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Frequency-dependent Selection01:21

Frequency-dependent Selection

When the fitness of a trait is influenced by how common it is (i.e., its frequency) relative to different traits within a population, this is referred to as frequency-dependent selection. Frequency-dependent selection may occur between species or within a single species. This type of selection can either be positive—with more common phenotypes having higher fitness—or negative, with rarer phenotypes conferring increased fitness.Positive Frequency-Dependent SelectionIn positive...
Understanding Species and Reproductive Barriers01:17

Understanding Species and Reproductive Barriers

A species is a group of organisms that interbreed and produce fertile offspring. Typically, individuals of the same species appear similar and share common characteristics due to their highly similar genomes. However, not all organisms that look alike are members of the same species. Various mechanisms keep most species discrete. While some mechanisms prevent reproductive behavior and fertilization (pre-zygotic isolation), others prevent the production of fertile offspring after mating has...
Asexual Reproduction02:38

Asexual Reproduction

Asexual reproduction allows plants to reproduce without growing flowers, attracting pollinators, or dispersing seeds. Offspring are genetically identical to the parent and produced without the fusion of male and female gametes.
Monohybrid Crosses01:20

Monohybrid Crosses

Overview
Formation of Species01:31

Formation of Species

Speciation describes the formation of one or more new species from one or sometimes multiple original species. The resulting species are discrete from the parent species, and barriers to reproduction will typically exist. There are two primary mechanisms, speciation with and without geographic isolation—allopatric and sympatric speciation, respectively.Allopatric SpeciationIn allopatric speciation, gene flow between two populations of the same species is prevented by a geographic barrier, like...
Chromosomal Theory of Inheritance01:39

Chromosomal Theory of Inheritance

In 1866, Gregor Mendel published the results of his pea plant breeding experiments, providing evidence for predictable patterns in the inheritance of physical characteristics. The significance of his findings was not immediately recognized. In fact, the existence of genes was unknown at the time. Mendel referred to hereditary units as “factors.”

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関連する実験動画

Updated: Jul 12, 2026

Determination of Self- and Inter-(in)compatibility Relationships in Apricot Combining Hand-Pollination, Microscopy and Genetic Analyses
08:08

Determination of Self- and Inter-(in)compatibility Relationships in Apricot Combining Hand-Pollination, Microscopy and Genetic Analyses

Published on: June 16, 2020

ゲメトフィティの自己不適合性は再検討されました.

D L Mulcahy, G B Mulcahy

    Science (New York, N.Y.)
    |June 17, 1983
    PubMed
    まとめ

    咲く植物の自己相容れないという伝統的見解は,あまりにも単純すぎるかもしれない. 新しい証拠は,いくつかの遺伝子ではなく,多くの遺伝子が花粉様式の相互作用を制御し,植物繁殖に関する私たちの理解を潜在的に変えることを示唆しています.

    科学分野:

    • 植物の生殖生物学 植物の生殖生物学
    • 遺伝学 遺伝学とは
    • 分子生物学は分子生物学である.

    背景:

    • アンジオスペルマのゲメトフィーティック・セルフ・インコンパティビリティ (Gametophytic self-incompatibility, GSI) は,伝統的に,花粉管の成長を阻害するいくつかのマルチアレルロシによって説明されている.
    • 最近の実験的発見は,このモデルに異議を唱え,多くのロキュールが関与するより複雑な遺伝的基礎を示唆しています.

    研究 の 目的:

    • ゲメトファイティスの自己不互換性についての代替仮説を提案する.
    • 複数のロシを示す最近のデータを新しい理論的枠組みに統合する.
    • 植物繁殖における広範囲の花粉様相互作用の役割を調査する.

    主な方法:

    • 自己不互換性に関する既存の実験データのレビューと合成.
    • 複数の場所と互補的な相互作用を組み込む理論モデルの開発.
    • 従来の仮説と代替仮説の比較分析.

    主要な成果:

    • ロキが少ない従来の仮説は,現在の実験的観測を完全に説明できない.
    • 数多くの場所と複雑な花粉型の相互作用を含む別のモデルは,データによりよく適合します.
    • この代替モデルでは,ゲメトファイティスの自己不互換性は,おそらく単一のS遺伝子がなくとも,より広範な花粉型の相互作用の側面である可能性を示唆しています.

    さらに関連する動画

    Determination of Self-(In)compatibility and Inter-(In)compatibility Relationships in Citrus Using Manual Pollination, Microscopy, and S-Genotype Analyses
    07:12

    Determination of Self-(In)compatibility and Inter-(In)compatibility Relationships in Citrus Using Manual Pollination, Microscopy, and S-Genotype Analyses

    Published on: June 30, 2023

    Determination of the Mating Efficiency of Haploids in Saccharomyces cerevisiae
    05:39

    Determination of the Mating Efficiency of Haploids in Saccharomyces cerevisiae

    Published on: December 2, 2022

    関連する実験動画

    Last Updated: Jul 12, 2026

    Determination of Self- and Inter-(in)compatibility Relationships in Apricot Combining Hand-Pollination, Microscopy and Genetic Analyses
    08:08

    Determination of Self- and Inter-(in)compatibility Relationships in Apricot Combining Hand-Pollination, Microscopy and Genetic Analyses

    Published on: June 16, 2020

    Determination of Self-(In)compatibility and Inter-(In)compatibility Relationships in Citrus Using Manual Pollination, Microscopy, and S-Genotype Analyses
    07:12

    Determination of Self-(In)compatibility and Inter-(In)compatibility Relationships in Citrus Using Manual Pollination, Microscopy, and S-Genotype Analyses

    Published on: June 30, 2023

    Determination of the Mating Efficiency of Haploids in Saccharomyces cerevisiae
    05:39

    Determination of the Mating Efficiency of Haploids in Saccharomyces cerevisiae

    Published on: December 2, 2022

    結論:

    • ゲメトファイティスの自己不互換性の確立されたモデルは,見直しが必要である.
    • マルチロカス,相互作用ベースのモデルは,アニオスペルムの自己相容れないメカニズムについてより包括的な説明を提供します.
    • 植物繁殖を制御する花粉様相互作用の複雑なネットワークを明らかにするために,さらなる研究が必要である.