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Published in: Pediatric Nephrology 10/2005

01-10-2005 | Editorial Commentary

Can renal fibrosis be reversed?

Author: Allison A. Eddy

Published in: Pediatric Nephrology | Issue 10/2005

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Abstract

New therapeutic approaches are needed to address the current epidemic of chronic kidney disease. Beyond delaying the inevitable onset of end-stage kidney disease the ultimate dream of clinical therapy is disease regression. Degradation of the interstitial matrix proteins is potentially feasible, especially before the interstitial “scar” becomes highly organized. Currently the specific matrix-degrading proteases that perform this function in vivo have not been clearly identified although several candidates have been suggested. Reversing renal fibrosis will also mandate removal of interstitial myofibroblasts that are the major source of the fibrosis-associated interstitial matrix proteins. However, the greater therapeutic challenge pertains to the current inability to regenerate intact functional nephrons in a site where they have been destroyed. In chronic tubulointerstitial damage that typifies all progressive kidney diseases, it is not interstitial matrix accumulation per se that leads to renal functional decline but rather its destructive effects on neighboring cells. In particular, loss of peritubular capillaries and tubules are the morphological features that underlie declining renal function. Recent advances in several basic scientific fields of investigation such as matrix biology, developmental biology, angiogenesis, and stem cell biology have identified new candidate therapeutic targets. A powerful new molecular tool-box is at our disposal that can be used to begin to translate recent discoveries into the clinical research arena with the goal of reversing renal fibrosis in a functionally meaningful way.
Literature
1.
go back to reference Coresh J, Byrd-Holt D, Astor BC, Briggs JP, Eggers PW, Lacher DA, Hostetter TH (2005) Chronic kidney disease awareness, prevalence, and trends among U.S. adults, 1999 to 2000. J Am Soc Nephrol 16:180–188CrossRefPubMed Coresh J, Byrd-Holt D, Astor BC, Briggs JP, Eggers PW, Lacher DA, Hostetter TH (2005) Chronic kidney disease awareness, prevalence, and trends among U.S. adults, 1999 to 2000. J Am Soc Nephrol 16:180–188CrossRefPubMed
2.
go back to reference Meguid El Nahas A, Bello AK (2005) Chronic kidney disease: the global challenge. Lancet 365:331–340PubMed Meguid El Nahas A, Bello AK (2005) Chronic kidney disease: the global challenge. Lancet 365:331–340PubMed
4.
go back to reference Floege J, Johnson RJ, Gordon K, Iida H, Pritzl P, Yoshimura A, Campbell C, Alpers CE, Couser WG (1991) Increased synthesis of extracellular matrix in mesangial proliferative nephritis. Kidney Int 40:477–488PubMed Floege J, Johnson RJ, Gordon K, Iida H, Pritzl P, Yoshimura A, Campbell C, Alpers CE, Couser WG (1991) Increased synthesis of extracellular matrix in mesangial proliferative nephritis. Kidney Int 40:477–488PubMed
5.
go back to reference Fioretto P, Steffes MW, Sutherland DE, Goetz FC, Mauer M (1998) Reversal of lesions of diabetic nephropathy after pancreas transplantation. N Engl J Med 339:69–75CrossRefPubMed Fioretto P, Steffes MW, Sutherland DE, Goetz FC, Mauer M (1998) Reversal of lesions of diabetic nephropathy after pancreas transplantation. N Engl J Med 339:69–75CrossRefPubMed
6.
go back to reference Boffa JJ, Lu Y, Placier S, Stefanski A, Dussaule JC, Chatziantoniou C (2003) Regression of renal vascular and glomerular fibrosis: role of angiotensin II receptor antagonism and matrix metalloproteinases. J Am Soc Nephrol 14:1132–1144CrossRefPubMed Boffa JJ, Lu Y, Placier S, Stefanski A, Dussaule JC, Chatziantoniou C (2003) Regression of renal vascular and glomerular fibrosis: role of angiotensin II receptor antagonism and matrix metalloproteinases. J Am Soc Nephrol 14:1132–1144CrossRefPubMed
7.
go back to reference Adamczak M, Gross ML, Amann K, Ritz E (2004) Reversal of glomerular lesions involves coordinated restructuring of glomerular microvasculature. J Am Soc Nephrol 15:3063–3072CrossRefPubMed Adamczak M, Gross ML, Amann K, Ritz E (2004) Reversal of glomerular lesions involves coordinated restructuring of glomerular microvasculature. J Am Soc Nephrol 15:3063–3072CrossRefPubMed
8.
go back to reference Ma LJ, Nakamura S, Aldigier JC, Rossini M, Yang H, Liang X, Nakamura I, Marcantoni C, Fogo AB (2005) Regression of glomerulosclerosis with high-dose angiotensin inhibition is linked to decreased plasminogen activator inhibitor-1. J Am Soc Nephrol 16:966–976CrossRefPubMed Ma LJ, Nakamura S, Aldigier JC, Rossini M, Yang H, Liang X, Nakamura I, Marcantoni C, Fogo AB (2005) Regression of glomerulosclerosis with high-dose angiotensin inhibition is linked to decreased plasminogen activator inhibitor-1. J Am Soc Nephrol 16:966–976CrossRefPubMed
9.
go back to reference Forbes JM, Hewitson TD, Becker GJ, Jones CL (2000) Ischemic acute renal failure: long-term histology of cell and matrix changes in the rat. Kidney Int 57:2375–2385CrossRefPubMed Forbes JM, Hewitson TD, Becker GJ, Jones CL (2000) Ischemic acute renal failure: long-term histology of cell and matrix changes in the rat. Kidney Int 57:2375–2385CrossRefPubMed
10.
go back to reference Jones CL, Buch S, Post M, McCulloch L, Liu E, Eddy AA (1992) Renal extracellular matrix accumulation in acute puromycin aminonucleoside nephrosis in rats. Am J Pathol 141:1381–1396PubMed Jones CL, Buch S, Post M, McCulloch L, Liu E, Eddy AA (1992) Renal extracellular matrix accumulation in acute puromycin aminonucleoside nephrosis in rats. Am J Pathol 141:1381–1396PubMed
11.
go back to reference Koo JW, Kim Y, Rozen S, Mauer M (2003) Enalapril accelerates remodeling of the renal interstitium after release of unilateral ureteral obstruction in rats. J Nephrol 16:203–209CrossRefPubMed Koo JW, Kim Y, Rozen S, Mauer M (2003) Enalapril accelerates remodeling of the renal interstitium after release of unilateral ureteral obstruction in rats. J Nephrol 16:203–209CrossRefPubMed
12.
go back to reference Sund S, Grimm P, Reisaeter AV, Hovig T (2004) Computerized image analysis vs semiquantitative scoring in evaluation of kidney allograft fibrosis and prognosis. Nephrol Dial Transplant 19:2838–2845 Sund S, Grimm P, Reisaeter AV, Hovig T (2004) Computerized image analysis vs semiquantitative scoring in evaluation of kidney allograft fibrosis and prognosis. Nephrol Dial Transplant 19:2838–2845
13.
go back to reference Wiggins R, Goyal M, Merritt S, Killen PD (1993) Vascular adventitial cell expression of collagen I messenger ribonucleic acid in anti-glomerular basement membrane antibody-induced crescentic nephritis in the rabbit. A cellular source for interstitial collagen synthesis in inflammatory renal disease. Lab Invest 68:557–565PubMed Wiggins R, Goyal M, Merritt S, Killen PD (1993) Vascular adventitial cell expression of collagen I messenger ribonucleic acid in anti-glomerular basement membrane antibody-induced crescentic nephritis in the rabbit. A cellular source for interstitial collagen synthesis in inflammatory renal disease. Lab Invest 68:557–565PubMed
14.
go back to reference Chai Q, Krag S, Chai S, Ledet T, Wogensen L (2003) Localisation and phenotypical characterisation of collagen-producing cells in TGF-beta1-induced renal interstitial fibrosis. Histochem Cell Biol 119:267–280PubMed Chai Q, Krag S, Chai S, Ledet T, Wogensen L (2003) Localisation and phenotypical characterisation of collagen-producing cells in TGF-beta1-induced renal interstitial fibrosis. Histochem Cell Biol 119:267–280PubMed
15.
go back to reference Iwano M, Fischer A, Okada H, Plieth D, Xue C, Danoff TM, Neilson EG (2001) Conditional abatement of tissue fibrosis using nucleoside analogs to selectively corrupt DNA replication in transgenic fibroblasts. Mol Ther 3:149–159CrossRefPubMed Iwano M, Fischer A, Okada H, Plieth D, Xue C, Danoff TM, Neilson EG (2001) Conditional abatement of tissue fibrosis using nucleoside analogs to selectively corrupt DNA replication in transgenic fibroblasts. Mol Ther 3:149–159CrossRefPubMed
16.
go back to reference Vittal R, Horowitz JC, Moore BB, Zhang H, Martinez FJ, Toews GB, Standiford TJ, Thannickal VJ (2005) Modulation of prosurvival signaling in fibroblasts by a protein kinase inhibitor protects against fibrotic tissue injury. Am J Pathol 166:367–375PubMed Vittal R, Horowitz JC, Moore BB, Zhang H, Martinez FJ, Toews GB, Standiford TJ, Thannickal VJ (2005) Modulation of prosurvival signaling in fibroblasts by a protein kinase inhibitor protects against fibrotic tissue injury. Am J Pathol 166:367–375PubMed
17.
go back to reference Liu Y (2004) Epithelial to mesenchymal transition in renal fibrogenesis: pathologic significance, molecular mechanism, and therapeutic intervention. J Am Soc Nephrol 15:1–12CrossRefPubMed Liu Y (2004) Epithelial to mesenchymal transition in renal fibrogenesis: pathologic significance, molecular mechanism, and therapeutic intervention. J Am Soc Nephrol 15:1–12CrossRefPubMed
18.
go back to reference Kalluri R, Neilson EG (2003) Epithelial-mesenchymal transition and its implications for fibrosis. J Clin Invest 112:1776–1784CrossRefPubMed Kalluri R, Neilson EG (2003) Epithelial-mesenchymal transition and its implications for fibrosis. J Clin Invest 112:1776–1784CrossRefPubMed
19.
go back to reference Iwano M, Plieth D, Danoff TM, Xue C, Okada H, Neilson EG (2002) Evidence that fibroblasts derive from epithelium during tissue fibrosis. J Clin Invest 110:341–350CrossRefPubMed Iwano M, Plieth D, Danoff TM, Xue C, Okada H, Neilson EG (2002) Evidence that fibroblasts derive from epithelium during tissue fibrosis. J Clin Invest 110:341–350CrossRefPubMed
20.
go back to reference Duffield JS, Forbes SJ, Constandinou CM, Clay S, Partolina M, Vuthoori S, Wu S, Lang R, Iredale JP (2005) Selective depletion of macrophages reveals distinct, opposing roles during liver injury and repair. J Clin Invest 115:56–65CrossRefPubMed Duffield JS, Forbes SJ, Constandinou CM, Clay S, Partolina M, Vuthoori S, Wu S, Lang R, Iredale JP (2005) Selective depletion of macrophages reveals distinct, opposing roles during liver injury and repair. J Clin Invest 115:56–65CrossRefPubMed
21.
go back to reference Friedman SL (2005) Mac the knife? Macrophages—the double-edged sword of hepatic fibrosis. J Clin Invest 115:29–32CrossRefPubMed Friedman SL (2005) Mac the knife? Macrophages—the double-edged sword of hepatic fibrosis. J Clin Invest 115:29–32CrossRefPubMed
22.
go back to reference Zhang G, Kim H, Cai X, Lopez-Guisa J, Alpers C, Liu Y, Carmeliet P, Eddy A (2003) Urokinase receptor deficiency accelerates fibrosis in obstructive nephropathy. J Am Soc Nephrol 14:1254–1271CrossRefPubMed Zhang G, Kim H, Cai X, Lopez-Guisa J, Alpers C, Liu Y, Carmeliet P, Eddy A (2003) Urokinase receptor deficiency accelerates fibrosis in obstructive nephropathy. J Am Soc Nephrol 14:1254–1271CrossRefPubMed
23.
go back to reference Nishida M, Fujinaka H, Matsusaka T, Price J, Kon V, Fogo AB, Davidson JM, Linton MF, Fazio S, Homma T, Yoshida H, Ichikawa I (2002) Absence of angiotensin II type 1 receptor in bone marrow-derived cells is detrimental in the evolution of renal fibrosis. J Clin Invest 110:1859–1868CrossRefPubMed Nishida M, Fujinaka H, Matsusaka T, Price J, Kon V, Fogo AB, Davidson JM, Linton MF, Fazio S, Homma T, Yoshida H, Ichikawa I (2002) Absence of angiotensin II type 1 receptor in bone marrow-derived cells is detrimental in the evolution of renal fibrosis. J Clin Invest 110:1859–1868CrossRefPubMed
24.
go back to reference Tamaki K, Okuda S (2003) Role of TGF-beta in the progression of renal fibrosis. Contrib Nephrol 139:44–65PubMed Tamaki K, Okuda S (2003) Role of TGF-beta in the progression of renal fibrosis. Contrib Nephrol 139:44–65PubMed
25.
go back to reference Bonner JC (2004) Regulation of PDGF and its receptors in fibrotic diseases. Cytokine Growth Factor Rev 15:255–273CrossRefPubMed Bonner JC (2004) Regulation of PDGF and its receptors in fibrotic diseases. Cytokine Growth Factor Rev 15:255–273CrossRefPubMed
26.
go back to reference Yokoi H, Mukoyama M, Nagae T, Mori K, Suganami T, Sawai K, Yoshioka T, Koshikawa M, Nishida T, Takigawa M, Sugawara A, Nakao K (2004) Reduction in connective tissue growth factor by antisense treatment ameliorates renal tubulointerstitial fibrosis. J Am Soc Nephrol 15:1430–1440CrossRefPubMed Yokoi H, Mukoyama M, Nagae T, Mori K, Suganami T, Sawai K, Yoshioka T, Koshikawa M, Nishida T, Takigawa M, Sugawara A, Nakao K (2004) Reduction in connective tissue growth factor by antisense treatment ameliorates renal tubulointerstitial fibrosis. J Am Soc Nephrol 15:1430–1440CrossRefPubMed
27.
go back to reference Okada H, Kikuta T, Kobayashi T, Inoue T, Kanno Y, Takigawa M, Sugaya T, Kopp JB, Suzuki H (2005) Connective tissue growth factor expressed in tubular epithelium plays a pivotal role in renal fibrogenesis. J Am Soc Nephrol 16:133–143CrossRefPubMed Okada H, Kikuta T, Kobayashi T, Inoue T, Kanno Y, Takigawa M, Sugaya T, Kopp JB, Suzuki H (2005) Connective tissue growth factor expressed in tubular epithelium plays a pivotal role in renal fibrogenesis. J Am Soc Nephrol 16:133–143CrossRefPubMed
28.
go back to reference Zatz R, Fujihara CK (2002) Mechanisms of progressive renal disease: role of angiotensin II, cyclooxygenase products and nitric oxide. J Hypertens 20 Suppl 3:S37–S44 Zatz R, Fujihara CK (2002) Mechanisms of progressive renal disease: role of angiotensin II, cyclooxygenase products and nitric oxide. J Hypertens 20 Suppl 3:S37–S44
29.
go back to reference Eddy AA (2002) Plasminogen activator inhibitor-1 and the kidney. Am J Physiol Renal Physiol 283:F209–F220PubMed Eddy AA (2002) Plasminogen activator inhibitor-1 and the kidney. Am J Physiol Renal Physiol 283:F209–F220PubMed
30.
go back to reference Jernigan S, Wing D, Schnaper H, Poncelet A-C, Lopez-Guisa J, Ueno H, Eddy A (1999) Effects of chronic blockade with soluble TGF-b receptor II in rats with overload proteinuria. J Am Soc Nephrol 10:573A Jernigan S, Wing D, Schnaper H, Poncelet A-C, Lopez-Guisa J, Ueno H, Eddy A (1999) Effects of chronic blockade with soluble TGF-b receptor II in rats with overload proteinuria. J Am Soc Nephrol 10:573A
31.
go back to reference Inazaki K, Kanamaru Y, Kojima Y, Sueyoshi N, Okumura K, Kaneko K, Yamashiro Y, Ogawa H, Nakao A (2004) Smad3 deficiency attenuates renal fibrosis, inflammation, and apoptosis after unilateral ureteral obstruction. Kidney Int 66:597–604CrossRefPubMed Inazaki K, Kanamaru Y, Kojima Y, Sueyoshi N, Okumura K, Kaneko K, Yamashiro Y, Ogawa H, Nakao A (2004) Smad3 deficiency attenuates renal fibrosis, inflammation, and apoptosis after unilateral ureteral obstruction. Kidney Int 66:597–604CrossRefPubMed
32.
go back to reference Hou CC, Wang W, Huang XR, Fu P, Chen TH, Sheikh-Hamad D, Lan HY (2005) Ultrasound-microbubble-mediated gene transfer of inducible Smad7 blocks transforming growth factor-β signaling and fibrosis in rat remnant kidney. Am J Pathol 166:761–771PubMed Hou CC, Wang W, Huang XR, Fu P, Chen TH, Sheikh-Hamad D, Lan HY (2005) Ultrasound-microbubble-mediated gene transfer of inducible Smad7 blocks transforming growth factor-β signaling and fibrosis in rat remnant kidney. Am J Pathol 166:761–771PubMed
33.
go back to reference Liu Y, Rajur K, Tolbert E, Dworkin LD (2000) Endogenous hepatocyte growth factor ameliorates chronic renal injury by activating matrix degradation pathways. Kidney Int 58:2028–2043CrossRefPubMed Liu Y, Rajur K, Tolbert E, Dworkin LD (2000) Endogenous hepatocyte growth factor ameliorates chronic renal injury by activating matrix degradation pathways. Kidney Int 58:2028–2043CrossRefPubMed
34.
go back to reference Zeisberg M, Hanai J, Sugimoto H, Mammoto T, Charytan D, Strutz F, Kalluri R (2003) BMP-7 counteracts TGF-beta1-induced epithelial-to-mesenchymal transition and reverses chronic renal injury. Nat Med 9:964–968CrossRefPubMed Zeisberg M, Hanai J, Sugimoto H, Mammoto T, Charytan D, Strutz F, Kalluri R (2003) BMP-7 counteracts TGF-beta1-induced epithelial-to-mesenchymal transition and reverses chronic renal injury. Nat Med 9:964–968CrossRefPubMed
35.
go back to reference Samuel CS, Zhao C, Bond CP, Hewitson TD, Amento EP, Summers RJ (2004) Relaxin-1-deficient mice develop an age-related progression of renal fibrosis. Kidney Int 65:2054–2064CrossRefPubMed Samuel CS, Zhao C, Bond CP, Hewitson TD, Amento EP, Summers RJ (2004) Relaxin-1-deficient mice develop an age-related progression of renal fibrosis. Kidney Int 65:2054–2064CrossRefPubMed
36.
go back to reference Jernigan S, Eddy A (2000) Experimental insights into the mechanisms of tubulo-interstitial scarring. In: El Nahas A, Harris K, Anderson S (eds) Mechanisms and clinical management of chronic renal failure. Oxford, Oxford University Press, pp 104–145 Jernigan S, Eddy A (2000) Experimental insights into the mechanisms of tubulo-interstitial scarring. In: El Nahas A, Harris K, Anderson S (eds) Mechanisms and clinical management of chronic renal failure. Oxford, Oxford University Press, pp 104–145
37.
go back to reference Kim H, Oda T, Lopez-Guisa J, Wing D, Edwards DR, Soloway PD, Eddy AA (2001) TIMP-1 deficiency does not attenuate interstitial fibrosis in obstructive nephropathy. J Am Soc Nephrol 12:736–748PubMed Kim H, Oda T, Lopez-Guisa J, Wing D, Edwards DR, Soloway PD, Eddy AA (2001) TIMP-1 deficiency does not attenuate interstitial fibrosis in obstructive nephropathy. J Am Soc Nephrol 12:736–748PubMed
38.
go back to reference Iredale JP, Benyon RC, Pickering J, McCullen M, Northrop M, Pawley S, Hovell C, Arthur MJP (1998) Mechanisms of spontaneous resolution of rat liver fibrosis. Hepatic stellate cell apoptosis and reduced hepatic expression of metalloproteinase inhibitors. J Clin Invest 102:538–549PubMed Iredale JP, Benyon RC, Pickering J, McCullen M, Northrop M, Pawley S, Hovell C, Arthur MJP (1998) Mechanisms of spontaneous resolution of rat liver fibrosis. Hepatic stellate cell apoptosis and reduced hepatic expression of metalloproteinase inhibitors. J Clin Invest 102:538–549PubMed
39.
go back to reference Eddy AA, Kim H, Lopez-Guisa J, Oda T, Soloway PD (2000) Interstitial fibrosis in mice with overload proteinuria: deficiency of TIMP-1 is not protective. Kidney Int 58:618–628CrossRefPubMed Eddy AA, Kim H, Lopez-Guisa J, Oda T, Soloway PD (2000) Interstitial fibrosis in mice with overload proteinuria: deficiency of TIMP-1 is not protective. Kidney Int 58:618–628CrossRefPubMed
40.
go back to reference Oda T, Jung YO, Kim H, Cai x, Lopez-Guisa J, Ikeda Y, Eddy AA (2001) PAI-1 deficiency attenuates the fibrogenic response to ureteral obstruction. Kidney Int 30:587–596CrossRef Oda T, Jung YO, Kim H, Cai x, Lopez-Guisa J, Ikeda Y, Eddy AA (2001) PAI-1 deficiency attenuates the fibrogenic response to ureteral obstruction. Kidney Int 30:587–596CrossRef
41.
go back to reference Matsuo S, López-Guisa J, Cai X, Okamura D, Alpers C, Bumgarner C, Peters M, Zhang Z, Eddy A (2005) Multi-functionality of PAI-1 in fibrogenesis: evidence from obstructive nephropathy in PAI-1 over-expressing mice. Kidney Int 67:2221–2238CrossRefPubMed Matsuo S, López-Guisa J, Cai X, Okamura D, Alpers C, Bumgarner C, Peters M, Zhang Z, Eddy A (2005) Multi-functionality of PAI-1 in fibrogenesis: evidence from obstructive nephropathy in PAI-1 over-expressing mice. Kidney Int 67:2221–2238CrossRefPubMed
42.
go back to reference Zhang G, Collins S, Cai X, Lopez-Guisa J, Eddy A (2004) Plasmin(ogen) promotes renal interstitial fibrosis by inducing epithelial-to-mesenchyman transition: role of plasminogen activate signals. J Am Soc Nephrol 15:36A Zhang G, Collins S, Cai X, Lopez-Guisa J, Eddy A (2004) Plasmin(ogen) promotes renal interstitial fibrosis by inducing epithelial-to-mesenchyman transition: role of plasminogen activate signals. J Am Soc Nephrol 15:36A
43.
go back to reference Edgtton KL, Gow RM, Kelly DJ, Carmeliet P, Kitching AR (2004) Plasmin is not protective in experimental renal interstitial fibrosis. Kidney Int 66:68–76CrossRefPubMed Edgtton KL, Gow RM, Kelly DJ, Carmeliet P, Kitching AR (2004) Plasmin is not protective in experimental renal interstitial fibrosis. Kidney Int 66:68–76CrossRefPubMed
44.
go back to reference Yang J, Shultz RW, Mars WM, Wegner RE, Li Y, Dai C, Nejak K, Liu Y (2002) Disruption of tissue-type plasminogen activator gene in mice reduces renal interstitial fibrosis in obstructive nephropathy. J Clin Invest 110:1525–1538CrossRefPubMed Yang J, Shultz RW, Mars WM, Wegner RE, Li Y, Dai C, Nejak K, Liu Y (2002) Disruption of tissue-type plasminogen activator gene in mice reduces renal interstitial fibrosis in obstructive nephropathy. J Clin Invest 110:1525–1538CrossRefPubMed
45.
go back to reference Cheng S, Pollock A, Olson J, Lovett D (2004) Transgenic renal proximal tubular cell expression of active matrix metalloproteinase-2 drives epithelial-mesenchymal transition and interstitial fibrosis. J Am Soc Nephrol 15:37ACrossRef Cheng S, Pollock A, Olson J, Lovett D (2004) Transgenic renal proximal tubular cell expression of active matrix metalloproteinase-2 drives epithelial-mesenchymal transition and interstitial fibrosis. J Am Soc Nephrol 15:37ACrossRef
46.
go back to reference Surendran K, Simon TC, Liapis H, McGuire JK (2004) Matrilysin (MMP-7) expression in renal tubular damage: association with Wnt4. Kidney Int 65:2212–2222CrossRefPubMed Surendran K, Simon TC, Liapis H, McGuire JK (2004) Matrilysin (MMP-7) expression in renal tubular damage: association with Wnt4. Kidney Int 65:2212–2222CrossRefPubMed
47.
go back to reference Sisson TH, Hattori N, Xu Y, Simon RH (1999) Treatment of bleomycin-induced pulmonary fibrosis by transfer of urokinase-type plasminogen activator genes. Hum Gene Ther 10:2315–2323CrossRefPubMed Sisson TH, Hattori N, Xu Y, Simon RH (1999) Treatment of bleomycin-induced pulmonary fibrosis by transfer of urokinase-type plasminogen activator genes. Hum Gene Ther 10:2315–2323CrossRefPubMed
48.
go back to reference Salgado S, Garcia J, Vera J, Siller F, Bueno M, Miranda A, Segura A, Grijalva G, Segura J, Orozco H, Hernandez-Pando R, Fafutis M, Aguilar LK, Aguilar-Cordova E, Armendariz-Borunda J (2000) Liver cirrhosis is reverted by urokinase-type plasminogen activator gene therapy. Mol Ther 2:545–551CrossRefPubMed Salgado S, Garcia J, Vera J, Siller F, Bueno M, Miranda A, Segura A, Grijalva G, Segura J, Orozco H, Hernandez-Pando R, Fafutis M, Aguilar LK, Aguilar-Cordova E, Armendariz-Borunda J (2000) Liver cirrhosis is reverted by urokinase-type plasminogen activator gene therapy. Mol Ther 2:545–551CrossRefPubMed
49.
go back to reference Hattori N, Mizuno S, Yoshida Y, Chin K, Mishima M, Sisson TH, Simon RH, Nakamura T, Miyake M (2004) The plasminogen activation system reduces fibrosis in the lung by a hepatocyte growth factor-dependent mechanism. Am J Pathol 164:1091–1098PubMed Hattori N, Mizuno S, Yoshida Y, Chin K, Mishima M, Sisson TH, Simon RH, Nakamura T, Miyake M (2004) The plasminogen activation system reduces fibrosis in the lung by a hepatocyte growth factor-dependent mechanism. Am J Pathol 164:1091–1098PubMed
50.
go back to reference Turck J, Pollock AS, Lee LK, Marti HP, Lovett DH (1996) Matrix metalloproteinase 2 (gelatinase A) regulates glomerular mesangial cell proliferation and differentiation. J Biol Chem 271:15074–15083 Turck J, Pollock AS, Lee LK, Marti HP, Lovett DH (1996) Matrix metalloproteinase 2 (gelatinase A) regulates glomerular mesangial cell proliferation and differentiation. J Biol Chem 271:15074–15083
51.
go back to reference Yang B, Johnson TS, Thomas GL, Watson PF, Wagner B, Skill NJ, Haylor JL, El Nahas AM (2001) Expression of apoptosis-related genes and proteins in experimental chronic renal scarring. J Am Soc Nephrol 12:275–288PubMed Yang B, Johnson TS, Thomas GL, Watson PF, Wagner B, Skill NJ, Haylor JL, El Nahas AM (2001) Expression of apoptosis-related genes and proteins in experimental chronic renal scarring. J Am Soc Nephrol 12:275–288PubMed
52.
go back to reference Lin F, Cordes K, Li L, Hood L, Couser WG, Shankland SJ, Igarashi P (2003) Hematopoietic stem cells contribute to the regeneration of renal tubules after renal ischemia-reperfusion injury in mice. J Am Soc Nephrol 14:1188–1199CrossRefPubMed Lin F, Cordes K, Li L, Hood L, Couser WG, Shankland SJ, Igarashi P (2003) Hematopoietic stem cells contribute to the regeneration of renal tubules after renal ischemia-reperfusion injury in mice. J Am Soc Nephrol 14:1188–1199CrossRefPubMed
53.
go back to reference Kale S, Karihaloo A, Clark PR, Kashgarian M, Krause DS, Cantley LG (2003) Bone marrow stem cells contribute to repair of the ischemically injured renal tubule. J Clin Invest 112:42–49CrossRefPubMed Kale S, Karihaloo A, Clark PR, Kashgarian M, Krause DS, Cantley LG (2003) Bone marrow stem cells contribute to repair of the ischemically injured renal tubule. J Clin Invest 112:42–49CrossRefPubMed
54.
go back to reference Morigi M, Imberti B, Zoja C, Corna D, Tomasoni S, Abbate M, Rottoli D, Angioletti S, Benigni A, Perico N, Alison M, Remuzzi G (2004) Mesenchymal stem cells are renotropic, helping to repair the kidney and improve function in acute renal failure. J Am Soc Nephrol 15:1794–1804CrossRefPubMed Morigi M, Imberti B, Zoja C, Corna D, Tomasoni S, Abbate M, Rottoli D, Angioletti S, Benigni A, Perico N, Alison M, Remuzzi G (2004) Mesenchymal stem cells are renotropic, helping to repair the kidney and improve function in acute renal failure. J Am Soc Nephrol 15:1794–1804CrossRefPubMed
55.
go back to reference Hamerski DA, Santoro SA (1999) Integrins and the kidney: biology and pathobiology. Curr Opin Nephrol Hypertens 8:9–14CrossRefPubMed Hamerski DA, Santoro SA (1999) Integrins and the kidney: biology and pathobiology. Curr Opin Nephrol Hypertens 8:9–14CrossRefPubMed
56.
go back to reference Matsumoto M, Tanaka T, Yamamoto T, Noiri E, Miyata T, Inagi R, Fujita T, Nangaku M (2004) Hypoperfusion of peritubular capillaries induces chronic hypoxia before progression of tubulointerstitial injury in a progressive model of rat glomerulonephritis. J Am Soc Nephrol 15:1574–1581CrossRefPubMed Matsumoto M, Tanaka T, Yamamoto T, Noiri E, Miyata T, Inagi R, Fujita T, Nangaku M (2004) Hypoperfusion of peritubular capillaries induces chronic hypoxia before progression of tubulointerstitial injury in a progressive model of rat glomerulonephritis. J Am Soc Nephrol 15:1574–1581CrossRefPubMed
57.
go back to reference Orphanides C, Fine LF, Norman JT (1997) Hypoxia stimulates proximal tubular cell matrix production via a TGF-β1-independent mechanism. Kidney Int 52:637–647PubMed Orphanides C, Fine LF, Norman JT (1997) Hypoxia stimulates proximal tubular cell matrix production via a TGF-β1-independent mechanism. Kidney Int 52:637–647PubMed
58.
go back to reference National Kidney Foundation (2002) K/DOQI clinical practice guidelines for chronic kidney disease: evaluation, classification and startification. Am J Kidney Dis 39:S1–S266CrossRefPubMed National Kidney Foundation (2002) K/DOQI clinical practice guidelines for chronic kidney disease: evaluation, classification and startification. Am J Kidney Dis 39:S1–S266CrossRefPubMed
Metadata
Title
Can renal fibrosis be reversed?
Author
Allison A. Eddy
Publication date
01-10-2005
Publisher
Springer-Verlag
Published in
Pediatric Nephrology / Issue 10/2005
Print ISSN: 0931-041X
Electronic ISSN: 1432-198X
DOI
https://doi.org/10.1007/s00467-005-1995-5

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