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水螅不同部位的再生时间。

Regeneration time at the different levels of hydra.

作者信息

Mookerjee Sivatosh, Bhattacharjee Amal

机构信息

Department of Zoology, Presidency College, Calcutta, India.

出版信息

Wilhelm Roux Arch Entwickl Mech Org. 1967 Sep;158(3):301-314. doi: 10.1007/BF00573401.

DOI:10.1007/BF00573401
PMID:28304514
Abstract
  1. Regeneration time of the hypostome increases progressively from the oral to the aboral direction. Converse is true for the basal disc. More time is required to form basal disc from aboral-oral direction. 2. In absence of both terminal determinants, the time of regeneration of hypostome and basal disc in a longer piece is less than that of a smaller middle piece; regeneration time in the smaller fragment takes more time. 3. Inhibitory effect of hypostome on the formation of a basal disc has been evidenced in which a slight faster rate of basal disc regeneration is possible in absence of the hypostome in the full length of hydra. 4. In smaller pieces, slower rate of hypostome regeneration is noted in absence of basal disc at posterior regions of the oral end. 5. Hypostome lengthens the time of formation of basal disc in its vicinity, whereas basal disc accelerates the formation of a hypostome in its nearby. Hypostome determining influence is stronger than its counterpart and can act from a greater distance. 6. Determination on hydra has been explained on the basis of an interaction between the relative developmental potential of the participating cells at a given level and the strength of the diffusible communicating system originating from the regions of physiologically active area of hypostome.
摘要
  1. 口柄的再生时间从口端向反口端方向逐渐增加。基盘则相反。从反口端向口端方向形成基盘需要更多时间。2. 在缺乏两种终末决定因素的情况下,较长片段中口柄和基盘的再生时间比较小的中间片段要短;较小片段的再生时间更长。3. 已证明口柄对基盘形成有抑制作用,即在水螅全长均无口柄的情况下,基盘再生速度可能稍快。4. 在较小片段中,若口端后部区域没有基盘,口柄再生速度会较慢。5. 口柄延长其附近基盘的形成时间,而基盘则加速其附近口柄的形成。口柄的决定影响比基盘更强,且能在更大距离起作用。6. 水螅的决定作用是基于特定水平参与细胞的相对发育潜能与源自口柄生理活性区域的可扩散通讯系统强度之间的相互作用来解释的。

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引用本文的文献

1
Hydra pattern is controlled by two distinct but interacting morphogen sets.九头蛇模式由两组不同但相互作用的形态发生素控制。
Wilehm Roux Arch Dev Biol. 1984 Jan;194(1):56-60. doi: 10.1007/BF00848956.
2
Long-term time-lapse live imaging reveals extensive cell migration during annelid regeneration.长期延时活体成像揭示了环节动物再生过程中广泛的细胞迁移。
BMC Dev Biol. 2016 Mar 23;16:6. doi: 10.1186/s12861-016-0104-2.

本文引用的文献

1
[Not Available].[无可用内容]。
Wilhelm Roux Arch Entwickl Mech Org. 1959 Jan;151(1):1-37. doi: 10.1007/BF00580608.
2
System of stability and lability in hydra.
Wilhelm Roux Arch Entwickl Mech Org. 1967 Sep;158(3):331-340. doi: 10.1007/BF00573403.
3
SOME BIOLOGICAL AND BIOCHEMICAL PROPERTIES OF THE POLARIZING FACTOR IN HYDRA.水螅极化因子的一些生物学和生物化学特性
Nature. 1964 Oct 31;204:492-3. doi: 10.1038/204492b0.
4
The control of mitotic activity in adult mammalian tissues.成年哺乳动物组织中有丝分裂活性的控制。
Biol Rev Camb Philos Soc. 1962 Aug;37:307-42. doi: 10.1111/j.1469-185x.1962.tb01615.x.
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Localized formation of new tissue in an adult mammal.
Symp Soc Exp Biol. 1957;11:235-54.
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A model of growth and growth control in mathematical terms.一个用数学术语描述的生长及生长控制模型。
J Gen Physiol. 1957 Sep 20;41(1):1-47. doi: 10.1085/jgp.41.1.1.
7
Specific inhibition during differentiation.
Ann N Y Acad Sci. 1955 Jun 2;60(7):1136-53; discussion, 1153-9. doi: 10.1111/j.1749-6632.1955.tb40093.x.