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関連する概念動画

Genomic DNA in Prokaryotes00:46

Genomic DNA in Prokaryotes

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The genome of most prokaryotic organisms consists of double-stranded DNA organized into one circular chromosome in a region of cytoplasm called the nucleoid. The chromosome is tightly wound, or supercoiled, for efficient storage. Prokaryotes also contain other circular pieces of DNA called plasmids. These plasmids are smaller than the chromosome and often carry genes that confer adaptive functions, such as antibiotic resistance.
Genomic Diversity in Bacteria
Although bacterial genomes are much...
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Modern Molecular Taxonomy01:29

Modern Molecular Taxonomy

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Advancements in molecular biology have revolutionized the identification and characterization of bacteria, with multiple methods leveraging DNA sequencing for enhanced precision. As sequencing technologies improve and costs decline, these approaches are increasingly used in clinical, environmental, and evolutionary studies.Multilocus Sequence Typing (MLST) examines several housekeeping genes, essential chromosomal genes encoding cellular functions, to distinguish strains. Approximately...
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Bacterial Phylum Tenericutes01:24

Bacterial Phylum Tenericutes

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The phylum Tenericutes, which includes the single class Mollicutes, comprises bacteria that lack cell walls. The term "Mollicutes" derives from the Latin word mollis, meaning "soft." These organisms are among the smallest known and are commonly referred to as mycoplasmas due to the prominence of the genus Mycoplasma, which includes well-known human pathogens. Despite their inability to stain gram-positively (a result of their lack of cell walls), mycoplasmas are phylogenetically related to the...
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Evolution of Microbial Genome01:08

Evolution of Microbial Genome

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Microbial genome evolution is a highly dynamic process shaped by continual gene gain and loss across species and strains. This genomic flexibility allows microorganisms to adapt rapidly to environmental pressures and interactions with other organisms. Central to understanding this diversity is the distinction between the core and pan genomes.The core genome comprises the genes shared by all sampled strains of a species, representing essential functions needed for fundamental cellular processes.
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Microbial Interactions: Parasitism01:22

Microbial Interactions: Parasitism

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Parasitism is a form of microbial interaction in which parasitic microbes exploit a host organism for nutrients and shelter, often at the host's expense. Unlike mutualistic relationships, where both organisms benefit, parasitism benefits only the parasite and harms the host.Classification of ParasitesMicrobial parasites are broadly classified based on their location relative to the host.Ectoparasites remain on the host’s surface, such as the skin or outer tissues, drawing nutrients...
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Deep Sea Microbial Ecology01:18

Deep Sea Microbial Ecology

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The deep ocean and its underlying sediments represent vast, largely unexplored microbial habitats that extend far beyond the sunlit photic zone. The photic (euphotic) zone typically spans the upper ~100–200 meters of pelagic waters in the open ocean, but its depth varies geographically and seasonally, where sufficient light supports photosynthetic life. Below this lies the deep sea, spanning roughly 1000–6000 meters (bathypelagic to abyssal zones), with deeper hadal trenches...
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Genome-wide Gene Deletions in Streptococcus sanguinis by High Throughput PCR
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Genome-wide Gene Deletions in Streptococcus sanguinis by High Throughput PCR

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微生物のミニマリズム:細菌の病原体のゲノム縮小

Nancy A Moran1

  • 1Department of Ecology and Evolutionary Biology, University of Arizona, Tucson, AZ 85721, USA. nmoran@u.arizona.edu

Cell
|March 15, 2002
PubMed
まとめ

バクテリアの病原体や共生体は,宿主生物に適応する際に遺伝子やDNAを大幅に失います. 彼らの完全なゲノムを研究することで,この極端なゲノム縮小が彼らの進化と代謝をどのように形作っているかが明らかになる.

科学分野:

  • 微生物学 微生物学とは
  • 進化生物学の進化生物学について
  • ゲノミクスゲノミクスとは

背景:

  • 宿主に関連したライフスタイルに移行する細菌の系統は,重要なゲノム減少を経験します.
  • このプロセスは,遺伝子とDNAの喪失を伴うので,その生物学的機能が変化します.
  • 強制性病原体と共生体は,ゲノム縮小の極端なケースを表しています.

研究 の 目的:

  • 縮小型ゲノムを持つバクテリアの進化軌道を理解する.
  • 極端なゲノム縮小が代謝能力に与える影響を調査する.
  • ホスト関連細菌の完全なゲノム配列を分析する.

主な方法:

  • バクテリアの系統の比較ゲノミクス.
  • 完全なゲノム配列の分析.
  • 進化史を推論するための系統遺伝分析.

主要な成果:

  • 強制性細菌の病原体および共生体における大規模な遺伝子喪失の識別.
  • ゲノム還元と変化した代謝経路の間の相関.
  • ゲノム合理化を推進する進化的圧力に関する洞察.

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Updated Protocol for the Assembly and Use of the Minibioreactor Array (MBRA)
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Updated Protocol for the Assembly and Use of the Minibioreactor Array (MBRA)

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Establishing the Minimal Bactericidal Concentration of an Antimicrobial Agent for Planktonic Cells MBC-P and Biofilm Cells MBC-B
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Updated Protocol for the Assembly and Use of the Minibioreactor Array (MBRA)
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結論:

  • 極端なゲノム減少は,宿主への細菌の適応の重要な特徴である.
  • ゲノム還元を理解することは,病原体と共生体の進化を理解するために不可欠です.
  • 完全なゲノムシーケンシングは,これらの進化過程を研究するための強力なツールを提供します.