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相关概念视频

Transgenic Organisms00:53

Transgenic Organisms

Overview
Phylogenetic Trees03:21

Phylogenetic Trees

Phylogenetic trees come in many forms. It matters in which sequence the organisms are arranged from the bottom to the top of the tree, but the branches can rotate at their nodes without altering the information. The lines connecting individual nodes can be straight, angled, or even curved.The length of the branches can depict time or the relative amount of change among organisms. For instance, the branch length might indicate the number of amino acid changes in the sequence that underlies the...
Plant Tissue Culture02:57

Plant Tissue Culture

Plant tissue culture is widely used in both primary and applied science. Applications range from plant development studies to functional gene studies, crop improvement, commercial micropropagation, virus elimination, and conservation of rare species.
Plant Breeding and Biotechnology01:59

Plant Breeding and Biotechnology

Crop cultivation has a long history in human civilization, with records showing the cultivation of cereal plants beginning at around 8000 BC. This early plant breeding was developed primarily to provide a steady supply of food.
Evolutionary Relationships through Genome Comparisons02:54

Evolutionary Relationships through Genome Comparisons

Genome comparison is one of the excellent ways to interpret the evolutionary relationships between organisms. The basic principle of genome comparison is that if two species share a common feature, it is likely encoded by the DNA sequence conserved between both species. The advent of genome sequencing technologies in the late 20th century enabled scientists to understand the concept of conservation of domains between species and helped them to deduce evolutionary relationships across diverse...
Transgenic Plants02:50

Transgenic Plants

Recombinant DNA technology called transgenesis is often used to add a foreign gene or remove a detrimental gene from an organism. Such genetically modified organisms are called transgenic organisms.
The first-ever transgenic plant was a tobacco plant developed in 1983 that showed resistance against the tobacco mosaic virus. Since then, many transgenic plants have been developed and commercialized for improving the agricultural, ornamental, and horticultural value of a crop plant. Transgenic...

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Ciliary transition zone evolution and the root of the eukaryote tree: implications for opisthokont origin and classification of kingdoms Protozoa, Plantae, and Fungi.

Protoplasma·2021
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Multidomain ribosomal protein trees and the planctobacterial origin of neomura (eukaryotes, archaebacteria).

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Multigene phylogeny and cell evolution of chromist infrakingdom Rhizaria: contrasting cell organisation of sister phyla Cercozoa and Retaria.

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Vendozoa and selective forces on animal origin and early diversification: reply to Dufour and McIlroy (2017).

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相关实验视频

Updated: Jul 10, 2026

Fluorescence-microscopy Screening and Next-generation Sequencing: Useful Tools for the Identification of Genes Involved in Organelle Integrity
12:42

Fluorescence-microscopy Screening and Next-generation Sequencing: Useful Tools for the Identification of Genes Involved in Organelle Integrity

Published on: April 13, 2012

通过使用衍生基因融合技术来植根真核生物树.

Alexandra Stechmann1, Thomas Cavalier-Smith

  • 1Department of Zoology, University of Oxford, South Parks Road, Oxford, OX1 3PS, UK. alexandra.stechmann@zoo.ox.ac.uk

Science (New York, N.Y.)
|July 6, 2002
PubMed
概括

由于单基因分析中的偏见,真核生物树的根一直是难以捉摸的. 这项研究使用结构遗传数据揭示了两小组 (双胞胎) 的衍生,将根置于双胞胎和opisthokonts之间.

科学领域:

  • 进化生物学是进化的生物学.
  • 人类遗传学 是一个学科.
  • 基因组学就是基因组学.

背景情况:

  • 从历史上看,单基因遗传树一直未能解决真核生物树的根.
  • 序列进化中的系统偏见使准确的基因结构重建变得复杂.

研究的目的:

  • 用结构遗传数据识别真核生物树的根.
  • 通过分析主要原生群体的基因融合事件来研究深层次的遗传学关系.

主要方法:

  • 搜索了主要的原生群体,以确定特定基因融合的存在或不存在.
  • 利用结构遗传数据作为基于序列的进化分析更可靠的替代方案.

主要成果:

  • 证明了所有具有两个毛细胞 (双眼细胞) 的真核生物群都是进化衍生出来的.
  • 已建立的真核树的根位于比孔和奥皮斯托孔 (动物,真菌,Choanozoa) 之间.
  • 暗示Amoebozoa早些时候分离或是比孔特/opisthokonts的姐妹.

结论:

  • 结构遗传数据提供了一种强大的方法来解决深层真核生物的基因组.
  • 基于这些发现,对真核生物关系的传统观点需要修订.

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Using Phylogenetic Analysis to Investigate Eukaryotic Gene Origin
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Using Phylogenetic Analysis to Investigate Eukaryotic Gene Origin

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Transforming, Genome Editing and Phenotyping the Nitrogen-fixing Tropical Cannabaceae Tree Parasponia andersonii
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Transforming, Genome Editing and Phenotyping the Nitrogen-fixing Tropical Cannabaceae Tree Parasponia andersonii

Published on: August 18, 2019

相关实验视频

Last Updated: Jul 10, 2026

Fluorescence-microscopy Screening and Next-generation Sequencing: Useful Tools for the Identification of Genes Involved in Organelle Integrity
12:42

Fluorescence-microscopy Screening and Next-generation Sequencing: Useful Tools for the Identification of Genes Involved in Organelle Integrity

Published on: April 13, 2012

Using Phylogenetic Analysis to Investigate Eukaryotic Gene Origin
08:57

Using Phylogenetic Analysis to Investigate Eukaryotic Gene Origin

Published on: August 14, 2018

Transforming, Genome Editing and Phenotyping the Nitrogen-fixing Tropical Cannabaceae Tree Parasponia andersonii
12:22

Transforming, Genome Editing and Phenotyping the Nitrogen-fixing Tropical Cannabaceae Tree Parasponia andersonii

Published on: August 18, 2019

  • 这项研究重新定义了真核生物的基底分支顺序.