从细菌捕食者到合作伙伴:农业中的菌体
Zahra Salehimoghaddam1, Alexander P Hynes2,3, Rebecca T Doyle1
1Department of Biology, McMaster University, Hamilton, ON, L8S 4L8, Canada.
The New phytologist
|January 31, 2026
概括
菌体 (感染细菌的病毒) 是植物微生物组和可持续农业的关键. 它们调节细菌种群,促进营养循环,抑制病原体,提供革命性的农业应用.
科学领域:
- 微生物学 微生物学
- 植物科学 植物科学
- 农业科学 农业科学
背景情况:
- 菌体对于植物微生物组的组成和功能至关重要.
- 它们对植物健康和可持续农业的影响往往被忽视.
- 菌体可以充当细菌捕食者,但也可以增强细菌的生存.
研究的目的:
- 突出菌体在土壤微生物组中的多方面的作用.
- 探索可持续农业的基于菌体的有希望的应用.
- 强调菌体在革命性农业实践中的潜力.
主要方法:
- 关于植物相关微生物组中菌体功能的当前研究的综述.
- 对菌体对细菌群和植物健康的影响的分析.
- 探索农业新兴的菌体技术.
主要成果:
- 菌体极大地影响了土壤微生物组的组成和功能.
- 它们调节细菌种群,增强营养循环,并改善植物的抗压能力.
- 菌体有效地抑制土壤传播的病原体.
结论:
- 菌体在植物健康和农业可持续性方面发挥着多样化和关键的作用.
- 生物修复和微生物组工程等基于菌体的应用具有优化农业生产力的巨大潜力.
- 对菌体与微生物相互作用的进一步研究可以推动可持续农业的创新.
相关概念视频
Predator-Prey Interactions
21.6K
Predators consume prey for energy. Predators that acquire prey and prey that avoid predation both increase their chances of survival and reproduction (i.e., fitness). Routine predator-prey interactions elicit mutual adaptations that improve predator offenses, such as claws, teeth, and speed, as well as prey defenses, including crypsis, aposematism, and mimicry. Thus, predator-prey interactions resemble an evolutionary arms race.
21.6K
Microorganisms in Agriculture and Food industry
1.5K
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...
1.5K
Bacterial Transformation
59.9K
In 1928, bacteriologist Frederick Griffith worked on a vaccine for pneumonia, which is caused by Streptococcus pneumoniae bacteria. Griffith studied two pneumonia strains in mice: one pathogenic and one non-pathogenic. Only the pathogenic strain killed host mice.
Griffith made an unexpected discovery when he killed the pathogenic strain and mixed its remains with the live, non-pathogenic strain. Not only did the mixture kill host mice, but it also contained living pathogenic bacteria that...
Griffith made an unexpected discovery when he killed the pathogenic strain and mixed its remains with the live, non-pathogenic strain. Not only did the mixture kill host mice, but it also contained living pathogenic bacteria that...
59.9K
Bacterial Signaling
40.7K
Bacterial signaling can occur within bacteria (intracellular) or between bacteria (intercellular). At times, a group of bacteria behaves like a community. To achieve this, they engage in quorum sensing, the perception of higher cell density that causes changes in gene expression. Quorum sensing involves both extracellular and intracellular signaling. The signaling cascade starts with a molecule called an autoinducer (AI). Individual bacteria produce AIs that move out of the bacterial cell...
40.7K
Bacterial RNA Polymerase
32.8K
Unlike eukaryotes, bacteria use a single RNA Polymerase (RNAP) to transcribe all genes. The different subunits of bacterial RNAPhave distinct functions. The multisubunit structure of the bacterial RNAP helps the enzyme to maintain catalytic function, facilitate assembly, interact with DNA and RNA, and self-regulate its activity.
In most genes, the transcription site is a single base present upstream of the coding sequence. Though RNAP is a catalytically efficient enzyme, it does not recognize...
In most genes, the transcription site is a single base present upstream of the coding sequence. Though RNAP is a catalytically efficient enzyme, it does not recognize...
32.8K
Bacterial Transcription
36.5K
RNA polymerase (RNAP) carries out DNA-dependent RNA synthesis in both bacteria and eukaryotes. Bacteria do not have a membrane-bound nucleus. So, transcription and translation occur simultaneously, on the same DNA template.
Transcription can be divided into three main stages, each involving distinct DNA sequences to guide the polymerase. These are:
Transcription can be divided into three main stages, each involving distinct DNA sequences to guide the polymerase. These are:
36.5K


