Quantitative label-free digital holographic imaging of cardiomyocyte optical volume, nucleation, and cell division

IF 4.9 2区 医学 Q1 CARDIAC & CARDIOVASCULAR SYSTEMS
Herman Huang , Sangsoon Park , Ines Ross , Joseph Moreno , Sheamin Khyeam , Jacquelyn Simmons , Guo N. Huang , Alexander Y. Payumo
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引用次数: 0

Abstract

Cardiac regeneration in newborn rodents depends on the ability of pre-existing cardiomyocytes to proliferate and divide. This capacity is lost within the first week of postnatal development when these cells rapidly switch from hyperplasia to hypertrophy, withdraw from the cell cycle, become binucleated, and increase in size. How these dynamic changes in cell size and nucleation impact cardiomyocyte proliferative potential is not well understood. In this study, we innovate the application of a commercially available digital holographic imaging microscope, the Holomonitor M4, to evaluate the proliferative responses of mononucleated and binucleated cardiomyocytes after CHIR99021 treatment, a model proliferative stimulus. This system enables long-term label-free quantitative tracking of primary cardiomyocyte dynamics in real-time with single-cell resolution. Our results confirm that chemical inhibition of glycogen synthase kinase 3 with CHIR99021 promotes complete cell division of both mononucleated and binucleated cardiomyocytes with high frequency. Quantitative tracking of cardiomyocyte volume dynamics during these proliferative events revealed that both mononucleated and binucleated cardiomyocytes reach a similar size-increase threshold prior to attempted cell division. Binucleated cardiomyocytes attempt to divide with lower frequency than mononucleated cardiomyocytes, which may be associated with inadequate increases in cell size. By defining the interrelationship between cardiomyocyte size, nucleation, and cell cycle control, we may better understand the cellular mechanisms that drive the loss of mammalian cardiac regenerative capacity after birth.

Abstract Image

心肌细胞光学体积、细胞核形成和细胞分裂的无标记数字全息定量成像。
新生啮齿动物的心脏再生取决于原有心肌细胞的增殖和分裂能力。这种能力会在出生后第一周内丧失,因为此时这些细胞会迅速从增生转为肥大,退出细胞周期,变成双核,体积也会增大。细胞大小和成核的这些动态变化如何影响心肌细胞的增殖潜能,目前还不十分清楚。在这项研究中,我们创新性地应用市售数字全息成像显微镜 Holomonitor M4 来评估单核和双核心肌细胞在 CHIR99021 处理(一种增殖刺激模型)后的增殖反应。该系统能以单细胞分辨率对原代心肌细胞动态进行长期无标记实时定量跟踪。我们的研究结果证实,CHIR99021 对糖原合酶激酶 3 的化学抑制可促进单核和双核心肌细胞高频率地完全分裂。对这些增殖过程中心肌细胞体积动态的定量追踪显示,单核和双核心肌细胞在尝试细胞分裂之前都达到了类似的体积增大阈值。双核心肌细胞尝试分裂的频率低于单核心肌细胞,这可能与细胞体积增加不足有关。通过确定心肌细胞大小、成核和细胞周期控制之间的相互关系,我们可以更好地了解哺乳动物出生后丧失心脏再生能力的细胞机制。
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来源期刊
CiteScore
10.70
自引率
0.00%
发文量
171
审稿时长
42 days
期刊介绍: The Journal of Molecular and Cellular Cardiology publishes work advancing knowledge of the mechanisms responsible for both normal and diseased cardiovascular function. To this end papers are published in all relevant areas. These include (but are not limited to): structural biology; genetics; proteomics; morphology; stem cells; molecular biology; metabolism; biophysics; bioengineering; computational modeling and systems analysis; electrophysiology; pharmacology and physiology. Papers are encouraged with both basic and translational approaches. The journal is directed not only to basic scientists but also to clinical cardiologists who wish to follow the rapidly advancing frontiers of basic knowledge of the heart and circulation.
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