He Huamei, Javadpour Maryam M, Latif Farhana, Tardiff Jil C, Ingwall Joanne S
NMR Laboratory for Physiological Chemistry, Division of Cardiovascular Medicine, Department of Medicine, Brigham and Women's Hospital and Harvard Medical School, Boston, MA 02115, USA.
Biophys J. 2007 Sep 1;93(5):1834-44. doi: 10.1529/biophysj.107.107557. Epub 2007 May 25.
It is now known that the flexibility of the troponin T (TnT) tail determines thin filament conformation and hence cross-bridge cycling properties, expanding the classic structural role of TnT to a dynamic role regulating sarcomere function. Here, using transgenic mice bearing R-92W and R-92L missense mutations in cardiac TnT known to alter the flexibility of the TnT tropomyosin-binding domain, we found mutation-specific differences in the cost of contraction at the whole heart level. Compared to age- and gender-matched sibling hearts, mutant hearts demonstrate greater ATP utilization measured using (31)P NMR spectroscopy as decreases in [ATP] and [PCr] and |DeltaG(~ATP)| at all workloads and profound systolic and diastolic dysfunction at all energetic states. R-92W hearts showed more severe energetic abnormalities and greater contractile dysfunction than R-92L hearts. The cost of increasing contraction was abnormally high when [Ca(2+)] was used to increase work in mutant hearts but was normalized with supply of the beta-adrenergic agonist dobutamine. These results show that R-92L and R-92W mutations in the TM-binding domain of cardiac TnT alter thin filament structure and flexibility sufficiently to cause severe defects in both whole heart energetics and contractile performance, and that the magnitude of these changes is mutation specific.
现在已知肌钙蛋白T(TnT)尾部的柔韧性决定了细肌丝的构象,进而决定了横桥循环特性,将TnT的经典结构作用扩展为调节肌节功能的动态作用。在此,我们使用在心脏TnT中携带R-92W和R-92L错义突变的转基因小鼠,已知这些突变会改变TnT原肌球蛋白结合结构域的柔韧性,我们发现在全心水平上收缩成本存在突变特异性差异。与年龄和性别匹配的同窝心脏相比,突变心脏在所有工作负荷下表现出更高的ATP利用率,通过(31)P核磁共振波谱测量,表现为[ATP]和[磷酸肌酸(PCr)]降低以及|ΔG(~ATP)|降低,并且在所有能量状态下均存在严重的收缩期和舒张期功能障碍。R-92W心脏比R-92L心脏表现出更严重的能量异常和更大的收缩功能障碍。当使用[Ca(2+)]增加突变心脏的工作量时,增加收缩的成本异常高,但使用β-肾上腺素能激动剂多巴酚丁胺可使其恢复正常。这些结果表明,心脏TnT的原肌球蛋白结合结构域中的R-92L和R-92W突变足以改变细肌丝结构和柔韧性,从而导致全心能量学和收缩性能出现严重缺陷,并且这些变化的程度具有突变特异性。