农业的共同进化
Ted R Schultz1, Jeffrey Sosa-Calvo1, Matthew P Kweskin1
1National Museum of Natural History, Smithsonian Institution, Washington, DC, USA.
概括
种植真菌的和它们的真菌伙伴起源于6600万年前, 可能是小行星撞击造成的. 由于息地变化, 化发生在2700万年前,
科学领域:
- 进化生物学
- 生态学
- 菌群学
背景情况:
- 培养真菌的 (Hymenoptera:Formicidae) 培养真菌以维持生计,这是非人类农业的一个关键例子.
- 种植真菌的和它们的真菌品种之间的进化历史和共同进化动态在很大程度上仍未解决.
- 了解这些关系对于解读这种复杂的互惠主义的起源和多样化至关重要.
研究的目的:
- 重建养和它们的菌种的已知进化树.
- 调查真菌相互关系的历史起源和主要进化转变.
- 澄清形成这种农业模式的共同进化过程.
主要方法:
- 设计了针对2000多个基因区域的分子探测器进行遗传学分析.
- 产生了475个真菌物种的日期进化树.
- 产生了276种的进化树.
- 整合了和真菌的基因组来推断共同进化的历史.
主要成果:
- 农业起源于大约6600万年前,与白纪末期的大规模灭绝事件相吻合.
- 一种真菌种类的化,导致了义务互惠,大约发生在2700万年前.
- 南美洲的季节性息地干燥可能是通过隔离真菌种群来驱动这种化.
结论:
- 这项研究阐明了农业的深层进化历史,追溯其起源到主要的地质和气候事件.
- 关键的转变,包括农业的起源和随后的化,被确定和日期.
- 这些发现为塑造非人类农业最复杂的例子之一的历史过程提供了关键的见解.
更多相关视频
08:28Mycorrhizal Maps as a Tool to Explore Colonization Patterns and Fungal Strategies in the Roots of Festuca rubra and Zea mays
Published on: August 26, 2022
2.5K
07:00Microbiota of Attine Ants' Gardens: Visualizing a Microbial Landscape by Scanning Electron Microscopy
Published on: October 4, 2024
1.3K
相关概念视频
The Roles of Bacteria and Fungi in Plant Nutrition
36.3K
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.
36.3K
Habitat Fragmentation
15.7K
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.
15.7K
Microorganisms in Agriculture and Food industry
2.0K
Microorganisms play a crucial role in agriculture and the food industry, contributing to soil fertility, crop protection, and food production. Their functions range from nitrogen fixation and biopesticide production to fermentation and food preservation, making them indispensable to sustainable farming and food safety.Role in AgricultureNitrogen-fixing bacteria, such as Rhizobium (symbiotic) and Azotobacter (free-living), convert atmospheric nitrogen into ammonia through biological nitrogen...
2.0K
Evolutionary Processes in Microbes
202
Microbial evolution occurs rapidly due to short generation times and a variety of genetic processes, including horizontal gene transfer, mutation, recombination, and genetic drift. These mechanisms collectively enable microbes to adapt swiftly to changing environments.Horizontal gene transfer (HGT) allows genes to move between different species and occurs through three main mechanisms: conjugation, transformation, and transduction. Conjugation involves direct cell-to-cell contact for DNA...
202
Evolution of New Traits in Microbes
199
Microorganisms evolve rapidly due to their large population sizes and short generation times, often exhibiting measurable changes within days under laboratory conditions. Natural selection acts on standing genetic variation, enabling the retention and amplification of beneficial traits that confer fitness advantages in changing environments.Adaptive Pigment Regulation in RhodobacterIn Rhodobacter, a genus of purple non-sulfur bacteria, light-harvesting pigments such as bacteriochlorophyll and...
199
Microbial Interactions: Cooperation
59
Microbial cooperation involves beneficial interactions in which different species work together for individual or mutual advantage. These interactions can profoundly influence ecological dynamics and evolutionary processes, and they are essential to many pathogenic and symbiotic relationships.Nematode–Bacteria CooperationA striking example is the relationship between the Gram-negative bacterium Xenorhabdus nematophila and the parasitic nematode Steinernema carpocapsae. Juvenile nematodes...
59
