-
1
-
-
84859977895
-
Sirtuins mediate mammalian metabolic responses to nutrient availability
-
Chalkiadaki, A., and Guarente, L. (2012) Sirtuins mediate mammalian metabolic responses to nutrient availability. Nat. Rev. Endocrinol. 8, 287-296
-
(2012)
Nat. Rev. Endocrinol.
, vol.8
, pp. 287-296
-
-
Chalkiadaki, A.1
Guarente, L.2
-
2
-
-
84871147383
-
Sirtuin catalysis and regulation
-
Feldman, J. L., Dittenhafer-Reed, K. E., and Denu, J. M. (2012) Sirtuin catalysis and regulation. J. Biol. Chem. 276, 42419-42427
-
(2012)
J. Biol. Chem.
, vol.276
, pp. 42419-42427
-
-
Feldman, J.L.1
Dittenhafer-Reed, K.E.2
Denu, J.M.3
-
3
-
-
14544282413
-
Nutrient control of glucose homeo-stasis through a complex of PGC-1 a and SIRT1
-
Rodgers, J. T., Lerin, C., Haas, W., Gygi, S. P., Spiegelman, B. M., and Puigserver, P. (2005) Nutrient control of glucose homeo-stasis through a complex of PGC-1 a and SIRT1. Nature 434, 3-8
-
(2005)
Nature
, vol.434
, pp. 3-8
-
-
Rodgers, J.T.1
Lerin, C.2
Haas, W.3
Gygi, S.P.4
Spiegelman, B.M.5
Puigserver, P.6
-
4
-
-
0043244921
-
Sir2 regulates skeletal muscle differentiation as a potential sensor of the redox state
-
DOI 10.1016/S1097-2765(03)00226-0
-
Fulco, M., Schiltz, R. L., Iezzi, S., King, M. T., Zhao, P., Kashiwaya, Y., Hoffman, E., Veech, R. L., and Sartorelli, V. (2003) Sir2 regulates skeletal muscle differentiation as a potential sensor of the redox state. Mol. Cell 12, 51-62 (Pubitemid 36945036)
-
(2003)
Molecular Cell
, vol.12
, Issue.1
, pp. 51-62
-
-
Fulco, M.1
Schiltz, R.L.2
Iezzi, S.3
King, M.T.4
Zhao, P.5
Kashiwaya, Y.6
Hoffman, E.7
Veech, R.L.8
Sartorelli, V.9
-
5
-
-
0037185003
-
Identification of a specific molecular repressor of the peroxisome proliferator-activated receptor γ coactivator-1 α (PGC-1α)
-
DOI 10.1074/jbc.M210262200
-
Ichida, M., Nemoto, S., and Finkel, T. (2002) Identification of a specific molecular repressor of the peroxisome proliferator-activated receptor gamma coactivator-1 alpha (PGC-1alpha). J. Biol. Chem. 277, 50991-50995 (Pubitemid 36042269)
-
(2002)
Journal of Biological Chemistry
, vol.277
, Issue.52
, pp. 50991-50995
-
-
Ichida, M.1
Nemoto, S.2
Finkel, T.3
-
6
-
-
33748316536
-
SIRT4 Inhibits Glutamate Dehydrogenase and Opposes the Effects of Calorie Restriction in Pancreatic β Cells
-
DOI 10.1016/j.cell.2006.06.057, PII S0092867406010208
-
Haigis, M. C., Mostoslavsky, R., Haigis, K. M., Fahie, K., Christ-odoulou, D. C., Murphy, A. J., Valenzuela, D. M., Yancopoulos, G. D., Karow, M., Blander, G., Wolberger, C., Prolla, T. A., Weindruch, R., Alt, F. W., and Guarente, L. (2006) SIRT4 inhibits glutamate dehydrogenase and opposes the effects of calorie restriction in pancreatic beta cells. Cell 126, 941-954 (Pubitemid 44321935)
-
(2006)
Cell
, vol.126
, Issue.5
, pp. 941-954
-
-
Haigis, M.C.1
Mostoslavsky, R.2
Haigis, K.M.3
Fahie, K.4
Christodoulou, D.C.5
Murphy, AndrewJ.6
Valenzuela, D.M.7
Yancopoulos, G.D.8
Karow, M.9
Blander, G.10
Wolberger, C.11
Prolla, T.A.12
Weindruch, R.13
Alt, F.W.14
Guarente, L.15
-
7
-
-
81055122671
-
Sirt5 is a NAD-dependent protein lysine demalonylase and desuccinylase
-
Du, J., Zhou, Y., Su, X., Yu, J. J., Khan, S., Jiang, H., Kim, J., Woo, J., Kim, J. H., Choi, B. H., He, B., Chen, W., Zhang, S., Cerione, R. A., Auwerx, J., Hao, Q., and Lin, H. (2011) Sirt5 is a NAD-dependent protein lysine demalonylase and desuccinylase. Science 334, 806-809
-
(2011)
Science
, vol.334
, pp. 806-809
-
-
Du, J.1
Zhou, Y.2
Su, X.3
Yu, J.J.4
Khan, S.5
Jiang, H.6
Kim, J.7
Woo, J.8
Kim, J.H.9
Choi, B.H.10
He, B.11
Chen, W.12
Zhang, S.13
Cerione, R.A.14
Auwerx, J.15
Hao, Q.16
Lin, H.17
-
8
-
-
84869498851
-
SIRT5 deacetylates and activates urate oxidase in liver mitochondria of mice
-
Nakamura, Y., Ogura, M., Ogura, K., Tanaka, D., and Inagaki, N. (2012) SIRT5 deacetylates and activates urate oxidase in liver mitochondria of mice. FEBS Lett. 586, 4076-4081
-
(2012)
FEBS Lett.
, vol.586
, pp. 4076-4081
-
-
Nakamura, Y.1
Ogura, M.2
Ogura, K.3
Tanaka, D.4
Inagaki, N.5
-
9
-
-
65249087389
-
SIRT5 Deacetylates carbamoyl phosphate synthetase 1 and regulates the urea cycle
-
Nakagawa, T., Lomb, D. J., Haigis, M. C., and Guarente, L. (2009) SIRT5 Deacetylates carbamoyl phosphate synthetase 1 and regulates the urea cycle. Cell 137, 560-570
-
(2009)
Cell
, vol.137
, pp. 560-570
-
-
Nakagawa, T.1
Lomb, D.J.2
Haigis, M.C.3
Guarente, L.4
-
10
-
-
83055173304
-
The first identification of lysine malonylation substrates and its regulatory enzyme
-
Peng, C., Lu, Z., Xie, Z., Cheng, Z., Chen, Y., Tan, M., Luo, H., Zhang, Y., He, W., Yang, K., Zwaans, B. M. M., Tishkoff, D., Ho, L., Lombard, D., He, T.-C, Dai, J., Verdin, E., Ye, Y, and Zhao, Y (2011) The first identification of lysine malonylation substrates and its regulatory enzyme. Mol. Cell. Proteomics 10, M111.012658
-
(2011)
Mol. Cell. Proteomics
, vol.10
-
-
Peng, C.1
Lu, Z.2
Xie, Z.3
Cheng, Z.4
Chen, Y.5
Tan, M.6
Luo, H.7
Zhang, Y.8
He, W.9
Yang, K.10
Zwaans, B.M.M.11
Tishkoff, D.12
Ho, L.13
Lombard, D.14
He, T.-C.15
Dai, J.16
Verdin, E.17
Ye, Y.18
Zhao, Y.19
-
11
-
-
77950806433
-
SIRT3 regulates mitochondrial fatty-acid oxidation by reversible enzyme deacetylation
-
Hirschey, M. D., Shimazu, T., Goetzman, E., Jing, E., Schwer, B., Lombard, D. B., Grueter, C. A., Harris, C., Biddinger, S., Ilkayeva, O. R., Stevens, R. D., Li, Y, Saha, A. K., Ruderman, N. B., Bain, J. R., Newgard, C. B., Farese, R. V., Alt, F. W., Kahn, C. R., and Verdin, E. (2010) SIRT3 regulates mitochondrial fatty-acid oxidation by reversible enzyme deacetylation. Nature 464, 121-125
-
(2010)
Nature
, vol.464
, pp. 121-125
-
-
Hirschey, M.D.1
Shimazu, T.2
Goetzman, E.3
Jing, E.4
Schwer, B.5
Lombard, D.B.6
Grueter, C.A.7
Harris, C.8
Biddinger, S.9
Ilkayeva, O.R.10
Stevens, R.D.11
Li, Y.12
Saha, A.K.13
Ruderman, N.B.14
Bain, J.R.15
Newgard, C.B.16
Farese, R.V.17
Alt, F.W.18
Kahn, C.R.19
Verdin, E.20
more..
-
12
-
-
79952501323
-
SIRT3 opposes reprogramming of cancer cell metabolism through HIF1a destabilization
-
Finley, L. W. S., Carracedo, A., Lee, J., Souza, A., Egia, A., Zhang, J., Teruya-Feldstein, J., Moreira, P. I., Cardoso, S. M., Clish, C. B., Pandolfi, P. P., and Haigis, M. C. (2011) SIRT3 opposes reprogramming of cancer cell metabolism through HIF1a destabilization. Cancer Cell 19, 416-428
-
(2011)
Cancer Cell
, vol.19
, pp. 416-428
-
-
Finley, L.W.S.1
Carracedo, A.2
Lee, J.3
Souza, A.4
Egia, A.5
Zhang, J.6
Teruya-Feldstein, J.7
Moreira, P.I.8
Cardoso, S.M.9
Clish, C.B.10
Pandolfi, P.P.11
Haigis, M.C.12
-
13
-
-
37549002891
-
Mammalian Sir2 homolog SIRT3 regulates global mitochondrial lysine acet-ylation
-
Lombard, D. B., Alt, F. W., Cheng, H.-L., Bunkenborg, J., Streeper, R. S., Mostoslavsky, R., Kim, J., Yancopoulos, G, Valenzuela, D., Murphy, A., Yang, Y., Chen, Y, Hirschey, M. D., Bronson, R. T., Haigis, M., Guarente, L. P., Farese, R. V., Weissman, S., Verdin, E., and Schwer, B. (2007) Mammalian Sir2 homolog SIRT3 regulates global mitochondrial lysine acet-ylation. Mol. Cell. Biol. 27, 8807-8814
-
(2007)
Mol. Cell. Biol.
, vol.27
, pp. 8807-8814
-
-
Lombard, D.B.1
Alt, F.W.2
Cheng, H.-L.3
Bunkenborg, J.4
Streeper, R.S.5
Mostoslavsky, R.6
Kim, J.7
Yancopoulos, G.8
Valenzuela, D.9
Murphy, A.10
Yang, Y.11
Chen, Y.12
Hirschey, M.D.13
Bronson, R.T.14
Haigis, M.15
Guarente, L.P.16
Farese, R.V.17
Weissman, S.18
Verdin, E.19
Schwer, B.20
more..
-
14
-
-
55749084738
-
A role for the mitochondrial deacetylase Sirt3 in regulating energy homeostasis
-
Ahn B.-H., Kim H.-S., Song, S., Lee, I. H., Liu, J., Vassilopoulos, A, Deng C.-X., and Finkel, T. (2008) A role for the mitochondrial deacetylase Sirt3 in regulating energy homeostasis. Proc. Natl. Acad. Sci. U.S.A. 105, 14447-14452
-
(2008)
Proc. Natl. Acad. Sci. U.S.A.
, vol.105
, pp. 14447-14452
-
-
Ahn, B.-H.1
Kim, H.-S.2
Song, S.3
Lee, I.H.4
Liu, J.5
Vassilopoulos, A.6
Deng, C.-X.7
Finkel, T.8
-
15
-
-
77955347446
-
Sirtuin 3, a new target of PGC-1alpha, plays an important role in the suppression of ROS and mitochondrial biogenesis
-
Kong, X., Wang, R., Xue, Y, Liu, X., Zhang, H., Chen, Y., Fang, F., and Chang, Y (2010) Sirtuin 3, a new target of PGC-1alpha, plays an important role in the suppression of ROS and mitochondrial biogenesis. PLoS One 5, e11707
-
(2010)
PLoS One
, vol.5
-
-
Kong, X.1
Wang, R.2
Xue, Y.3
Liu, X.4
Zhang, H.5
Chen, Y.6
Fang, F.7
Chang, Y.8
-
16
-
-
84860477354
-
SIRT1 is required for AMPK activation and the beneficial effects of resveratrol on mitochondrial function
-
Price, N. L., Gomes, A. P., Ling, A. J. Y, Duarte, F. V., Martin-Montalvo, A., North, B.J., Agarwal, B., Ye, L., Ramadori, G, Teodoro, J. S., Hubbard, B. P., Varela, A. T., Davis, J. G, Varamini, B., Hafner, A., Moaddel, R., Rolo, A. P., Coppari, R., Palmeira, C. M., de Cabo, R., Baur, J. A., and Sinclair, D. A (2012) SIRT1 is required for AMPK activation and the beneficial effects of resveratrol on mitochondrial function. Cell Metab. 15, 675-690
-
(2012)
Cell Metab.
, vol.15
, pp. 675-690
-
-
Price, N.L.1
Gomes, A.P.2
Ling, A.J.Y.3
Duarte, F.V.4
Martin-Montalvo, A.5
North, B.J.6
Agarwal, B.7
Ye, L.8
Ramadori, G.9
Teodoro, J.S.10
Hubbard, B.P.11
Varela, A.T.12
Davis, J.G.13
Varamini, B.14
Hafner, A.15
Moaddel, R.16
Rolo, A.P.17
Coppari, R.18
Palmeira, C.M.19
De Cabo, R.20
Baur, J.A.21
Sinclair, D.A.22
more..
-
17
-
-
77951049870
-
SRT1720 induces mitochondrial biogenesis and rescues mitochondrial function after oxidant injury in renal proximal tubule cells
-
Funk, J. A., Odejinmi, S., and Schnellmann, R. G (2010) SRT1720 induces mitochondrial biogenesis and rescues mitochondrial function after oxidant injury in renal proximal tubule cells. J. Pharmacol. Exp. Ther. 333, 593-601
-
(2010)
J. Pharmacol. Exp. Ther.
, vol.333
, pp. 593-601
-
-
Funk, J.A.1
Odejinmi, S.2
Schnellmann, R.G.3
-
18
-
-
0033538473
-
Mechanisms controlling mitochondrial biogenesis and respiration through the thermogenic coactivator PGC-1
-
DOI 10.1016/S0092-8674(00)80611-X
-
Wu, Z., Puigserver, P., Andersson, U., Zhang, C., Adelmant, G, Mootha, V., Troy, A., Cinti, S., Lowell, B., Scarpulla, R. C., and Spiegelman, B. M. (1999) Mechanisms controlling mitochondrial biogenesis and respiration through the thermogenic co-activator PGC-1. Cell 98, 115-124 (Pubitemid 29331201)
-
(1999)
Cell
, vol.98
, Issue.1
, pp. 115-124
-
-
Wu, Z.1
Puigserver, P.2
Andersson, U.3
Zhang, C.4
Adelmant, G.5
Mootha, V.6
Troy, A.7
Cinti, S.8
Lowell, B.9
Scarpulla, R.C.10
Spiegelman, B.M.11
-
19
-
-
53649107138
-
PGC-1a-mediated regulation of gene expression and metabolism: Implications for nutrition and exercise prescriptions
-
Benton, C. R., Wright, D. C., and Bonen, A. (2008) PGC-1a-mediated regulation of gene expression and metabolism: implications for nutrition and exercise prescriptions. Appl. Physiol. Nutr. Metab. 862, 843-862
-
(2008)
Appl. Physiol. Nutr. Metab.
, vol.862
, pp. 843-862
-
-
Benton, C.R.1
Wright, D.C.2
Bonen, A.3
-
20
-
-
0035855858
-
Control of hepatic gluconeogenesis through the transcriptional coaotivator PGC-1
-
DOI 10.1038/35093050
-
Yoon, J. C., Puigserver, P., Chen, G, Donovan, J., Wu, Z., Rhee, J., Adelmant, G, Stafford, J., Kahn, C. R., Granner, D. K., Newgard, C. B., and Spiegelman, B. M. (2001) Control of hepatic gluconeogenesis through the transcriptional coactivator PGC-1. Nature 413, 131-138 (Pubitemid 32867868)
-
(2001)
Nature
, vol.413
, Issue.6852
, pp. 131-138
-
-
Yoon, J.C.1
Puigserver, P.2
Chen, G.3
Donovan, J.4
Wu, Z.5
Rhee, J.6
Adelmant, G.7
Stafford, J.8
Kahn, C.R.9
Granner, D.K.10
Newgard, C.B.11
Spiegelman, B.M.12
-
21
-
-
21144446106
-
PGC-1alpha deficiency causes multi-system energy metabolic derangements: Muscle dysfunc tion, abnormal weight control and hepatic steatosis
-
Leone, T. C., Lehman, J. J., Finck, B. N., Schaeffer, P. J., Wende, A. R., Boudina, S., Courtois, M., Wozniak, D. F., Sambandam, N, Bernal-Mizrachi, C., Chen, Z., Holloszy, J. O., Medeiros, D. M., Schmidt, R. E., Saffitz, J. E., Abel, E. D., Semenkovich, C. F., and Kelly, D. P. (2005) PGC-1alpha deficiency causes multi-system energy metabolic derangements: muscle dysfunc tion, abnormal weight control and hepatic steatosis. PLoS Biol. 3, e101
-
(2005)
PLoS Biol.
, vol.3
-
-
Leone, T.C.1
Lehman, J.J.2
Finck, B.N.3
Schaeffer, P.J.4
Wende, A.R.5
Boudina, S.6
Courtois, M.7
Wozniak, D.F.8
Sambandam, N.9
Bernal-Mizrachi, C.10
Chen, Z.11
Holloszy, J.O.12
Medeiros, D.M.13
Schmidt, R.E.14
Saffitz, J.E.15
Abel, E.D.16
Semenkovich, C.F.17
Kelly, D.P.18
-
22
-
-
79953210362
-
Regulation of PGC-1a, a nodal regulator of mitochondrial biogenesis
-
Fernandez-Marcos, P. J., and Auwerx, J. (2011) Regulation of PGC-1a, a nodal regulator of mitochondrial biogenesis. Am. J. Clin. Nutr. 93, 884S-890S
-
(2011)
Am. J. Clin. Nutr.
, vol.93
-
-
Fernandez-Marcos, P.J.1
Auwerx, J.2
-
23
-
-
0032589689
-
Activation of PPAR coactiva-tor-1 through transcription factor docking
-
Puigserver, P., Adelmatn, G, Wu, Z., Fan, M., Xu, J., O'Malley, B., and Spiegelman, B. M. (1999) Activation of PPAR coactiva-tor-1 through transcription factor docking. Science 286, 1368-1371
-
(1999)
Science
, vol.286
, pp. 1368-1371
-
-
Puigserver, P.1
Adelmatn, G.2
Wu, Z.3
Fan, M.4
Xu, J.5
O'Malley, B.6
Spiegelman, B.M.7
-
24
-
-
0037174798
-
Peroxisome proliferator-activated receptor coactivator-1α (PGC-1α) coactivates the cardiac-enriched nuclear receptors estrogen-related receptor-α and -γ: Identification of novel Leucine-rich interaction motif within PGC-1α
-
DOI 10.1074/jbc.M206324200
-
Huss, J. M., Kopp, R. P., and Kelly, D. P. (2002) Peroxisome proliferator-activated receptor coactivator-1alpha (PGC-1alpha) coactivates the cardiac-enriched nuclear receptors estrogen-related receptor-alpha and-gamma: identification of novel leucine-rich interaction motif within PGC-1alpha. J. Biol. Chem. 277, 40265-40274 (Pubitemid 35215598)
-
(2002)
Journal of Biological Chemistry
, vol.277
, Issue.43
, pp. 40265-40274
-
-
Huss, J.M.1
Kopp, R.P.2
Kelly, D.P.3
-
25
-
-
0033977890
-
The coactivator PGC-1 cooperates with peroxisome proliferator-activated receptor α in transcriptional control of nuclear genes encoding mitochondrial fatty acid oxidation enzymes
-
DOI 10.1128/MCB.20.5.1868-1876.2000
-
Vega, R. B., Huss, J. M., and Kelly, D. P. (2000) The coactivator PGC-1 cooperates with peroxisome proliferator-activated receptor alpha in transcriptional control of nuclear genes encoding mitochondrial fatty acid oxidation enzymes. Mol. Cell. Biol. 20, 1868-1876 (Pubitemid 30100203)
-
(2000)
Molecular and Cellular Biology
, vol.20
, Issue.5
, pp. 1868-1876
-
-
Vega, R.B.1
Huss, J.M.2
Kelly, D.P.3
-
26
-
-
84858782079
-
AMPK: A nutrient and energy sensor that maintains energy homeostasis
-
Hardie, D. G, Ross, F. A., and Hawley, S. A. (2012) AMPK: a nutrient and energy sensor that maintains energy homeostasis. Nat. Rev. Mol. Cell. Biol. 13, 251-262
-
(2012)
Nat. Rev. Mol. Cell. Biol.
, vol.13
, pp. 251-262
-
-
Hardie, D.G.1
Ross, F.A.2
Hawley, S.A.3
-
27
-
-
48549091164
-
Dietary energy restriction modulates the activity of AMP-activated protein kinase, Akt, and mammalian target of rapamycin in mammary carcinomas, mammary gland, and liver
-
Jiang, W., Zhu, Z., and Thompson, H.J. (2008) Dietary energy restriction modulates the activity of AMP-activated protein kinase, Akt, and mammalian target of rapamycin in mammary carcinomas, mammary gland, and liver. Cancer Res. 68, 5492-5499
-
(2008)
Cancer Res.
, vol.68
, pp. 5492-5499
-
-
Jiang, W.1
Zhu, Z.2
Thompson, H.J.3
-
28
-
-
77957556136
-
Glucagon and lipid interactions in the regulation of hepatic AMPK signaling and expression of PPARalpha and FGF21 transcripts in vivo
-
Berglund, E. D., Kang, L., Lee-Young, R. S., Hasenour, C. M., Lustig, D. G, Lynes, S. E., Donahue, E. P., Swift, L. L., Charron, M. J., and Wasserman, D. H. (2010) Glucagon and lipid interactions in the regulation of hepatic AMPK signaling and expression of PPARalpha and FGF21 transcripts in vivo. Am. J. Physiol. Endocrinol. Metab. 299, E607-E614
-
(2010)
Am. J. Physiol. Endocrinol. Metab.
, vol.299
-
-
Berglund, E.D.1
Kang, L.2
Lee-Young, R.S.3
Hasenour, C.M.4
Lustig, D.G.5
Lynes, S.E.6
Donahue, E.P.7
Swift, L.L.8
Charron, M.J.9
Wasserman, D.H.10
-
29
-
-
84873707522
-
Biguanides suppress hepatic glucagon signalling by decreasing production of cyclic AMP
-
Miller, R. A., Chu, Q., Xie, J., Foretz, M., Viollet, B., and Birnbaum, M.J. (2013) Biguanides suppress hepatic glucagon signalling by decreasing production of cyclic AMP. Nature 494, 256-260
-
(2013)
Nature
, vol.494
, pp. 256-260
-
-
Miller, R.A.1
Chu, Q.2
Xie, J.3
Foretz, M.4
Viollet, B.5
Birnbaum, M.J.6
-
30
-
-
77954425305
-
Effects of metformin on glucose metabolism of perfused rat livers
-
De Souza Silva, F. M., da Silva, M. H. R. A., Bracht, A., Eller, G J., Constantin, R. P., and Yamamoto, N. S. (2010) Effects of metformin on glucose metabolism of perfused rat livers. Mol. Cell. Biochem. 340, 283-289
-
(2010)
Mol. Cell. Biochem.
, vol.340
, pp. 283-289
-
-
De Souza Silva, F.M.1
Da Silva, M.H.R.A.2
Bracht, A.3
Eller, G.J.4
Constantin, R.P.5
Yamamoto, N.S.6
-
31
-
-
84855603512
-
Cellular and molecular mechanisms of metformin: An overview
-
Viollet, B., Guigas, B., Sanz Garcia, N., Leclerc, J., Foretz, M., and Andreelli, F. (2012) Cellular and molecular mechanisms of metformin: an overview. Clin. Sci. 122, 253-270
-
(2012)
Clin. Sci.
, vol.122
, pp. 253-270
-
-
Viollet, B.1
Guigas, B.2
Sanz Garcia, N.3
Leclerc, J.4
Foretz, M.5
Andreelli, F.6
-
32
-
-
67349276169
-
AMPK regulates energy expenditure by modulating NAD+ metabolism and SIRT1 activity
-
Cantó, C., Gerhart-Hines, Z., Feige, J. N., Lagouge, M., Noriega, L., Milne, J. C., Elliott, P. J., Puigserver, P., and Auwerx, J. (2009) AMPK regulates energy expenditure by modulating NAD+ metabolism and SIRT1 activity. Nature 458, 1056-1060
-
(2009)
Nature
, vol.458
, pp. 1056-1060
-
-
Cantó, C.1
Gerhart-Hines, Z.2
Feige, J.N.3
Lagouge, M.4
Noriega, L.5
Milne, J.C.6
Elliott, P.J.7
Puigserver, P.8
Auwerx, J.9
-
33
-
-
77949493599
-
Metformin suppresses hepatic gluconeogenesis through induction of SIRT1 and GCN5
-
Caton, P. W., Nayuni, N. K., Kieswich, J., Khan, N. Q., Yaqoob, M. M., and Corder, R. (2010) Metformin suppresses hepatic gluconeogenesis through induction of SIRT1 and GCN5. J. Endocrinol. 205, 97-106
-
(2010)
J. Endocrinol.
, vol.205
, pp. 97-106
-
-
Caton, P.W.1
Nayuni, N.K.2
Kieswich, J.3
Khan, N.Q.4
Yaqoob, M.M.5
Corder, R.6
-
34
-
-
43049121395
-
Glucose Restriction Inhibits Skeletal Myoblast Differentiation by Activating SIRT1 through AMPK-Mediated Regulation of Nampt
-
DOI 10.1016/j.devcel.2008.02.004, PII S1534580708000749
-
Fulco, M., Cen, Y, Zhao, P., Hoffman, E. P., Mcburney, M. W., Sauve, A., and Sartorelli, V. (2009) Glucose restriction inhibits skeletal myoblast differentiation by activating SIRT1 through AMPK-mediated regulation of Nampt. Dev. Cell 14, 661-673 (Pubitemid 351622608)
-
(2008)
Developmental Cell
, vol.14
, Issue.5
, pp. 661-673
-
-
Fulco, M.1
Cen, Y.2
Zhao, P.3
Hoffman, E.P.4
McBurney, M.W.5
Sauve, A.A.6
Sartorelli, V.7
-
35
-
-
84869221105
-
Metformin reduces hepatic expression of SIRT3, the mitochondrial deacetylase controlling energy metabolism
-
Buler, M., Aatsinki, S.-M., Izzi, V., and Hakkola, J. (2012) Metformin reduces hepatic expression of SIRT3, the mitochondrial deacetylase controlling energy metabolism. PLoS One 7, e49863
-
(2012)
PLoS One
, vol.7
-
-
Buler, M.1
Aatsinki, S.-M.2
Izzi, V.3
Hakkola, J.4
-
36
-
-
50649112638
-
SIRT1 regulates hepatocyte lipid metabolism through activating AMP-activated protein kinase
-
Hou, X., Xu, S., Maitland-Toolan, K. A., Sato, K., Jiang, B., Ido, Y, Lan, F., Walsh, K., Wierzbicki, M., Verbeuren, T. J., Cohen, R A., and Zang, M. (2008) SIRT1 regulates hepatocyte lipid metabolism through activating AMP-activated protein kinase. J. Biol. Chem. 283, 20015-20026
-
(2008)
J. Biol. Chem.
, vol.283
, pp. 20015-20026
-
-
Hou, X.1
Xu, S.2
Maitland-Toolan, K.A.3
Sato, K.4
Jiang, B.5
Ido, Y.6
Lan, F.7
Walsh, K.8
Wierzbicki, M.9
Verbeuren, T.J.10
Cohen, R.A.11
Zang, M.12
-
37
-
-
34547545892
-
AMP-activated protein kinase (AMPK) action in skeletal muscle via direct phosphorylation of PGC-1α
-
DOI 10.1073/pnas.0705070104
-
Jäger, S., Handschin, C., St-Pierre, J., and Spiegelman, B. M. (2007) AMP-activated protein kinase (AMPK) action in skeletal muscle via direct phosphorylation of PGC-1alpha. Proc. Natl. Acad. Sci. U.S.A. 104, 12017-12022 (Pubitemid 47185622)
-
(2007)
Proceedings of the National Academy of Sciences of the United States of America
, vol.104
, Issue.29
, pp. 12017-12022
-
-
Jaer, S.1
Handschin, C.2
St-Pierre, J.3
Spiegelman, B.M.4
-
38
-
-
77955918482
-
Reversible acetylation of PGC-1: Connecting energy sensors and effectors to guarantee metabolic flexibility
-
Jeninga, E. H., Schoonjans, K., andAuwerx, J. (2010) Reversible acetylation of PGC-1: connecting energy sensors and effectors to guarantee metabolic flexibility. Oncogene 29, 4617-4624
-
(2010)
Oncogene
, vol.29
, pp. 4617-4624
-
-
Jeninga, E.H.1
Schoonjans, K.2
Auwerx, J.3
-
39
-
-
4344618829
-
Regulation of Cyp2a5 transcription in mouse primary hepatocytes: Roles of hepatocyte nuclear factor 4 and nuclear factor I
-
DOI 10.1042/BJ20040387
-
Ulvila, J., Arpiainen, S., Pelkonen, O., Aida, K., Sueyoshi, T., Negishi, M., and Hakkola, J. (2004) Regulation of Cyp2a5 transcription in mouse primary hepatocytes: roles of hepatocyte nuclear factor 4 and nuclear factor I. Biochem. J. 381, 887-894 (Pubitemid 39120500)
-
(2004)
Biochemical Journal
, vol.381
, Issue.3
, pp. 887-894
-
-
Ulvila, J.1
Arpiainen, S.2
Pelkonen, O.3
Aida, K.4
Sueyoshi, T.5
Negishi, M.6
Hakkola, J.7
-
40
-
-
33750008991
-
Transcriptional and phenotypic comparisons of Ppara knockout and siRNA knockdown mice
-
DOI 10.1093/nar/gkl609
-
De Souza, A. T., Dai, X., Spencer, A. G, Reppen, T., Menzie, A., Roesch, P. L., He, Y., Caguyong, M. J., Bloomer, S., Herweijer, H., Wolff, J. A., Hagstrom, J. E., Lewis, D. L., Linsley, P. S., and Ulrich, R. G (2006) Transcriptional and phenotypic comparisons of Ppara knockout and siRNA knockdown mice. Nucleic Acids Res. 34, 4486-4494 (Pubitemid 44567048)
-
(2006)
Nucleic Acids Research
, vol.34
, Issue.16
, pp. 4486-4494
-
-
De Souza, A.T.1
Dai, X.2
Spencer, A.G.3
Reppen, T.4
Menzie, A.5
Roesch, P.L.6
He, Y.7
Caguyong, M.J.8
Bloomer, S.9
Herweijer, H.10
Wolff, J.A.11
Hagstrom, J.E.12
Lewis, D.L.13
Linsley, P.S.14
Ulrich, R.G.15
-
41
-
-
33644868031
-
Estrogen-related receptor α is a repressor of phosphoenolpyruvate carboxykinase gene transcription
-
DOI 10.1074/jbc.M509276200
-
Herzog, B., Cardenas, J., Hall, R. K., Villena, J. A., Budge, P. J., Giguère, V., Granner, D. K., and Kralli, A. (2006) Estrogen-related receptor alpha is a repressor of phosphoenolpyruvate carboxykinase gene transcription. J. Biol. Chem. 281, 99-106 (Pubitemid 43671167)
-
(2006)
Journal of Biological Chemistry
, vol.281
, Issue.1
, pp. 99-106
-
-
Herzog, B.1
Cardenas, J.2
Hall, R.K.3
Villena, J.A.4
Budge, P.J.5
Giguere, V.6
Granner, D.K.7
Kralli, A.8
-
42
-
-
14244266050
-
Free fatty acids increase PGC-1α expression in isolated rat islets
-
DOI 10.1016/j.febslet.2005.01.046
-
Zhang, P., Liu, C, Zhang, C, Zhang, Y., Shen, P., Zhang, J., and Zhang, C.-Y. (2005) Free fatty acids increase PGC-1alpha expression in isolated rat islets. FEBS Lett. 579, 1446-1452 (Pubitemid 40289194)
-
(2005)
FEBS Letters
, vol.579
, Issue.6
, pp. 1446-1452
-
-
Zhang, P.1
Liu, C.2
Zhang, C.3
Zhang, Y.4
Shen, P.5
Zhang, J.6
Zhang, C.-Y.7
-
43
-
-
0024380087
-
Rapid detection of octamer binding proteins with 'mini-extracts', prepared from a small number of cells
-
Schreiber, E., Matthias, P., and Schaffner, W. (1989) Rapid detection of octamer binding proteins with "mini-extracts", prepared from a small number of cells. Nucleic Acids Res. 17, 6419 (Pubitemid 19198635)
-
(1989)
Nucleic Acids Research
, vol.17
, Issue.15
, pp. 6419
-
-
Schreiber, E.1
Matthias, P.2
Muller, M.M.3
Schaffner, W.4
-
44
-
-
33751503523
-
Receptor-Selective Coactivators as Tools to Define the Biology of Specific Receptor-Coactivator Pairs
-
DOI 10.1016/j.molcel.2006.10.012, PII S1097276506007015
-
Gaillard, S., Grasfeder, L. L., Haeffele, C. L., Lobenhofer, E. K, Chu, T.-M., Wolfinger, R., Kazmin, D., Koves, T. R., Muoio, D. M., Chang, C, and McDonnell, D. P. (2006) Receptor-selective coactivators as tools to define the biology of specific receptor-coactivator pairs. Mol. Cell 24, 797-803 (Pubitemid 44839208)
-
(2006)
Molecular Cell
, vol.24
, Issue.5
, pp. 797-803
-
-
Gaillard, S.1
Grasfeder, L.L.2
Haeffele, C.L.3
Lobenhofer, E.K.4
Chu, T.-M.5
Wolfinger, R.6
Kazmin, D.7
Koves, T.R.8
Muoio, D.M.9
Chang, C.-y.10
McDonnell, D.P.11
-
45
-
-
0025213488
-
Analysis of serial measurements in medical research (I: Reply)
-
Matthews, J. N. S., Altman, G. D., Campbell, M. J., and Royston, P. (1990) Analysis of serial measurements in medical research. BMJ 300, 680 (Pubitemid 20107353)
-
(1990)
British Medical Journal
, vol.300
, Issue.6725
, pp. 680
-
-
Matthews, J.N.S.1
Altman, D.2
Campbell, M.J.3
Royston, P.4
-
46
-
-
34247554887
-
Genome-wide Orchestration of Cardiac Functions by the Orphan Nuclear Receptors ERRα and γ
-
DOI 10.1016/j.cmet.2007.03.007, PII S155041310700068X
-
Dufour, C. R., Wilson, B. J., Huss, J. M., Kelly, D. P., Alaynick, W. A., Downes, M., Evans, R. M., Blanchette, M., and Giguère, V. (2007) Genome-wide orchestration of cardiac functions by the orphan nuclear receptors ERRalpha and gamma. Cell Metab. 5, 345-356 (Pubitemid 46667756)
-
(2007)
Cell Metabolism
, vol.5
, Issue.5
, pp. 345-356
-
-
Dufour, C.R.1
Wilson, B.J.2
Huss, J.M.3
Kelly, D.P.4
Alaynick, W.A.5
Downes, M.6
Evans, R.M.7
Blanchette, M.8
Giguere, V.9
-
47
-
-
4744371376
-
Estrogen-related receptor α directs peroxisome proliferator- activated receptor α signaling in the transcriptional control of energy metabolism in cardiac and skeletal muscle
-
DOI 10.1128/MCB.24.20.9079-9091.2004
-
Huss, J. M., Torra, P., Staels, B., Gigue, V., and Kelly, D. P. (2004) Estrogen-related receptor directs peroxisome prolifera-tor-activated receptor signaling in the transcriptional control of energy metabolism in cardiac and skeletal muscle. Mol. Cell. Biol. 24, 9079-9091 (Pubitemid 39313912)
-
(2004)
Molecular and Cellular Biology
, vol.24
, Issue.20
, pp. 9079-9091
-
-
Huss, J.M.1
Pineda Torra, I.2
Staels, B.3
Giguere, V.4
Kelly, D.P.5
-
48
-
-
36248982581
-
Comprehensive analysis of PPARa-dependent regulation of hepatic lipid metabolism by expression profiling
-
Rakhshandehroo, M., Sanderson, L. M., Matilainen, M., Stien-stra, R., Carlberg, C, de Groot, P. J., Müller, M., and Kersten, S. (2007) Comprehensive analysis of PPARa-dependent regulation of hepatic lipid metabolism by expression profiling. PPAR Res. 2007, 26839
-
(2007)
PPAR Res.
, vol.2007
, pp. 26839
-
-
Rakhshandehroo, M.1
Sanderson, L.M.2
Matilainen, M.3
Stien-Stra, R.4
Carlberg, C.5
De Groot, P.J.6
Müller, M.7
Kersten, S.8
-
49
-
-
77249128352
-
Overexpression of SIRT5 confirms its involvement in deacetyla-tion and activation of carbamoyl phosphate synthetase 1
-
Ogura, M., Nakamura, Y., Tanaka, D., Zhuang, X., Fujita, Y, Obara, A., Hamasaki, A., Hosokawa, M., and Inagaki, N. (2010) Overexpression of SIRT5 confirms its involvement in deacetyla-tion and activation of carbamoyl phosphate synthetase 1. Biochem. Biophys. Res. Commun. 393, 73-78
-
(2010)
Biochem. Biophys. Res. Commun.
, vol.393
, pp. 73-78
-
-
Ogura, M.1
Nakamura, Y.2
Tanaka, D.3
Zhuang, X.4
Fujita, Y.5
Obara, A.6
Hamasaki, A.7
Hosokawa, M.8
Inagaki, N.9
-
50
-
-
80054968456
-
SIRT1 and SIRT5 activity expression and behavioral responses to calorie restriction
-
Geng, Y.-Q., Li, T.-T., Liu, X.-Y, Li, Z.-H., and Fu, Y.-C. (2011) SIRT1 and SIRT5 activity expression and behavioral responses to calorie restriction. J. Cell. Biochem. 112, 3755-3761
-
(2011)
J. Cell. Biochem.
, vol.112
, pp. 3755-3761
-
-
Geng, Y.-Q.1
Li, T.-T.2
Liu, X.-Y.3
Li, Z.-H.4
Fu, Y.-C.5
-
51
-
-
73949123433
-
Calorie restriction alters mitochondrial acetylation
-
Schwer, B., Eckersdorff, M., Li, Y, Silva, J. C., Fermin, D., Kurtev, V., Giallourakis, C, Comb, M. J., Alt, F. W., and Lombard, D. B. (2010) Calorie restriction alters mitochondrial acetylation. Aging Cell 8, 604-606
-
(2010)
Aging Cell
, vol.8
, pp. 604-606
-
-
Schwer, B.1
Eckersdorff, M.2
Li, Y.3
Silva, J.C.4
Fermin, D.5
Kurtev, V.6
Giallourakis, C.7
Comb, M.J.8
Alt, F.W.9
Lombard, D.B.10
-
52
-
-
84880791239
-
SIRT5-mediated lysine desuccinylation impacts diverse metabolic pathways
-
Park, J., Chen, Y., Tishkoff, D. X., Peng, C, Tan, M., Dai, L., Xie, Z., Zhang, Y, Zwaans, B. M. M., Skinner, M. E., Lombard, D. B., and Zhao, Y (2013) SIRT5-mediated lysine desuccinylation impacts diverse metabolic pathways. Mol. Cell 50, 919-930
-
(2013)
Mol. Cell
, vol.50
, pp. 919-930
-
-
Park, J.1
Chen, Y.2
Tishkoff, D.X.3
Peng, C.4
Tan, M.5
Dai, L.6
Xie, Z.7
Zhang, Y.8
Zwaans, B.M.M.9
Skinner, M.E.10
Lombard, D.B.11
Zhao, Y.12
-
53
-
-
34447577912
-
Circumventing the crabtree effect: Replacing media glucose with galactose increases susceptibility of hepG2 cells to mitochondrial toxicants
-
DOI 10.1093/toxsci/kfm052
-
Marroquin, L. D., Hynes, J., Dykens, J. A., Jamieson, J. D., and Will, Y (2007) Circumventing the Crabtree effect: replacing media glucose with galactose increases susceptibility of HepG2 cells to mitochondrial toxicants. Toxicol. Sci. 97, 539-547 (Pubitemid 47073868)
-
(2007)
Toxicological Sciences
, vol.97
, Issue.2
, pp. 539-547
-
-
Marroquin, L.D.1
Hynes, J.2
Dykens, J.A.3
Jamieson, J.D.4
Will, Y.5
-
54
-
-
84896901019
-
Sirt2 deacetylase is a novel AKT binding partner critical for AKT activation by insulin
-
Ramakrishnan, G., Davaakhuu, G., Kaplun, L., Chung, W.-C, Rana, A., Atfi, A., Miele, L., and Tzivion, G. (2014) Sirt2 deacetylase is a novel AKT binding partner critical for AKT activation by insulin. J. Biol. Chem. 289, 6054-6066
-
(2014)
J. Biol. Chem.
, vol.289
, pp. 6054-6066
-
-
Ramakrishnan, G.1
Davaakhuu, G.2
Kaplun, L.3
Chung, W.-C.4
Rana, A.5
Atfi, A.6
Miele, L.7
Tzivion, G.8
-
55
-
-
79959906869
-
Acetylation regulates gluconeogenesis by promoting PEPCK1 degradation via recruiting the UBR5 ubiquitin ligase
-
Jiang, W., Wang, S., Xiao, M., Lin, Y., Zhou, L., Lei, Q., Xiong, Y., Guan, K.-L., and Zhao, S. (2011) Acetylation regulates gluconeogenesis by promoting PEPCK1 degradation via recruiting the UBR5 ubiquitin ligase. Mol. Cell 43, 33-44
-
(2011)
Mol. Cell
, vol.43
, pp. 33-44
-
-
Jiang, W.1
Wang, S.2
Xiao, M.3
Lin, Y.4
Zhou, L.5
Lei, Q.6
Xiong, Y.7
Guan, K.-L.8
Zhao, S.9
-
56
-
-
84870999850
-
The NAD-dependent deacetylase SIRT2 is required for programmed necrosis
-
Narayan, N., Lee, I. H., Borenstein, R., Sun, J., Wong, R., Tong, G., Fergusson, M. M., Liu, J., Rovira, I. I., Cheng, H.-L., Wang, G., Gucek, M., Lombard, D., Alt, F. W., Sack, M. N., Murphy, E., Cao, L., and Finkel, T. (2012) The NAD-dependent deacetylase SIRT2 is required for programmed necrosis. Nature 492, 199-204
-
(2012)
Nature
, vol.492
, pp. 199-204
-
-
Narayan, N.1
Lee, I.H.2
Borenstein, R.3
Sun, J.4
Wong, R.5
Tong, G.6
Fergusson, M.M.7
Liu, J.8
Rovira, I.I.9
Cheng, H.-L.10
Wang, G.11
Gucek, M.12
Lombard, D.13
Alt, F.W.14
Sack, M.N.15
Murphy, E.16
Cao, L.17
Finkel, T.18
-
57
-
-
80054769188
-
SIRT2 maintains genome integrity and suppresses tumorigenesis through regulating APC/C activity
-
Kim, H.-S., Vassilopoulos, A., Wang, R.-H., Lahusen, T., Xiao, Z., Xu, X., Li, C., Veenstra, T. D., Li, B., Yu, H., Ji, J., Wang, X. W., Park, S.-H., Cha, Y. I., Gius, D., and Deng, C.-X. (2011) SIRT2 maintains genome integrity and suppresses tumorigenesis through regulating APC/C activity. Cancer Cell 20, 487-499
-
(2011)
Cancer Cell
, vol.20
, pp. 487-499
-
-
Kim, H.-S.1
Vassilopoulos, A.2
Wang, R.-H.3
Lahusen, T.4
Xiao, Z.5
Xu, X.6
Li, C.7
Veenstra, T.D.8
Li, B.9
Yu, H.10
Ji, J.11
Wang, X.W.12
Park, S.-H.13
Cha, Y.I.14
Gius, D.15
Deng, C.-X.16
-
58
-
-
34547114031
-
Systemic treatment with the antidiabetic drug metformin selectively impairs p53-deficient tumor cell growth
-
DOI 10.1158/0008-5472.CAN-06-4447
-
Buzzai, M., Jones, R. G., Amaravadi, R. K., Lum, J. J., DeBerar-dinis, R. J., Zhao, F., Viollet, B., and Thompson, C. B. (2007) Systemic treatment with the antidiabetic drug metformin selectively impairs p53-deficient tumor cell growth. Cancer Res. 67, 6745-6752 (Pubitemid 47105521)
-
(2007)
Cancer Research
, vol.67
, Issue.14
, pp. 6745-6752
-
-
Buzzai, M.1
Jones, R.G.2
Amaravadi, R.K.3
Lum, J.J.4
DeBerardinis, R.J.5
Zhao, F.6
Viollet, B.7
Thompson, C.B.8
-
59
-
-
24644475793
-
Effect of metformin on life span and on the development of spontaneous mammary tumors in HER-2/neu transgenic mice
-
DOI 10.1016/j.exger.2005.07.007, PII S0531556505001531
-
Anisimov, V. N., Berstein, L. M., Egormin, P. A., Piskunova, T. S., Popovich, I. G., Zabezhinski, M. A., Kovalenko, I. G., Poroshina, T. E., Semenchenko, A. V., Provinciali, M., Re, F., and Franceschi, C. (2005) Effect of metformin on life span and on the development of spontaneous mammary tumors in HER-2/neu transgenic mice. Exp. Gerontol. 40, 685-693 (Pubitemid 41265819)
-
(2005)
Experimental Gerontology
, vol.40
, Issue.8-9
, pp. 685-693
-
-
Anisimov, V.N.1
Berstein, L.M.2
Egormin, P.A.3
Piskunova, T.S.4
Popovich, I.G.5
Zabezhinski, M.A.6
Kovalenko, I.G.7
Poroshina, T.E.8
Semenchenko, A.V.9
Provinciali, M.10
Re, F.11
Franceschi, C.12
-
60
-
-
46749125376
-
Transcriptional control of mitochondrial biogenesis: The central role of PGC-1α
-
DOI 10.1093/cvr/cvn098
-
Ventura-Clapier, R., Garnier, A., and Veksler, V. (2008) Tran-scriptional control of mitochondrial biogenesis: the central role of PGC-1alpha. Cardiovasc. Res. 79, 208-217 (Pubitemid 351951611)
-
(2008)
Cardiovascular Research
, vol.79
, Issue.2
, pp. 208-217
-
-
Ventura-Clapier, R.1
Garnier, A.2
Veksler, V.3
-
61
-
-
84885124677
-
Metabolic characterization of a Sirt5 deficient mouse model
-
Yu, J., Sadhukhan, S., Noriega, L. G., Moullan, N., He, B., Weiss, R. S., Lin, H., Schoonjans, K., and Auwerx, J. (2013) Metabolic characterization of a Sirt5 deficient mouse model. Sci. Rep. 3, 2806
-
(2013)
Sci. Rep.
, vol.3
, pp. 2806
-
-
Yu, J.1
Sadhukhan, S.2
Noriega, L.G.3
Moullan, N.4
He, B.5
Weiss, R.S.6
Lin, H.7
Schoonjans, K.8
Auwerx, J.9
-
62
-
-
84883307077
-
Lysine succinylation is a frequently occurring modification in prokaryotes and eu-karyotes and extensively overlaps with acetylation
-
Weinert, B. T., Schölz, C., Wagner, S. A., Iesmantavicius, V., Su, D., Daniel, J. A., and Choudhary, C. (2013) Lysine succinylation is a frequently occurring modification in prokaryotes and eu-karyotes and extensively overlaps with acetylation. Cell Rep. 4, 842-851
-
(2013)
Cell Rep.
, vol.4
, pp. 842-851
-
-
Weinert, B.T.1
Schölz, C.2
Wagner, S.A.3
Iesmantavicius, V.4
Su, D.5
Daniel, J.A.6
Choudhary, C.7
-
63
-
-
77954933558
-
Metformin inhibits hepatic gluconeogenesis in mice independently of the LKB1/AMPK pathway via a decrease in hepatic energy state
-
Foretz, M., Hébrard, S., Leclerc, J., Zarrinpashneh, E., Soty, M., Mithieux, G., Sakamoto, K., Andreelli, F., and Viollet, B. (2010) Metformin inhibits hepatic gluconeogenesis in mice independently of the LKB1/AMPK pathway via a decrease in hepatic energy state. J. Clin. Invest. 120, 2355-2369
-
(2010)
J. Clin. Invest.
, vol.120
, pp. 2355-2369
-
-
Foretz, M.1
Hébrard, S.2
Leclerc, J.3
Zarrinpashneh, E.4
Soty, M.5
Mithieux, G.6
Sakamoto, K.7
Andreelli, F.8
Viollet, B.9
-
64
-
-
75549089019
-
PrimerBank: A resource of human and mouse PCR primer pairs for gene expression detection and quantification
-
Spandidos, A., Wang, X., Wang, H., and Seed, B. (2010) PrimerBank: a resource of human and mouse PCR primer pairs for gene expression detection and quantification. Nucleic Acids Res. 38, D792-D799
-
(2010)
Nucleic Acids Res.
, vol.38
-
-
Spandidos, A.1
Wang, X.2
Wang, H.3
Seed, B.4
|