模式生物盘状盘基骨菌与人中性粒细胞的趋化性

Xuehua Xu
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引用次数: 1

摘要

版权所有:©2016徐旭。这是一篇根据知识共享署名许可条款发布的开放获取文章,该许可允许在任何媒体上不受限制地使用、分发和复制,前提是要注明原作者和来源。趋化性是指由趋化剂梯度引导的定向细胞迁移,在许多生理过程中起着关键作用,包括神经元模式[1]、中性粒细胞向炎症部位的募集[2]、癌细胞的转移[3]和模式生物盘状盘基ostelium disideum的发育[4]。所有真核细胞都通过G蛋白偶联受体(gpcr)检测趋化剂,并且在控制趋化性的信号通路上具有显著的相似性[5]。盘状草已被证明是一个强大的模型系统,以确定新的化学趋化性必需的成分。在博士后培训期间,我开发并应用了最先进的活细胞/单分子成像技术,以可视化gpcr介导的信号网络的时空动态,导致盘状蝶的趋化性[6,7]。通过计算模拟和实验验证的相互作用,我的研究揭示了PI3K上游GPCR信号网络中存在局部控制的抑制机制[8]。Ras是PI3K上游化学传感机制的关键组成部分。我的长期研究兴趣是研究多系统中趋化性的分子机制:首先,利用模式生物盘状棘虫识别趋化性所必需的新成分和信号通路;接下来,了解它们在哺乳动物系统中的对抗伙伴的作用,以确定炎症性疾病和乳腺癌转移的新治疗策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Chemotaxis in the Model Organism Dictyostelium discoideum and Human Neutrophils
Copyright: © 2016 Xu X. This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited. Chemotaxis is referred as directional cell migration guided by chemoattractant gradients and plays critical roles in many physiological processes, including neuron patterning [1], the recruitment of neutrophils to sites of inflammation [2], metastasis of cancer cells [3], and development of model organism Dictyostelium discoideum [4]. All eukaryotic cells detect chemoattractants by G proteincoupled receptors (GPCRs) and share remarkable similarities in the signaling pathways which control chemotaxis [5]. D. discoideum has been proven as a powerful model system to identify new components essential for chemotaxis. During postdoc training, I developed and applied the state-of-the-art live cell/single molecule imaging techniques to visualize spatiotemporal dynamics of GPCR-mediated signaling network that leads to the chemotaxis in D. discoideum [6,7]. The interplay between computational simulation and experimental verification, my studies have revealed a locally-controlled inhibitory mechanism in the GPCR signaling network upstream of PI3K [8]. Ras is a key component of the chemosensing machinery upstream of PI3K. My long-term research interests is to investigate molecular mechanisms underlining chemotaxis in multiple systems: first, identify novel components and signaling pathways essential for chemotaxis using model organism D. discoideum; next, understand the roles of their mammalian counter partners in mammalian systems to identify new therapeutic strategies for inflammatory diseases and metastasis of breast cancer.
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