👤 Kayoko Tao

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183
Articles
129
Name variants
Also published as: Bei Tao, Bei-Bei Tao, Bolin Tao, Chao Tao, Chenqi Tao, Chunyao Tao, Cong Tao, Dayun Tao, Fang Biao Tao, Feifei Tao, Feng Tao, Ge Tao, Guizhou Tao, Hai-Ping Tao, Hengxun Tao, Heqing Tao, Hong Tao, Hongdi Tao, Hongxia Tao, Hua Tao, Huan Tao, Hui Tao, Janet Tao, Jenkang Tao, Jianguo Tao, Jianping Tao, Jiaxuan Tao, Jie Tao, Jin Tao, Jing Tao, Jingrui Tao, Jinhua Tao, Jun Tao, Jun-Lu Tao, Junyan Tao, Kai-Yi Tao, Kaixiong Tao, Kun Tao, Kunming Tao, Le Yuan Tao, Leyuan Tao, Li Tao, Lide Tao, Lifei Tao, Lijian Tao, Lijun Tao, Lili Tao, Liming Tao, Lin Tao, Ling Tao, Liye Tao, Meng Tao, Menghao Tao, Mengjun Tao, Mengzhang Tao, Min Tao, Ming Tao, Ming-Hao Tao, Mingfen Tao, Pinyue Tao, Qin Tao, Qing Tao, Qinghua Tao, Qiushan Tao, Ran Tao, Sha Tao, Shaoneng Tao, Shou-Song Tao, Shuai Tao, Shuang Tao, Shuchun Tao, Siteng Tao, Sun Tao, Tan Tao, Tian Tao, Tianyi Tao, Wanyun Tao, Weiguo Andy Tao, Weiwei Tao, Wen Tao, Wenfu Tao, Wenjing Tao, X-F Tao, Xiaofeng Tao, Xiaohong Tao, Xiaoming Tao, Xiaoyi Tao, Xingyong Tao, Xingyu Tao, Xinrong Tao, Xinyu Tao, XiuJuan Tao, Xueping Tao, Y X Tao, Y-X Tao, Ya-Chao Tao, Ya-Xiong Tao, Yan Tao, Yanmei Tao, Yaoye Tao, Ye Tao, Ye-Qin Tao, Yifan Tao, Yijia Tao, Yijuan Tao, Yijun Tao, Yiming Tao, Ying Tao, Yiqiu Tao, Yiran Tao, Yiying Tao, Yong Tao, Youqi Tao, Yu Tao, Yuan-Xiang Tao, Yuchen Tao, Yue Tao, Yuelan Tao, Yuhan Tao, Yun Tao, Yungan Tao, Yuxuan Tao, Zeng Tao, Zetong Tao, Zhen-Chao Tao, Zheng Tao, Zhenyu Tao, Zhiyun Tao
articles
Qinghua Tao, Chika Yokota, Helbert Puck +7 more · 2005 · Cell · Elsevier · added 2026-04-24
Wnt signaling pathways play essential roles in patterning and proliferation of embryonic and adult tissues. In many organisms, this signaling pathway directs axis formation. Although the importance of Show more
Wnt signaling pathways play essential roles in patterning and proliferation of embryonic and adult tissues. In many organisms, this signaling pathway directs axis formation. Although the importance of intracellular components of the pathway, including beta-catenin and Tcf3, has been established, the mechanism of their activation is uncertain. In Xenopus, the initiating signal that localizes beta-catenin to dorsal nuclei has been suggested to be intracellular and Wnt independent. Here, we provide three lines of evidence that the pathway specifying the dorsal axis is activated extracellularly in Xenopus embryos. First, we identify Wnt11 as the initiating signal. Second, we show that activation requires the glycosyl transferase X.EXT1. Third, we find that the EGF-CFC protein, FRL1, is also essential and interacts with Wnt11 to activate canonical Wnt signaling. Show less
no PDF DOI: 10.1016/j.cell.2005.01.013
EXT1
Yun Xu, Bosheng Zhang, Zichun Hua +3 more · 2004 · Experimental neurology · Elsevier · added 2026-04-24
PSD-93, a molecular adaptive protein, binds to and clusters the N-methyl-D-aspartate (NMDA) receptor and assembles a specific set of signaling proteins (for example neuronal nitric oxide synthase, nNO Show more
PSD-93, a molecular adaptive protein, binds to and clusters the N-methyl-D-aspartate (NMDA) receptor and assembles a specific set of signaling proteins (for example neuronal nitric oxide synthase, nNOS) around the NMDA receptor at synapses in the central nervous system. This suggests that PSD-93 might mediate many NMDA receptor-dependent physiological and pathophysiological functions. We report here that PSD-93 colocalizes and interacts with the NMDA receptor and neuronal nitric oxide synthase in cultured cortical neurons. Targeted disruption of PSD-93 gene significantly prevented NMDA receptor-nitric oxide signaling-dependent neurotoxicity triggered via platelet-activating factor (PAF) receptor activation. In addition, the deficiency of PSD-93 markedly attenuated platelet-activating factor-induced increase in cyclic guanosine 3',5'-monophosphate (cGMP) and prevented platelet-activating factor-promoted formation of NMDA receptor-neuronal nitric oxide synthase complex. These findings indicate that PSD-93 is involved in the NMDA receptor--nitric oxide-mediated pathological processing of neuronal damage triggered via platelet--activating factor receptor activation. Since platelet-activating factor is a potent neuronal injury mediator during the development of brain trauma, seizures, and ischemia, the present work suggests that PSD-93 might contribute to molecular mechanisms of neuronal damage in these brain disorders. Show less
no PDF DOI: 10.1016/j.expneurol.2004.05.013
DLG2
Yuan-Xiang Tao, Gavin Rumbaugh, Guo-Du Wang +10 more · 2003 · The Journal of neuroscience : the official journal of the Society for Neuroscience · Society for Neuroscience · added 2026-04-24
Modification of synaptic NMDA receptor (NMDAR) expression influences NMDAR-mediated synaptic function and associated persistent pain. NMDARs directly bind to a family of membrane-associated guanylate Show more
Modification of synaptic NMDA receptor (NMDAR) expression influences NMDAR-mediated synaptic function and associated persistent pain. NMDARs directly bind to a family of membrane-associated guanylate kinases (MAGUKs) that regulate surface and synaptic NMDAR trafficking in the CNS. We report here that postsynaptic density-93 protein (PSD-93), a postsynaptic neuronal MAGUK, is expressed abundantly in spinal dorsal horn and forebrain, where it colocalizes and interacts with NMDAR subunits NR2A and NR2B. Targeted disruption of the PSD-93 gene reduces not only surface NR2A and NR2B expression but also NMDAR-mediated excitatory postsynaptic currents and potentials, without affecting surface AMPA receptor expression or its synaptic function, in the regions mentioned above. Furthermore, mice lacking PSD-93 exhibit blunted NMDAR-dependent persistent pain induced by peripheral nerve injury or injection of Complete Freund's Adjuvant, although they display intact nociceptive responsiveness to acute pain. PSD-93 appears to be important for NMDAR synaptic targeting and function and to be a potential biochemical target for the treatment of persistent pain. Show less
no PDF DOI: 10.1523/JNEUROSCI.23-17-06703.2003
DLG2