心肌细胞是体内最具能量的细胞。它们是高度专化的高含氧细胞,含有大量线粒体[1]。心肌细胞占心脏质量的约 75%,但在心脏总细胞数中仅占约三分之一。分化后的心肌细胞几乎没有增殖能力;然而,研究表明心肌肥大可通过 Ras/MEK 通路响应 α1-肾上腺素能刺激[2]。所有心肌细胞都能够自发进行节律性膜去极化和复极化。心肌收缩具有自身发生性(myogenic),独立于神经刺激。心肌细胞内存在复杂的信号网络,调控心脏的节律性泵血[3]。心肌肥大和凋亡与心力衰竭期间收缩功能丧失有关。深入了解心肌信号网络有助于揭示导致心肌细胞死亡的细胞机制。
ScienCell Research Laboratories 提供的 HCM-a 分离自人成人心脏。HCM-a 在纯化后冷冻保存,并以冷冻状态提供。每瓶含有 >1 x 10^6 个细胞,体积为 1 ml。HCM-a 通过针对肌节 α-肌动蛋白(sarcomeric α-actinin)的抗体进行免疫荧光鉴定。HCM-a 对 HIV-1、HBV、HCV、支原体、细菌、酵母和真菌检测均为阴性。在 ScienCell Research Laboratories 提供的条件下可继续培养;但 HCM-a 不推荐用于扩增或长期培养,因为这些细胞在体外不具有增殖能力。
推荐培养基
建议在体外培养 HCM-a 时使用 Cardiac Myocyte Medium–无血清(CMM-sf,货号:6101)。
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Molecular mechanisms protecting cardiomyocytes from stress-induced death, including tension stress, are essential for cardiac physiology and defects in these protective m... More
Molecular mechanisms protecting cardiomyocytes from stress-induced death, including tension stress, are essential for cardiac physiology and defects in these protective mechanisms can result in pathological alterations. Bcl2-associated athanogene 3(BAG3) is expressed in cardiomyocytes and is a component of the chaperone-assisted autophagy pathway, essential for homeostasis of mechanically altered cells. BAG3 ablation in mice results in a lethal cardiomyopathy soon after birth and mutations of this gene have been associated with different cardiomyopathies including stress-induced Takotsubo cardiomyopathy (TTC). The pathogenic mechanism leading to TTC has not been defined, but it has been suggested that the heart can be damaged by excessive epinephrine (epi) spillover in the absence of a protective mechanism. The aim of this study was to provide more evidence for a role of BAG3 in the pathogenesis of TTC. Therefore, we sequenced BAG3 gene in 70 TTC patients and in 81 healthy donors with the absence of evaluable cardiovascular disease. Mutations and polymorphisms detected in the BAG3 gene included a frequent nucleotide change g2252c in the BAG3 3′-untranslated region (3′-UTR) of Takotsubo patients (Po0.05), resulting in loss of binding of microRNA-371a-5p (miR-371a-5p) as evidenced by dual-luciferase reporter assays and argonaute RNA-induced silencing complex catalytic component 2/pull-down assays. Moreover, we describe a novel signaling pathway in cardiomyocytes that leads to BAG3 upregulation on exposure to epi through an ERK-dependent upregulation of miR-371a-5p. In conclusion, the presence of a g2252c polymorphism in the BAG3 3′-UTR determines loss of miR-371a-5p binding and results in an altered response to epi, potentially representing a new molecular mechanism that contributes to TTC pathogenesis. Cell Death and Disease (2015) 6, e1948; doi:10.1038/cddis.2015.280; published online 29 October 2015 Less
Although it has been observed that aggregate size affects cardiac development, an incomplete understanding of the cellular mechanisms underlying human pluripotent stem ce... More
Although it has been observed that aggregate size affects cardiac development, an incomplete understanding of the cellular mechanisms underlying human pluripotent stem cell-derived cardiomyogenesis has limited the development of robust defined-condition cardiac cell generation protocols. Our objective was thus to elucidate cellular and molecular mechanisms underlying the endogenous control of human embryonic stem cell (hESC) cardiac tissue development, and to test the hypothesis that hESC aggregate size influences extraembryonic endoderm (ExE) commitment and cardiac inductive properties. hESC aggregates were generated with 100, 1000, or 4000 cells per aggregate using microwells. The frequency of endoderm marker (FoxA2 and GATA6)-expressing cells decreased with increasing aggregate size during early differentiation. Cardiogenesis was maximized in aggregates initiated from 1000 cells, with frequencies of 0.49±0.06 cells exhibiting a cardiac progenitor phenotype (KDR(low)/C-KIT(neg)) on day 5 and 0.24±0.06 expressing cardiac Troponin T on day 16. A direct relationship between ExE and cardiac differentiation efficiency was established by forming aggregates with varying ratios of SOX7 (a transcription factor required for ExE development) overexpressing or knockdown hESCs to unmanipulated hESCs. We demonstrate, in a defined, serum-free cardiac induction system, that robust and efficient cardiac differentiation is a function of endogenous ExE cell concentration, a parameter that can be directly modulated by controlling hESC aggregate size. Less
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