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相关概念视频

Mechanism of Lamellipodia Formation01:31

Mechanism of Lamellipodia Formation

2.7K
Cells migrating in response to external stimuli form lamellipodia, which are thin membrane protrusions supported by a mesh of linked, branched, or unbranched actin filaments. These actin filaments interact with myosin motor proteins, creating the dynamic actomyosin complex within the cytoskeleton. Contractility, or the ability to generate contractile stress, is inherent to the actomyosin complex. It helps cells detect the stiffness of the surrounding ECM and exert contractile force for...
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Mechanism of Filopodia Formation01:39

Mechanism of Filopodia Formation

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Filopodia are thin, actin-rich cellular protrusions that play an important role in many fundamental cellular functions. They vary in their occurrence, length, and positioning in different cell types, suggesting their diverse roles.
Their main function is to guide migrating cells during normal tissue morphogenesis or cancer metastasis by recognizing and making initial contacts with the extracellular matrix. However, they can also act as stationary cell anchors or help to establish communication...
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Mechanism of Ciliary Motion01:05

Mechanism of Ciliary Motion

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The ciliary structures were first seen in 1647 by Antonie Leeuwenhoek while observing the protozoans. In lower organisms, these appendages are responsible for cell movement, while in higher organisms, these appendages help in the movement of the extracellular fluids within the body cavities.
The cilia are made up of microtubules in a 9+2 arrangement, with nine microtubule doublet ring bundles, surrounding a pair of central singlet microtubule bundles. The doublet microtubule bundles are...
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Speciation Rates01:07

Speciation Rates

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Overview
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Morphogenesis02:19

Morphogenesis

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Plant morphogenesis—the development of a plant’s form and structure—involves several overlapping developmental processes, including growth and cell differentiation. Precursor cells differentiate into specific cell types, which are organized into the tissues and organ systems that make up the functional plant.
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<b>Revision of the genus <i>Acampylotes</i> Yang, 1987 (Lepidoptera, Zygaenidae, Chalcosiinae) with descriptions of seven new species</b>.

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相关实验视频

Updated: Aug 24, 2025

In situ Protocol for Butterfly Pupal Wings Using Riboprobes
06:19

In situ Protocol for Butterfly Pupal Wings Using Riboprobes

Published on: May 28, 2007

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蝶的翅膀是如何形成的

Marianne Espeland1, Lars Podsiadlowski1

  • 1Leibniz Institute for the Analysis of Biodiversity Change, Museum Koenig, Bonn, Germany.

Science (New York, N.Y.)
|October 20, 2022
PubMed
概括

基因调节元素是蝶翅膀模式形成的关键. 了解这些元素有助于解释鸟翅膀设计的多样性.

科学领域:

  • 发育生物学
  • 遗传学
  • 进化生物学

背景情况:

  • 蝶的翅膀是复杂而多样化的.
  • 基因调节元素控制基因表达,对发育至关重要.

研究的目的:

  • 研究基因调节元素在蝶翅膀模式形成中的作用.
  • 了解这些元素的遗传变异如何促进表型多样性.

主要方法:

  • 对翅膀模式基因进行比较基因组学分析.
  • 用于测试调节元件活动的功能测试.
  • 生物信息学方法来识别保存和分离的元素.

主要成果:

  • 特定的基因调节元素被确定为建立独特的翅膀模式至关重要.
  • 这些元素的变化与颜色和形状的差异有关.
  • 进化分析显示了驱动模式进化的监管要素的快速分歧.

结论:

  • 基因调节元素是蝶翅膀模式进化的主要驱动因素.
  • 了解这些元素可以了解表型多样性的遗传基础.
  • 这项研究强调了非编码DNA在塑造复杂特征方面的重要性.

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