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Genetic Lingo01:11

Genetic Lingo

Overview
Trihybrid Crosses02:27

Trihybrid Crosses

Trihybrid Crosses
Some of Mendel’s crosses examined three pairs of contrasting characteristics. Such a cross is called a trihybrid cross. A trihybrid cross is a combination of three individual monohybrid crosses. For example, plant height (tall vs. short), seed shape (round vs. wrinkled), and seed color (yellow vs. green).
The F1 generation plants of a trihybrid cross are heterozygous for all three traits and produce eight gametes. Upon self-fertilization, these gametes have an equal chance to...
Incomplete Dominance01:43

Incomplete Dominance

Gregor Mendel's work (1822 - 1884) was primarily focused on pea plants. Through his initial experiments, he determined that every gene in a diploid cell has two variants called alleles inherited from each parent. He suggested that amongst these two alleles, one allele is dominant in character and the other recessive. The combination of alleles determines the phenotype of a gene in an organism.
Genetic Screens02:46

Genetic Screens

Genetic screens are tools used to identify genes and mutations responsible for phenotypes of interest. Genetic screens help identify individuals or a group of people at risk of developing  genetic diseases and help them with early intervention, targeted therapy, and reproductive options.
Forward genetic screens
Forward or “classical” genetic screens involve creating random mutations in an organism’s DNA using radiation, mutagens, or insertion of additional bases, which result in visible changes...
Epistasis Analysis01:09

Epistasis Analysis

Although Mendel chose seven unrelated traits in peas to study gene segregation, most traits involve multiple gene interactions that create a spectrum of phenotypes. When the interaction of various genes or alleles at different locations influences a phenotype, this is called epistasis. Epistasis often involves one gene masking or interfering with the expression of another (antagonistic epistasis). Epistasis often occurs when different genes are part of the same biochemical pathway. The...
Genetic Variation01:25

Genetic Variation

Genetic variation is the diversity in DNA sequences found among individuals of the same species. This diversity is crucial for a species' survival because it helps organisms adapt to environmental changes. Genetic variation begins with fertilization, where an egg and sperm cell merge. Each of these cells carries 23 chromosomes, up to 46 in the fertilized egg. Chromosomes are long DNA strands that contain genes, the basic units of heredity.
Genes exist in different versions called alleles, which...

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関連する実験動画

Updated: Jun 26, 2026

In Vivo Forward Genetic Screen to Identify Novel Neuroprotective Genes in Drosophila melanogaster
10:00

In Vivo Forward Genetic Screen to Identify Novel Neuroprotective Genes in Drosophila melanogaster

Published on: July 11, 2019

遺伝子型-フェノタイプマップをリバースエンジニアリングし,自然な遺伝的多様性を有する.

Matthew V Rockman1

  • 1Center for Genomics and Systems Biology, Department of Biology, New York University, 100 Washington Square East, New York, New York 10003, USA. mrockman@nyu.edu

Nature
|December 17, 2008
PubMed
まとめ

自然の遺伝的多様性は,ゲノタイプ-フェノタイプ関係のマッピングに役立ちます. 遺伝子の変化が特徴にどのように影響するかを分析することによって,研究者は因果関係を推論し,因果関係を構築することができます.

科学分野:

  • 遺伝学 遺伝学とは
  • システム生物学 システム生物学
  • バイオインフォマティックス

背景:

  • 集団内の自然な遺伝的多様性は,遺伝子型-フェノタイプ関係を理解するための重要なリソースです.
  • アレルは,生物学的システム内の混乱として作用し,再結合や分離などの遺伝的プロセスを通して特徴に影響を与えます.

研究 の 目的:

  • ゲノタイプとフェノタイプとの間の因果関係を推論するために,自然な遺伝的多様性を活用する.
  • 遺伝子型-現象型の景観をマッピングする確率的因果ネットワークのモデルを開発する.

主な方法:

  • 子孫におけるアレル分布をランダム化するために,遺伝子クロスを利用する.
  • 共通遺伝的混乱に対する特性の反応を分析して因果関係を推論する.
  • 観察されたゲノタイプ-フェノタイプ関連に基づいた確率的因果ネットワークを構築する.

主要な成果:

  • 遺伝的混乱に対する特性の反応を分析することで,因果関係を区別できることを示した.
  • 遺伝的多様性データから因果関係を推論するための枠組みを確立した.
  • ゲノタイプ-フェノタイプマップを表すモデルの構築を開始しました.

さらに関連する動画

Genetic Mapping of Thermotolerance Differences Between Species of Saccharomyces Yeast via Genome-Wide Reciprocal Hemizygosity Analysis
10:08

Genetic Mapping of Thermotolerance Differences Between Species of Saccharomyces Yeast via Genome-Wide Reciprocal Hemizygosity Analysis

Published on: August 12, 2019

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

関連する実験動画

Last Updated: Jun 26, 2026

In Vivo Forward Genetic Screen to Identify Novel Neuroprotective Genes in Drosophila melanogaster
10:00

In Vivo Forward Genetic Screen to Identify Novel Neuroprotective Genes in Drosophila melanogaster

Published on: July 11, 2019

Genetic Mapping of Thermotolerance Differences Between Species of Saccharomyces Yeast via Genome-Wide Reciprocal Hemizygosity Analysis
10:08

Genetic Mapping of Thermotolerance Differences Between Species of Saccharomyces Yeast via Genome-Wide Reciprocal Hemizygosity Analysis

Published on: August 12, 2019

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

結論:

  • 自然の遺伝的多様性は,複雑な遺伝子型-フェノタイプ関係を解剖するための強力なツールを提供します.
  • 確率的因果ネットワークは,ゲノタイプ-フェノタイプマップをモデル化するための有望なアプローチを提供します.
  • 因果関係を理解することは,遺伝情報から表型的な結果を予測するために重要である.