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Origin of Photosynthesis01:26

Origin of Photosynthesis

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Photosynthesis represents a fundamental biological process that transformed Earth's atmosphere and paved the way for complex life. Emerging roughly 3.4–3.8 billion years ago, the earliest photosynthetic organisms harnessed light energy to produce organic compounds. These anoxygenic phototrophs used electron donors like hydrogen sulfide (H₂S) or ferrous iron (Fe²⁺), rather than water, and did not release molecular oxygen (O₂) as a byproduct. Various groups, including...
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Introduction to Plant Diversity02:22

Introduction to Plant Diversity

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From Water to Land
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Non-vascular Seedless Plants02:26

Non-vascular Seedless Plants

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The diverse plant life on Earth—consisting of nearly 400,000 species—can be divided into three broad categories based on biological characteristics: nonvascular, seedless vascular, and seed plants.
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Adaptations that Reduce Water Loss01:57

Adaptations that Reduce Water Loss

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Though evaporation from plant leaves drives transpiration, it also results in loss of water. Because water is critical for photosynthetic reactions and other cellular processes, evolutionary pressures on plants in different environments have driven the acquisition of adaptations that reduce water loss.
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The Colonization of Land02:22

The Colonization of Land

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Changes in the environment of the early Earth drove the evolution of organisms. As prokaryotic organisms in the oceans began to photosynthesize, they produced oxygen. Eventually, oxygen saturated the oceans and entered the air, resulting in an increase in atmospheric oxygen concentration, known as the oxygen revolution approximately 2.3 billion years ago. Therefore, organisms that could use oxygen for cellular respiration had an advantage. More than 1.5 years ago, eukaryotic cells and...
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C4 Pathway and CAM01:27

C4 Pathway and CAM

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Most plants use the C3 pathway for carbon fixation. However, some plants, such as sugar cane, corn, and cacti that grow in hot conditions, use alternative pathways to fix carbon and conserve energy loss due to photorespiration. Photorespiration is the process that occurs when the oxygen concentration is high. Under such conditions, the rubisco enzyme in the Calvin cycle binds O2 instead of CO2, which halts photosynthesis and consumes energy.
C4 Pathway
The C4 pathway is used by plants such as...
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相关实验视频

Updated: Mar 29, 2026

Author Spotlight: Leaf Trait Analysis for Climate and Ecology Reconstruction in Modern and Ancient Plant Communities
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Author Spotlight: Leaf Trait Analysis for Climate and Ecology Reconstruction in Modern and Ancient Plant Communities

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陆地植物中叶形的演变与大气二氧化碳的减少有关,这与古老时代晚期的二氧化碳减少有关.

D J Beerling1, C P Osborne, W G Chaloner

  • 1Department of Animal and Plant Sciences, University of Sheffield, Sheffield S10 2TN, UK. d.j.beerling@sheffield.ac.uk

Nature
|March 27, 2001
PubMed
概括

由于大气中二氧化碳 (CO2) 含量低,植物中大而平坦的叶子的进化延迟了数百万年. 后代代纪植物的更高的口腔密度允许必要的透气,以防止过热.

科学领域:

  • 古植物学是古植物学.
  • 进化生物学 进化生物学
  • 生物物理学的生物物理.

背景情况:

  • 巨树叶,以分支静脉和平坦结构为特征,在大约3.6亿年前的纪晚期广泛传播.
  • 这是在西鲁纪晚期/德纪早期,简单无叶的血管植物最初殖民陆地之后发生的.
  • 巨型植物出现的进化延迟仍然无法解释.

研究的目的:

  • 为了研究大气二氧化碳水平和巨型植物叶的缓慢出现之间的因果关系.
  • 了解早期陆地植物关于叶子演变的生物物理约束.

主要方法:

  • 化石叶子特征的定量分析.
  • 在不同的大气条件下对植物生理学的生物物理建模.
  • 模拟比较无叶茎与早期平坦叶的模拟.

主要成果:

  • 在古老时代晚期,二氧化碳 (pCO2) 的大气部分压力显著下降 (90%的下降) 被确定为一个关键因素.
  • 模拟表明,具有低口腔密度的早期平板叶会经历致命的过热,这是由于太阳的高度拦截和低透气.
  • 与早期的模拟相比,晚代纪和石灰岩时期的平原叶表现出明显更高的口腔密度.

结论:

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  • 平板叶的进化取决于足够的口腔密度,以实现适当的透气.
  • 增加的口腔密度允许更高的透气率,这对于在面对太阳辐射时保持可行的叶子温度至关重要.
  • 观察到的早期巨虫口腔密度的增加与大气pCO2减少所驱动的生物物理必要性一致.