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莱茵衣藻微藻的全细胞固态核磁共振研究。

Whole cell solid-state NMR study of Chlamydomonas reinhardtii microalgae.

作者信息

Arnold Alexandre A, Bourgouin Jean-Philippe, Genard Bertrand, Warschawski Dror E, Tremblay Réjean, Marcotte Isabelle

机构信息

Department of Chemistry, Université du Québec à Montréal, Downtown Station, P.O. Box 8888, Montreal, H3C 3P8, Canada.

Institut des Sciences de la Mer de Rimouski, Université du Québec à Rimouski, 310 allée des Ursulines, Rimouski, G5L 3A1, Canada.

出版信息

J Biomol NMR. 2018 Feb;70(2):123-131. doi: 10.1007/s10858-018-0164-7. Epub 2018 Jan 11.

Abstract

In vivo or whole-cell solid-state NMR is an emerging field which faces tremendous challenges. In most cases, cell biochemistry does not allow the labelling of specific molecules and an in vivo study is thus hindered by the inherent difficulty of identifying, among a formidable number of resonances, those arising from a given molecule. In this work we examined the possibility of studying, by solid-state NMR, the model organism Chlamydomonas reinhardtii fully and non-specifically C labelled. The extension of NMR-based dynamic filtering from one-dimensional to two-dimensional experiments enabled an enhanced selectivity which facilitated the assignment of cell constituents. The number of resonances detected with these robust and broadly applicable experiments appears to be surprisingly sparse. Various constituents, notably galactolipids abundant in organelle membranes, carbohydrates from the cell wall, and starch from storage grains could be unambiguously assigned. Moreover, the dominant crystal form of starch could be determined in situ. This work illustrates the feasibility and caveats of using solid-state NMR to study intact non-specifically C labelled micro-organisms.

摘要

体内或全细胞固态核磁共振是一个面临巨大挑战的新兴领域。在大多数情况下,细胞生物化学不允许对特定分子进行标记,因此,体内研究受到了巨大挑战,即在大量共振信号中识别出特定分子产生的信号非常困难。在这项工作中,我们研究了通过固态核磁共振对莱茵衣藻这种模式生物进行全细胞、非特异性碳标记研究的可能性。基于核磁共振的动态过滤从一维实验扩展到二维实验,提高了选择性,有助于确定细胞成分。这些稳健且广泛适用的实验检测到的共振信号数量出人意料地少。各种成分,特别是细胞器膜中丰富的半乳糖脂、细胞壁中的碳水化合物和储存颗粒中的淀粉,都能被明确识别。此外,淀粉的主要晶型可以原位确定。这项工作说明了使用固态核磁共振研究完整的、非特异性碳标记微生物的可行性和注意事项。

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