Peng Pengshuai, Li Rui, Chen Zhong-Hua, Wang Yuanyuan
Hubei Insect Resources Utilization and Sustainable Pest Management Key Laboratory, College of Plant Science and Technology, Huazhong Agricultural University, Wuhan, China.
School of Science, Western Sydney University, Penrith, NSW, Australia.
Front Plant Sci. 2022 Oct 14;13:1031891. doi: 10.3389/fpls.2022.1031891. eCollection 2022.
Increasing global food production is threatened by harsh environmental conditions along with biotic stresses, requiring massive new research into integrated stress resistance in plants. Stomata play a pivotal role in response to many biotic and abiotic stresses, but their orchestrated interactions at the molecular, physiological, and biochemical levels were less investigated. Here, we reviewed the influence of drought, pathogen, and insect herbivory on stomata to provide a comprehensive overview in the context of stomatal regulation. We also summarized the molecular mechanisms of stomatal response triggered by these stresses. To further investigate the effect of stomata-herbivore interaction at a transcriptional level, integrated transcriptome studies from different plant species attacked by different pests revealed evidence of the crosstalk between abiotic and biotic stress. Comprehensive understanding of the involvement of stomata in some plant-herbivore interactions may be an essential step towards herbivores' manipulation of plants, which provides insights for the development of integrated pest management strategies. Moreover, we proposed that stomata can function as important modulators of plant response to stress combination, representing an exciting frontier of plant science with a broad and precise view of plant biotic interactions.
全球粮食产量的增长受到恶劣环境条件以及生物胁迫的威胁,这就需要对植物的综合抗逆性进行大量新的研究。气孔在应对许多生物和非生物胁迫中起着关键作用,但其在分子、生理和生化水平上的协同相互作用却较少受到研究。在此,我们综述了干旱、病原体和昆虫取食对气孔的影响,以便在气孔调节的背景下提供一个全面的概述。我们还总结了这些胁迫引发气孔反应的分子机制。为了进一步在转录水平上研究气孔与食草动物相互作用的影响,对受不同害虫侵害的不同植物物种进行的综合转录组研究揭示了非生物胁迫和生物胁迫之间存在相互作用的证据。全面了解气孔在某些植物与食草动物相互作用中的作用,可能是朝着食草动物操控植物迈出的关键一步,这为制定综合虫害管理策略提供了思路。此外,我们提出气孔可作为植物对胁迫组合反应的重要调节因子,这代表了植物科学一个令人兴奋的前沿领域,能让我们对植物生物相互作用有更广泛和精确的认识。