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染色体显微操作。3. 纺锤体纤维张力与取向异常染色体的重新定向。

Chromosome micromanipulation. 3. Spindle fiber tension and the reorientation of mal-oriented chromosomes.

作者信息

Nicklas R B, Koch C A

出版信息

J Cell Biol. 1969 Oct;43(1):40-50. doi: 10.1083/jcb.43.1.40.

Abstract

Kinetochore reorientation is the critical process ensuring normal chromosome distribution. Reorientation has been studied in living grasshopper spermatocytes, in which bivalents with both chromosomes oriented to the same pole (unipolar orientation) occur but are unstable: sooner or later one chromosome reorients, the stable, bipolar orientation results, and normal anaphase segregation to opposite poles follows. One possible source of stability in bipolar orientations is the normal spindle forces toward opposite poles, which slightly stretch the bivalent. This tension is lacking in unipolar orientations because all the chromosomal spindle fibers and spindle forces are directed toward one pole. The possible role of tension has been tested directly by micromanipulation of bivalents in unipolar orientation to artificially create the missing tension. Without exception, such bivalents never reorient before the tension is released; a total time "under tension" of over 5 hr has been accumulated in experiments on eight bivalents in eight cells. In control experiments these same bivalents reoriented from a unipolar orientation within 16 min, on the average, in the absence of tension. Controlled reorientation and chromosome segregation can be explained from the results of these and related experiments.

摘要

动粒重新定向是确保染色体正常分布的关键过程。人们已在活的蚱蜢精母细胞中对重新定向进行了研究,在这些细胞中,二价体的两条染色体都朝向同一极(单极定向)的情况会出现,但这种情况不稳定:迟早其中一条染色体会重新定向,从而形成稳定的双极定向,随后染色体正常后期分离至相对的两极。双极定向中稳定性的一个可能来源是朝向相对两极的正常纺锤体作用力,这种力会轻微拉伸二价体。在单极定向中不存在这种张力,因为所有染色体纺锤体纤维和纺锤体作用力都指向同一极。人们通过对处于单极定向的二价体进行显微操作以人工制造缺失的张力,直接测试了张力可能发挥的作用。无一例外,在张力释放之前,这些二价体从未重新定向;在对八个细胞中的八个二价体进行的实验中,已累计有超过5小时的“处于张力下”的总时长。在对照实验中,在没有张力的情况下,这些相同的二价体平均在16分钟内就从单极定向重新定向。这些实验及相关实验的结果可以解释受控的重新定向和染色体分离现象。

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