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Integrative regulatory mechanisms of stomatal movements under changing climate
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作者 Jingbo Zhang Xuexue Chen +1 位作者 yajing song Zhizhong Gong 《Journal of Integrative Plant Biology》 SCIE CAS CSCD 2024年第3期368-393,共26页
Global climate change-caused drought stress,high temperatures and other extreme weather profoundly impact plant growth and development,restricting sustainable crop production.To cope with various environmental stimuli... Global climate change-caused drought stress,high temperatures and other extreme weather profoundly impact plant growth and development,restricting sustainable crop production.To cope with various environmental stimuli,plants can optimize the opening and closing of stomata to balance CO_(2)uptake for photosynthesis and water loss from leaves.Guard cells perceive and integrate various signals to adjust stomatal pores through turgor pressure regulation.Molecular mechanisms and signaling networks underlying the stomatal movements in response to environmental stresses have been extensively studied and elucidated.This review focuses on the molecular mechanisms of stomatal movements mediated by abscisic acid,light,CO_(2),reactive oxygen species,pathogens,temperature,and other phytohormones.We discussed the significance of elucidating the integrative mechanisms that regulate stomatal movements in helping design smart crops with enhanced water use efficiency and resilience in a climate-changing world. 展开更多
关键词 environmental stress guard cell PLANT regulatory mechanisms stomatal movements
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豌豆茎基腐病病原菌分离鉴定及其对杀菌剂的敏感性测定
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作者 宋雅静 欧晋稳 +6 位作者 张古文 冯志娟 卜远鹏 王斌 龚亚明 徐建强 刘娜 《植物学报》 CAS CSCD 北大核心 2023年第1期132-139,共8页
豌豆(Pisum sativum)是我国重要的豆类经济作物,病害对豌豆生产造成重大经济损失。通过形态学观察、分子鉴定以及致病性测定,最终确定引起豌豆茎基腐病的3种病原菌分别为尖孢镰刀菌(Fusarium oxysporum)、芸苔链格孢菌(Alternaria brass... 豌豆(Pisum sativum)是我国重要的豆类经济作物,病害对豌豆生产造成重大经济损失。通过形态学观察、分子鉴定以及致病性测定,最终确定引起豌豆茎基腐病的3种病原菌分别为尖孢镰刀菌(Fusarium oxysporum)、芸苔链格孢菌(Alternaria brassicae)和格氏镰刀菌(F.grosmichelii),优势菌株为尖孢镰刀菌,分离率为53.6%。室内毒力测定结果表明,5种供试杀菌剂对3种病原菌的菌丝生长均有抑制作用,其中咯菌腈和戊唑醇的抑菌效果最好。研究结果为豌豆茎基腐病的防治提供了科学依据。 展开更多
关键词 豌豆 茎基腐病 分离与鉴定 杀菌剂 敏感性测定
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High strength and deformation stability achieved in CrCoNi alloy containing deformable oxides
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作者 Jiawei Zou Xiaoqian Fu +4 位作者 yajing song Tianxin Li Yiping Lu Ze Zhang Qian Yu 《Journal of Materials Science & Technology》 SCIE EI CAS CSCD 2023年第3期89-94,共6页
Hard secondary phases usually strengthen alloys at the expense of ductility.In this work,we made a dual-phase CrCoNi-O alloy containing a face centered cubic matrix and chromium oxide.On one side,the dispersed chromiu... Hard secondary phases usually strengthen alloys at the expense of ductility.In this work,we made a dual-phase CrCoNi-O alloy containing a face centered cubic matrix and chromium oxide.On one side,the dispersed chromium oxide nano-particles impeded dislocation movement and increased the strength of the alloy.On another side,the spreading lattice distortion in CrCoNi-O high entropy solution locally relieved the severe interfacial mismatch and led to nanoscale variation of interfacial strain at the matrix-oxide interface,which facilitated dislocations’transmission from one phase to another.Consequently,unlike the strong but brittle oxide nanoparticles used before,the oxide phase here can afford significant dislocation activities during material’s plastic deformation.Comparing the mechanical properties of CrCoNi-O alloys with and without chromium oxide particles,it was found that the yield strength of the dual-phase samples was twice of the single phase CrCoNi-O alloy and strong strain hardening was obtained with ultra-high deformation stability.High density of nanotwins formed in dual-phase samples under high stress,resulting in significant strain hardening according to the well-known twinning-induced plasticity(TWIP)effect.Our results shed light on optimizing the combination of strength and plasticity of compounds by modulating the variation of interfacial strain field based on the spreading lattice distortion. 展开更多
关键词 Secondary phase strengthening DEFORMABILITY In-situ electron microscopy characterization NANOTWINS Strain hardening
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