首页> 美国卫生研究院文献>American Journal of Physiology - Heart and Circulatory Physiology >Small Vessels-Big Problems: Novel Insights into Microvascular Mechanisms of Diseases: Attenuated rapid onset vasodilation with greater force production in skeletal muscle of caveolin-2−/− mice
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Small Vessels-Big Problems: Novel Insights into Microvascular Mechanisms of Diseases: Attenuated rapid onset vasodilation with greater force production in skeletal muscle of caveolin-2−/− mice

机译:小血管-大问题:疾病微血管机制的新见解:caveolin-2 //-小鼠骨骼肌的快速发作血管舒张作用和更大的力量产生

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摘要

Caveolin-2 (Cav2) is a major protein component of caveolae in membranes of vascular smooth muscle and endothelium, yet its absence alters the ultrastructure of skeletal muscle fibers. To gain insight into Cav2 function in skeletal muscle, we tested the hypothesis that genetic deletion of Cav2 would alter microvascular reactivity and depress contractile function of skeletal muscle in vivo. In the left gluteus maximus muscle (GM) of anesthetized Cav2−/− and wild-type (WT) male mice (age, 6 mo), microvascular responses to physiological agonists and to GM contractions were studied at 34°C. For feed arteries (FA), first- (1A), second- (2A) and third-order (3A) arterioles, respective mean diameters at rest (45, 35, 25, 12 μm) and during maximal dilation (65, 55, 45, 30 μm) were similar between groups. Cumulative dilations to ACh (10−9 to 10−5 M) and constrictions to norepinephrine (10−9 to 10−5 M) were also similar between groups, as were steady-state dilations during rhythmic twitch contractions (2 and 4 Hz; 30 s). For single tetanic contractions (100 Hz; 100, 250, and 500 ms), rapid onset vasodilation (ROV) increased with contraction duration throughout networks in GM of both groups but was reduced by nearly half in Cav2−/− mice compared with WT mice (P < 0.05). Nevertheless, maximal force during tetanic contraction was ∼40% greater in GM of Cav2−/− vs. WT mice (152 ± 14 vs. 110 ± 3 mN per square millimeter, respectively; P < 0.05). Thus, while structural and functional properties of resistance networks are well maintained in the GM of Cav2−/− mice, diminished ROV with greater force production reveals novel physiological roles for Cav2 in skeletal muscle.
机译:Caveolin-2(Cav2)是血管平滑肌和内皮细胞膜中小窝的主要蛋白质成分,但其​​缺失会改变骨骼肌纤维的超微结构。为了深入了解骨骼肌中Cav2的功能,我们测试了Cav2基因缺失会在体内改变微血管反应性并抑制骨骼肌收缩功能的假说。在麻醉的Cav2 -/-和野生型(WT)雄性小鼠(6 mo)的左臀大肌(GM)中,研究了对生理激动剂和GM收缩的微血管反应34℃。对于饲料动脉(FA),第一(1A),第二(2A)和三阶(3A)小动脉,静止(45、35、25、12μm)和最大扩张(65、55)时的平均直径,45、30μm)组之间相似。对ACh的累积扩张(10 −9 至10 -5 M)和收缩至去甲肾上腺素(10 −9 至10 −5 M)在组间也相似,在节律性抽搐收缩(2和4 Hz; 30 s)期间稳态扩张也是如此。对于单个强直性收缩(100 Hz; 100、250和500 ms),两组的GM的快速起效血管舒张(ROV)随着整个网络收缩时间的增加而增加,但在Cav2 -/-小鼠与WT小鼠相比(P <0.05)。尽管如此,Cav2 -/-的GM相对于WT小鼠的强直性收缩过程中的最大力高出40%左右(分别为每平方毫米152±14 vs. 110±3 mN; P <0.05) 。因此,虽然在Cav2 -/-小鼠的GM中可以很好地维持抗性网络的结构和功能特性,但ROV的降低和更大的力产生揭示了Cav2在骨骼肌中的新生理作用。

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