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Artificial gravity maintains skeletal muscle protein synthesis during 21 days of simulated microgravity

机译:人工重力在模拟微重力的21天之内维持骨骼肌蛋白质合成

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摘要

We sought to determine the effects of longitudinal loading (artificial gravity) on skeletal muscle protein kinetics in 15 healthy young males after 21 days of 6° head-down tilt bed rest [experimental treatment (Exp) group: n = 8, 31 ± 1 yr; control (Con) group; n = 7, 28 ± 1 yr, means ± SE]. On days 1 and 21 of bed rest, postabsorptive venous blood samples and muscle biopsies (vastus lateralis and soleus) were obtained during a 1-h pulse bolus infusion protocol (0 min, l-[ring-13C6]phenylalanine, 35 μmol/kg; 30 min, l-[ring-15N]phenylalanine, 35 μmol/kg). Outcome measures included mixed muscle fractional synthesis (FSR) and breakdown rates (FBR). The Exp group experienced 1 h of longitudinal loading (2.5G at the feet) via a short-radius centrifuge during each day of bed rest. Mixed muscle FSR in the Con group was reduced by 48.5% (day 1, 0.081 ± 0.000%/h vs. day 21, 0.042 ± 0.000%/h; P = 0.001) in vastus lateralis after 21 days of bed rest, whereas the Exp group maintained their rate of protein synthesis. A similar but nonsignificant change in FSR was noted for the soleus muscle (Exp, −7%; Con, −22%). No changes in muscle protein breakdown were observed. In conclusion, 1 h of daily exposure to artificial gravity maintained the rate of protein synthesis of the vastus lateralis and may represent an effective adjunct countermeasure to combat the loss of muscle mass and functional during extended spaceflight.
机译:我们试图确定纵向负荷(人为重力)对15位健康的年轻男性的6°头朝下倾斜卧床休息21天后的骨骼肌蛋白动力学的影响[实验治疗(Exp)组:n = 8、31±1年对照组n = 7、28±1年,表示±SE]。在卧床休息的第1天和第21天,在1小时脉冲推注输注方案(0分钟,l- [ring- 13 )中获得了吸收后的静脉血样本和肌肉活检样本(外侧输卵管和比目鱼肌) C6]苯丙氨酸,35μmol/ kg; 30分钟,1- [环-sup> 15 N]苯丙氨酸,35μmol/ kg)。结果指标包括混合肌肉分数合成(FSR)和分解率(FBR)。在每天卧床休息期间,Exp组通过短半径离心机经历了1 h的纵向载荷(脚部为2.5G)。在卧床休息21天后,Con组混合肌FSR减少了48.5%(第1天为0.081±0.000%/ h,而第21天为0.042±0.000%/ h; P = 0.001), Exp组维持其蛋白质合成速率。对于比目鱼肌,FSR的变化类似但不明显(Exp,−7%; Con,−22%)。没有观察到肌肉蛋白质分解的变化。总之,每天暴露于人工重力下1 h保持了外侧股肌的蛋白质合成速率,并且可能代表一种有效的辅助对策,以对抗长时间太空飞行中肌肉质量和功能的丧失。

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