کد مقاله | کد نشریه | سال انتشار | مقاله انگلیسی | نسخه تمام متن |
---|---|---|---|---|
8473919 | 1550414 | 2016 | 27 صفحه PDF | دانلود رایگان |
عنوان انگلیسی مقاله ISI
Ryanodine receptor sensitivity governs the stability and synchrony of local calcium release during cardiac excitation-contraction coupling
ترجمه فارسی عنوان
حساسیت گیرنده رایانودین ثبات و هماهنگی انتشار کلسیم محلی را در طول جابجایی انقباض قلبی
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کلمات کلیدی
موضوعات مرتبط
علوم زیستی و بیوفناوری
بیوشیمی، ژنتیک و زیست شناسی مولکولی
بیولوژی سلول
چکیده انگلیسی
Calcium-induced calcium release is the principal mechanism that triggers the cell-wide [Ca2Â +]i transient that activates muscle contraction during cardiac excitation-contraction coupling (ECC). Here, we characterize this process in mouse cardiac myocytes with a novel mathematical action potential (AP) model that incorporates realistic stochastic gating of voltage-dependent L-type calcium (Ca2Â +) channels (LCCs) and sarcoplasmic reticulum (SR) Ca2Â + release channels (the ryanodine receptors, RyR2s). Depolarization of the sarcolemma during an AP stochastically activates the LCCs elevating subspace [Ca2Â +] within each of the cell's 20,000 independent calcium release units (CRUs) to trigger local RyR2 opening and initiate Ca2Â + sparks, the fundamental unit of triggered Ca2Â + release. Synchronization of Ca2Â + sparks during systole depends on the nearly uniform cellular activation of LCCs and the likelihood of local LCC openings triggering local Ca2Â + sparks (ECC fidelity). The detailed design and true SR Ca2Â + pump/leak balance displayed by our model permits investigation of ECC fidelity and Ca2Â + spark fidelity, the balance between visible (Ca2Â + spark) and invisible (Ca2Â + quark/sub-spark) SR Ca2Â + release events. Excess SR Ca2Â + leak is examined as a disease mechanism in the context of “catecholaminergic polymorphic ventricular tachycardia (CPVT)”, a Ca2Â +-dependent arrhythmia. We find that that RyR2s (and therefore Ca2Â + sparks) are relatively insensitive to LCC openings across a wide range of membrane potentials; and that key differences exist between Ca2Â + sparks evoked during quiescence, diastole, and systole. The enhanced RyR2 [Ca2Â +]i sensitivity during CPVT leads to increased Ca2Â + spark fidelity resulting in asynchronous systolic Ca2Â + spark activity. It also produces increased diastolic SR Ca2Â + leak with some prolonged Ca2Â + sparks that at times become “metastable” and fail to efficiently terminate. There is a huge margin of safety for stable Ca2Â + handling within the cell and this novel mechanistic model provides insight into the molecular signaling characteristics that help maintain overall Ca2Â + stability even under the conditions of high SR Ca2Â + leak during CPVT. Finally, this model should provide tools for investigators to examine normal and pathological Ca2Â + signaling characteristics in the heart.
ناشر
Database: Elsevier - ScienceDirect (ساینس دایرکت)
Journal: Journal of Molecular and Cellular Cardiology - Volume 92, March 2016, Pages 82-92
Journal: Journal of Molecular and Cellular Cardiology - Volume 92, March 2016, Pages 82-92
نویسندگان
Andrew P. Wescott, M. Saleet Jafri, W.J. Lederer, George S.B. Williams,