, 29–34. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Elewa, U.; Sanchez-Niño, M.D.; Mahillo-Fernández, I.; Martin-Cleary, C.; Sanz, A.B.; Perez-Gomez, M.V.; Fernandez-Fernandez, B.; Ortiz, A. Circulating CXCL16 in Diabetic Kidney Disease. Kidney Blood Press Res. 2016, 41, 663–671. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Izquierdo, M.C.; Sanz, A.B.; Mezzano, S.; Blanco, J.; Carrasco, S.; Sanchez-Niño, M.D.; Benito-Martín, A.; Ruiz-Ortega, M.; Egido, J.; Ortiz, A. TWEAK (tumor necrosis factor–like weak inducer of apoptosis) activates CXCL16 expression during renal tubulointerstitial inflammation. Kidney Int. 2012, 81, 1098–1107. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Izquierdo, M.C.; Martin-Cleary, C.; Fernandez-Fernandez, B.; Elewa, U.; Sanchez-Niño, M.D.; Carrero, J.J.; Ortiz, A. CXCL16 in kidney and cardiovascular injury. Cytokine Growth Factor Rev. 2014, 25, 317–325. [Google Scholar] [PubMed]
- Yilmaz, M.I.; Sonmez, A.; Ortiz, A.; Saglam, M.; Kilic, S.; Eyileten, T.; Caglar, K.; Oguz, Y.; Vural, A.; Çakar, M. Soluble TWEAK and PTX3 in nondialysis CKD patients: Impact on endothelial dysfunction and cardiovascular outcomes. Clin. J. Am. Soc. Nephrol. 2011, 6, 785–792. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Carrero, J.J.; Ortiz, A.; Qureshi, A.R.; Martín-Ventura, J.L.; Bárány, P.; Heimbürger, O.; Marrón, B.; Metry, G.; Snaedal, S.; Lindholm, B.; et al. Additive effects of soluble TWEAK and inflammation on mortality in hemodialysis patients. Clin. J. Am. Soc. Nephrol. 2009, 4, 110–118. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Yilmaz, M.I.; Carrero, J.J.; Ortiz, A.; Martín-Ventura, J.L.; Sonmez, A.; Saglam, M.; Yaman, H.; Yenicesu, M.; Egido, J.; Blanco-Colio, L.M. Soluble TWEAK plasma levels as a novel biomarker of endothelial function in patients with chronic kidney disease. Clin. J. Am. Soc. Nephrol. 2009, 4, 1716–1723. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Ruiz-Ortega, M.; Ortiz, A.; Ramos, A.M. Tumor necrosis factor-like weak inducer of apoptosis (TWEAK) and kidney disease. Curr. Opin. Nephrol. Hypertens. 2014, 23, 93–100. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Sanz, A.B.; Izquierdo, M.C.; Sanchez-Niño, M.D.; Ucero, A.C.; Egido, J.; Ruiz-Ortega, M.; Ramos, A.M.; Putterman, C.; Ortiz, A. TWEAK and the progression of renal disease: Clinical translation. Nephrol. Dial. Transpl. 2014, 29 (Suppl. 1), i54–i62. [Google Scholar] [CrossRef] [Scilit]
- Duan, D.M.; Niu, J.M.; Lei, Q.; Lin, X.H.; Chen, X. Serum levels of the adipokine chemerin in preeclampsia. J. Perinat. Med. 2012, 40, 121–127. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Yamamoto, T.; Qureshi, A.R.; Anderstam, B.; Heimbürger, O.; Bárány, P.; Lindholm, B.; Stenvinkel, P.; Axelsson, J. Clinical importance of an elevated circulating chemerin level in incident dialysis patients. Nephrol. Dial. Transpl. 2010, 25, 4017–4023. [Google Scholar] [CrossRef] [Scilit]
- Chen, H.-Y.; Chiu, Y.-L.; Hsu, S.-P.; Pai, M.-F.; Yang, J.-Y.; Wu, H.-Y.; Peng, Y.S. Reappraisal of effects of serum chemerin and adiponectin levels and nutritional status on cardiovascular outcomes in prevalent hemodialysis patients. Sci Rep. 2016, 6, 34128. [Google Scholar] [CrossRef] [Scilit]
- Neves, K.B.; Nguyen Dinh Cat, A.; Lopes, R.A.M.; Rios, F.J.; Anagnostopoulou, A.; Lobato, N.S.; de Oliveira, A.M.; Tostes, R.C.; Montezano, A.C.; Touyz, R.M. Chemerin Regulates Crosstalk between Adipocytes and Vascular Cells Through Nox. Hypertension 2015, 66, 657–666. [Google Scholar] [PubMed]
- Axelsson, J.; Witasp, A.; Carrero, J.J.; Qureshi, A.R.; Suliman, M.E.; Heimbürger, O.; Bárány, P.; Lindholm, B.; Alvestrand, A.; Schalling, M.; et al. Circulating Levels of Visfatin/Pre-B-Cell Colony-Enhancing Factor 1 in Relation to Genotype, GFR, Body Composition, and Survival in Patients With CKD. Am. J. Kidney Dis. 2007, 49, 237–244. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Hsu, C.Y.; Huang, P.H.; Chen, T.H.; Chiang, C.H.; Leu, H.B.; Huang, C.C.; Chen, J.W.; Lin, S.J. Increased circulating visfatin is associated with progression of kidney disease in non-diabetic hypertensive patients. Am. J. Hypertens. 2016, 29, 528–536. [Google Scholar] [PubMed]
- Benito-Martin, A.; Ucero, A.C.; Izquierdo, M.C.; Santamaria, B.; Picatoste, B.; Carrasco, S.; Lorenzo, O.; Ruiz-Ortega, M.; Egido, J.; Ortiz, A. Endogenous NAMPT dampens chemokine expression and apoptotic responses in stressed tubular cells. Biochim. Biophys. Acta Mol. Basis Dis. 2014, 1842, 293–303. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Ruiz-Andres, O.; Sanchez-Niño, M.D.; Moreno, J.A.; Ruiz-Ortega, M.; Ramos, A.M.; Sanz, A.B.; Ortiz, A. Downregulation of kidney protective factors by inflammation: Role of transcription factors and epigenetic mechanisms. Am. J. Phys. Ren. Physiol. 2016, 311, 1329–1340. [Google Scholar] [CrossRef] [Scilit]
- Kakuta, T.; Komaba, H.; Takagi, N.; Takahashi, Y.; Suzuki, H.; Hyodo, T.; Nagaoka, M.; Tanaka, R.; Iwao, S.; Ishida, M.; et al. A Prospective Multicenter Randomized Controlled Study on Interleukin-6 Removal and Induction by a new Hemodialyzer with Improved Biocompatibility in Hemodialysis Patients: A Pilot Study. Ther. Apher. Dial. 2016, 20, 569–578. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Lee, W.C.; Uchino, S.; Fealy, N.; Baldwin, I.; Panagiotopoulos, S.; Goehl, H.; Morgera, S.; Neumayer, H.H.; Bellomo, R. Super high flux hemodialysis at high dialysate flows: An ex vivo assessment. Int. J. Artif. Organs 2004, 27, 24–28. [Google Scholar]
- Morgera, S.; Slowinski, T.; Melzer, C.; Sobottke, V.; Vargas-Hein, O.; Volk, T.; Zuckermann-Becker, H.; Wegner, B.; Müller, J.M.; Baumann, G.; et al. Renal Replacement Therapy with High-Cutoff Hemofilters: Impact of Convection and Diffusion on Cytokine Clearances and Protein Status. Am. J. Kidney Dis. 2004, 43, 444–453. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Ferraiolo, B.L.; Moore, J.A.; Crase, D.; Gribling, P.; Wilking, H.; Baughman, R.A. Pharmacokinetics and tissue distribution of recombinant human tumor necrosis factor-alpha in mice. Drug Metab. Dispos. 1988, 16, 270–275. [Google Scholar] [PubMed]
- Deaciuc, I.V.; Alappat, J.M.; McDonough, K.H.; D’Souza, N.B. Effect of chronic alcohol consumption by rats on tumor necrosis factor-alpha and interleukin-6 clearance in vivo and by the isolated, perfused liver. Biochem. Pharmacol. 1996, 52, 891–899. [Google Scholar] [CrossRef] [Scilit]
- Reimers, J.; Wogensen, L.D.; Welinder, B.; Hejnaes, K.R.; Poulsen, S.S.; Nilsson, P.; Nerup, J. The pharmacokinetics, distribution and degradation of human recombinant interleukin 1 beta in normal rats. Scand. J. Immunol. 1991, 34, 597–610. [Google Scholar] [PubMed]
- Ferraiolo, B.L.; McCabe, J.; Hollenbach, S.; Hultgren, B.; Pitti, R.; Wilking, H. Pharmacokinetics of recombinant human tumor necrosis factor-alpha in rats. Effects of size and number of doses and nephrectomy. Drug Metab. Dispos. 1989, 17, 369–372. [Google Scholar] [PubMed]
- Beutler, B.A.; Milsark, I.W.; Cerami, A. Cachectin/tumor necrosis factor: Production, distribution, and metabolic fate in vivo. J. Immunol. 1985, 135, 3972–3977. [Google Scholar] [PubMed]
- Klapproth, J.; Geiger, T.; Heinrich, P.C. Fate and biological action of human recombinant interleukin l Beta in the rat in vivo. Eur. J. Immunol. 1989, 19, 1485–1490. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Castell, J.V.; Geiger, T.; Gross, V.; Andus, T.; Walter, E.; Hirano, T.; Kishimoto, T.; Heinrich, P.C. Plasma clearance, organ distribution and target cells of interleukin-6/hepatocyte-stimulating factor in the rat. Eur. J. Biochem. 1988, 177, 357–361. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Banks, R.E.; Forbes, M.A.; Hallam, S.; Jenkins, A.; Wadhwa, M.; Dilger, P.; Meager, A.; Thorpe, R.; Bowmer, C.J.; Joffe, J.K.; et al. Treatment of metastatic renal cell carcinoma with subcutaneous interleukin 2: Evidence for non-renal clearance of cytokines. Br. J. Cancer 1997, 75, 1842–1848. [Google Scholar] [PubMed]
- Poveda, J.; Sanchez-Niño, M.D.; Glorieux, G.; Sanz, A.B.; Egido, J.; Vanholder, R.; Ortiz, A. P-Cresyl sulphate has pro-inflammatory and cytotoxic actions on human proximal tubular epithelial cells. Nephrol. Dial. Transpl. 2014, 29, 56–64. [Google Scholar] [CrossRef] [Scilit]
- Rossi, M.; Campbell, K.L.; Johnson, D.W.; Stanton, T.; Vesey, D.A.; Coombes, J.S.; Weston, K.S.; Hawley, C.M.; McWhinney, B.C.; Ungerer, J.P. Protein-bound uremic toxins, inflammation and oxidative stress: A cross-sectional study in stage 3–4 chronic kidney disease. Arch. Med. Res. 2014, 45, 309–317. [Google Scholar] [CrossRef] [Scilit]
- Garibotto, G.; Sofia, A.; Procopio, V.; Villaggio, B.; Tarroni, A.; Di Martino, M.; Cappelli, V.; Gandolfo, M.T.; Aloisi, F.; De Cian, F.; et al. Peripheral tissue release of interleukin-6 in patients with chronic kidney diseases: Effects of end-stage renal disease and microinflammatory state. Kidney Int. 2006, 70, 384–390. [Google Scholar] [PubMed]
- Oettinger, C.W.; Bland, L.A.; Oliver, J.C.; Arduino, M.J.; McAllister, S.K.; Favero, M.S. The effect of uremia on tumor necrosis factor-alpha release after an in vitro whole-blood endotoxin challenge. J. Am. Soc. Nephrol. 1994, 4, 1890–1895. [Google Scholar] [PubMed]
- Stinghen, A.E.M.; Gonçalves, S.M.; Martines, E.G.; Nakao, L.S.; Riella, M.C.; Aita, C.A.; Pecoits-Filho, R. Increased plasma and endothelial cell expression of chemokines and adhesion molecules in chronic kidney disease. Nephron Clin. Pract. 2009, 111, c117–c126. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Aminzadeh, M.A.; Pahl, M.V.; Barton, C.H.; Doctor, N.S.; Vaziri, N.D. Human uraemic plasma stimulates release of leptin and uptake of tumour necrosis factor-α in visceral adipocytes. Nephrol. Dial. Transpl. 2009, 24, 3626–3631. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Kalbacher, E.; Koppe, L.; Zarrouki, B.; Pillon, N.J.; Fouque, D.; Soulage, C.O. Human uremic plasma and not urea induces exuberant secretion of leptin in 3T3-L1 adipocytes. J. Ren. Nutr. 2011, 21, 72–75. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Apolito, M.D.; Du, X.; Zong, H.; Catucci, A.; Maiuri, L.; Trivisano, T.; Pettoello-Mantovani, M.; Campanozzi, A.; Raia, V.; Pessin, J.E.; et al. Urea-induced ROS generation causes insulin resistance in mice with chronic renal failure. Insulin 2010, 120, 203–213. [Google Scholar]
- Sanz, A.B.; Sanchez-Niño, M.D.; Ramos, A.M.; Moreno, J.A.; Santamaria, B.; Ruiz-Ortega, M.; Egido, J.; Ortiz, A. NF-κB in Renal Inflammation. J. Am. Soc. Nephrol. 2010, 21, 1254–1262. [Google Scholar] [PubMed]
- Poveda, J.; Tabara, L.C.; Fernandez-Fernandez, B.; Martin-Cleary, C.; Sanz, A.B.; Selgas, R.; Ortiz, A.; Sanchez-Niño, M.D. TWEAK/Fn14 and non-canonical NF-kappaB signaling in kidney disease. Front. Immunol. 2013, 4, 447. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Sánchez, L.M.; López-Otín, C.; Bjorkman, P.J. Biochemical characterization and crystalization of human Zn-alpha2-glycoprotein, a soluble class I major histocompatibility complex homolog. Proc Natl Acad Sci USA 1997, 94, 4626–4630. [Google Scholar] [CrossRef] [Scilit] [PubMed]
- Pelletier, C.C.; Koppe, L.; Alix, P.M.; Kalbacher, E.; Croze, M.L.; Hadj-Aissa, A.; Fouque, D.; Guebre-Egziabher, F.S.C. The relationship between renal function and plasma concentration of the cachectic factor zinc-alpha2-glycoprotein (ZAG) in adult patients with chronic kidney disease. PLoS ONE 2014, 9, e103475. [Google Scholar] [CrossRef] [Scilit]

| Normal Concentration * (ng/L) | Uremic Concentration (ng/L) * | Relative Increase | MW (kD) | Targeting at Clinical Development Stage | |
|---|---|---|---|---|---|
| Inflammatory cytokines and chemokines | |||||
| Interleukin-1β | 160 | 236 ± 92 | 1.5 | 32 | In use |
| Interleukin-18 | 142 ± 48 | 202 ± 169 | 1.4 | 20 | Yes |
| Interleukin-6 | 4.0 | 5.9 ± 2.0 | 1.5 | 24.5 | In use |
| Tumor Necrosis Factor α (TNFα) | 7.0 | 21.6 ± 24.5 | 3.0 | 26 | In use |
| Interleukin-8 | 1.64 ± 1.85 | 20.2 ± 25.1 | 10.9 | 8 | Yes |
| Anti-inflammatory cytokines | |||||
| Interleukin-10 | 7.10 ± 1.50 | 10.60 ± 6.00 | 1.5 | 18 | Yes |
| Adipokines | |||||
| Adiponectin | 8,700,000 ± 4,800,000 | 16,600,000 ± 6,600,000 | 2.0 | 28 | No |
| Leptin | 8400 ± 6700 | 37,600 ± 25,100 | 4.5 | 16 | In use |
| Resistin | 15,100 ± 700 | 47,300 (35,300–62,200) | 3.1 | 12.5 | No |
| Comparator | |||||
| β2-microglobulin | 1,900,000 ± 1,600,000 | 30,200,000 ± 7,800,000 | 15.9 | 11.8 | NA |
| Those Already in | Evidence for role in Human CKD-Associated Abnormalities | Comment | Consider Removing from List of Potential Uremic Toxins * | Comment | Consider Adding to List of Potential Uremic Toxins | Comment |
|---|---|---|---|---|---|---|
| IL-1β | Anakinra: IL-1β promotes inflammation | Increased decoy receptors may be protective | IL-10 | Anti-inflammatory effect | IL-6R | Associated to mortality, facilitates IL-6 signaling |
| IL-18 | Only observational | Adiponectin | Insufficient evidence in humans | IL-2 | Causes pruritus, associated to pruritus | |
| IL-6 | Only observational | Increased soluble receptor may increase some effects | Leptin | Insufficient evidence in humans | sTNFR1, sTNFR2 | Associated to mortality, may sensitize to tuberculosis in humans |
| TNFα | Anti-TNF: TNF may contribute to CKD progression and malnutrition | Increased decoy receptors may be protective | Resistin | Insufficient evidence in humans | CXCL12 | Associated to mortality, |
| IL-8 | Only observational | CX3CL1 | Associated to mortality, | |||
| IL-10 | Only observational | |||||
| Adiponectin | Inconclusive observational | Association with mortality inconsistent and related with either low or high levels | ||||
| Leptin | Inconclusive observational | Low leptin levels associated with mortality in some populations | ||||
| Resistin | Inconclusive observational | Association with mortality inconsistent |
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Castillo-Rodríguez, E.; Pizarro-Sánchez, S.; Sanz, A.B.; Ramos, A.M.; Sanchez-Niño, M.D.; Martin-Cleary, C.; Fernandez-Fernandez, B.; Ortiz, A. Inflammatory Cytokines as Uremic Toxins: “Ni Son Todos Los Que Estan, Ni Estan Todos Los Que Son”. Toxins 2017, 9, 114. https://doi.org/10.3390/toxins9040114
Castillo-Rodríguez E, Pizarro-Sánchez S, Sanz AB, Ramos AM, Sanchez-Niño MD, Martin-Cleary C, Fernandez-Fernandez B, Ortiz A. Inflammatory Cytokines as Uremic Toxins: “Ni Son Todos Los Que Estan, Ni Estan Todos Los Que Son”. Toxins. 2017; 9(4):114. https://doi.org/10.3390/toxins9040114
Chicago/Turabian StyleCastillo-Rodríguez, Esmeralda, Soledad Pizarro-Sánchez, Ana B. Sanz, Adrian M. Ramos, Maria Dolores Sanchez-Niño, Catalina Martin-Cleary, Beatriz Fernandez-Fernandez, and Alberto Ortiz. 2017. "Inflammatory Cytokines as Uremic Toxins: “Ni Son Todos Los Que Estan, Ni Estan Todos Los Que Son”" Toxins 9, no. 4: 114. https://doi.org/10.3390/toxins9040114
APA StyleCastillo-Rodríguez, E., Pizarro-Sánchez, S., Sanz, A. B., Ramos, A. M., Sanchez-Niño, M. D., Martin-Cleary, C., Fernandez-Fernandez, B., & Ortiz, A. (2017). Inflammatory Cytokines as Uremic Toxins: “Ni Son Todos Los Que Estan, Ni Estan Todos Los Que Son”. Toxins, 9(4), 114. https://doi.org/10.3390/toxins9040114

