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Titlebook: Cell Cycle Regulation and Differentiation in Cardiovascular and Neural Systems; Antonio Giordano,Umberto Galderisi Book 2010 Springer Scie

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发表于 2025-3-21 18:26:43 | 显示全部楼层 |阅读模式
书目名称Cell Cycle Regulation and Differentiation in Cardiovascular and Neural Systems
编辑Antonio Giordano,Umberto Galderisi
视频video
概述Describes the differences and similarities in the differentiation pathways of the cardiovascular and neural systems.Evaluates the differentiation process beginning with the most early cell precursor –
图书封面Titlebook: Cell Cycle Regulation and Differentiation in Cardiovascular and Neural Systems;  Antonio Giordano,Umberto Galderisi Book 2010 Springer Scie
描述Complex physiopathological relationships have been proven to exist between two of the body’s most vital organs; the brain and the heart. In Cell Cycle Regulation and Differentiation in Cardiovascular and Neural Systems Antonio Giordano, Umberto Galderisi and a panel of the most respected authorities in their field offer an in-depth analysis of the differentiation process in two systems that have profound relationships with one another. The text looks at several aspects of the cardiovascular and nervous systems from a new point of view, describing the differences and similarities in their differentiation pathways with an emphasis on the role of cell cycle regulation and cell differentiation. Topics discussed include neurogenesis in the central nervous system, neural stem cells, and the basic-helix-loop-helix transcription factors in neural differentiation. Ground-breaking and authoritative, Cell Cycle Regulation and Differentiation in Cardiovascular and Neural Systems is a must have for all researchers in cardiovascular medicine and neuroscience and will prompt the scientific community to perceive cell cycle regulation and differentiation under a novel and more comprehensive light.
出版日期Book 2010
关键词Cardiac Stem Cells; Cell Cycle; Muscle Stem Cells; Myogenesis; Nervous System; Neural Stem Cells; Neurogen
版次1
doihttps://doi.org/10.1007/978-1-60327-153-0
isbn_softcover978-1-4899-8218-6
isbn_ebook978-1-60327-153-0
copyrightSpringer Science+Business Media, LLC 2010
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https://doi.org/10.1007/978-94-6351-164-3th progeny re-enter the cell cycle. By mid-gestation, the cells initiate neurogenesis by adopting a mode of asymmetric cell division, in which one daughter cell differentiates into a neuron while the other continues to cycle in the ventricular zone. Neural stem cells gradually alter their characteri
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https://doi.org/10.1007/978-94-6351-194-0 are responsible for muscle growth and regeneration under physiological conditions and (2) other multipotent stem cells that are capable of myogenic differentiation during muscle regeneration induced by injury or diseases. The latter category includes different cell populations isolated by various r
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Chisanga Theresa,Naicker Inbanathanized terminally differentiated cells. It has become evident that stem cells persist in and can be isolated from many organs postnatally. Stem cells isolated from various sources have been demonstrated to vary in their differentiation capacity or pluripotentiality. Differentiation causes stem cells t
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Pluralism Versus Monism in Cultural Pattern but exit the cell cycle soon after birth in mammals. Although the extent to which adult cardiac myocytes are capable of cell cycle reentry is controversial and whether species-specific differences exist, it appears that the vast majority of adult cardiac myocytes are terminally differentiated. The
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Rise and Fall of Cultural Destinying waste products. Vasculature also mediates signals for correct organogenesis. Not surprisingly therefore, vessels are critical for organ growth in the embryo and for repair of wounded tissue in the adult. In this chapter we will focus in particular on molecular factors involved in differentiation
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