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Crossing Over01:34

Crossing Over

Unlike mitosis, meiosis aims for genetic diversity in its creation of haploid gametes. Dividing germ cells first begin this process in prophase I, where each chromosome—replicated in S phase—is now composed of two sister chromatids (identical copies) joined centrally.
The homologous pairs of sister chromosomes—one from the maternal and one from the paternal genome—then begin to align alongside each other lengthwise, matching corresponding DNA positions in a process called synapsis.
In order to...
Crossing Over01:30

Crossing Over

Crossing over is the exchange of genetic information between homologous chromosomes during prophase I of meiosis I. Genetic recombination gives rise to allelic diversity in the newly formed daughter cells. In humans, crossing over produces genetically distinct haploid egg and sperm cells that undergo fertilization to produce unique offspring. Before cell division starts, the germ cell’s chromosome(s) undergo duplication in the S phase of the cell cycle. As the cells enter prophase I, duplicated...
The Ratio of X Chromosome to Autosomes02:45

The Ratio of X Chromosome to Autosomes

In most organisms, sex is determined by the ratio of X and Y chromosomes. However, in some organisms, such as Drosophila and C.elegans, sex is determined by the ratio of the number of X chromosomes to the number of sets of autosomes. The Y chromosome in Drosophila is active but does not determine sex. It contains genes responsible for the production of sperms in adult flies.  
Normal male Drosophila has a ratio of one X chromosome to two sets of autosomes. In contrast, normal female Drosophila...
Lampbrush Chromosomes01:51

Lampbrush Chromosomes

In 1882, Flemming observed lampbrush chromosomes (LBC) in salamander eggs. Later in 1892, Rückert observed LBCs in shark egg cells and coined the term "lampbrush chromosomes" because they looked like brushes used to clean kerosene lamps.
LBCs are made up of two pairs of conjugating homologous chromatids. Each chromatid consists of alternatively positioned regions of condensed-inactive chromatin and loosely placed-active side loops, which can be contracted and extended. The loops resemble the...

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相关实验视频

Updated: Jul 12, 2026

Generation of Chimeric Axolotls with Mutant Haploid Limbs Through Embryonic Grafting
07:17

Generation of Chimeric Axolotls with Mutant Haploid Limbs Through Embryonic Grafting

Published on: January 29, 2020

在仿真青中体细胞的交配和分离.

E P Volpe, E M Earley

    Science (New York, N.Y.)
    |May 15, 1970
    PubMed
    概括

    二倍体和三倍体青细胞融合形成五倍体细胞,然后通过体性还原产生平倍体细胞. 这些新型细胞类型没有在循环血液中发现,这表明有选择性的劣势.

    科学领域:

    • 细胞生物学 细胞生物学
    • 遗传学 是一个遗传学.
    • 发展生物学 发展生物学

    背景情况:

    • 化学生物为研究细胞相互作用和遗传动力学提供了独特的模型.
    • 了解细胞融合和随后的遗传改变对于发育生物学至关重要.

    研究的目的:

    • 为了研究青嵌合体中的双倍体和三倍体细胞的命运.
    • 描述由细胞融合产生的五倍体和半倍体细胞的形成和活力.

    主要方法:

    • 一个二倍体三倍体青奇米拉的短期骨髓培养.
    • 细胞和性分析以识别不同的细胞类型.
    • 骨髓和循环血液细胞的比较分析.

    主要成果:

    • 在骨髓培养物中观察五分状细胞和平分状细胞.
    • 有证据表明二倍体和三倍体髓细胞融合形成五倍体细胞.
    • 五状细胞的体性减少导致了平状子细胞.
    • 在循环血液中缺少五倍体和半倍体细胞.

    结论:

    • 青骨髓嵌合体可以通过融合和体性还原产生新型的五合体和半合体细胞.

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    Published on: January 29, 2020

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  • 这些新形成的细胞类型似乎在体内具有选择性的劣势.
  • 这些发现提供了关于细胞可塑性和基因不稳定性的洞察力.