-
1
-
-
0347989317
-
Brown adipose tissue: Function and physiological significance
-
Cannon B, Nedergaard J. Brown adipose tissue: function and physiological significance. Physiol Rev 2004; 84:277-359.
-
(2004)
Physiol Rev
, vol.84
, pp. 277-359
-
-
Cannon, B.1
Nedergaard, J.2
-
2
-
-
0036384894
-
Brown adipose tissue: A factor to consider in symmetrical tracer uptake in the neck and upper chest region
-
Hany TF, Gharehpapagh E, Kamel EM, et al. Brown adipose tissue: a factor to consider in symmetrical tracer uptake in the neck and upper chest region. Eur J Nucl Med Mol Imaging 2002; 29:1393-1398.
-
(2002)
Eur J Nucl Med Mol Imaging
, vol.29
, pp. 1393-1398
-
-
Hany, T.F.1
Gharehpapagh, E.2
Kamel, E.M.3
-
3
-
-
64349105205
-
Identification and importance of brown adipose tissue in adult humans
-
Cypess AM, Lehman S, Williams G, et al. Identification and importance of brown adipose tissue in adult humans. N Engl J Med 2009; 360:1509-1517.
-
(2009)
N Engl J Med
, vol.360
, pp. 1509-1517
-
-
Cypess, A.M.1
Lehman, S.2
Williams, G.3
-
5
-
-
64349123664
-
Functional brown adipose tissue in healthy adults
-
Virtanen KA, Lidell ME, Orava J, et al. Functional brown adipose tissue in healthy adults. N Engl J Med 2009; 360:1518-1525.
-
(2009)
N Engl J Med
, vol.360
, pp. 1518-1525
-
-
Virtanen, K.A.1
Lidell, M.E.2
Orava, J.3
-
6
-
-
70349334680
-
The presence of UCP1 demonstrates that metabolically active adipose tissue in the neck of adult humans truly represents brown adipose tissue
-
Zingaretti MC, Crosta F, Vitali A, et al. The presence of UCP1 demonstrates that metabolically active adipose tissue in the neck of adult humans truly represents brown adipose tissue. FASEB J 2009; 23:3113-3120.
-
(2009)
FASEB J
, vol.23
, pp. 3113-3120
-
-
Zingaretti, M.C.1
Crosta, F.2
Vitali, A.3
-
7
-
-
84895421825
-
Brown adipose tissue volume in healthy lean south Asian adults compared with white Caucasians: A prospective, case-controlled observational study
-
Bakker LE, Boon MR, van der Linden RA, et al. Brown adipose tissue volume in healthy lean south Asian adults compared with white Caucasians: a prospective, case-controlled observational study. Lancet Diabetes Endocrinol 2014; 2:210-217.
-
(2014)
Lancet Diabetes Endocrinol
, vol.2
, pp. 210-217
-
-
Bakker, L.E.1
Boon, M.R.2
Van Der Linden, R.A.3
-
8
-
-
84881260642
-
Cold acclimation recruits human brown fat and increases nonshivering thermogenesis
-
van der Lans AA, Hoeks J, Brans B, et al. Cold acclimation recruits human brown fat and increases nonshivering thermogenesis. J Clin Invest 2013; 123:3395-3403.
-
(2013)
J Clin Invest
, vol.123
, pp. 3395-3403
-
-
Van Der Lans, A.A.1
Hoeks, J.2
Brans, B.3
-
9
-
-
84881221754
-
Recruited brown adipose tissue as an antiobesity agent in humans
-
Yoneshiro T, Aita S, Matsushita M, et al. Recruited brown adipose tissue as an antiobesity agent in humans. J Clin Invest 2013; 123:3404-3408.
-
(2013)
J Clin Invest
, vol.123
, pp. 3404-3408
-
-
Yoneshiro, T.1
Aita, S.2
Matsushita, M.3
-
10
-
-
84938974401
-
Short-term cold acclimation improves insulin sensitivity in patients with type 2 diabetes mellitus
-
Hanssen MJ, Hoeks J, Brans B, et al. Short-term cold acclimation improves insulin sensitivity in patients with type 2 diabetes mellitus. Nat Med 2015; 21:863-865.
-
(2015)
Nat Med
, vol.21
, pp. 863-865
-
-
Hanssen, M.J.1
Hoeks, J.2
Brans, B.3
-
11
-
-
84920627180
-
Activation of human brown adipose tissue by a beta3-adrenergic receptor agonist
-
Cypess AM, Weiner LS, Roberts-Toler C, et al. Activation of human brown adipose tissue by a beta3-adrenergic receptor agonist. Cell Metab 2015; 21:33-38.
-
(2015)
Cell Metab
, vol.21
, pp. 33-38
-
-
Cypess, A.M.1
Weiner, L.S.2
Roberts-Toler, C.3
-
12
-
-
0035985903
-
Effect of cold exposure on fuel utilization in humans: Plasma glucose, muscle glycogen, and lipids
-
Haman F, Peronnet F, Kenny GP, et al. Effect of cold exposure on fuel utilization in humans: plasma glucose, muscle glycogen, and lipids. J Appl Physiol 2002; 93:77-84.
-
(2002)
J Appl Physiol
, vol.93
, pp. 77-84
-
-
Haman, F.1
Peronnet, F.2
Kenny, G.P.3
-
13
-
-
84895792999
-
Increased brown adipose tissue oxidative capacity in cold-acclimated humans
-
Blondin DP, Labbe SM, Tingelstad HC, et al. Increased brown adipose tissue oxidative capacity in cold-acclimated humans. J Clin Endocrinol Metab 2014; 99:E438-E446.
-
(2014)
J Clin Endocrinol Metab
, vol.99
, pp. E438-E446
-
-
Blondin, D.P.1
Labbe, S.M.2
Tingelstad, H.C.3
-
14
-
-
84979748697
-
Oxidative fuel selection and shivering thermogenesis during a 12 and 24 h cold survival simulation
-
Haman F, Mantha OL, Cheung SS, et al. Oxidative fuel selection and shivering thermogenesis during a 12 and 24 h cold survival simulation. J Appl Physiol (1985) 2015; 6:640-648.
-
(2015)
J Appl Physiol (1985)
, vol.6
, pp. 640-648
-
-
Haman, F.1
Mantha, O.L.2
Cheung, S.S.3
-
15
-
-
84932626659
-
In vivo measurement of energy substrate contribution to cold-induced brown adipose tissue thermogenesis
-
Labbe SM, Caron A, Bakan I, et al. In vivo measurement of energy substrate contribution to cold-induced brown adipose tissue thermogenesis. FASEB J 2015; 29:2046-2058.
-
(2015)
FASEB J
, vol.29
, pp. 2046-2058
-
-
Labbe, S.M.1
Caron, A.2
Bakan, I.3
-
16
-
-
84908112058
-
Taking control over intracellular fatty acid levels is essential for the analysis of thermogenic function in cultured primary brown and brite/beige adipocytes
-
Li Y, Fromme T, Schweizer S, et al. Taking control over intracellular fatty acid levels is essential for the analysis of thermogenic function in cultured primary brown and brite/beige adipocytes. EMBO Rep 2014; 15:1069-1076.
-
(2014)
EMBO Rep
, vol.15
, pp. 1069-1076
-
-
Li, Y.1
Fromme, T.2
Schweizer, S.3
-
17
-
-
8844226709
-
Fat mobilization in adipose tissue is promoted by adipose triglyceride lipase
-
Zimmermann R, Strauss JG, Haemmerle G, et al. Fat mobilization in adipose tissue is promoted by adipose triglyceride lipase. Science 2004; 306:1383-1386.
-
(2004)
Science
, vol.306
, pp. 1383-1386
-
-
Zimmermann, R.1
Strauss, J.G.2
Haemmerle, G.3
-
18
-
-
84920948052
-
Adipose fatty acid oxidation is required for thermogenesis and potentiates oxidative stress-induced inflammation
-
Lee J, Ellis JM, Wolfgang MJ. Adipose fatty acid oxidation is required for thermogenesis and potentiates oxidative stress-induced inflammation. Cell Rep 2015; 10:266-279.
-
(2015)
Cell Rep
, vol.10
, pp. 266-279
-
-
Lee, J.1
Ellis, J.M.2
Wolfgang, M.J.3
-
19
-
-
84936771989
-
Genetic and functional characterization of clonally derived adult human brown adipocytes
-
Shinoda K, Luijten IH, Hasegawa Y, et al. Genetic and functional characterization of clonally derived adult human brown adipocytes. Nat Med 2015; 21:389-394.
-
(2015)
Nat Med
, vol.21
, pp. 389-394
-
-
Shinoda, K.1
Luijten, I.H.2
Hasegawa, Y.3
-
20
-
-
84940830979
-
FTO obesity variant circuitry and adipocyte browning in humans
-
Claussnitzer M, Dankel SN, Kim KH, et al. FTO obesity variant circuitry and adipocyte browning in humans. N Engl J Med 2015; 373:895-907.
-
(2015)
N Engl J Med
, vol.373
, pp. 895-907
-
-
Claussnitzer, M.1
Dankel, S.N.2
Kim, K.H.3
-
21
-
-
84905740317
-
Inhibition of Notch signaling promotes browning of white adipose tissue and ameliorates obesity
-
Bi P, Shan T, Liu W, et al. Inhibition of Notch signaling promotes browning of white adipose tissue and ameliorates obesity. Nat Med 2014; 20:911-918.
-
(2014)
Nat Med
, vol.20
, pp. 911-918
-
-
Bi, P.1
Shan, T.2
Liu, W.3
-
22
-
-
84896891802
-
RIP140 represses the ''brown-in-white'' adipocyte program including a futile cycle of triacylglycerol breakdown and synthesis
-
Kiskinis E, Chatzeli L, Curry E, et al. RIP140 represses the ''brown-in-white'' adipocyte program including a futile cycle of triacylglycerol breakdown and synthesis. Mol Endocrinol 2014; 28:344-356.
-
(2014)
Mol Endocrinol
, vol.28
, pp. 344-356
-
-
Kiskinis, E.1
Chatzeli, L.2
Curry, E.3
-
23
-
-
84975757439
-
A creatine-driven substrate cycle enhances energy expenditure and thermogenesis in beige fat
-
Kazak L, Chouchani ET, Jedrychowski MP, et al. A creatine-driven substrate cycle enhances energy expenditure and thermogenesis in beige fat. Cell 2015; 163:643-655.
-
(2015)
Cell
, vol.163
, pp. 643-655
-
-
Kazak, L.1
Chouchani, E.T.2
Jedrychowski, M.P.3
-
24
-
-
84856529575
-
Brown adipose tissue oxidative metabolism contributes to energy expenditure during acute cold exposure in humans
-
Ouellet V, Labbe SM, Blondin DP, et al. Brown adipose tissue oxidative metabolism contributes to energy expenditure during acute cold exposure in humans. J Clin Invest 2012; 122:545-552.
-
(2012)
J Clin Invest
, vol.122
, pp. 545-552
-
-
Ouellet, V.1
Labbe, S.M.2
Blondin, D.P.3
-
25
-
-
84940719531
-
The bile acid chenodeoxycholic acid increases human brown adipose tissue activity
-
Broeders EP, Nascimento EB, Havekes B, et al. The bile acid chenodeoxycholic acid increases human brown adipose tissue activity. Cell Metab 2015; 22:418-426.
-
(2015)
Cell Metab
, vol.22
, pp. 418-426
-
-
Broeders, E.P.1
Nascimento, E.B.2
Havekes, B.3
-
27
-
-
84920052826
-
Adenosine activates brown adipose tissue and recruits beige adipocytes via A2A receptors
-
Gnad T, Scheibler S, von Kugelgen I, et al. Adenosine activates brown adipose tissue and recruits beige adipocytes via A2A receptors. Nature 2014; 516:395-399.
-
(2014)
Nature
, vol.516
, pp. 395-399
-
-
Gnad, T.1
Scheibler, S.2
Von Kugelgen, I.3
-
28
-
-
33751533942
-
Beta3-adrenergic receptors stimulate glucose uptake in brown adipocytes by two mechanisms independently of glucose transporter 4 translocation
-
Dallner OS, Chernogubova E, Brolinson KA, Bengtsson T. Beta3-adrenergic receptors stimulate glucose uptake in brown adipocytes by two mechanisms independently of glucose transporter 4 translocation. Endocrinology 2006; 147:5730-5739.
-
(2006)
Endocrinology
, vol.147
, pp. 5730-5739
-
-
Dallner, O.S.1
Chernogubova, E.2
Brolinson, K.A.3
Bengtsson, T.4
-
29
-
-
84918531553
-
Glucose uptake in brown fat cells is dependent on mTOR complex 2-promoted GLUT1 translocation
-
Olsen JM, Sato M, Dallner OS, et al. Glucose uptake in brown fat cells is dependent on mTOR complex 2-promoted GLUT1 translocation. J Cell Biol 2014; 207:365-374.
-
(2014)
J Cell Biol
, vol.207
, pp. 365-374
-
-
Olsen, J.M.1
Sato, M.2
Dallner, O.S.3
-
30
-
-
79751503329
-
Brown adipose tissue activity controls triglyceride clearance
-
Bartelt A, Bruns OT, Reimer R, et al. Brown adipose tissue activity controls triglyceride clearance. Nat Med 2011; 17:200-205.
-
(2011)
Nat Med
, vol.17
, pp. 200-205
-
-
Bartelt, A.1
Bruns, O.T.2
Reimer, R.3
-
31
-
-
84873854027
-
Brown adipose tissue regulates glucose homeostasis and insulin sensitivity
-
Stanford KI, Middelbeek RJ, Townsend KL, et al. Brown adipose tissue regulates glucose homeostasis and insulin sensitivity. J Clin Invest 2013; 123:215-223.
-
(2013)
J Clin Invest
, vol.123
, pp. 215-223
-
-
Stanford, K.I.1
Middelbeek, R.J.2
Townsend, K.L.3
-
32
-
-
84920700786
-
Brown adipose tissue takes up plasma triglycerides mostly after lipolysis
-
Khedoe PP, Hoeke G, Kooijman S, et al. Brown adipose tissue takes up plasma triglycerides mostly after lipolysis. J Lipid Res 2015; 56:51-59.
-
(2015)
J Lipid Res
, vol.56
, pp. 51-59
-
-
Khedoe, P.P.1
Hoeke, G.2
Kooijman, S.3
-
33
-
-
84950323666
-
ANGPTL4 mediates shuttling of lipid fuel to brown adipose tissue during sustained cold exposure
-
Dijk W, Heine M, Vergnes L, et al. ANGPTL4 mediates shuttling of lipid fuel to brown adipose tissue during sustained cold exposure. Elife 2015; 4:e08428.
-
(2015)
Elife
, vol.4
-
-
Dijk, W.1
Heine, M.2
Vergnes, L.3
-
34
-
-
84941641835
-
Hepatic ANGPTL3 regulates adipose tissue energy homeostasis
-
Wang Y, McNutt MC, Banfi S, et al. Hepatic ANGPTL3 regulates adipose tissue energy homeostasis. Proc Natl Acad Sci U S A 2015; 112:11630-11635.
-
(2015)
Proc Natl Acad Sci U S A
, vol.112
, pp. 11630-11635
-
-
Wang, Y.1
McNutt, M.C.2
Banfi, S.3
-
35
-
-
84921913263
-
Contributions of white and brown adipose tissues and skeletal muscles to acute cold-induced metabolic responses in healthy men
-
Blondin DP, Labbe SM, Phoenix S, et al. Contributions of white and brown adipose tissues and skeletal muscles to acute cold-induced metabolic responses in healthy men. J Physiol 2015; 593:701-714.
-
(2015)
J Physiol
, vol.593
, pp. 701-714
-
-
Blondin, D.P.1
Labbe, S.M.2
Phoenix, S.3
-
36
-
-
84920617544
-
The brown fat-enriched secreted factor Nrg4 preserves metabolic homeostasis through attenuation of hepatic lipogenesis
-
Wang GX, Zhao XY, Meng ZX, et al. The brown fat-enriched secreted factor Nrg4 preserves metabolic homeostasis through attenuation of hepatic lipogenesis. Nat Med 2014; 20:1436-1443.
-
(2014)
Nat Med
, vol.20
, pp. 1436-1443
-
-
Wang, G.X.1
Zhao, X.Y.2
Meng, Z.X.3
-
37
-
-
84907495079
-
GLP-1 agonism stimulates brown adipose tissue thermogenesis and browning through hypothalamic AMPK
-
Beiroa D, Imbernon M, Gallego R, et al. GLP-1 agonism stimulates brown adipose tissue thermogenesis and browning through hypothalamic AMPK. Diabetes 2014; 63:3346-3358.
-
(2014)
Diabetes
, vol.63
, pp. 3346-3358
-
-
Beiroa, D.1
Imbernon, M.2
Gallego, R.3
-
38
-
-
84942991914
-
Central GLP-1 receptor signalling accelerates plasma clearance of triacylglycerol and glucose by activating brown adipose tissue in mice
-
Kooijman S, Wang Y, Parlevliet ET, et al. Central GLP-1 receptor signalling accelerates plasma clearance of triacylglycerol and glucose by activating brown adipose tissue in mice. Diabetologia 2015; 58:2637-2646.
-
(2015)
Diabetologia
, vol.58
, pp. 2637-2646
-
-
Kooijman, S.1
Wang, Y.2
Parlevliet, E.T.3
-
39
-
-
84933545180
-
Salsalate activates brown adipose tissue in mice
-
van Dam AD, Nahon KJ, Kooijman S, et al. Salsalate activates brown adipose tissue in mice. Diabetes 2015; 64:1544-1554.
-
(2015)
Diabetes
, vol.64
, pp. 1544-1554
-
-
Van Dam, A.D.1
Nahon, K.J.2
Kooijman, S.3
-
40
-
-
84919779595
-
Peripheral cannabinoid 1 receptor blockade activates brown adipose tissue and diminishes dyslipidemia and obesity
-
Boon MR, Kooijman S, van Dam AD, et al. Peripheral cannabinoid 1 receptor blockade activates brown adipose tissue and diminishes dyslipidemia and obesity. FASEB J 2014; 28:5361-5375.
-
(2014)
FASEB J
, vol.28
, pp. 5361-5375
-
-
Boon, M.R.1
Kooijman, S.2
Van Dam, A.D.3
-
41
-
-
84930216250
-
Prolonged daily light exposure increases body fat mass through attenuation of brown adipose tissue activity
-
Kooijman S, van den Berg R, Ramkisoensing A, et al. Prolonged daily light exposure increases body fat mass through attenuation of brown adipose tissue activity. Proc Natl Acad Sci U S A 2015; 112:6748-6753.
-
(2015)
Proc Natl Acad Sci U S A
, vol.112
, pp. 6748-6753
-
-
Kooijman, S.1
Van Den Berg, R.2
Ramkisoensing, A.3
-
42
-
-
84984804817
-
Central serotonergic neurons activate and recruit thermogenic brown and beige fat and regulate glucose and lipid homeostasis
-
McGlashon JM, Gorecki MC, Kozlowski AE, et al. Central serotonergic neurons activate and recruit thermogenic brown and beige fat and regulate glucose and lipid homeostasis. Cell Metab 2015; 21:692-705.
-
(2015)
Cell Metab
, vol.21
, pp. 692-705
-
-
McGlashon, J.M.1
Gorecki, M.C.2
Kozlowski, A.E.3
-
43
-
-
84922738113
-
CD36 is indispensable for thermogenesis under conditions of fasting and cold stress
-
Putri M, Syamsunarno MR, Iso T, et al. CD36 is indispensable for thermogenesis under conditions of fasting and cold stress. Biochem Biophys Res Commun 2015; 457:520-525.
-
(2015)
Biochem Biophys Res Commun
, vol.457
, pp. 520-525
-
-
Putri, M.1
Syamsunarno, M.R.2
Iso, T.3
-
44
-
-
84922805752
-
Dependence of brown adipose tissue function on CD36-mediated coenzyme Q uptake
-
Anderson CM, Kazantzis M, Wang J, et al. Dependence of brown adipose tissue function on CD36-mediated coenzyme Q uptake. Cell Rep 2015; 10:505-515.
-
(2015)
Cell Rep
, vol.10
, pp. 505-515
-
-
Anderson, C.M.1
Kazantzis, M.2
Wang, J.3
-
45
-
-
84887002929
-
Feedback looping between ChREBP and PPARalpha in the regulation of lipid metabolism in brown adipose tissues
-
Iizuka K, Wu W, Horikawa Y, et al. Feedback looping between ChREBP and PPARalpha in the regulation of lipid metabolism in brown adipose tissues. Endocr J 2013; 60:1145-1153.
-
(2013)
Endocr J
, vol.60
, pp. 1145-1153
-
-
Iizuka, K.1
Wu, W.2
Horikawa, Y.3
-
46
-
-
84931291584
-
Glycerol-3-phosphate acyltransferase isoform-4 (GPAT4) limits oxidation of exogenous fatty acids in brown adipocytes
-
Cooper DE, Grevengoed TJ, Klett EL, Coleman RA. Glycerol-3-phosphate acyltransferase isoform-4 (GPAT4) limits oxidation of exogenous fatty acids in brown adipocytes. J Biol Chem 2015; 290:15112-15120.
-
(2015)
J Biol Chem
, vol.290
, pp. 15112-15120
-
-
Cooper, D.E.1
Grevengoed, T.J.2
Klett, E.L.3
Coleman, R.A.4
-
47
-
-
84924365670
-
Brown fat activation reduces hypercholesterolaemia and protects from atherosclerosis development
-
Berbee JF, Boon MR, Khedoe PP, et al. Brown fat activation reduces hypercholesterolaemia and protects from atherosclerosis development. Nat Commun 2015; 6:6356.
-
(2015)
Nat Commun
, vol.6
, pp. 6356
-
-
Berbee, J.F.1
Boon, M.R.2
Khedoe, P.P.3
-
48
-
-
84954564100
-
Role of brown fat in lipoprotein metabolism and atherosclerosis
-
Hoeke G, Kooijman S, Boon MR, et al. Role of brown fat in lipoprotein metabolism and atherosclerosis. Circ Res 2016; 118:173-182.
-
(2016)
Circ Res
, vol.118
, pp. 173-182
-
-
Hoeke, G.1
Kooijman, S.2
Boon, M.R.3
-
49
-
-
84934317617
-
Selective impairment of glucose but not fatty acid or oxidative metabolism in brown adipose tissue of subjects with type 2 diabetes
-
Blondin DP, Labbe SM, Noll C, et al. Selective impairment of glucose but not fatty acid or oxidative metabolism in brown adipose tissue of subjects with type 2 diabetes. Diabetes 2015; 64:2388-2397.
-
(2015)
Diabetes
, vol.64
, pp. 2388-2397
-
-
Blondin, D.P.1
Labbe, S.M.2
Noll, C.3
-
50
-
-
84940449753
-
Diet-induced obesity causes insulin resistance in mouse brown adipose tissue
-
Roberts-Toler C, O'Neill BT, Cypess AM. Diet-induced obesity causes insulin resistance in mouse brown adipose tissue. Obesity (Silver Spring) 2015; 23:1765-1770.
-
(2015)
Obesity (Silver Spring)
, vol.23
, pp. 1765-1770
-
-
Roberts-Toler, C.1
O'Neill, B.T.2
Cypess, A.M.3
-
51
-
-
84925519476
-
Glucose uptake in human brown adipose tissue is impaired upon fasting-induced insulin resistance
-
Hanssen MJ, Wierts R, Hoeks J, et al. Glucose uptake in human brown adipose tissue is impaired upon fasting-induced insulin resistance. Diabetologia 2015; 58:586-595.
-
(2015)
Diabetologia
, vol.58
, pp. 586-595
-
-
Hanssen, M.J.1
Wierts, R.2
Hoeks, J.3
-
52
-
-
84940584064
-
Regulation of brown fat by AMP-activated protein kinase
-
van Dam AD, Kooijman S, Schilperoort M, et al. Regulation of brown fat by AMP-activated protein kinase. Trends Mol Med 2015; 21:571-579.
-
(2015)
Trends Mol Med
, vol.21
, pp. 571-579
-
-
Van Dam, A.D.1
Kooijman, S.2
Schilperoort, M.3
-
53
-
-
84931045954
-
Insulin-independent reversal of type 1 diabetes in nonobese diabetic mice with brown adipose tissue transplant
-
Gunawardana SC, Piston DW. Insulin-independent reversal of type 1 diabetes in nonobese diabetic mice with brown adipose tissue transplant. Am J Physiol Endocrinol Metab 2015; 308:E1043-E1055.
-
(2015)
Am J Physiol Endocrinol Metab
, vol.308
, pp. E1043-E1055
-
-
Gunawardana, S.C.1
Piston, D.W.2
-
54
-
-
84875794383
-
15O PET measurement of blood flow and oxygen consumption in cold-activated human brown fat
-
Muzik O, Mangner TJ, Leonard WR, et al. 15O PET measurement of blood flow and oxygen consumption in cold-activated human brown fat. J Nucl Med 2013; 54:523-531.
-
(2013)
J Nucl Med
, vol.54
, pp. 523-531
-
-
Muzik, O.1
Mangner, T.J.2
Leonard, W.R.3
-
55
-
-
84883229367
-
(11)C-meta-hydroxyephedrine PET/CT imaging allows in vivo study of adaptive thermogenesis and white-to-brown fat conversion
-
Quarta C, Lodi F, Mazza R, et al. (11)C-meta-hydroxyephedrine PET/CT imaging allows in vivo study of adaptive thermogenesis and white-to-brown fat conversion. Mol Metab 2013; 2:153-160.
-
(2013)
Mol Metab
, vol.2
, pp. 153-160
-
-
Quarta, C.1
Lodi, F.2
Mazza, R.3
-
56
-
-
84958236692
-
The cannabinoid receptor-1 is an imaging biomarker of brown adipose tissue
-
Eriksson O, Mikkola K, Espes D, et al. The cannabinoid receptor-1 is an imaging biomarker of brown adipose tissue. J Nucl Med 2015; 56:1937-1941.
-
(2015)
J Nucl Med
, vol.56
, pp. 1937-1941
-
-
Eriksson, O.1
Mikkola, K.2
Espes, D.3
-
57
-
-
84894412290
-
Metformin lowers plasma triglycerides by promoting VLDL-triglyceride clearance by brown adipose tissue in mice
-
Geerling JJ, Boon MR, van der Zon GC, et al. Metformin lowers plasma triglycerides by promoting VLDL-triglyceride clearance by brown adipose tissue in mice. Diabetes 2014; 63:880-891.
-
(2014)
Diabetes
, vol.63
, pp. 880-891
-
-
Geerling, J.J.1
Boon, M.R.2
Van Der Zon, G.C.3
-
58
-
-
84907535675
-
Inhibition of the central melanocortin system decreases brown adipose tissue activity
-
Kooijman S, Boon MR, Parlevliet ET, et al. Inhibition of the central melanocortin system decreases brown adipose tissue activity. J Lipid Res 2014; 55:2022-2032.
-
(2014)
J Lipid Res
, vol.55
, pp. 2022-2032
-
-
Kooijman, S.1
Boon, M.R.2
Parlevliet, E.T.3
-
59
-
-
84871898177
-
Characterization of human brown adipose tissue by chemical-shift water-fat MRI
-
Hu HH, Perkins TG, Chia JM, Gilsanz V. Characterization of human brown adipose tissue by chemical-shift water-fat MRI. AJR Am J Roentgenol 2013; 200:177-183.
-
(2013)
AJR Am J Roentgenol
, vol.200
, pp. 177-183
-
-
Hu, H.H.1
Perkins, T.G.2
Chia, J.M.3
Gilsanz, V.4
-
60
-
-
84897026162
-
Molecular imaging of brown adipose tissue in health and disease
-
Bauwens M, Wierts R, van Royen B, et al. Molecular imaging of brown adipose tissue in health and disease. Eur J Nucl Med Mol Imaging 2014; 41:776-791.
-
(2014)
Eur J Nucl Med Mol Imaging
, vol.41
, pp. 776-791
-
-
Bauwens, M.1
Wierts, R.2
Van Royen, B.3
-
61
-
-
84955303248
-
Magnetic resonance imaging cooling-reheating protocol indicates decreased fat fraction via lipid consumption in suspected brown adipose tissue
-
Lundstrom E, Strand R, Johansson L, et al. Magnetic resonance imaging cooling-reheating protocol indicates decreased fat fraction via lipid consumption in suspected brown adipose tissue. PLoS One 2015; 10:e0126705.
-
(2015)
PLoS One
, vol.10
-
-
Lundstrom, E.1
Strand, R.2
Johansson, L.3
-
62
-
-
84926228861
-
Brown adipose tissue triglyceride content is associated with decreased insulin sensitivity, independently of age and obesity
-
Raiko J, Holstila M, Virtanen KA, et al. Brown adipose tissue triglyceride content is associated with decreased insulin sensitivity, independently of age and obesity. Diabetes Obes Metab 2015; 17:516-519.
-
(2015)
Diabetes Obes Metab
, vol.17
, pp. 516-519
-
-
Raiko, J.1
Holstila, M.2
Virtanen, K.A.3
-
63
-
-
84928702835
-
The brown fat secretome: Metabolic functions beyond thermogenesis
-
Wang GX, Zhao XY, Lin JD. The brown fat secretome: metabolic functions beyond thermogenesis. Trends Endocrinol Metab 2015; 26:231-237.
-
(2015)
Trends Endocrinol Metab
, vol.26
, pp. 231-237
-
-
Wang, G.X.1
Zhao, X.Y.2
Lin, J.D.3
-
64
-
-
84903388798
-
Supraclavicular skin temperature as a measure of 18F-FDG uptake by BAT in human subjects
-
Boon MR, Bakker LE, van der Linden RA, et al. Supraclavicular skin temperature as a measure of 18F-FDG uptake by BAT in human subjects. PLoS One 2014; 9:e98822.
-
(2014)
PLoS One
, vol.9
-
-
Boon, M.R.1
Bakker, L.E.2
Van Der Linden, R.A.3
-
65
-
-
84949627482
-
Supraclavicular skin temperature and BAT activity in lean healthy adults
-
van der Lans AA, Vosselman MJ, Hanssen MJ, et al. Supraclavicular skin temperature and BAT activity in lean healthy adults. J Physiol Sci 2016; 66:77-83.
-
(2016)
J Physiol Sci
, vol.66
, pp. 77-83
-
-
Van Der Lans, A.A.1
Vosselman, M.J.2
Hanssen, M.J.3
-
66
-
-
84930225128
-
Stimulation of soluble guanylyl cyclase protects against obesity by recruiting brown adipose tissue
-
Hoffmann LS, Etzrodt J, Willkomm L, et al. Stimulation of soluble guanylyl cyclase protects against obesity by recruiting brown adipose tissue. Nat Commun 2015; 6:7235.
-
(2015)
Nat Commun
, vol.6
, pp. 7235
-
-
Hoffmann, L.S.1
Etzrodt, J.2
Willkomm, L.3
-
67
-
-
84929708081
-
Discrete aspects of FGF21 in vivo pharmacology do not require UCP1
-
Samms RJ, Smith DP, Cheng CC, et al. Discrete aspects of FGF21 in vivo pharmacology do not require UCP1. Cell Rep 2015; 11:991-999.
-
(2015)
Cell Rep
, vol.11
, pp. 991-999
-
-
Samms, R.J.1
Smith, D.P.2
Cheng, C.C.3
-
68
-
-
84930579383
-
Pharmacologic effects of FGF21 are independent of the ''browning'' of white adipose tissue
-
Veniant MM, Sivits G, Helmering J, et al. Pharmacologic effects of FGF21 are independent of the ''browning'' of white adipose tissue. Cell Metab 2015; 21:731-738.
-
(2015)
Cell Metab
, vol.21
, pp. 731-738
-
-
Veniant, M.M.1
Sivits, G.2
Helmering, J.3
-
69
-
-
84944441201
-
Reprogrammed functional brown adipocytes ameliorate insulin resistance and dyslipidemia in diet-induced obesity and type 2 diabetes
-
Kishida T, Ejima A, Yamamoto K, et al. Reprogrammed functional brown adipocytes ameliorate insulin resistance and dyslipidemia in diet-induced obesity and type 2 diabetes. Stem Cell Reports 2015; 5:569-581.
-
(2015)
Stem Cell Reports
, vol.5
, pp. 569-581
-
-
Kishida, T.1
Ejima, A.2
Yamamoto, K.3
-
70
-
-
84937567570
-
Brown adipose tissue transplantation reverses obesity in Ob/Ob mice
-
Liu X, Wang S, You Y, et al. Brown adipose tissue transplantation reverses obesity in Ob/Ob mice. Endocrinology 2015; 156:2461-2469.
-
(2015)
Endocrinology
, vol.156
, pp. 2461-2469
-
-
Liu, X.1
Wang, S.2
You, Y.3
-
71
-
-
84946429471
-
3D brown adipogenesis to create ''Brown-Fat-in-Microstrands''
-
Unser AM, Mooney B, Corr DT, et al. 3D brown adipogenesis to create ''Brown-Fat-in-Microstrands''. Biomaterials 2016; 75:123-134.
-
(2016)
Biomaterials
, vol.75
, pp. 123-134
-
-
Unser, A.M.1
Mooney, B.2
Corr, D.T.3
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