Hyperinsulinemic-euglycemic Clamps in Conscious, Unrestrained Mice

被引:107
作者
Ayala, Julio E. [1 ]
Bracy, Deanna P. [2 ,3 ]
Malabanan, Carlo [3 ]
James, Freyja D. [2 ,3 ]
Ansari, Tasneem [3 ]
Fueger, Patrick T. [4 ]
McGuinness, Owen P. [2 ,3 ]
Wasserman, David H. [2 ,3 ]
机构
[1] Sanford Burnham Med Res Inst, Diabet & Obes Res Ctr, Lake Nona, FL 32827 USA
[2] Vanderbilt Univ, Sch Med, Dept Mol Physiol & Biophys, Nashville, TN USA
[3] Vanderbilt Univ, Sch Med, Vanderbilt Mouse Metab Phenotyping Ctr, Nashville, TN USA
[4] Indiana Univ Sch Med, Dept Pediat & Cellular & Integrat Physiol, Indianapolis, IN 46202 USA
来源
JOVE-JOURNAL OF VISUALIZED EXPERIMENTS | 2011年 / 57期
关键词
Medicine; Issue; 57; Glucose; insulin; clamp; mice; insulin resistance; diabetes; liver; muscle; conscious; restraint-free; non-stressed;
D O I
10.3791/3188
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Type 2 diabetes is characterized by a defect in insulin action. The hyperinsulinemic-euglycemic clamp, or insulin clamp, is widely considered the "gold standard" method for assessing insulin action in vivo. During an insulin clamp, hyperinsulinemia is achieved by a constant insulin infusion. Euglycemia is maintained via a concomitant glucose infusion at a variable rate. This variable glucose infusion rate (GIR) is determined by measuring blood glucose at brief intervals throughout the experiment and adjusting the GIR accordingly. The GIR is indicative of whole-body insulin action, as mice with enhanced insulin action require a greater GIR. The insulin clamp can incorporate administration of isotopic 2[C-14] deoxyglucose to assess tissue-specific glucose uptake and [3-H-3] glucose to assess the ability of insulin to suppress the rate of endogenous glucose appearance (endoRa), a marker of hepatic glucose production, and to stimulate the rate of whole-body glucose disappearance (Rd). The miniaturization of the insulin clamp for use in genetic mouse models of metabolic disease has led to significant advances in diabetes research. Methods for performing insulin clamps vary between laboratories. It is important to note that the manner in which an insulin clamp is performed can significantly affect the results obtained. We have published a comprehensive assessment of different approaches to performing insulin clamps in conscious mice(1) as well as an evaluation of the metabolic response of four commonly used inbred mouse strains using various clamp techniques(2). Here we present a protocol for performing insulin clamps on conscious, unrestrained mice developed by the Vanderbilt Mouse Metabolic Phenotyping Center (MMPC; URL: www.mc.vanderbilt.edu/mmpc). This includes a description of the method for implanting catheters used during the insulin clamp. The protocol employed by the Vanderbilt MMPC utilizes a unique two-catheter system(3). One catheter is inserted into the jugular vein for infusions. A second catheter is inserted into the carotid artery, which allows for blood sampling without the need to restrain or handle the mouse. This technique provides a significant advantage to the most common method for obtaining blood samples during insulin clamps which is to sample from the severed tip of the tail. Unlike this latter method, sampling from an arterial catheter is not stressful to the mouse(1). We also describe methods for using isotopic tracer infusions to assess tissue-specific insulin action. We also provide guidelines for the appropriate presentation of results obtained from insulin clamps.
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页数:9
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共 31 条
  • [1] Considerations in the design of hyperinsulinemic-euglycemic clamps in the conscious mouse
    Ayala, JE
    Bracy, DP
    McGuinness, OP
    Wasserman, DH
    [J]. DIABETES, 2006, 55 (02) : 390 - 397
  • [2] The Glucagon-Like Peptide-1 Receptor Regulates Endogenous Glucose Production and Muscle Glucose Uptake Independent of Its Incretin Action
    Ayala, Julio E.
    Bracy, Deanna P.
    James, Freyja D.
    Julien, Brianna M.
    Wasserman, David H.
    Drucker, Daniel J.
    [J]. ENDOCRINOLOGY, 2009, 150 (03) : 1155 - 1164
  • [3] Glucose metabolism in vivo in four commonly used inbred mouse strains
    Berglund, Eric D.
    Li, Candice Y.
    Poffenberger, Greg
    Ayala, Julio E.
    Fueger, Patrick T.
    Willis, Shannon E.
    Jewell, Marybeth M.
    Powers, Alvin C.
    Wasserman, David H.
    [J]. DIABETES, 2008, 57 (07) : 1790 - 1799
  • [4] EPINEPHRINE-INDUCED INSULIN RESISTANCE IN MAN
    DEIBERT, DC
    DEFRONZO, RA
    [J]. JOURNAL OF CLINICAL INVESTIGATION, 1980, 65 (03) : 717 - 721
  • [5] Fueger P. T., 2004, J BIOL CHEM
  • [6] Glucose kinetics and exercise tolerance in mice lacking the GLUT4 glucose transporter
    Fueger, Patrick T.
    Li, Candice Y.
    Ayala, Julio E.
    Shearer, Jane
    Bracy, Deanna P.
    Charron, Maureen J.
    Rottman, Jeffrey N.
    Wasserman, David H.
    [J]. JOURNAL OF PHYSIOLOGY-LONDON, 2007, 582 (02): : 801 - 812
  • [7] Hexokinase II overexpression improves exercise-stimulated but not insulin-stimulated muscle glucose uptake in high-fat-fed C57BL/6J mice
    Fueger, PT
    Bracy, DP
    Malabanan, CM
    Pencek, RR
    Granner, DK
    Wasserman, DH
    [J]. DIABETES, 2004, 53 (02) : 306 - 314
  • [8] Distributed control of glucose uptake by working muscles of conscious mice: roles of transport and phosphorylation
    Fueger, PT
    Bracy, DP
    Malabanan, CM
    Pencek, RR
    Wasserman, DH
    [J]. AMERICAN JOURNAL OF PHYSIOLOGY-ENDOCRINOLOGY AND METABOLISM, 2004, 286 (01): : E77 - E84
  • [9] Hexokinase II partial knockout impairs exercise-stimulated glucose uptake in oxidative muscles of mice
    Fueger, PT
    Heikkinen, S
    Bracy, DP
    Malabanan, CM
    Pencek, RR
    Laakso, M
    Wasserman, DH
    [J]. AMERICAN JOURNAL OF PHYSIOLOGY-ENDOCRINOLOGY AND METABOLISM, 2003, 285 (05): : E958 - E963
  • [10] ISLET FUNCTION AND STRESS HYPERGLYCEMIA - PLASMA-GLUCOSE AND EPINEPHRINE INTERACTION
    HALTER, JB
    BEARD, JC
    PORTE, D
    [J]. AMERICAN JOURNAL OF PHYSIOLOGY, 1984, 247 (01): : E47 - E52