-
1
-
-
84927921056
-
Rheological influence upon the glomerular podocyte and resultant mechanotransduction
-
Pichler Sekulic S, Sekulic M. Rheological influence upon the glomerular podocyte and resultant mechanotransduction. Kidney Blood Press Res 2015; 40: 176-187
-
(2015)
Kidney Blood Press Res
, vol.40
, pp. 176-187
-
-
Pichler Sekulic, S.1
Sekulic, M.2
-
2
-
-
53849101410
-
Life, death and burial: Multifaceted impact of autophagy
-
Galluzzi L, Morselli E, Vicencio JM, Kepp O, Joza N, Tajeddine N, Kroemer G. Life, death and burial: multifaceted impact of autophagy. Biochem Soc Trans 2008; 36: 786-790
-
(2008)
Biochem Soc Trans
, vol.36
, pp. 786-790
-
-
Galluzzi, L.1
Morselli, E.2
Vicencio, J.M.3
Kepp, O.4
Joza, N.5
Tajeddine, N.6
Kroemer, G.7
-
3
-
-
33644783770
-
Glucose-induced reactive oxygen species cause apoptosis of podocytes and podocyte depletion at the onset of diabetic nephropathy
-
Susztak K, Raff AC, Schiffer M, Bottinger EP. Glucose-induced reactive oxygen species cause apoptosis of podocytes and podocyte depletion at the onset of diabetic nephropathy. Diabetes 2006; 55: 225-233
-
(2006)
Diabetes
, vol.55
, pp. 225-233
-
-
Susztak, K.1
Raff, A.C.2
Schiffer, M.3
Bottinger, E.P.4
-
4
-
-
84911489012
-
Connexin 43 is involved in aldosterone-induced podocyte injury
-
Yang M, Wang B, Li M, Jiang B. Connexin 43 is involved in aldosterone-induced podocyte injury. Cell Physiol Biochem 2014; 34: 1652-1662
-
(2014)
Cell Physiol Biochem
, vol.34
, pp. 1652-1662
-
-
Yang, M.1
Wang, B.2
Li, M.3
Jiang, B.4
-
5
-
-
84910113245
-
Activation of the Nrf2-ARE pathway attenuates hyperglycemia-mediated injuries in mouse podocytes
-
Wang C, Li C, Peng H, Ye Z, Zhang J, Liu X, Lou T. Activation of the Nrf2-ARE pathway attenuates hyperglycemia-mediated injuries in mouse podocytes. Cell Physiol Biochem 2014; 34: 891-902
-
(2014)
Cell Physiol Biochem
, vol.34
, pp. 891-902
-
-
Wang, C.1
Li, C.2
Peng, H.3
Ye, Z.4
Zhang, J.5
Liu, X.6
Lou, T.7
-
6
-
-
0038718698
-
MAP-LC3, a promising autophagosomal marker, is processed during the differentiation and recovery of podocytes from PAN nephrosis
-
Asanuma K, Tanida I, Shirato I, Ueno T, Takahara H, Nishitani T, Kominami E, Tomino Y. MAP-LC3, a promising autophagosomal marker, is processed during the differentiation and recovery of podocytes from PAN nephrosis. FASEB J 2003; 17: 1165-1167
-
(2003)
FASEB J
, vol.17
, pp. 1165-1167
-
-
Asanuma, K.1
Tanida, I.2
Shirato, I.3
Ueno, T.4
Takahara, H.5
Nishitani, T.6
Kominami, E.7
Tomino, Y.8
-
7
-
-
1542283812
-
In vivo analysis of autophagy in response to nutrient starvation using transgenic mice expressing a fluorescent autophagosome marker
-
Mizushima N, Yamamoto A, Matsui M, Yoshimori T, Ohsumi Y. In vivo analysis of autophagy in response to nutrient starvation using transgenic mice expressing a fluorescent autophagosome marker. Mol Biol Cell 2004; 15: 1101-1111
-
(2004)
Mol Biol Cell
, vol.15
, pp. 1101-1111
-
-
Mizushima, N.1
Yamamoto, A.2
Matsui, M.3
Yoshimori, T.4
Ohsumi, Y.5
-
8
-
-
82655181484
-
Prorenin receptor is essential for podocyte autophagy and survival
-
Riediger F, Quack I, Qadri F, Hartleben B, Park JK, Potthoff SA, Sohn D, Sihn G, Rousselle A, Fokuhl V, Maschke U, Purfurst B, Schneider W, Rump LC, Luft FC, Dechend R, Bader M, Huber TB, Nguyen G, Muller DN. Prorenin receptor is essential for podocyte autophagy and survival. J Am Soc Nephrol 2011; 22: 2193-2202
-
(2011)
J Am Soc Nephrol
, vol.22
, pp. 2193-2202
-
-
Riediger, F.1
Quack, I.2
Qadri, F.3
Hartleben, B.4
Park, J.K.5
Potthoff, S.A.6
Sohn, D.7
Sihn, G.8
Rousselle, A.9
Fokuhl, V.10
Maschke, U.11
Purfurst, B.12
Schneider, W.13
Rump, L.C.14
Luft, F.C.15
Dechend, R.16
Bader, M.17
Huber, T.B.18
Nguyen, G.19
Muller, D.N.20
more..
-
9
-
-
84926229056
-
Enhanced epithelial-to-mesenchymal transition associated with lysosome dysfunction in podocytes: Role of p62/Sequestosome 1 as a signaling hub
-
Li G, Li CX, Xia M, Ritter JK, Gehr TW, Boini K, Li PL. Enhanced epithelial-to-mesenchymal transition associated with lysosome dysfunction in podocytes: role of p62/Sequestosome 1 as a signaling hub. Cell Physiol Biochem 2015; 35: 1773-1786
-
(2015)
Cell Physiol Biochem
, vol.35
, pp. 1773-1786
-
-
Li, G.1
Li, C.X.2
Xia, M.3
Ritter, J.K.4
Gehr, T.W.5
Boini, K.6
Li, P.L.7
-
10
-
-
84865703985
-
How many ways can a podocyte die?
-
Tharaux PL, Huber TB. How many ways can a podocyte die? Semin Nephrol 2012; 32: 394-404
-
(2012)
Semin Nephrol
, vol.32
, pp. 394-404
-
-
Tharaux, P.L.1
Huber, T.B.2
-
11
-
-
77955900101
-
ANG II promotes autophagy in podocytes
-
Yadav A, Vallabu S, Arora S, Tandon P, Slahan D, Teichberg S, Singhal PC. ANG II promotes autophagy in podocytes. Am J Physiol Cell Physiol 2010; 299: C488-496
-
(2010)
Am J Physiol Cell Physiol
, vol.299
, pp. C488-496
-
-
Yadav, A.1
Vallabu, S.2
Arora, S.3
Tandon, P.4
Slahan, D.5
Teichberg, S.6
Singhal, P.C.7
-
12
-
-
84875258906
-
High glucose induces autophagy in podocytes
-
Ma T, Zhu J, Chen X, Zha D, Singhal PC, Ding G. High glucose induces autophagy in podocytes. Exp Cell Res 2013; 319: 779-789
-
(2013)
Exp Cell Res
, vol.319
, pp. 779-789
-
-
Ma, T.1
Zhu, J.2
Chen, X.3
Zha, D.4
Singhal, P.C.5
Ding, G.6
-
13
-
-
60749108379
-
Regulation of autophagy by reactive oxygen species (ROS): Implications for cancer progression and treatment
-
Azad MB, Chen Y, Gibson SB. Regulation of autophagy by reactive oxygen species (ROS): implications for cancer progression and treatment. Antioxid Redox Signal 2009; 11: 777-790
-
(2009)
Antioxid Redox Signal
, vol.11
, pp. 777-790
-
-
Azad, M.B.1
Chen, Y.2
Gibson, S.B.3
-
14
-
-
78149475088
-
Regulation of mammalian autophagy in physiology and pathophysiology
-
Ravikumar B, Sarkar S, Davies JE, Futter M, Garcia-Arencibia M, Green-Thompson ZW, Jimenez-Sanchez M, Korolchuk VI, Lichtenberg M, Luo S, Massey DC, Menzies FM, Moreau K, Narayanan U, Renna M, Siddiqi FH, Underwood BR, Winslow AR, Rubinsztein DC. Regulation of mammalian autophagy in physiology and pathophysiology. Physiol Rev 2010; 90: 1383-1435
-
(2010)
Physiol Rev
, vol.90
, pp. 1383-1435
-
-
Ravikumar, B.1
Sarkar, S.2
Davies, J.E.3
Futter, M.4
Garcia-Arencibia, M.5
Green-Thompson, Z.W.6
Jimenez-Sanchez, M.7
Korolchuk, V.I.8
Lichtenberg, M.9
Luo, S.10
Massey, D.C.11
Menzies, F.M.12
Moreau, K.13
Narayanan, U.14
Renna, M.15
Siddiqi, F.H.16
Underwood, B.R.17
Winslow, A.R.18
Rubinsztein, D.C.19
-
15
-
-
67549084381
-
Superoxide is the major reactive oxygen species regulating autophagy
-
Chen Y, Azad M, Gibson S. Superoxide is the major reactive oxygen species regulating autophagy. Cell Death Differ 2009; 16: 1040-1052
-
(2009)
Cell Death Differ
, vol.16
, pp. 1040-1052
-
-
Chen, Y.1
Azad, M.2
Gibson, S.3
-
16
-
-
0035190220
-
Intrarenal angiotensin II. Interstitial and cellular levels and site of production
-
Van Kats JP, Schalekamp MA, Verdouw PD, Duncker DJ, Danser AH. Intrarenal angiotensin II. interstitial and cellular levels and site of production. Kidney Int 2001; 60: 2311-2317
-
(2001)
Kidney Int
, vol.60
, pp. 2311-2317
-
-
Van Kats, J.P.1
Schalekamp, M.A.2
Verdouw, P.D.3
Duncker, D.J.4
Danser, A.H.5
-
17
-
-
78650890352
-
Regulation of autophagy by ROS: Physiology and pathology
-
Scherz-Shouval R, Elazar Z. Regulation of autophagy by ROS: physiology and pathology. Trends Biochem Sci 2011; 36: 30-38
-
(2011)
Trends Biochem Sci
, vol.36
, pp. 30-38
-
-
Scherz-Shouval, R.1
Elazar, Z.2
-
18
-
-
84931958134
-
ROS and autophagy: Interactions and molecular regulatory mechanisms
-
Li L, Tan J, Miao Y, Lei P, Zhang Q. ROS and Autophagy: Interactions and Molecular Regulatory Mechanisms. Cell Mol Neurobiol 2015, DOI 10.1007/s10571-015-0166-x
-
(2015)
Cell Mol Neurobiol
-
-
Li, L.1
Tan, J.2
Miao, Y.3
Lei, P.4
Zhang, Q.5
-
19
-
-
84961289132
-
Kaempferol suppresses collagen-induced platelet activation by inhibiting NADPH oxidase and protecting SHP-2 from oxidative inactivation
-
Bin Wang S, Hee Chae Y, Yong Jang J, Hyun Min J, Young Baek J, Kim M, Park Y, Seo Hwang G, Ryu JS, Chang TS. Kaempferol suppresses collagen-induced platelet activation by inhibiting NADPH oxidase and protecting SHP-2 from oxidative inactivation. Free Radic Biol Med 2015, DOI 10.1016/j. freeradbiomed.2015.01.018
-
(2015)
Free Radic Biol Med
-
-
Bin Wang, S.1
Hee Chae, Y.2
Yong Jang, J.3
Hyun Min, J.4
Young Baek, J.5
Kim, M.6
Park, Y.7
Seo Hwang, G.8
Ryu, J.S.9
Chang, T.S.10
-
20
-
-
84907455071
-
Nox family NADPH oxidases: Molecular mechanisms of activation
-
Brandes RP, Weissmann N, Schroder K. Nox family NADPH oxidases: Molecular mechanisms of activation. Free Radic Biol Med 2014; 76: 208-226
-
(2014)
Free Radic Biol Med
, vol.76
, pp. 208-226
-
-
Brandes, R.P.1
Weissmann, N.2
Schroder, K.3
-
21
-
-
33749047437
-
Localizing NADPH oxidase-derived ROS
-
re8
-
Ushio-Fukai M. Localizing NADPH oxidase-derived ROS. Sci STKE 2006; 2006: re8
-
(2006)
Sci STKE
, vol.2006
-
-
Ushio-Fukai, M.1
-
22
-
-
67349086056
-
Immunoregulatory effects of sinomenine on the T-bet/GATA-3 ratio and Th1/Th2 cytokine balance in the treatment of mesangial proliferative nephritis
-
Cheng Y, Zhang J, Hou W, Wang D, Li F, Zhang Y, Yuan F. Immunoregulatory effects of sinomenine on the T-bet/GATA-3 ratio and Th1/Th2 cytokine balance in the treatment of mesangial proliferative nephritis. Int Immunopharmacol 2009; 9: 894-899
-
(2009)
Int Immunopharmacol
, vol.9
, pp. 894-899
-
-
Cheng, Y.1
Zhang, J.2
Hou, W.3
Wang, D.4
Li, F.5
Zhang, Y.6
Yuan, F.7
-
23
-
-
84875248790
-
Sinomenine inhibits the expression of PD-L1 in the peripheral blood mononuclear cells of mesangial proliferative nephritis patients
-
Cheng Y, Li F, Wang D, Zhang Y, Yuan F, Zhang J. Sinomenine inhibits the expression of PD-L1 in the peripheral blood mononuclear cells of mesangial proliferative nephritis patients. Mol Med Rep 2013; 7: 1223-1228
-
(2013)
Mol Med Rep
, vol.7
, pp. 1223-1228
-
-
Cheng, Y.1
Li, F.2
Wang, D.3
Zhang, Y.4
Yuan, F.5
Zhang, J.6
-
24
-
-
84863708892
-
Sinomenium acutum: A review of chemistry, pharmacology, pharmacokinetics, and clinical use
-
Zhao XX, Peng C, Zhang H, Qin LP. Sinomenium acutum: a review of chemistry, pharmacology, pharmacokinetics, and clinical use. Pharm Biol 2012; 50: 1053-1061
-
(2012)
Pharm Biol
, vol.50
, pp. 1053-1061
-
-
Zhao, X.X.1
Peng, C.2
Zhang, H.3
Qin, L.P.4
-
25
-
-
35948938955
-
Sinomenine, a natural dextrorotatory morphinan analog, is anti-inflammatory and neuroprotective through inhibition of microglial NADPH oxidase
-
Qian L, Xu Z, Zhang W, Wilson B, Hong JS, Flood PM. Sinomenine, a natural dextrorotatory morphinan analog, is anti-inflammatory and neuroprotective through inhibition of microglial NADPH oxidase. J Neuroinflammation 2007; 4: 23
-
(2007)
J Neuroinflammation
, vol.4
, pp. 23
-
-
Qian, L.1
Xu, Z.2
Zhang, W.3
Wilson, B.4
Hong, J.S.5
Flood, P.M.6
-
26
-
-
80052824628
-
Sinomenine inhibits microglial activation by Abeta and confers neuroprotection
-
Shukla SM, Sharma SK. Sinomenine inhibits microglial activation by Abeta and confers neuroprotection. J Neuroinflammation 2011; 8: 117
-
(2011)
J Neuroinflammation
, vol.8
, pp. 117
-
-
Shukla, S.M.1
Sharma, S.K.2
-
28
-
-
84921845273
-
Sinomenine hydrochloride protects against polymicrobial sepsis via autophagy
-
Jiang Y, Gao M, Wang W, Lang Y, Tong Z, Wang K, Zhang H, Chen G, Liu M, Yao Y, Xiao X. Sinomenine Hydrochloride Protects against Polymicrobial Sepsis via Autophagy. Int J Mol Sci 2015; 16: 2559-2573
-
(2015)
Int J Mol Sci
, vol.16
, pp. 2559-2573
-
-
Jiang, Y.1
Gao, M.2
Wang, W.3
Lang, Y.4
Tong, Z.5
Wang, K.6
Zhang, H.7
Chen, G.8
Liu, M.9
Yao, Y.10
Xiao, X.11
-
29
-
-
0036189998
-
A conditionally immortalized human podocyte cell line demonstrating nephrin and podocin expression
-
Saleem MA, O'Hare MJ, Reiser J, Coward RJ, Inward CD, Farren T, Xing CY, Ni L, Mathieson PW, Mundel P. A conditionally immortalized human podocyte cell line demonstrating nephrin and podocin expression. J Am Soc Nephrol 2002; 13: 630-638
-
(2002)
J Am Soc Nephrol
, vol.13
, pp. 630-638
-
-
Saleem, M.A.1
O'Hare, M.J.2
Reiser, J.3
Coward, R.J.4
Inward, C.D.5
Farren, T.6
Xing, C.Y.7
Ni, L.8
Mathieson, P.W.9
Mundel, P.10
-
30
-
-
70449135066
-
Correlation of autophagy type in podocytes with histopathological diagnosis of IgA nephropathy
-
Sato S, Yanagihara T, Ghazizadeh M, Ishizaki M, Adachi A, Sasaki Y, Igarashi T, Fukunaga Y. Correlation of autophagy type in podocytes with histopathological diagnosis of IgA nephropathy. Pathobiology 2009; 76: 221-226
-
(2009)
Pathobiology
, vol.76
, pp. 221-226
-
-
Sato, S.1
Yanagihara, T.2
Ghazizadeh, M.3
Ishizaki, M.4
Adachi, A.5
Sasaki, Y.6
Igarashi, T.7
Fukunaga, Y.8
-
31
-
-
0037783377
-
C-Src induces phosphorylation and translocation of p47phox: Role in superoxide generation by angiotensin II in human vascular smooth muscle cells
-
Touyz RM, Yao G, Schiffrin EL. c-Src induces phosphorylation and translocation of p47phox: role in superoxide generation by angiotensin II in human vascular smooth muscle cells. Arterioscler Thromb Vasc Biol 2003; 23: 981-987
-
(2003)
Arterioscler Thromb Vasc Biol
, vol.23
, pp. 981-987
-
-
Touyz, R.M.1
Yao, G.2
Schiffrin, E.L.3
-
32
-
-
84922489435
-
Oxidative stress and autophagy: The clash between damage and metabolic needs
-
Filomeni G, De Zio D, Cecconi F. Oxidative stress and autophagy: the clash between damage and metabolic needs. Cell Death Differ 2015; 22: 377-388
-
(2015)
Cell Death Differ
, vol.22
, pp. 377-388
-
-
Filomeni, G.1
De Zio, D.2
Cecconi, F.3
-
33
-
-
84955390424
-
Too much or not enough of a good thing -the janus faces of autophagy in cardiac fuel and protein homeostasis
-
Ren J, Taegtmeyer H. Too Much or Not Enough of a Good Thing -the Janus Faces of Autophagy in Cardiac Fuel and Protein Homeostasis. J Mol Cell Cardiol 2015, DOI 10.1016/j.yjmcc.2015.03.001
-
(2015)
J Mol Cell Cardiol
-
-
Ren, J.1
Taegtmeyer, H.2
-
34
-
-
0036792751
-
Role of p47phox in vascular oxidative stress and hypertension caused by angiotensin II
-
Landmesser U, Cai H, Dikalov S, McCann L, Hwang J, Jo H, Holland SM, Harrison DG. Role of p47phox in Vascular Oxidative Stress and Hypertension Caused by Angiotensin II. Hypertension 2002; 40: 511-515
-
(2002)
Hypertension
, vol.40
, pp. 511-515
-
-
Landmesser, U.1
Cai, H.2
Dikalov, S.3
McCann, L.4
Hwang, J.5
Jo, H.6
Holland, S.M.7
Harrison, D.G.8
-
35
-
-
0037032024
-
Angiotensin II stimulation of NAD(P)H oxidase activity: Upstream mediators
-
Seshiah PN, Weber DS, Rocic P, Valppu L, Taniyama Y, Griendling KK. Angiotensin II stimulation of NAD(P)H oxidase activity: upstream mediators. Circ Res 2002; 91: 406-413
-
(2002)
Circ Res
, vol.91
, pp. 406-413
-
-
Seshiah, P.N.1
Weber, D.S.2
Rocic, P.3
Valppu, L.4
Taniyama, Y.5
Griendling, K.K.6
|