-
1
-
-
81355150447
-
Long-term treadmill exercise induces neuroprotective molecular changes in rat brain
-
Bayod S, Del Valle J, Canudas AM, Lalanza JF, Sanchez-Roige S, Camins A, Escorihuela RM, Pallàs M. Long-term treadmill exercise induces neuroprotective molecular changes in rat brain. J Appl Physiol 111: 1380-1390, 2011.
-
(2011)
J Appl Physiol
, vol.111
, pp. 1380-1390
-
-
Bayod, S.1
Del Valle, J.2
Canudas, A.M.3
Lalanza, J.F.4
Sanchez-Roige, S.5
Camins, A.6
Escorihuela, R.M.7
Pallàs, M.8
-
2
-
-
0026521123
-
Quantitative histochemical changes in enzymes involved in energy metabolism in the rat brain during postnatal development. II. Glucose-6-phosphate dehydrogenase and beta-hydroxybutyrate dehydrogenase
-
Bilger A, Nehlig A. Quantitative histochemical changes in enzymes involved in energy metabolism in the rat brain during postnatal development. II. Glucose-6-phosphate dehydrogenase and beta-hydroxybutyrate dehydrogenase. Int J Dev Neurosci 10: 143-152, 1992.
-
(1992)
Int J Dev Neurosci
, vol.10
, pp. 143-152
-
-
Bilger, A.1
Nehlig, A.2
-
3
-
-
0027280530
-
Glucose deprivation causes posttranscrip-tional enhancement of brain capillary endothelial glucose transporter gene expression via GLUT1 mRNA stabilization
-
Boado RJ, Pardridge WM. Glucose deprivation causes posttranscrip-tional enhancement of brain capillary endothelial glucose transporter gene expression via GLUT1 mRNA stabilization. JNeurochem 60: 2290-2296, 1993.
-
(1993)
JNeurochem
, vol.60
, pp. 2290-2296
-
-
Boado, R.J.1
Pardridge, W.M.2
-
4
-
-
0033672958
-
Isoform-specific regulation of the lactate transporters MCT1 and MCT4 by contractile activity
-
Bonen A, Tonuchi M, Miskovic D, Heddle C, Heikkila JJ, Halestrap AP. Isoform-specific regulation of the lactate transporters MCT1 and MCT4 by contractile activity. Am J Physiol Endocrinol Metab 279: E1131-E1138, 2000.
-
(2000)
Am J Physiol Endocrinol Metab
, vol.279
-
-
Bonen, A.1
Tonuchi, M.2
Miskovic, D.3
Heddle, C.4
Heikkila, J.J.5
Halestrap, A.P.6
-
5
-
-
77958528666
-
The contribution of blood lactate to brain energy metabolism in humans measured by dynamic 13C nuclear magnetic resonance spectroscopy
-
Boumezbeur F, Petersen KF, Cline GW, Mason GF, Behar KL, Shulman GI, Rothman DL. The contribution of blood lactate to brain energy metabolism in humans measured by dynamic 13C nuclear magnetic resonance spectroscopy. J Neurosci 30: 13983-13991, 2010.
-
(2010)
J Neurosci
, vol.30
, pp. 13983-13991
-
-
Boumezbeur, F.1
Petersen, K.F.2
Cline, G.W.3
Mason, G.F.4
Behar, K.L.5
Shulman, G.I.6
Rothman, D.L.7
-
6
-
-
0242406757
-
Lactate is a preferential oxidative energy substrate over glucose for neurons in culture
-
Bouzier-Sore AK, Voisin P, Canioni P, Magistretti PJ, Pellerin L. Lactate is a preferential oxidative energy substrate over glucose for neurons in culture. J Cereb Blood Flow Metab 23: 1298-1306, 2003.
-
(2003)
J Cereb Blood Flow Metab
, vol.23
, pp. 1298-1306
-
-
Bouzier-Sore, A.K.1
Voisin, P.2
Canioni, P.3
Magistretti, P.J.4
Pellerin, L.5
-
7
-
-
84863707285
-
Endothelial cell-derived nitric oxide enhances aerobic glycolysis in astrocytes via HIF-1a-mediated target gene activation
-
Brix B, Mesters JR, Pellerin L, Jöhren O. Endothelial cell-derived nitric oxide enhances aerobic glycolysis in astrocytes via HIF-1a-mediated target gene activation. J Neurosci 32: 9727-9735, 2012.
-
(2012)
J Neurosci
, vol.32
, pp. 9727-9735
-
-
Brix, B.1
Mesters, J.R.2
Pellerin, L.3
Jöhren, O.4
-
8
-
-
0018226228
-
Determination of metabolic and heart rate responses of rats to treadmill exercise
-
Brooks GA, White TP. Determination of metabolic and heart rate responses of rats to treadmill exercise. J Appl Physiol 45: 1009-1015, 1978.
-
(1978)
J Appl Physiol
, vol.45
, pp. 1009-1015
-
-
Brooks, G.A.1
White, T.P.2
-
9
-
-
37749021939
-
Insulin and IGF-1 enhance the expression of the neuronal monocarboxylate transporter MCT2 by translational activation via stimulation of the phosphoinositide 3-kinase-Akt-mammalian target of rapamycin pathway
-
Chenal J, Pierre K, Pellerin L. Insulin and IGF-1 enhance the expression of the neuronal monocarboxylate transporter MCT2 by translational activation via stimulation of the phosphoinositide 3-kinase-Akt-mammalian target of rapamycin pathway. Eur J Neurosci 27: 53-65, 2008.
-
(2008)
Eur J Neurosci
, vol.27
, pp. 53-65
-
-
Chenal, J.1
Pierre, K.2
Pellerin, L.3
-
10
-
-
9244243047
-
Exercise rapidly increases expression of the monocarboxylate transporters MCT1 and MCT4 in rat muscle
-
Coles L, Litt J, Hatta H, Bonen A. Exercise rapidly increases expression of the monocarboxylate transporters MCT1 and MCT4 in rat muscle. J Physiol 561: 253-261, 2004.
-
(2004)
J Physiol
, vol.561
, pp. 253-261
-
-
Coles, L.1
Litt, J.2
Hatta, H.3
Bonen, A.4
-
11
-
-
84867592518
-
AMP kinase regulation of sugar transport in brain capillary endothelial cells during acute metabolic stress
-
Cura AJ, Carruthers A. AMP kinase regulation of sugar transport in brain capillary endothelial cells during acute metabolic stress. Am J Physiol Cell Physiol 303: C806-C814, 2012.
-
(2012)
Am J Physiol Cell Physiol
, vol.303
-
-
Cura, A.J.1
Carruthers, A.2
-
12
-
-
0842322960
-
A reduced cerebral metabolic ratio in exercise reflects metabolism and not accumulation of lactate within the human brain
-
Dalsgaard MK, Quistorff B, Danielsen ER, Selmer C, Vogelsang T, Secher NH. A reduced cerebral metabolic ratio in exercise reflects metabolism and not accumulation of lactate within the human brain. J Physiol 554: 571-578, 2003.
-
(2003)
J Physiol
, vol.554
, pp. 571-578
-
-
Dalsgaard, M.K.1
Quistorff, B.2
Danielsen, E.R.3
Selmer, C.4
Vogelsang, T.5
Secher, N.H.6
-
13
-
-
33646819345
-
Insulinlike growth factor i interfaces with brain-derived neurotrophic factor-mediated synaptic plasticity to modulate aspects of exercise-induced cognitive function
-
Ding Q, Vaynman S, Akhavan M, Ying Z, Gomez-Pinilla F. Insulinlike growth factor I interfaces with brain-derived neurotrophic factor-mediated synaptic plasticity to modulate aspects of exercise-induced cognitive function. Neuroscience 140: 823-833, 2006.
-
(2006)
Neuroscience
, vol.140
, pp. 823-833
-
-
Ding, Q.1
Vaynman, S.2
Akhavan, M.3
Ying, Z.4
Gomez-Pinilla, F.5
-
14
-
-
0020674143
-
Endurance training affects lactate clearance, not lactate production
-
Donovan CM, Brooks GA. Endurance training affects lactate clearance, not lactate production. Am J Physiol Endocrinol Metab 244: E83-E92, 1983.
-
(1983)
Am J Physiol Endocrinol Metab
, vol.244
-
-
Donovan, C.M.1
Brooks, G.A.2
-
15
-
-
84872173552
-
Effect of exercise on mouse liver and brain bioenergetic infrastructures
-
E L, Lu J, Burns JM, Swerdlow RH. Effect of exercise on mouse liver and brain bioenergetic infrastructures. Exp Physiol 98: 207-219, 2013.
-
(2013)
Exp Physiol
, vol.98
, pp. 207-219
-
-
Lu, J.1
Burns, J.M.2
Swerdlow, R.H.3
-
16
-
-
84884896415
-
Lactate administration reproduces specific brain and liver exercise-related changes
-
EL, Lu J, Selfridge JE, Burns JM, Swerdlow RH. Lactate administration reproduces specific brain and liver exercise-related changes. J Neurochem 127: 91-100, 2013.
-
(2013)
J Neurochem
, vol.127
, pp. 91-100
-
-
El Lu, J.1
Selfridge, J.E.2
Burns, J.M.3
Swerdlow, R.H.4
-
17
-
-
33750723755
-
Testosterone increases lactate transport, monocarboxylate transporter (MCT) 1 and MCT4 in rat skeletal muscle
-
Enoki T, Yoshida Y, Lally J, Hatta H, Bonen A. Testosterone increases lactate transport, monocarboxylate transporter (MCT) 1 and MCT4 in rat skeletal muscle. J Physiol 577: 433-443, 2006.
-
(2006)
J Physiol
, vol.577
, pp. 433-443
-
-
Enoki, T.1
Yoshida, Y.2
Lally, J.3
Hatta, H.4
Bonen, A.5
-
18
-
-
0030837750
-
Expression of monocarboxylate transporter MCT1 by brain endothelium and glia in adult and suckling rats
-
Gerhart DZ, Enerson BE, Zhdankina OY, Leino RL, Drewes LR. Expression of monocarboxylate transporter MCT1 by brain endothelium and glia in adult and suckling rats. Am J Physiol Endocrinol Metab 273: E207-E213, 1997.
-
(1997)
Am J Physiol Endocrinol Metab
, vol.273
-
-
Gerhart, D.Z.1
Enerson, B.E.2
Zhdankina, O.Y.3
Leino, R.L.4
Drewes, L.R.5
-
19
-
-
0036078391
-
Increases in muscle MCT are associated with reductions in muscle lactate after a single exercise session in humans
-
Green H, Halestrap A, Mockett C, O'Toole D, Grant S, Ouyang J. Increases in muscle MCT are associated with reductions in muscle lactate after a single exercise session in humans. Am J Physiol Endocrinol Metab 282: E154-E160, 2002.
-
(2002)
Am J Physiol Endocrinol Metab
, vol.282
-
-
Green, H.1
Halestrap, A.2
Mockett, C.3
O'Toole, D.4
Grant, S.5
Ouyang, J.6
-
20
-
-
0034041755
-
Monocar-boxylic acid transporters, MCT1 and MCT2, in cortical astrocytes in vitro and in vivo
-
Hanu R, McKenna M, O'Neill A, Resneck WG, Bloch RJ. Monocar-boxylic acid transporters, MCT1 and MCT2, in cortical astrocytes in vitro and in vivo. Am J Physiol Cell Physiol 278: C921-C930, 2000.
-
(2000)
Am J Physiol Cell Physiol
, vol.278
-
-
Hanu, R.1
McKenna, M.2
O'Neill, A.3
Resneck, W.G.4
Bloch, R.J.5
-
21
-
-
51449120723
-
Evidence for the mitochondrial lactate oxidation complex in rat neurons: Demonstration of an essential component of brain lactate shuttles
-
Hashimoto T, Hussien R, Cho HS, Kaufer D, Brooks GA. Evidence for the mitochondrial lactate oxidation complex in rat neurons: demonstration of an essential component of brain lactate shuttles. PLoS One 8: e2915, 2008.
-
(2008)
PLoS One
, vol.8
-
-
Hashimoto, T.1
Hussien, R.2
Cho, H.S.3
Kaufer, D.4
Brooks, G.A.5
-
22
-
-
34547790342
-
Lactate sensitive transcription factor network in L6 cells: Activation of MCT1 and mitochondrial biogenesis
-
Hashimoto T, Hussien R, Oommen S, Gohil K, Brooks GA. Lactate sensitive transcription factor network in L6 cells: activation of MCT1 and mitochondrial biogenesis. FASEB J 21: 2602-2612, 2007.
-
(2007)
FASEB J
, vol.21
, pp. 2602-2612
-
-
Hashimoto, T.1
Hussien, R.2
Oommen, S.3
Gohil, K.4
Brooks, G.A.5
-
23
-
-
0018751594
-
Ketone bodies are selectively used by individual brain regions
-
Hawkins RA, Biebuyck JF. Ketone bodies are selectively used by individual brain regions. Science 205: 325-327, 1979.
-
(1979)
Science
, vol.205
, pp. 325-327
-
-
Hawkins, R.A.1
Biebuyck, J.F.2
-
24
-
-
0015020675
-
Ketone-body utilization by adult and suckling rat brain in vivo
-
Hawkins RA, Williamson DH, Krebs HA. Ketone-body utilization by adult and suckling rat brain in vivo. Biochem J 122: 13-18, 1971.
-
(1971)
Biochem J
, vol.122
, pp. 13-18
-
-
Hawkins, R.A.1
Williamson, D.H.2
Krebs, H.A.3
-
25
-
-
33745495507
-
Compulsive exercise acutely upregulates rat hippocampal brain-derived neurotrophic factor
-
Huang AM, Jen CJ, Chen HF, Yu L, Kuo YM, Chen HI. Compulsive exercise acutely upregulates rat hippocampal brain-derived neurotrophic factor. J Neural Transm 113: 803-811, 2006.
-
(2006)
J Neural Transm
, vol.113
, pp. 803-811
-
-
Huang, A.M.1
Jen, C.J.2
Chen, H.F.3
Yu, L.4
Kuo, Y.M.5
Chen, H.I.6
-
26
-
-
0032726855
-
Cerebral metabolic response to submaximal exercise
-
Ide K, Horn A, Secher NH. Cerebral metabolic response to submaximal exercise. J Appl Physiol 87: 1604-1608, 1999.
-
(1999)
J Appl Physiol
, vol.87
, pp. 1604-1608
-
-
Ide, K.1
Horn, A.2
Secher, N.H.3
-
27
-
-
0014578180
-
Metabolic interactions of glucose, lactate, and ß-hydroxybutyrate in rat brain slices
-
Ide T, Steinke J, Cahill GF Jr. Metabolic interactions of glucose, lactate, and ß-hydroxybutyrate in rat brain slices. Am J Physiol 217: 784-792, 1969.
-
(1969)
Am J Physiol
, vol.217
, pp. 784-792
-
-
Ide, T.1
Steinke, J.2
Cahill, Jr.G.F.3
-
28
-
-
0343714594
-
Mitochondrial energy metabolism is regulated via nuclear-coded subunits of cytochrome c oxidase
-
Kadenbach B, Hüttemann M, Arnold S, Lee I, Bender E. Mitochondrial energy metabolism is regulated via nuclear-coded subunits of cytochrome c oxidase. Free Radic Biol Med 29: 211-221, 2000.
-
(2000)
Free Radic Biol Med
, vol.29
, pp. 211-221
-
-
Kadenbach, B.1
Hüttemann, M.2
Arnold, S.3
Lee, I.4
Bender, E.5
-
29
-
-
79954738638
-
Cerebral metabolism after forced or voluntary physical exercise
-
Kinni H, Guo M, Ding JY, Konakondla S, Dornbos D III, Tran R, Guthikonda M, Ding Y. Cerebral metabolism after forced or voluntary physical exercise. Brain Res 1388: 48-55, 2011.
-
(2011)
Brain Res
, vol.1388
, pp. 48-55
-
-
Kinni, H.1
Guo, M.2
Ding, J.Y.3
Konakondla, S.4
Dornbos III, D.5
Tran, R.6
Guthikonda, M.7
Ding, Y.8
-
30
-
-
0032764742
-
A model system for the study of human retinal angiogenesis: Activation of monocytes and endothelial cells and the association with the expression of the monocarboxylate transporter type 1 (MCT-1)
-
Knott RM, Robertson M, Muckersie E, Folefac VA, Fairhurst FE, Wileman SM, Forrester JV. A model system for the study of human retinal angiogenesis: activation of monocytes and endothelial cells and the association with the expression of the monocarboxylate transporter type 1 (MCT-1). Diabetologia 42: 870-877, 1999.
-
(1999)
Diabetologia
, vol.42
, pp. 870-877
-
-
Knott, R.M.1
Robertson, M.2
Muckersie, E.3
Folefac, V.A.4
Fairhurst, F.E.5
Wileman, S.M.6
Forrester, J.V.7
-
31
-
-
0028809505
-
Upregulation of blood-brain barrier GLUT1 glucose transporter protein and mRNA in experimental chronic hypoglycemia
-
Kumagai AK, Kang YS, Boado RJ, Pardridge WM. Upregulation of blood-brain barrier GLUT1 glucose transporter protein and mRNA in experimental chronic hypoglycemia. Diabetes 44: 1399-1404, 1995.
-
(1995)
Diabetes
, vol.44
, pp. 1399-1404
-
-
Kumagai, A.K.1
Kang, Y.S.2
Boado, R.J.3
Pardridge, W.M.4
-
32
-
-
0021327317
-
Regional enzyme development in rat brain. Enzymes of energy metabolism
-
Leong SF, Clark JB. Regional enzyme development in rat brain. Enzymes of energy metabolism. Biochem J 218: 139-145, 1984.
-
(1984)
Biochem J
, vol.218
, pp. 139-145
-
-
Leong, S.F.1
Clark, J.B.2
-
33
-
-
0000664619
-
Expression of two glucose transporters, GLUT1 and GLUT3, in cultured cerebellar neurons: Evidence for neuron-specific expression of GLUT3
-
Maher F, Davies-Hill TM, Lysko PG, Henneberry RC, Simpson IA. Expression of two glucose transporters, GLUT1 and GLUT3, in cultured cerebellar neurons: evidence for neuron-specific expression of GLUT3. Mol Cell Neurosci 2: 351-360, 1991.
-
(1991)
Mol Cell Neurosci
, vol.2
, pp. 351-360
-
-
Maher, F.1
Davies-Hill, T.M.2
Lysko, P.G.3
Henneberry, R.C.4
Simpson, I.A.5
-
34
-
-
80053566381
-
Nitric oxide induces the expression of the monocarboxylate transporter MCT4 in cultured astrocytes by a cGMP-independent transcriptional activation
-
Marcillac F, Brix B, Repond C, Jöhren O, Pellerin L. Nitric oxide induces the expression of the monocarboxylate transporter MCT4 in cultured astrocytes by a cGMP-independent transcriptional activation. Glia 59: 1987-1995, 2011.
-
(2011)
Glia
, vol.59
, pp. 1987-1995
-
-
Marcillac, F.1
Brix, B.2
Repond, C.3
Jöhren, O.4
Pellerin, L.5
-
35
-
-
79959734660
-
Brain glycogen decreases during prolonged exercise
-
Matsui T, Soya S, Okamoto M, Ichitani Y, Kawanaka K, Soya H. Brain glycogen decreases during prolonged exercise. J Physiol 589: 3383-3393, 2011.
-
(2011)
J Physiol
, vol.589
, pp. 3383-3393
-
-
Matsui, T.1
Soya, S.2
Okamoto, M.3
Ichitani, Y.4
Kawanaka, K.5
Soya, H.6
-
36
-
-
33745340298
-
Role of the lactate transporter (MCT1) in skeletal muscles
-
McCullagh KJ, Poole RC, Halestrap AP, O'Brien M, Bonen A. Role of the lactate transporter (MCT1) in skeletal muscles. Am J Physiol Endocrinol Metab 271: E143-E150, 1996.
-
(1996)
Am J Physiol Endocrinol Metab
, vol.271
-
-
McCullagh, K.J.1
Poole, R.C.2
Halestrap, A.P.3
O'Brien, M.4
Bonen, A.5
-
37
-
-
84863204054
-
Hypoxia and exercise provoke both lactate release and lactate oxidation by the human brain
-
Overgaard M, Rasmussen P, Bohm AM, Seifert T, Brassard P, Zaar M, Homann P, Evans KA, Nielsen HB, Secher NH. Hypoxia and exercise provoke both lactate release and lactate oxidation by the human brain. FASEB J 26: 3012-3020, 2012.
-
(2012)
FASEB J
, vol.26
, pp. 3012-3020
-
-
Overgaard, M.1
Rasmussen, P.2
Bohm, A.M.3
Seifert, T.4
Brassard, P.5
Zaar, M.6
Homann, P.7
Evans, K.A.8
Nielsen, H.B.9
Secher, N.H.10
-
38
-
-
0016257489
-
A comparison of three methods of glycogen measurement in tissues
-
Passonneau JV, Lauderdale VR. A comparison of three methods of glycogen measurement in tissues. Anal Biochem 60: 405-412, 1974.
-
(1974)
Anal Biochem
, vol.60
, pp. 405-412
-
-
Passonneau, J.V.1
Lauderdale, V.R.2
-
39
-
-
12244262261
-
Cellular and subcellular distribution of monocarboxylate transporters in cultured brain cells and in the adult brain
-
Pellerin L, Bergersen LH, Halestrap AP, Pierre K. Cellular and subcellular distribution of monocarboxylate transporters in cultured brain cells and in the adult brain. J Neurosci Res 79: 55-64, 2005.
-
(2005)
J Neurosci Res
, vol.79
, pp. 55-64
-
-
Pellerin, L.1
Bergersen, L.H.2
Halestrap, A.P.3
Pierre, K.4
-
40
-
-
34547823399
-
Activity-dependent regulation of energy metabolism by astrocytes: An update
-
Pellerin L, Bouzier-Sore AK, Aubert A, Serre S, Merle M, Costalat R, Magistretti PJ. Activity-dependent regulation of energy metabolism by astrocytes: an update. Glia 55: 1251-1262, 2007.
-
(2007)
Glia
, vol.55
, pp. 1251-1262
-
-
Pellerin, L.1
Bouzier-Sore, A.K.2
Aubert, A.3
Serre, S.4
Merle, M.5
Costalat, R.6
Magistretti, P.J.7
-
42
-
-
0028080101
-
Glutamate uptake into astrocytes stimulates aerobic glycolysis: A mechanism coupling neuronal activity to glucose utilization
-
Pellerin L, Magistretti PJ. Glutamate uptake into astrocytes stimulates aerobic glycolysis: a mechanism coupling neuronal activity to glucose utilization. Proc Natl Acad Sci USA 91: 10625-10629, 1994.
-
(1994)
Proc Natl Acad Sci USA
, vol.91
, pp. 10625-10629
-
-
Pellerin, L.1
Magistretti, P.J.2
-
43
-
-
0036254152
-
MCT2 is a major neuronal monocarboxylate transporter in the adult mouse brain
-
Pierre K, Magistretti PJ, Pellerin L. MCT2 is a major neuronal monocarboxylate transporter in the adult mouse brain. J Cereb Blood Flow Metab 22: 586-595, 2002.
-
(2002)
J Cereb Blood Flow Metab
, vol.22
, pp. 586-595
-
-
Pierre, K.1
Magistretti, P.J.2
Pellerin, L.3
-
44
-
-
21344444566
-
Monocarboxylate transporters in the central nervous system: Distribution, regulation and function
-
Pierre K, Pellerin L. Monocarboxylate transporters in the central nervous system: distribution, regulation and function. J Neurochem 94: 1-14, 2005.
-
(2005)
J Neurochem
, vol.94
, pp. 1-14
-
-
Pierre, K.1
Pellerin, L.2
-
45
-
-
0034721575
-
Cell-specific localization of monocarboxylate transporters, MCT1 and MCT2, in the adult mouse brain revealed by double immunohistochemical labeling and confocal microscopy
-
Pierre K, Pellerin L, Debernardi R, Riederer BM, Magistretti PJ. Cell-specific localization of monocarboxylate transporters, MCT1 and MCT2, in the adult mouse brain revealed by double immunohistochemical labeling and confocal microscopy. Neuroscience 100: 617-627, 2000.
-
(2000)
Neuroscience
, vol.100
, pp. 617-627
-
-
Pierre, K.1
Pellerin, L.2
Debernardi, R.3
Riederer, B.M.4
Magistretti, P.J.5
-
46
-
-
34447569484
-
Diet-induced ketosis increases capillary density without altered blood flow in rat brain
-
Puchowicz MA, Xu K, Sun X, Ivy A, Emancipator D, LaManna JC. Diet-induced ketosis increases capillary density without altered blood flow in rat brain. Am J Physiol Endocrinol Metab 292: E1607-E1615, 2007.
-
(2007)
Am J Physiol Endocrinol Metab
, vol.292
-
-
Puchowicz, M.A.1
Xu, K.2
Sun, X.3
Ivy, A.4
Emancipator, D.5
Lamanna, J.C.6
-
48
-
-
0242485280
-
Highly differential expression of the monocarboxylate transporters MCT2 and MCT4 in the developing rat brain
-
Rafiki A, Boulland JL, Halestrap AP, Ottersen OP, Bergersen L. Highly differential expression of the monocarboxylate transporters MCT2 and MCT4 in the developing rat brain. Neuroscience 122: 677-688, 2003.
-
(2003)
Neuroscience
, vol.122
, pp. 677-688
-
-
Rafiki, A.1
Boulland, J.L.2
Halestrap, A.P.3
Ottersen, O.P.4
Bergersen, L.5
-
49
-
-
80052689581
-
Cerebral glucose and lactate consumption during cerebral activation by physical activity in humans
-
Rasmussen P, Wyss MT, Lundby C. Cerebral glucose and lactate consumption during cerebral activation by physical activity in humans. FASEB J 25: 2865-2873, 2011.
-
(2011)
FASEB J
, vol.25
, pp. 2865-2873
-
-
Rasmussen, P.1
Wyss, M.T.2
Lundby, C.3
-
50
-
-
0028287972
-
Exercise induces rapid increases in GLUT4 expression, glucose transport capacity, and insulin-stimulated glycogen storage in muscle
-
Ren JM, Semenkovich CF, Gulve EA, Gao J, Holloszy JO. Exercise induces rapid increases in GLUT4 expression, glucose transport capacity, and insulin-stimulated glycogen storage in muscle. J Biol Chem 269: 14396-14401, 1994.
-
(1994)
J Biol Chem
, vol.269
, pp. 14396-14401
-
-
Ren, J.M.1
Semenkovich, C.F.2
Gulve, E.A.3
Gao, J.4
Holloszy, J.O.5
-
51
-
-
80052263621
-
Brain-derived neurotrophic factor enhances the hippocampal expression of key postsynaptic proteins in vivo including the monocarboxylate transporter MCT2
-
Robinet C, Pellerin L. Brain-derived neurotrophic factor enhances the hippocampal expression of key postsynaptic proteins in vivo including the monocarboxylate transporter MCT2. Neuroscience 192: 155-163, 2011.
-
(2011)
Neuroscience
, vol.192
, pp. 155-163
-
-
Robinet, C.1
Pellerin, L.2
-
52
-
-
76349083395
-
Brain-derived neurotrophic factor enhances the expression of the monocarboxylate transporter 2 through translational activation in mouse cultured cortical neurons
-
Robinet C, Pellerin L. Brain-derived neurotrophic factor enhances the expression of the monocarboxylate transporter 2 through translational activation in mouse cultured cortical neurons. J Cereb Blood Flow Metab 30: 286-298, 2010.
-
(2010)
J Cereb Blood Flow Metab
, vol.30
, pp. 286-298
-
-
Robinet, C.1
Pellerin, L.2
-
53
-
-
68649091204
-
An expanded view of energy homeo-stasis: Neural integration of metabolic, cognitive, and emotional drives to eat
-
Shin AC, Zheng H, Berthoud HR. An expanded view of energy homeo-stasis: neural integration of metabolic, cognitive, and emotional drives to eat. Physiol Behav 97: 572-580, 2009.
-
(2009)
Physiol Behav
, vol.97
, pp. 572-580
-
-
Shin, A.C.1
Zheng, H.2
Berthoud, H.R.3
-
54
-
-
80054691291
-
Exercise training increases mitochondrial biogenesis in the brain
-
Steiner JL, Murphy EA, McClellan JL, Carmichael MD, Davis JM. Exercise training increases mitochondrial biogenesis in the brain. J Appl Physiol 111: 1066-1071, 2011.
-
(2011)
J Appl Physiol
, vol.111
, pp. 1066-1071
-
-
Steiner, J.L.1
Murphy, E.A.2
McClellan, J.L.3
Carmichael, M.D.4
Davis, J.M.5
-
55
-
-
79952305803
-
Astrocyte-neuron lactate transport is required for long-term memory formation
-
Suzuki A, Stern SA, Bozdagi O, Huntley GW, Walker RH, Magistretti PJ, Alberini CM. Astrocyte-neuron lactate transport is required for long-term memory formation. Cell 144: 810-823, 2011.
-
(2011)
Cell
, vol.144
, pp. 810-823
-
-
Suzuki, A.1
Stern, S.A.2
Bozdagi, O.3
Huntley, G.W.4
Walker, R.H.5
Magistretti, P.J.6
Alberini, C.M.7
-
56
-
-
0345700667
-
Prolonged exercise induces angiogenesis and increases cerebral blood volume in primary motor cortex of the rat
-
Swain RA, Harris AB, Wiener EC, Dutka MV, Morris HD, Theien BE, Konda S, Engberg K, Lauterbur PC, Greenough WT. Prolonged exercise induces angiogenesis and increases cerebral blood volume in primary motor cortex of the rat. Neuroscience 117: 1037-1046, 2003.
-
(2003)
Neuroscience
, vol.117
, pp. 1037-1046
-
-
Swain, R.A.1
Harris, A.B.2
Wiener, E.C.3
Dutka, M.V.4
Morris, H.D.5
Theien, B.E.6
Konda, S.7
Engberg, K.8
Lauterbur, P.C.9
Greenough, W.T.10
-
57
-
-
84886401116
-
Possible involvement of AMPK in acute exercise-induced expression of monocarboxylate transporters MCT1 and MCT4 mRNA in fast-twitch skeletal muscle
-
Takimoto M, Takeyama M, Hamada T. Possible involvement of AMPK in acute exercise-induced expression of monocarboxylate transporters MCT1 and MCT4 mRNA in fast-twitch skeletal muscle. Metabolism 62: 1633-1640, 2013.
-
(2013)
Metabolism
, vol.62
, pp. 1633-1640
-
-
Takimoto, M.1
Takeyama, M.2
Hamada, T.3
-
58
-
-
84901229818
-
Prolonged exercise upregulates expression of MCT1, MCT2, and MCT4 mRNA in the cerebral cortex of rat brain (Abstract)
-
Takimoto M, Takeyama M, Hamada T. Prolonged exercise upregulates expression of MCT1, MCT2, and MCT4 mRNA in the cerebral cortex of rat brain (Abstract). FASEB J 27: lb782, 2013.
-
(2013)
FASEB J
, vol.27
-
-
Takimoto, M.1
Takeyama, M.2
Hamada, T.3
-
59
-
-
67349095741
-
Blood lactate is an important energy source for the human brain
-
Van Hall G, Strømstad M, Rasmussen P, Jans O, Zaar M, Gam C, Quistorff B, Secher NH, Nielsen HB. Blood lactate is an important energy source for the human brain. J Cereb Blood Flow Metab 9: 1121-1129, 2009.
-
(2009)
J Cereb Blood Flow Metab
, vol.9
, pp. 1121-1129
-
-
Van Hall, G.1
Strømstad, M.2
Rasmussen, P.3
Jans, O.4
Zaar, M.5
Gam, C.6
Quistorff, B.7
Secher, N.H.8
Nielsen, H.B.9
-
60
-
-
0033539607
-
Running enhances neurogenesis, learning, and long-term potentiation in mice
-
Van Praag H, Christie BR, Sejnowski TJ, Gage FH. Running enhances neurogenesis, learning, and long-term potentiation in mice. Proc Natl Acad Sci USA 96: 13427-13431, 1999.
-
(1999)
Proc Natl Acad Sci USA
, vol.96
, pp. 13427-13431
-
-
Van Praag, H.1
Christie, B.R.2
Sejnowski, T.J.3
Gage, F.H.4
-
61
-
-
9644270414
-
Hippocampal BDNF mediates the efficacy of exercise on synaptic plasticity and cognition
-
Vaynman S, Ying Z, Gomez-Pinilla F. Hippocampal BDNF mediates the efficacy of exercise on synaptic plasticity and cognition. Eur J Neurosci 20: 2580-2590, 2004.
-
(2004)
Eur J Neurosci
, vol.20
, pp. 2580-2590
-
-
Vaynman, S.1
Ying, Z.2
Gomez-Pinilla, F.3
-
62
-
-
33646150195
-
Coupling energy metabolism with a mechanism to support brain-derived neurotrophic factor-mediated synaptic plasticity
-
Vaynman S, Ying Z, Wu A, Gomez-Pinilla F. Coupling energy metabolism with a mechanism to support brain-derived neurotrophic factor-mediated synaptic plasticity. Neuroscience 139: 1221-1234, 2006.
-
(2006)
Neuroscience
, vol.139
, pp. 1221-1234
-
-
Vaynman, S.1
Ying, Z.2
Wu, A.3
Gomez-Pinilla, F.4
-
63
-
-
79956330533
-
In vivo evidence for lactate as a neuronal energy source
-
Wyss MT, Jolivet R, Buck A, Magistretti PJ, Weberl B. In vivo evidence for lactate as a neuronal energy source. J Neurosci 31: 7477-7485, 2011.
-
(2011)
J Neurosci
, vol.31
, pp. 7477-7485
-
-
Wyss, M.T.1
Jolivet, R.2
Buck, A.3
Magistretti, P.J.4
Weberl, B.5
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