JoVE Logo

サインイン

16.18 : 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 expression of a gene might depend on a gene product in the same biochemical pathway.

Epistatic analysis

The study of epistatic interactions allows researchers to determine the functional relationship between genes, the ordering of genes in a pathway, and how different alleles quantitatively impact phenotypes. Consider a biochemical reaction catalyzed by multiple proteins coded by different genes. The genes involved in such biochemical reactions can mask or inhibit other genes involved in the same biochemical pathway, a phenomenon called epistasis. Such genes are said to be in one epistasis group. By analyzing the epistatic relationship between different genes, scientists can construct an order-of-function map that shows the sequence of events and genes involved in a pathway. This process is called epistatic analysis. The alleles selected for the epistatic analysis must have distinct phenotypes.

As such, since the concept of epistasis was introduced, it has become increasingly clear that most biological systems involve many genetic elements that interact with one another in multiple and complex ways.

タグ

EpistasisGene InteractionsPhenotypesAntagonistic EpistasisBiochemical PathwayEpistatic AnalysisOrder of function MapGenetic Elements

章から 16:

article

Now Playing

16.18 : Epistasis Analysis

遺伝子の発現と機能の解析

4.9K 閲覧数

article

16.1 : In vitro変異誘発

遺伝子の発現と機能の解析

4.1K 閲覧数

article

16.2 : 遺伝子スクリーニング

遺伝子の発現と機能の解析

4.8K 閲覧数

article

16.3 : テストクロス

遺伝子の発現と機能の解析

1.7K 閲覧数

article

16.4 : 補完テスト

遺伝子の発現と機能の解析

4.8K 閲覧数

article

16.5 : 一塩基多型-SNP

遺伝子の発現と機能の解析

13.8K 閲覧数

article

16.6 : 細菌の形質転換

遺伝子の発現と機能の解析

11.7K 閲覧数

article

16.7 : トランスジェニック生物

遺伝子の発現と機能の解析

3.9K 閲覧数

article

16.8 : 生殖クローニング

遺伝子の発現と機能の解析

2.3K 閲覧数

article

16.9 : CRISPRの

遺伝子の発現と機能の解析

15.2K 閲覧数

article

16.10 : 実験的なRNAi

遺伝子の発現と機能の解析

6.0K 閲覧数

article

16.11 : レポーター遺伝子

遺伝子の発現と機能の解析

11.1K 閲覧数

article

16.12 : In-situハイブリダイゼーション

遺伝子の発現と機能の解析

9.1K 閲覧数

article

16.13 : クロマチン免疫沈降法(ChIP)

遺伝子の発現と機能の解析

11.0K 閲覧数

article

16.14 : 合成生物学

遺伝子の発現と機能の解析

4.7K 閲覧数

See More

JoVE Logo

個人情報保護方針

利用規約

一般データ保護規則

研究

教育

JoVEについて

Copyright © 2023 MyJoVE Corporation. All rights reserved