Mathieu-Rivet Elodie, Mati-Baouche Narimane, Walet-Balieu Marie-Laure, Lerouge Patrice, Bardor Muriel
UNIROUEN, Laboratoire Glyco-MEV EA4358, Normandie Université, Rouen, France.
Unité de Glycobiologie Structurale et Fonctionnelle (UGSF), UMR 8576, CNRS, Université de Lille, Lille, France.
Front Plant Sci. 2020 Dec 17;11:609993. doi: 10.3389/fpls.2020.609993. eCollection 2020.
The term microalga refers to various unicellular and photosynthetic organisms representing a polyphyletic group. It gathers numerous species, which can be found in cyanobacteria (i.e., ) as well as in distinct eukaryotic groups, such as Chlorophytes (i.e., or ) and Heterokonts (i.e., diatoms). This phylogenetic diversity results in an extraordinary variety of metabolic pathways, offering large possibilities for the production of natural compounds like pigments or lipids that can explain the ever-growing interest of industrials for these organisms since the middle of the last century. More recently, several species have received particular attention as biofactories for the production of recombinant proteins. Indeed, microalgae are easy to grow, safe and cheap making them attractive alternatives as heterologous expression systems. In this last scope of applications, the glycosylation capacity of these organisms must be considered as this post-translational modification of proteins impacts their structural and biological features. Although these mechanisms are well known in various Eukaryotes like mammals, plants or insects, only a few studies have been undertaken for the investigation of the protein glycosylation in microalgae. Recently, significant progresses have been made especially regarding protein -glycosylation, while -glycosylation remain poorly known. This review aims at summarizing the recent data in order to assess the state-of-the art knowledge in glycosylation processing in microalgae.
微藻一词指的是各种单细胞光合生物,它们构成一个多源类群。它包含众多物种,这些物种可见于蓝细菌(即 )以及不同的真核生物类群中,如绿藻(即 或 )和不等鞭毛类(即硅藻)。这种系统发育多样性导致了代谢途径的非凡多样性,为生产色素或脂质等天然化合物提供了很大可能性,这可以解释自上世纪中叶以来工业界对这些生物的兴趣与日俱增。最近,有几种微藻作为重组蛋白生产的生物工厂受到了特别关注。事实上,微藻易于培养、安全且成本低廉,使其成为有吸引力的异源表达系统替代物。在这最后一个应用领域中,必须考虑这些生物的糖基化能力,因为蛋白质的这种翻译后修饰会影响其结构和生物学特性。尽管这些机制在哺乳动物、植物或昆虫等各种真核生物中已广为人知,但针对微藻中蛋白质糖基化的研究却很少。最近,特别是在蛋白质 -糖基化方面取得了重大进展,而 -糖基化仍然知之甚少。本综述旨在总结近期数据,以评估微藻糖基化加工的最新知识水平。