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関連する概念動画

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...
Meiosis I01:49

Meiosis I

Meiosis is a carefully orchestrated set of cell divisions, the goal of which—in humans—is to produce haploid sperm or eggs, each containing half the number of chromosomes present in somatic cells elsewhere in the body. Meiosis I is the first such division, and involves several key steps, among them: condensation of replicated chromosomes in diploid cells; the pairing of homologous chromosomes and their exchange of information; and finally, the separation of homologous chromosomes by a...
Meiosis I03:09

Meiosis I

Meiosis is the division of a diploid cell into haploid cells forming sperm and eggs in animals through differentiation. Meiosis I is the first stage of meiosis, where the genetic recombination of homologous chromosomes and the reduction of the ploidy level by half occurs.
Prophase I is the most extended and complex step of meiosis I characterized by synapsis, chromosome pairing, and recombination of the homologous chromosomes. This process is facilitated by a proteinaceous structure called the...
Meiosis I03:09

Meiosis I

Meiosis is the division of a diploid cell into haploid cells forming sperm and eggs in animals through differentiation. Meiosis I is the first stage of meiosis, where the genetic recombination of homologous chromosomes and the reduction of the ploidy level by half occurs.
Prophase I is the most extended and complex step of meiosis I characterized by synapsis, chromosome pairing, and recombination of the homologous chromosomes. This process is facilitated by a proteinaceous structure called the...
Gene Conversion02:08

Gene Conversion

Other than maintaining genome stability via DNA repair, homologous recombination plays an important role in diversifying the genome. In fact, the recombination of sequences forms the molecular basis of genomic evolution. Random and non-random permutations of genomic sequences create a library of new amalgamated sequences. These newly formed genomes can determine the fitness and survival of cells. In bacteria, homologous and non-homologous types of recombination lead to the evolution of new...

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関連する実験動画

Updated: May 21, 2026

Frequency and Distribution of Crossovers in Caenorhabditis elegans Meiosis by SNP Genotyping using Real-time PCR
06:18

Frequency and Distribution of Crossovers in Caenorhabditis elegans Meiosis by SNP Genotyping using Real-time PCR

Published on: July 11, 2025

FANCMはメオティック・クロスオーバーを制限する.

Wayne Crismani1, Chloé Girard, Nicole Froger

  • 1Institut National de la Recherche Agronomique (INRA), UMR1318, Institut Jean-Pierre Bourgin, Versailles, France.

Science (New York, N.Y.)
|June 23, 2012
PubMed
まとめ

科学者たちは,FANCMヘリケーゼを,アラビドプシス菌のメオティッククロスオーバー (COs) を制限する重要な要因として特定しました. ファンチミュータントはCOの3倍増加を示し,植物育種において潜在的可能性のあるCO調節のための新しい経路を明らかにしました.

さらに関連する動画

Preparation of Meiotic Chromosome Spreads from Mouse Oocytes for Assessment of Synapsis and Recombination
09:24

Preparation of Meiotic Chromosome Spreads from Mouse Oocytes for Assessment of Synapsis and Recombination

Published on: July 18, 2025

Examination of Mitotic and Meiotic Fission Yeast Nuclear Dynamics by Fluorescence Live-cell Microscopy
12:04

Examination of Mitotic and Meiotic Fission Yeast Nuclear Dynamics by Fluorescence Live-cell Microscopy

Published on: June 24, 2019

関連する実験動画

Last Updated: May 21, 2026

Frequency and Distribution of Crossovers in Caenorhabditis elegans Meiosis by SNP Genotyping using Real-time PCR
06:18

Frequency and Distribution of Crossovers in Caenorhabditis elegans Meiosis by SNP Genotyping using Real-time PCR

Published on: July 11, 2025

Preparation of Meiotic Chromosome Spreads from Mouse Oocytes for Assessment of Synapsis and Recombination
09:24

Preparation of Meiotic Chromosome Spreads from Mouse Oocytes for Assessment of Synapsis and Recombination

Published on: July 18, 2025

Examination of Mitotic and Meiotic Fission Yeast Nuclear Dynamics by Fluorescence Live-cell Microscopy
12:04

Examination of Mitotic and Meiotic Fission Yeast Nuclear Dynamics by Fluorescence Live-cell Microscopy

Published on: June 24, 2019

科学分野:

  • 植物遺伝学と分子生物学
  • ミエオシスとゲノムの安定性

背景:

  • メイオティッククロスオーバー (CO) 周波数は,豊富な分子前駆体にもかかわらず,厳格に規制されています.
  • COの数を制限する特定の要因は,ほとんど特定されていないままです.

研究 の 目的:

  • アラビドプシス・タリアナにおけるメオティッククロスオーバー形成を制限する重要な遺伝的要因を特定する.
  • 介質的なCO周波数を調節するFANCMヘリカーゼの役割を理解する.

主な方法:

  • アラビドプシス・タリアナの遺伝子スクリーンを実施し,変化した中性CO率を持つ変異体を特定しました.
  • 野生型およびファンチミュータント植物におけるCO周波数を分析した.

主要な成果:

  • 保存されたFANCMヘリカーゼをメオティックCOs.を制限する主要な要因として特定しました.
  • ファンチミュータントは,野生型と比較してCO頻度が3倍増加した.
  • 変異体におけるCOsの増加は,別の,通常は軽微な経路から生じた.

結論:

  • FANCMは,中間的なCOsに上限を課す重要な規制者である.
  • COsを制限するFANCMの機能は,植物育種戦略の操作の可能性を提供します.