Blood flow and glucose uptake in denervated, insulin-resistant muscles

被引:11
作者
Turinsky, J [1 ]
Damrau-Abney, A [1 ]
Loegering, DJ [1 ]
机构
[1] Albany Med Coll, Dept Physiol & Cell Biol A134, Albany, NY 12208 USA
关键词
single hindlimb denervation; soleus muscle; plantaris muscle; gastrocnemius muscle; 2-deoxy-D-glucose; Cr-51-labeled microspheres;
D O I
10.1152/ajpregu.1998.274.2.R311
中图分类号
Q4 [生理学];
学科分类号
071003 ;
摘要
To investigate whether changes in blood flow contribute to the insulin resistance in denervated muscles, basal and insulin-stimulated 2-deoxy-D-glucose (2-DG) uptake in vivo and blood flow were measured in soleus (slow twitch), plantaris (fast twitch), and gastrocnemius (fast twitch) muscles at 1 and 3 days after a right hindlimb denervation in the rat. Muscles of the contralateral sham hindlimb served as an internal control. Sham plantaris and gastrocnemius muscles showed 32 and 60% lower basal 2-DG uptake, 46 and 66% lower insulin-stimulated 2-DG uptake, and 79 and 81% lower blood flow, respectively, compared with sham soleus muscle. At 1 day after denervation, soleus, plantaris, and gastrocnemius muscles exhibited an 80, 64, and 42% decrease in insulin-stimulated 2-DG uptake, respectively, in the presence of 63, 323, and 304% higher blood flow, respectively. At 3 days after denervation, soleus muscle showed a 60% decrease in basal 2-DG uptake, complete unresponsiveness to insulin, and an 86% decrease in blood flow. In contrast, the denervated plantaris and gastrocnemius muscles exhibited a 262 and 105% increase in basal 2-DG uptake, respectively, no change in insulin-stimulated 2-DC uptake, and no change in blood flow compared with corresponding contralateral sham muscles. The results demonstrate that muscle blood flow is influenced by muscle fiber population and time after denervation and that changes in blood flow do not contribute to the insulin resistance in the denervated muscles.
引用
收藏
页码:R311 / R317
页数:7
相关论文
共 31 条
[1]   HINDLIMB MUSCLE FIBER POPULATIONS OF 5 MAMMALS [J].
ARIANO, MA ;
ARMSTRONG, RB ;
EDGERTON, VR .
JOURNAL OF HISTOCHEMISTRY & CYTOCHEMISTRY, 1973, 21 (01) :51-55
[2]   SKELETAL-MUSCLE BLOOD-FLOW INDEPENDENTLY MODULATES INSULIN-MEDIATED GLUCOSE-UPTAKE [J].
BARON, AD ;
STEINBERG, H ;
BRECHTEL, G ;
JOHNSON, A .
AMERICAN JOURNAL OF PHYSIOLOGY, 1994, 266 (02) :E248-E253
[3]   SKELETAL-MUSCLE BLOOD-FLOW - A POSSIBLE LINK BETWEEN INSULIN RESISTANCE AND BLOOD-PRESSURE [J].
BARON, AD ;
BRECHTELHOOK, G ;
JOHNSON, A ;
HARDIN, D .
HYPERTENSION, 1993, 21 (02) :129-135
[4]   MECHANISM OF INSULIN RESISTANCE IN INSULIN-DEPENDENT DIABETES-MELLITUS - A MAJOR ROLE FOR REDUCED SKELETAL-MUSCLE BLOOD-FLOW [J].
BARON, AD ;
LAAKSO, M ;
BRECHTEL, G ;
EDELMAN, SV .
JOURNAL OF CLINICAL ENDOCRINOLOGY & METABOLISM, 1991, 73 (03) :637-643
[5]   HEMODYNAMIC ACTIONS OF INSULIN [J].
BARON, AD .
AMERICAN JOURNAL OF PHYSIOLOGY, 1994, 267 (02) :E187-E202
[6]   INSULIN RESISTANCE OF DENERVATED RAT MUSCLE - A MODEL FOR IMPAIRED RECEPTOR-FUNCTION COUPLING [J].
BURANT, CF ;
LEMMON, SK ;
TREUTELAAR, MK ;
BUSE, MG .
AMERICAN JOURNAL OF PHYSIOLOGY, 1984, 247 (05) :E657-E666
[7]  
BURANT CF, 1986, J BIOL CHEM, V261, P8985
[8]   EFFECT OF DENERVATION AND INSULIN ON PENETRATION OF D-XYLOSE INTO RAT HEMIDIAPHRAGMS [J].
BUSE, MG ;
BUSE, J .
DIABETES, 1961, 10 (02) :134-&
[9]   GLUCOSE UPTAKE AND RESPONSE TO INSULIN OF THE ISOLATED RAT DIAPHRAGM - THE EFFECT OF DENERVATION [J].
BUSE, MG ;
BUSE, J .
DIABETES, 1959, 8 (03) :218-225
[10]   INSULIN ACTION AND THE INSULIN SIGNALING NETWORK [J].
CHEATHAM, B ;
KAHN, CR .
ENDOCRINE REVIEWS, 1995, 16 (02) :117-142