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Genomics02:02

Genomics

Genomics is the science of genomes: it is the study of all the genetic material of an organism. In humans, the genome consists of information carried in 23 pairs of chromosomes in the nucleus, as well as mitochondrial DNA. In genomics, both coding and non-coding DNA is sequenced and analyzed. Genomics allows a better understanding of all living things, their evolution, and their diversity. It has a myriad of uses: for example, to build phylogenetic trees, to improve productivity and...
Genomic Imprinting and Inheritance02:30

Genomic Imprinting and Inheritance

Diploid organisms inherit genetic material through chromosomes from both parents. Copies of the same gene are known as alleles. In most cases, both alleles are simultaneously expressed and allow various cellular processes to function optimally. If one of the alleles is missing or mutated, the expression of the other allele can compensate; however, this is not true for all genes.
The expression of some genes depends on which parent passed the gene to the offspring, through a phenomenon known as...
DNA Microarrays02:34

DNA Microarrays

Microarrays are high-throughput and relatively inexpensive assays that can be automated to analyze large quantities of data at a time. They are used in genome-wide studies to compare gene or protein expression under two varied conditions, such as healthy and diseased states. Microarrays consist of glass or silica slides on which probe molecules are covalently attached through surface functionalization. Most commonly, the slides are prepared through the chemisorption of silanes to silica...
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...
Genome-wide Association Studies-GWAS01:11

Genome-wide Association Studies-GWAS

Genome-wide association studies or GWAS are used to identify whether common SNPs are associated with certain diseases. Suppose specific SNPs are more frequently observed in individuals with a particular disease than those without the disease. In that case, those SNPs are said to be associated with the disease. Chi-square analysis is performed to check the probability of the allele likely to be associated with the disease.
GWAS does not require the identification of the target gene involved in...
Pharmacogenomics: Identification of New Drug Targets01:29

Pharmacogenomics: Identification of New Drug Targets

Advances in genomics have profoundly influenced drug discovery by increasing both the speed and accuracy of pharmaceutical development. Pharmacogenomics, which examines how genetic variation influences drug response, facilitates the identification of novel therapeutic targets and enables patient stratification for personalized treatment. These strategies contribute to improved drug efficacy, minimized adverse effects, and more efficient clinical trial design.Mapping genetic differences...

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関連する実験動画

Updated: Jul 22, 2026

Array Comparative Genomic Hybridization (Array CGH) for Detection of Genomic Copy Number Variants
09:16

Array Comparative Genomic Hybridization (Array CGH) for Detection of Genomic Copy Number Variants

Published on: February 21, 2015

ゲノミクス. ゲノミクス. マイクロアレイ - アソシエーションによる罪悪感

John Quackenbush1

  • 1The Institute for Genomic Research, 9712 Medical Center Drive, Rockville, MD 20850, USA. johnq@tigr.org

Science (New York, N.Y.)
|October 11, 2003
PubMed
まとめ

DNAマイクロアレイ分析は遺伝子発現パターンを明らかにしますが,遺伝子ネットワークを特定するのに苦労します. 新しい研究は,機能的に関連した遺伝子群を特定するために,種間の進化的保存を活用しています.

科学分野:

  • ゲノミクスゲノミクスとは
  • バイオインフォマティックス
  • 進化生物学の進化生物学について

背景:

  • DNAマイクロアレイ技術は,広範な遺伝子発現データを提供しています.
  • 相互作用する遺伝子産物のネットワークを特定することは,依然として課題です.
  • 以前の方法は,ネットワーク分析のための遺伝子発現データの可能性を完全に認識できませんでした.

研究 の 目的:

  • 機能的に関連した遺伝子群を特定するための新しい方法を探求する.
  • 生物学的発見のための遺伝子発現パターンの進化的保存を活用する.
  • 遺伝子産物相互作用の理解を深めること.

主な方法:

  • イースト,ワーム,フルーツフライ,人間を含む複数の種における遺伝子発現パターンの分析.
  • 進化的保存原理を遺伝子発現データに適用する.
  • 保存された機能的関係を識別するために計算的アプローチを使用する.

主要な成果:

  • この研究は,保存された発現パターンに基づいて,機能的に関連した遺伝子を識別する方法を実証しています.
  • 進化的保存は,遺伝子機能と相互作用を推論するための堅固な枠組みを提供します.

さらに関連する動画

Candidate Gene Testing in Clinical Cohort Studies with Multiplexed Genotyping and Mass Spectrometry
05:53

Candidate Gene Testing in Clinical Cohort Studies with Multiplexed Genotyping and Mass Spectrometry

Published on: June 21, 2018

Large-Scale Multi-Omics Genome-Wide Association Studies (Mo-GWAS): Guidelines for Sample Preparation and Normalization
08:27

Large-Scale Multi-Omics Genome-Wide Association Studies (Mo-GWAS): Guidelines for Sample Preparation and Normalization

Published on: July 27, 2021

関連する実験動画

Last Updated: Jul 22, 2026

Array Comparative Genomic Hybridization (Array CGH) for Detection of Genomic Copy Number Variants
09:16

Array Comparative Genomic Hybridization (Array CGH) for Detection of Genomic Copy Number Variants

Published on: February 21, 2015

Candidate Gene Testing in Clinical Cohort Studies with Multiplexed Genotyping and Mass Spectrometry
05:53

Candidate Gene Testing in Clinical Cohort Studies with Multiplexed Genotyping and Mass Spectrometry

Published on: June 21, 2018

Large-Scale Multi-Omics Genome-Wide Association Studies (Mo-GWAS): Guidelines for Sample Preparation and Normalization
08:27

Large-Scale Multi-Omics Genome-Wide Association Studies (Mo-GWAS): Guidelines for Sample Preparation and Normalization

Published on: July 27, 2021

  • このアプローチは,複雑な生物学的ネットワークを解剖するための新しい道を提供します.
  • 結論:

    • 種間の保存された遺伝子発現パターンは,機能的な関連性の強力な指標です.
    • この方法論は,大規模な発現データから遺伝子ネットワークを識別する能力を高めます.
    • この発見は,遺伝子機能と進化の関係に関するより深い理解に貢献します.