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相关概念视频

Inorganic Nitrogen Assimilation01:22

Inorganic Nitrogen Assimilation

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Nitrogen is an essential element in biological systems, forming a crucial component of proteins, nucleic acids, and other cellular constituents. Many bacteria and archaea acquire nitrogen in the form of nitrate (NO₃⁻) or ammonia (NH₃), which are then assimilated into biomolecules through specific enzymatic pathways.Assimilatory Nitrate ReductionWhen nitrate enters the cell, it undergoes a two-step reduction process known as assimilatory nitrate reduction. Initially, the enzyme...
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The Roles of Bacteria and Fungi in Plant Nutrition02:11

The Roles of Bacteria and Fungi in Plant Nutrition

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Plants have the impressive ability to create their own food through photosynthesis. However, plants often require assistance from organisms in the soil to acquire the nutrients they need to function correctly. Both bacteria and fungi have evolved symbiotic relationships with plants that help the species to thrive in a wide variety of environments.
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Overview of Nitrogen Metabolism01:20

Overview of Nitrogen Metabolism

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Nitrogen is a very important element for life because it is a major constituent of proteins and nucleic acids. It is a macronutrient, and in nature, it is recycled from organic compounds and stored in the form of  ammonia, ammonium ions, nitrate, nitrite, or  nitrogen gas by many metabolic processes. Many of these metabolic processes are carried out only by prokaryotes.
The largest pool of nitrogen available in the terrestrial ecosystem is gaseous nitrogen (N2) from the air, but this...
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Carbon-dioxide Fixation01:28

Carbon-dioxide Fixation

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Carbon dioxide fixation in prokaryotes enables the assimilation of inorganic carbon into organic molecules, supporting biosynthetic pathways, sustaining ecosystems, and contributing to the global carbon cycle. It also has industrial applications in carbon capture and bioproduct synthesis. Autotrophic organisms rely on this process to utilize CO₂ as a carbon source in diverse environments.The Calvin CycleThe Calvin cycle is the most widespread carbon fixation mechanism, primarily used by...
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Epiphytes, Parasites, and Carnivores02:40

Epiphytes, Parasites, and Carnivores

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Plants often form mutualistic relationships with soil-dwelling fungi or bacteria to enhance their roots’ nutrient uptake ability. Root-colonizing fungi (e.g., mycorrhizae) increase a plant’s root surface area, which promotes nutrient absorption. While root-colonizing, nitrogen-fixing bacteria (e.g., rhizobia) convert atmospheric nitrogen (N2) into ammonia (NH3), making nitrogen available to plants for various biological functions. For example, nitrogen is essential for the...
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The Nitrogen Cycle01:49

The Nitrogen Cycle

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Nitrogen atoms, present in all proteins and DNA, are recycled between abiotic and biotic components of the ecosystem. However, the primary form of nitrogen on Earth is nitrogen gas, which cannot be used by most animals and plants. Thus, nitrogen gas must first be converted into a usable form by nitrogen-fixing bacteria before it can be cycled through other living organisms. The use of nitrogen-containing fertilizers and animal waste products in human agriculture has greatly influenced the...
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相关实验视频

Updated: Mar 14, 2026

Workflow Based on the Combination of Isotopic Tracer Experiments to Investigate Microbial Metabolism of Multiple Nutrient Sources
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Published on: January 22, 2018

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为了理解共生性固化的多组学框架,走向一个多组学框架.

Yan Shi1, Huiru Liu1, Alisdair R Fernie2

  • 1Yazhouwan National Laboratory, Sanya, Hainan 572025, China.

Trends in plant science
|March 12, 2026
PubMed
概括

科学家们正在通过研究植物中的共生固定来开发合成肥的生物替代品. 这项研究旨在设计非类作物,以提高的利用率和减少对肥料的依赖.

关键词:
这是一种actinorhizal的共生.比较的多种经济学.一个单细胞转录组的转录组.空间转录学 空间转录学同生固定的交生性固.

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Investigation of Plant Interactions Across Common Mycorrhizal Networks Using Rotated Cores
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Ecosystem Fabrication EcoFAB Protocols for The Construction of Laboratory Ecosystems Designed to Study Plant-microbe Interactions
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科学领域:

  • 植物生物学 植物生物学
  • 基因组学就是基因组学.
  • 微生物共生是微生物的共生.

背景情况:

  • 合成化肥对环境构成风险.
  • 生物固定仅限于特定的植物群体.
  • 非类作物缺乏自然的共生固能力.

研究的目的:

  • 探索基因组和转录基因组方法,用于在非类作物中进行固工程.
  • 了解共生固化的调节机制.
  • 开发一种人工智能引导的战略,用于在作物中部署固定.

主要方法:

  • 端粒对端粒基因组和泛基因组分析以确定结节变异.
  • 单细胞和空间转录组学用于在共生过程中绘制细胞状态图.
  • 表观基因组和3D基因组映射以了解监管控制.
  • 行为菌共生体的比较分析.
  • 人工智能集成多omics数据.

主要成果:

  • 基因组和转录组数据揭示了结节的关键变异和细胞状态.
  • 表观基因组图阐明了共生发展的调节原则.
  • 行为虫的共生研究为进化模型提供了信息.
  • 一个人工智能路线图优先考虑工程固化的遗传目标.

结论:

  • 先进的基因组和多基因组分析为在非类作物中工程固定提供了基础.
  • 由人工智能驱动的方法可以指导所需的精确基因修改.
  • 这项研究为可持续农业铺平了道路,减少了对合成肥料的依赖.