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氨基酸类似物诱导海洋 产生应激反应。

Amino Acid Analog Induces Stress Response in Marine .

机构信息

Biological Sciences Department, California Polytechnic State University, San Luis Obispo, California, USA.

Proteome Exploration Laboratory, Beckman Institute, Division of Biology and Biological Engineering, California Institute of Technology, Pasadena, California, USA.

出版信息

Appl Environ Microbiol. 2021 Jul 13;87(15):e0020021. doi: 10.1128/AEM.00200-21.

Abstract

Characterizing the cell-level metabolic trade-offs that phytoplankton exhibit in response to changing environmental conditions is important for predicting the impact of these changes on marine food web dynamics and biogeochemical cycling. The time-selective proteome-labeling approach, bioorthogonal noncanonical amino acid tagging (BONCAT), has potential to provide insight into differential allocation of resources at the cellular level, especially when coupled with proteomics. However, the application of this technique in marine phytoplankton remains limited. We demonstrate that the marine cyanobacteria sp. and two groups of eukaryotic algae take up the modified amino acid l-homopropargylglycine (HPG), suggesting that BONCAT can be used to detect translationally active phytoplankton. However, the impact of HPG addition on growth dynamics varied between groups of phytoplankton. In addition, proteomic analysis of cells grown with HPG revealed a physiological shift in nitrogen metabolism, general protein stress, and energy production, indicating a potential limitation for the use of BONCAT in understanding the cell-level response of sp. to environmental change. Variability in HPG sensitivity between algal groups and the impact of HPG on physiology indicates that particular considerations should be taken when applying this technique to other marine taxa or mixed marine microbial communities. Phytoplankton form the base of the marine food web and substantially impact global energy and nutrient flow. Marine picocyanobacteria of the genus comprise a large portion of phytoplankton biomass in the ocean and therefore are important model organisms. The technical challenges of environmental proteomics in mixed microbial communities have limited our ability to detect the cell-level adaptations of phytoplankton communities to a changing environment. The proteome labeling technique, bioorthogonal noncanonical amino acid tagging (BONCAT), has potential to address some of these challenges by simplifying proteomic analyses. This study explores the ability of marine phytoplankton to take up the modified amino acid, l-homopropargylglycine (HPG), required for BONCAT, and investigates the proteomic response of to HPG. We not only demonstrate that cyanobacteria can take up HPG but also highlight the physiological impact of HPG on , which has implications for future applications of this technique in the marine environment.

摘要

描述浮游植物在响应环境变化时表现出的细胞水平代谢权衡关系对于预测这些变化对海洋食物网动态和生物地球化学循环的影响非常重要。时间选择性蛋白质组标记方法,生物正交非天然氨基酸标记(BONCAT),具有提供细胞水平资源分配差异的洞察力的潜力,特别是与蛋白质组学结合使用时。然而,该技术在海洋浮游植物中的应用仍然有限。我们证明海洋蓝细菌 sp. 和两组真核藻类可以摄取修饰后的氨基酸 l-高丙氨酸(HPG),这表明 BONCAT 可用于检测翻译活性浮游植物。然而,HPG 添加对浮游植物群体生长动态的影响不同。此外,用 HPG 培养的细胞的蛋白质组学分析显示氮代谢、一般蛋白质应激和能量产生的生理转变,表明 BONCAT 在理解 sp. 对环境变化的细胞水平反应方面可能存在限制。藻类群体之间的 HPG 敏感性差异以及 HPG 对 生理的影响表明,在将该技术应用于其他海洋分类群或混合海洋微生物群落时,应特别考虑。浮游植物是海洋食物网的基础,对全球能量和养分流动有重大影响。海洋微藻中的 属浮游植物的生物量占海洋浮游植物的很大一部分,因此是重要的模式生物。混合微生物群落中环境蛋白质组学的技术挑战限制了我们检测浮游植物群落适应不断变化的环境的能力。蛋白质组标记技术,生物正交非天然氨基酸标记(BONCAT),通过简化蛋白质组学分析,有可能解决其中的一些挑战。本研究探索了海洋浮游植物摄取 BONCAT 所需的修饰氨基酸 l-高丙氨酸(HPG)的能力,并研究了 HPG 对 的蛋白质组反应。我们不仅证明了蓝细菌可以摄取 HPG,还强调了 HPG 对 的生理影响,这对该技术在海洋环境中的未来应用有影响。

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