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固氮γ-变形菌——固氮植物的蓝本?

Nitrogen-Fixing Gamma Proteobacteria -A Blueprint for Nitrogen-Fixing Plants?

作者信息

Barron Sayre, Mus Florence, Peters John W

机构信息

Department of Chemistry and Biochemistry, University of Oklahoma, Norman, OK 73019, USA.

出版信息

Microorganisms. 2024 Oct 18;12(10):2087. doi: 10.3390/microorganisms12102087.

Abstract

The availability of fixed nitrogen limits overall agricultural crop production worldwide. The so-called modern "green revolution" catalyzed by the widespread application of nitrogenous fertilizer has propelled global population growth. It has led to imbalances in global biogeochemical nitrogen cycling, resulting in a "nitrogen problem" that is growing at a similar trajectory to the "carbon problem". As a result of the increasing imbalances in nitrogen cycling and additional environmental problems such as soil acidification, there is renewed and increasing interest in increasing the contributions of biological nitrogen fixation to reduce the inputs of nitrogenous fertilizers in agriculture. Interestingly, biological nitrogen fixation, or life's ability to convert atmospheric dinitrogen to ammonia, is restricted to microbial life and not associated with any known eukaryotes. It is not clear why plants never evolved the ability to fix nitrogen and rather form associations with nitrogen-fixing microorganisms. Perhaps it is because of the large energy demand of the process, the oxygen sensitivity of the enzymatic apparatus, or simply failure to encounter the appropriate selective pressure. Whatever the reason, it is clear that this ability of crop plants, especially cereals, would transform modern agriculture once again. Successfully engineering plants will require creating an oxygen-free niche that can supply ample energy in a tightly regulated manner to minimize energy waste and ensure the ammonia produced is assimilated. Nitrogen-fixing aerobic bacteria can perhaps provide a blueprint for engineering nitrogen-fixing plants. This short review discusses the key features of robust nitrogen fixation in the model nitrogen-fixing aerobe, gamma proteobacteria , in the context of the basic requirements for engineering nitrogen-fixing plants.

摘要

全球范围内,固定氮的可利用性限制了整体农作物产量。由氮肥广泛应用催化的所谓现代“绿色革命”推动了全球人口增长。它导致了全球生物地球化学氮循环的失衡,引发了一个与“碳问题”有着相似增长轨迹的“氮问题”。由于氮循环失衡加剧以及诸如土壤酸化等其他环境问题,人们对增加生物固氮的贡献以减少农业中氮肥投入的兴趣再度兴起且不断增加。有趣的是,生物固氮,即生命将大气中的二氮转化为氨的能力,仅限于微生物生命,与任何已知的真核生物无关。尚不清楚为何植物从未进化出固氮能力,而是与固氮微生物形成共生关系。或许是因为该过程对能量需求巨大、酶系统对氧气敏感,又或者仅仅是未能遇到合适的选择压力。无论原因是什么,很明显,农作物尤其是谷物的这种能力一旦实现,将再次改变现代农业。成功培育固氮植物需要创造一个无氧微环境,该微环境能够以严格调控的方式提供充足能量,以尽量减少能量浪费并确保产生的氨被同化。固氮需氧细菌或许可为培育固氮植物提供一个蓝本。这篇简短的综述在培育固氮植物的基本要求背景下,讨论了模式固氮需氧菌γ-变形菌纲中强大固氮作用的关键特征。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d886/11509896/0f5f3617053e/microorganisms-12-02087-g001.jpg

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