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関連する概念動画

Threats to Biodiversity01:50

Threats to Biodiversity

There have been five major extinction events throughout geological history, resulting in the elimination of biodiversity, followed by a rebound of species that adapted to the new conditions. In the current geological epoch, the Holocene, there is a sixth extinction event in progress. This mass extinction has been attributed to human activities and is thus provisionally called the Anthropocene. In 2019 the human population reached 7.7 billion people and is projected to comprise 10 billion by...
What is Conservation Biology?01:57

What is Conservation Biology?

Conservation biology is a scientific field that focuses on the preservation of biodiversity in order to protect ecosystems while meeting the needs of the human population. Humans require properly functioning ecosystems to maintain our supply of natural resources, including food, medicines, and building materials.
Conservation of Small Populations02:04

Conservation of Small Populations

Small population sizes put a species at extreme risk of extinction due to a lack of variation, and a consequent decrease in adaptability. This weakens the chances of survival under pressures such as climate change, competition from other species, or new diseases. Large populations are more likely to survive pressures such as these, as such populations are more likely to harbor individuals that have genetic variants that are adaptive under new stresses. Small populations are much less likely to...
Conservation of Declining Populations02:07

Conservation of Declining Populations

Conservation of declining population focuses on ways of detecting, diagnosing, and halting a population decline. The approach uses methods to prevent populations from going extinct.
Habitat Fragmentation02:31

Habitat Fragmentation

Habitat fragmentation describes the division of a more extensive, continuous habitat into smaller, discontinuous areas. Human activities such as land conversion, as well as slower geological processes leading to changes in the physical environment, are the two leading causes of habitat fragmentation. The fragmentation process typically follows the same steps: perforation, dissection, fragmentation, shrinkage, and attrition.
The Fossil Record02:56

The Fossil Record

The fossil record documents only a small fraction of all organisms that have ever inhabited Earth. Fossilization is a rare process, and most organisms never become fossils. Moreover, the fossil record only exhibits fossils that have been discovered. Nevertheless, sedimentary rock fossils of long-lived, abundant, hard-bodied organisms dominate the fossil record. These fossils offer valuable information, such as an organism's physical form, behavior, and age. Studying the fossil record helps...

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関連する実験動画

Updated: Jun 25, 2026

Rabies Necropsy Techniques in Large and Small Animals
06:56

Rabies Necropsy Techniques in Large and Small Animals

Published on: July 30, 2019

ミシシッピ中世のブラストイドの絶滅はミシシッピ中世のブラストイドの絶滅である.

W I Ausich, D L Meyer, J A Waters

    Science (New York, N.Y.)
    |May 6, 1988
    PubMed
    まとめ

    ミシシッピ中期の絶滅は,ブラスタイド (Phylum Echinodermata) が,浅い水域から地球規模で消滅した原因となった. しかし,ブラストオイドは後にこれらの生息地を再植民地化し,海洋ベンソスの間でユニークな回復傾向を示しました.

    科学分野:

    • パレオントロジー・パレオントロジー
    • マリン・バイオロジー マリン・バイオロジー
    • エキノダーム研究 エキノダーム研究

    背景:

    • ミシシッピ中部のブラストイドの絶滅は,約3億4000万年前に起こった.
    • この絶滅は急速で,生息地特異的であり,主に浅水環境に影響を与えたと特徴付けられました.
    • オンショア・オフショア生息地のシフトは,海上ベンシックコミュニティの既知の歴史的パターンです.

    研究 の 目的:

    • 中部ミシシッピの絶滅がブラストオイド群に及ぼす影響を調査する.
    • この絶滅の生息地特有の性質とグローバルな同期性を分析する.
    • ブラストオイドの回復パターンを他の海洋 Benthic グループと比較するために.

    主な方法:

    • 化石の分布に焦点を当てた古生物学的データ分析.
    • 浅瀬と深海の海域におけるブラストイドの豊富性と多様性の戦略学的な評価.
    • 異なる海洋分類における絶滅と回復の傾向の比較分析.

    主要な成果:

    • ブラストオイドは,絶滅のイベントの後,世界中の浅水生息地で希少になったか,欠席した.
    • この生息地の移転は,地球規模の海洋生態系全体で同期していた可能性が高い.

    さらに関連する動画

    Quantifying Corticolous Arthropods Using Sticky Traps
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    Quantifying Corticolous Arthropods Using Sticky Traps

    Published on: January 19, 2020

    Application of I TASSER, trRosetta, UCSF Chimera, HADDOCK server, and HEX loria for De Novo and In Silico Design of Proteins
    05:08

    Application of I TASSER, trRosetta, UCSF Chimera, HADDOCK server, and HEX loria for De Novo and In Silico Design of Proteins

    Published on: July 8, 2025

    関連する実験動画

    Last Updated: Jun 25, 2026

    Rabies Necropsy Techniques in Large and Small Animals
    06:56

    Rabies Necropsy Techniques in Large and Small Animals

    Published on: July 30, 2019

    Quantifying Corticolous Arthropods Using Sticky Traps
    05:28

    Quantifying Corticolous Arthropods Using Sticky Traps

    Published on: January 19, 2020

    Application of I TASSER, trRosetta, UCSF Chimera, HADDOCK server, and HEX loria for De Novo and In Silico Design of Proteins
    05:08

    Application of I TASSER, trRosetta, UCSF Chimera, HADDOCK server, and HEX loria for De Novo and In Silico Design of Proteins

    Published on: July 8, 2025

  • 絶滅後,ブラストオイドは,低多様性と豊富さの期間を経て,浅水環境を再生するユニークな能力を示しました.
  • 結論:

    • ミシシッピ中期の絶滅は,ブラストイドの分布を大幅に変化させ,浅い海の生息地から一時的な損失をもたらしました.
    • ブラストオイドは異常な回復パターンを示し,他の多くの影響を受けた海洋集団とは異なり,浅瀬のニッチに戻ることに成功した.
    • この研究は,絶滅の出来事と,その後の生態学的回復に対する海洋生物の複雑で多様な反応を強調しています.