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The effects of slow skeletal troponin I expression in the murine myocardium are influenced by development-related shifts in myosin heavy chain isoform

机译:鼠心肌中骨骼肌钙蛋白I慢表达的影响受肌球蛋白重链同工型发育相关转变的影响

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摘要

Troponin I (TnI) and myosin heavy chain (MHC) are two contractile regulatory proteins that undergo major shifts in isoform expression as cardiac myocytes mature from embryonic to adult stages. To date, many studies have investigated individual effects of embryonic vs. cardiac isoforms of either TnI or MHC on cardiac muscle function and contractile dynamics. Thus, we sought to determine whether concomitant expression of the embryonic isoforms of both TnI and MHC had functional effects that were not previously observed. Adult transgenic (TG) mice that express the embryonic isoform of TnI, slow skeletal TnI (ssTnI), were treated with propylthiouracil (PTU) to revert MHC expression from adult (α-MHC) to embryonic (β-MHC) isoforms. Cardiac muscle fibres from these mice contained ∼80%β-MHC and ∼34% ssTnI of total MHC or TnI, respectively, allowing us to test the functional effects of ssTnI in the presence of β-MHC. Detergent-skinned cardiac muscle fibre bundles were used to study how the interplay between MHC and TnI modulate muscle length-mediated effect on crossbridge (XB) recruitment dynamics, Ca2+-activated tension, and ATPase activity. One major finding was that the model-predicted XB recruitment rate (b) was enhanced significantly by ssTnI, and this speeding effect of ssTnI on XB recruitment rate was much greater (3.8-fold) when β-MHC was present. Another major finding was that the previously documented ssTnI-mediated increase in myofilament Ca2+ sensitivity (pCa50) was blunted when β-MHC was present. ssTnI expression increased pCa50 by 0.33 in α-MHC fibres, whereas ssTnI increased pCa50 by only 0.05 in β-MHC fibres. Our study provides new evidence for significant interplay between MHC and TnI isoforms that is essential for tuning cardiac contractile function. Thus, MHC–TnI interplay may provide a developmentally dependent mechanism to enhance XB recruitment dynamics at a time when Ca2+-handling mechanisms are underdeveloped, and to prevent excessive ssTnI-dependent inotropy (increased Ca2+ sensitivity) in the embryonic myocardium.
机译:肌钙蛋白I(TnI)和肌球蛋白重链(MHC)是两种可收缩的调节蛋白,随着心肌细胞从胚胎期到成年期的成熟,同工型表达发生重大变化。迄今为止,许多研究已经调查了TnI或MHC的胚胎与心脏同工型对心肌功能和收缩动力学的个体影响。因此,我们试图确定TnI和MHC的胚胎同工型的伴随表达是否具有以前未观察到的功能作用。将表达TnI胚胎同工型,慢速骨骼肌TnI(ssTnI)的成年转基因(TG)小鼠用丙基硫氧嘧啶(PTU)处理,将MHC表达从成年(α-MHC)恢复为胚胎(β-MHC)同工型。这些小鼠的心肌纤维分别占总MHC或TnI的〜80%β-MHC和〜34%ssTnI,这使我们能够在存在β-MHC的情况下测试ssTnI的功能作用。用去污剂皮肤的心肌纤维束研究MHC和TnI之间的相互作用如何调节肌长介导的对跨桥(XB)募集动力学,Ca 2 + 激活的张力和ATPase活性的影响。一个主要发现是,ssTnI显着提高了模型预测的XB募集率(b),当存在β-MHC时,ssTnI对XB募集率的加速作用要大得多(3.8倍)。另一个主要发现是,当存在β-MHC时,以前记录的ssTnI介导的肌丝Ca 2 + 敏感性(pCa50)升高被减弱。 ssTnI表达在α-MHC纤维中使pCa50增加0.33,而ssTnI在β-MHC纤维中仅使pCa50增加0.05。我们的研究为MHC和TnI亚型之间的重要相互作用提供了新的证据,这对于调节心脏收缩功能至关重要。因此,当Ca 2 + 处理机制不完善时,MHC-TnI的相互作用可能提供了一种依赖于发育的机制,以增强XB募集动力学,并防止过度的ssTnI依赖性的内向性(Ca 2 + 敏感性)在胚胎心肌中。

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