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12篇 您的检索式:作者名="Shutang Tan"
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1Arabidopsis inositol 1,3,4-trisphosphate 5/6 kinase 2 is required for seed coat development显示文摘最后形成能是的肌醇 1,3,4,5-tetrakisphosphate 和肌醇 1,3,4,6-tetrakisphosphate 的肌醇 1,3,4-trisphosphate 5/6 kinase (ITPK ) phosphorylates 肌醇 1,3,4-trisphosphate 转了到肌醇 hexaphosphate (IP6 ) 和玩重要角色在植物生长和开发期间。在 Arabidopsis 有 4 个通常认为的 ITPK 成员。表示模式分析证明 ITPK2 组成地在各种各样的纸巾被表示。ITPK2 的 T-DNA 猛烈异种被识别,扫描电子显微镜学(SEM ) 分析证明种子的外皮结构覆盖不规则地在 itpk2-1 异种的种子被形成,导致种子上衣的增加的渗透到 tetrazolium 腌。由煤气的层析的进一步的分析在房间墙中结合了类脂化合物聚酯单体的集体 spectrometry 在软木脂和角质的作文证实了戏剧的减少,它联系到种子上衣和哪个伴有种子上衣开发的形成的渗透。这些结果显示 ITPK2 在种子上衣开发和类脂化合物聚酯障碍形成起一个必要作用。Yong Tang Shutang Tan Hongwei Xue 2013Acta Biochimica et Biophysica Sinica2013,45,7:2
2CdSe quantum dots decorated by mercaptosuccinic acid as fluorescence probe for Cu 2+显示文摘Shutang Chen Xiaoling Zhang Qiuhua Zhang Xiaomiao Hou Qi Zhou Jilin Yan Weihong Tan 2011Journal of Luminescence2011,,5:1
3Pho-view of Auxin:Reversible Protein Phosphorylation in Auxin Biosynthesis,Transport and Signaling显示文摘The phytohormone auxin plays a central role in shaping plant growth and development.With decades of genetic and biochemical studies,numerous core molecular components and their networks,underlying auxin biosynthesis,transport,and signaling,have been identified.Notably,protein phosphorylation,catalyzed by kinases and oppositely hydrolyzed by phosphatases,has been emerging to be a crucial type of post-translational modification,regulating physiological and developmental auxin output at all levels.In this review,we comprehensively discuss earlier and recent advances in our understanding of genetics,biochemistry,and cell biology of the kinases and phosphatases participating in auxin action.We provide insights into the mechanisms by which reversible protein phosphorylation defines developmental auxin responses,discuss current challenges,and provide our perspectives on future directions involving the integration of the control of protein phosphorylation into the molecular auxin network.Shutang Tan Christian Luschnig Jiri Friml 2021Molecular Plant2021,14,1:1
4QUENCH IN STABILIZATION OF Cu-Zn-Al ALLOY显示文摘QUENCHINSTABILIZATIONOFCuZnAlALLOY①PengKun,TanShusong,LiShutangDepartmentofMaterialsScienceandEnginering,CentralSouthUniver...Peng, Kun Tan, Shusong Li, Shutang Chung, C.Y. Lan, C.W.H. 1997中国有色金属学会会刊:英文版1997,7,3:1
5Action mode of NPA:direct inhibition on PIN auxin transporters显示文摘Chemical tools play essential roles in dissecting the molecular mechanisms underlying biological processes in living systems.In the history of plant biology,N-1-naphthylphthalamic acid(NPA)has long been used as an auxin export inhibitor,and multiple in vivo targets have been proposed,such as ABC transporters,TWISTED DWARF1,and BIG/-rlR3(reviewed in Teale and Palme,2018).These proteins exhibit pleiotropic functions,which were proposed to indirectly mediate the NPA effect through the activity or trafficking of PIN-FORMED(PIN)auxin transporters.However,the debate on the pure target of N PA often makes a clear interpretation of such experimental data elusive.Shutang Tan 2021Molecular Plant2021,14,2:0
6Adding power of artificial intelligence to situational awareness of large interconnections dominated by inverter‐based resources显示文摘Large‐scale power systems exhibit more complex dynamics due to the increasing inte-gration of inverter‐based resources(IBRs).Therefore,there is an urgent need to enhance the situational awareness capability for better monitoring and control of power grids dominated by IBRs.As a pioneering Wide‐Area Measurement System,FNET/GridEye has developed and implemented various advanced applications based on the collected synchrophasor measurements to enhance the situational awareness capability of large‐scale power grids.This study provides an overview of the latest progress of FNET/GridEye.The sensors,communication,and data servers are upgraded to handle ultra‐high density synchrophasor and point‐on‐wave data to monitor system dynamics with more details.More importantly,several artificial intelligence(AI)‐based advanced appli-cations are introduced,including AI‐based inertia estimation,AI‐based disturbance size and location estimation,AI‐based system stability assessment,and AI‐based data authentication.Lin Zhu Yinfeng Zhao Yi Cui Shutang You Wenpeng Yu Shengyuan Liu He Yin Chang Chen Yuru Wu Wei Qiu Mirka Mandich Hongyu Li Adedasola Ademola Chengwen Zhang Chujie Zeng Xinlan Jia Weikang Wang Haoyu Yuan Huaiguang Jiang Jin Tan Yilu Liu 2021High Voltage2021,6,6:0
7Repressors for Auxin Responsive Transcriptional Activators显示文摘The phytohormone auxin plays a pivotal role in shaping plant growth and development.It acts through a family of transcription factors called AUXIN RESPONSE FACTORS(ARFs)that regulate expression of target genes specifically.Five out of 23 ARF transcription factors(TFs),also known as the class A,are transcription activators and key regulators in auxin-mediated plant development(Lavy and Estelle,2016r Weijers and Wagner,2016).Specific spatiotemporal expression patterns of ARF genes enable asymmetric response in different tissues.However,the underlying molecular mechanism remains largely unknown.Shutang Tan 2021Molecular Plant2021,14,1:0
8TMK:A crucial piece of the acid growth puzzle显示文摘Plant cells have relatively high turgor pressure driving cell expan-sion,which is restricted by the cell wall.How plant cells grow in an intrinsically controlled manner is an intriguing question,and the phytohormone auxin(indole-3-acetic acid,IAA)plays a vital reg-ulatory role.The auxin-mediated acid growth theory was pro-posed decades ago,whereas the underlying mechanisms were not fully elucidated.Plasma membrane(PM)H+-ATPases,also called Arabidopsis AUTOINHIBITED H+ATPASEs(AHAs),are proton pumps majorly responsible for regulating cell growth in plants.Based on our current understandings of the acid growth theory,auxin stimulates AHA proteins and thus promotes proton(H+)efflux,which thereby acidifies the apoplast to activate cell wall-modifying enzymes,such as expansins,eventually softening the cell wall to accommodate cell expansion(Duet al.,2020).Activated AHA proteins also cause PM hyperpolarization,enabling solute and water uptake to increase turgor pressure driving cell expansion(Duet al.,2020).Hence,how auxin activates PM H^(+)-ATPases is central to the acid growth theory.However,that was until now not fully understood.Yakun Peng Shutang Tan 2021Molecular Plant2021,14,12:0
9Nitrate signaling:A translator between nitrate perception and calcium signaling显示文摘Nitrate(N03^(-))is one primary nitrogen source for plants and also serves as a signal to modulate plant growth and development.NRT1.1(also called CHL1 or NPF6.3)is an essential nitrate transporter resident at the plasma membrane(Ho et al.,2009).Apart from the role in nitrate uptake,NRT1.1 also regulates a set.of nitrate-responsive genes,functioning as a nitrate sensor,namely transceptor(Ho et al.,2009;Bouguyon et al.,2015).Cheng-Wu Liu Shutang Tan 2021Molecular Plant2021,14,5:0
10Molecular mechanisms of N‑1‑naphthylphthalamic acid,a chemical tool in plant biology and agriculture显示文摘The phytohormone auxin plays essential roles in modulating plant growth and development by regulating cell expansion,division,and differentiation.Genetic or pharmacological interference of the auxin pathway affects multiple growth and patterning processes in plants(Vanneste and Friml 2009).The research on auxin can be tracked to the earliest observations on plant growth regulation and phototropism by Sachs and Darwin in the nineteenth century(Friml 2022).Indole-3-acetic acid(IAA)is the major natural auxin form,and decades of genetic and biochemical studies have established the molecular framework for auxin biosynthesis,signaling,and transport(Friml 2022).Mengjuan Kong Xin Liu Linfeng Sun Shutang Tan 2022Molecular Horticulture2022,2,1:0
11Pollen hydration:A tale of two peptides显示文摘Massive amount of different pollen could be landed on the stigma of any given angiosperm species,but only compatible pollen can be allowed to germinate on this particular stigma.Once germinated,pollen starts its long journey by penetrating the stigmatic surface,coming across the style,going through the transmitting tract,turning on the funiculus,and finally reaching the embryo sac,where the pollen tube releases its cargo,two sperm cells,to fuse with two female gametes,the egg cell and the central cell,respectively(Johnson et al.,2017;Kim et al.t 2021).This fascinating and intricate adventure all starts with pollen hydration,but how the stigma is prepared and reacts to accept the compatible pollen to facilitate pollen hydration has long been a mystery.Yanbo Mao Shutang Tan 2021Molecular Plant2021,14,7:0
12Chemical inhibition of Arabidopsis PIN-FORMED auxin transporters by the anti-inflammatory drug naproxen显示文摘The phytohormone auxin plays central roles in many growth and developmental processes in plants.Development of chemical tools targeting the auxin pathway is useful for both plant biology and agriculture.Here we reveal that naproxen,a synthetic compound with anti-inflammatory activity in humans,acts as an auxin transport inhibitor targeting PIN-FORMED(PIN)transporters in plants.Physiological experiments indicate that exogenous naproxen treatment affects pleiotropic auxin-regulated developmental processes.Additional cellular and biochemical evidence indicates that naproxen suppresses auxin transport,specifically PIN-mediated auxin efflux.Moreover,biochemical and structural analyses confirm that naproxen binds directly to PIN1 protein via the same binding cavity as the indole-3-acetic acid substrate.Thus,by combining cellular,biochemical,and structural approaches,this study clearly establishes that naproxen is a PIN inhibitor and elucidates the underlying mechanisms.Further use of this compound may advance our understanding of the molecular mechanisms of PIN-mediated auxin transport and expand our toolkit in auxin biology and agriculture.Jing Xia Mengjuan Kong Zhisen Yang Lianghanxiao Sun Yakun Peng Yanbo Mao Hong Wei Wei Ying Yongxiang Gao Jiri Friml Jianping Weng Xin Liu Linfeng Sun Shutang Tan 2023Plant Communications2023,4,6:0
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