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关于纤毛虫斜管虫大核发育的电子显微镜研究。

Electron microscopic studies on the macronuclear development in the ciliate Chilodonella uncinata.

作者信息

Pyne C K

出版信息

Cytobiologie. 1978 Oct;18(1):145-60.

PMID:101400
Abstract

The development of macronuclear anlage in the ciliate Chilodonella uncinata has been studied through electron microscopy. The ultrastructure of macro- and micronuclei is described for comparison. During the first stage of development, when the DNA content of the macronuclear anage increases from 2 C to 32 C, chromosomes are visible as distinct osmiophilic bodies inside the anlage. At the end of the initial polyploidization phase, the chromosomes despiralize, giving rise to long filamentous structures 25 to 50 nm in diameter. The latter show a singular banding pattern, with dense bands 12 to 25 nm thick alternating regularly with less dense interbands. Such an organization has not yet been observed in any other type of nucleus. These filamentous structures have been interpreted as highly despiralized oligotenic chromosomes. During the final stage of macronuclear development, these structures condense into thin chromatin strands and small dense granules; the number of granules increases progressively as the chromatin strands disappear. These small granules very likely fuse amongst themselves to form the chromatin granules of the vegetative macronucleus. No evidence has yet been found for a fragmentation of chromatin in this ciliate, but this problem needs further study. The old macronucleus maintains a normal ultrastructure until a late stage of development of the macronuclear anlage, becoming pycnotic only towards the very end of the latter process.

摘要

通过电子显微镜研究了纤毛虫类的钩刺斜管虫(Chilodonella uncinata)大核原基的发育过程。描述了大核和小核的超微结构以作比较。在发育的第一阶段,当大核原基的DNA含量从2C增加到32C时,染色体在原基内可见为明显的嗜锇性小体。在初始多倍体化阶段结束时,染色体解螺旋,形成直径为25至50纳米的长丝状结构。后者呈现出独特的带纹模式,厚12至25纳米的致密带与密度较低的间带规则交替。在任何其他类型的细胞核中尚未观察到这种组织形式。这些丝状结构被解释为高度解螺旋的寡基因染色体。在大核发育的最后阶段,这些结构浓缩成细的染色质链和小的致密颗粒;随着染色质链消失,颗粒数量逐渐增加。这些小颗粒很可能相互融合形成营养大核的染色质颗粒。尚未发现该纤毛虫中染色质片段化的证据,但这个问题需要进一步研究。旧的大核在大核原基发育的后期之前保持正常的超微结构,仅在后者过程接近尾声时才变成固缩状态。

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