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| 1 | 2-Hydroxy-3-methoxybenzoic acid attenuates mast cell-mediated allergic reaction in mice via modulation of the FcεRI signaling pathway显示文摘桅杆房间是在免疫球蛋白(Ig ) 的重要受动器房间电子 mediated 过敏反应象气喘,遗传性过敏症的皮炎和鼻炎那样。香子兰的酸,一个自然产品,显示出抗氧化剂和反煽动性的活动。在现在的学习,我们调查了 ortho 香子兰的酸的反过敏的煽动性的效果(2-hydroxy-3-methoxybenzoic 酸,卵) 那是从 Amomum xanthioides 孤立的香子兰的酸的衍生物。在老鼠过敏性模型,卵的口头的管理(2, 10, 50 mg/kg ) dose-dependently 稀释了象降低体温,组织安版本, IgE 生产和 vasodilation 那样的导致 ovalbumin 的活跃全身的过敏性和调停 IgE 的皮肤的过敏反应;卵的管理也压制了桅杆房间 degranulator 混合物 48/80-induced 过敏性。在在 vitro 的有教养的桅杆房间线 RBL-2H3 和孤立的老鼠腹桅杆房间,有卵(1-100 mol/L ) 的预告的处理 dose-dependently 由减少禁止了桅杆房间的 DNP-HSA-induced degranulation 细胞内部的免费的钙水平,并且压制了支持 inflammatory cytokines TNF-4 和 IL-4 的表示。有卵的 RBL-2H3 房间的预告的处理压制了 Lyn, Syk, Akt,和原子 factor-B 的原子 translocation 的 DNP-HSA-induced phosphorylation。在结论,卵压制桅杆由在桅杆房间的表面上高亲密关系 IgE 受体(FcRI ) 下游地堵住发信号的小径的调停房间的过敏煽动性的反应。 | Yeon-Yong KIM In-Gyu JE Min Jong KIM Byeong-Cheol KANG Young-Ae CHOI Moon-Chang BAEK Byungheon LEE Jin Kyeong CHOI Hae Ran PARK Tae-Yong SHIN Soyoung LEE Seung-Bin YOON Sang-Rae LEE Dongwoo KHANG Sang-Hyun KIM | 2017 | Acta Pharmacologica Sinica2017,38,1: | 8 |
| 2 | Electronic Word-of- Mouth (eWOM) Generation in New Media Platforms: The Role of Regulatory Focus and Collective Dissonance 显示文摘 | Dongwoo Shin Ji Hee Song Abhijit Biswas | 2014 | Marketing Letters2014,25,2: | 1 |
| 3 | When does electronic word-of-mouth matter? A study of consumer product reviews显示文摘 | Jason Q. Zhang Georgiana Craciun Dongwoo Shin | 2009 | Journal of Business Research2009,,12: | 1 |
| 4 | The study of residual stresses for roller hemmed Aluminum Alloys显示文摘 | Dongok Kim Dongwoo Shin Youngsik Yoon | 2007 | Advanced materials research2007,,: | 1 |
| 5 | Vertebral artery occlusion with vertebral artery-to-posterior inferior cerebellar artery stenting for preservation of the PICA in treating ruptured vertebral artery dissection显示文摘 | Joonho Chung Bum-soo Kim Dongwoo Lee Tae-Hyun Kim Yong Sam Shin | 2010 | Acta Neurochirurgica2010,,9: | 1 |
| 6 | Difficulties, strategies, and recent research and development of layered sodium transition metal oxide cathode materials for high-energy sodium-ion batteries显示文摘Energy-storage systems and their production have attracted significant interest for practical applications.Batteries are the foundation of sustainable energy sources for electric vehicles(EVs),portable electronic devices(PEDs),etc.In recent decades,Lithium-ion batteries(LIBs) have been extensively utilized in largescale energy storage devices owing to their long cycle life and high energy density.However,the high cost and limited availability of Li are the two main obstacles for LIBs.In this regard,sodium-ion batteries(SIBs) are attractive alternatives to LIBs for large-scale energy storage systems because of the abundance and low cost of sodium materials.Cathode is one of the most important components in the battery,which limits cost and performance of a battery.Among the classified cathode structures,layered structure materials have attracted attention because of their high ionic conductivity,fast diffusion rate,and high specific capacity.Here,we present a comprehensive review of the classification of layered structures and the preparation of layered materials.Furthermore,the review article discusses extensively about the issues of the layered materials,namely(1) electrochemical degradation,(2) irreversible structural changes,and(3) structural instability,and also it provides strategies to overcome the issues such as elemental phase composition,a small amount of elemental doping,structural design,and surface alteration for emerging SIBs.In addition,the article discusses about the recent research development on layered unary,binary,ternary,quaternary,quinary,and senary-based O3-and P2-type cathode materials for high-energy SIBs.This review article provides useful information for the development of high-energy layered sodium transition metal oxide P2 and O3-cathode materials for practical SIBs. | Kouthaman Mathiyalagan Dongwoo Shin Young-Chul Lee | 2024 | Journal of Energy Chemistry2024,90,3: | 0 |