Deficiency of subsarcolemmal mitochondria in obesity and type 2 diabetes

被引:681
作者
Ritov, VB
Menshikova, EV
He, J
Ferrell, RE
Goodpaster, BH
Kelley, DE
机构
[1] Univ Pittsburgh, Sch Med, Dept Med, Div Endocrinol & Metab, Pittsburgh, PA 15261 USA
[2] Univ Pittsburgh, Grad Sch Publ Hlth, Dept Human Genet, Pittsburgh, PA 15261 USA
关键词
D O I
10.2337/diabetes.54.1.8
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
The current study addresses a novel hypothesis of subcellular distribution of mitochondrial dysfunction in skeletal muscle in type 2 diabetes. Vastus lateralis muscle was obtained by percutaneous biopsy from 11 volunteers with type 2 diabetes; 12 age-, sex-, and weight-matched obese sedentary nondiabetic volunteers; and 8 lean volunteers. Subsarcolemmal and intermyofibrillar mitochondrial fractions were isolated by differential centrifugation and digestion techniques. Overall electron transport chain activity was similar in type 2 diabetic and obese subjects, but subsarcolemmal mitochondria electron transport chain activity was reduced in type 2 diabetic subjects (0.017 +/- 0.003 vs. 0.034 +/-0.007 units/mU creatine kinase [CK], P = 0.01) and sevenfold reduced compared with lean subjects (P < 0.01). Electron transport chain activity in intermyofibrillar mitochondria was similar in type 2 diabetic and obese subjects, though reduced compared with lean subjects. A reduction in subsarcolemmal mitochondria was confirmed by transmission electron microscopy. Although mtDNA was lower in type 2 diabetic and obese subjects, the decrement in electron transport chain activity was proportionately greater, indicating functional impairment. Because of the potential importance of subsarcolemmal mitochondria for signal transduction and substrate transport, this deficit may contribute to the pathogenesis of muscle insulin resistance in type 2 diabetes.
引用
收藏
页码:8 / 14
页数:7
相关论文
共 46 条
[31]   Hexokinase isozyme distribution in human skeletal muscle [J].
Ritov, VB ;
Kelley, DE .
DIABETES, 2001, 50 (06) :1253-1262
[32]  
ROBINSON D, 1987, METHODS PREPARATION, P55
[33]   Permeabilized cell and skinned fiber techniques in studies of mitochondrial function in vivo [J].
Saks, VA ;
Veksler, VI ;
Kuznetsov, AV ;
Kay, L ;
Sikk, P ;
Tiivel, T ;
Tranqui, L ;
Olivares, J ;
Winkler, K ;
Wiedemann, F ;
Kunz, WS .
MOLECULAR AND CELLULAR BIOCHEMISTRY, 1998, 184 (1-2) :81-100
[34]   The molecular and physiological basis of insulin resistance: emerging implications for metabolic and cardiovascular diseases - Series introduction [J].
Saltiel, AR .
JOURNAL OF CLINICAL INVESTIGATION, 2000, 106 (02) :163-164
[35]   Insulin signalling and the regulation of glucose and lipid metabolism [J].
Saltiel, AR ;
Kahn, CR .
NATURE, 2001, 414 (6865) :799-806
[36]   MUSCLE METABOLISM AND CARDIAC-FUNCTION OF MYOPATHIC HAMSTER FOLLOWING TRAINING [J].
SEMBROWICH, WL ;
KNUDSON, MB ;
GOLLNICK, PD .
JOURNAL OF APPLIED PHYSIOLOGY, 1977, 43 (06) :936-941
[37]   Mechanisms of disease - Glucose transporters and insulin action - Implications for insulin resistance and diabetes mellitus [J].
Shepherd, PR ;
Kahn, BB .
NEW ENGLAND JOURNAL OF MEDICINE, 1999, 341 (04) :248-257
[38]   Cellular mechanisms of insulin resistance [J].
Shulman, GI .
JOURNAL OF CLINICAL INVESTIGATION, 2000, 106 (02) :171-176
[39]   Markers of capacity to utilize fatty acids in human skeletal muscle: relation to insulin resistance and obesity and effects of weight loss [J].
Simoneau, JA ;
Veerkamp, JH ;
Turcotte, LP ;
Kelley, DE .
FASEB JOURNAL, 1999, 13 (14) :2051-2060
[40]   Altered glycolytic and oxidative capacities of skeletal muscle contribute to insulin resistance in NIDDM [J].
Simoneau, JA ;
Kelley, DE .
JOURNAL OF APPLIED PHYSIOLOGY, 1997, 83 (01) :166-171