David Soto Rodriguez Paul Eduardo, Sirinelli-Kojadinovic Mila, Rouzaud Maximilien, Faivre Damien
Aix Marseille University, CEA, CNRS, BIAM, 13108 Saint Paul-Lez-Durance, France.
Mater Today Bio. 2023 Feb 23;19:100587. doi: 10.1016/j.mtbio.2023.100587. eCollection 2023 Apr.
Adding biomolecules to living organisms and cells is the basis for creating living materials or biohybrids for robotic systems. Bioorthogonal chemistry allows covalently modifying biomolecules with functional groups not natively present under biological conditions and is therefore applicable to microorganisms and cells. Click chemistry is a biorthogonal chemistry approach that allows the study and manipulation of living entities. Incorporating the bioorthogonal click-chemistry handle, azide groups, into living microorganisms has been achieved by metabolic labeling, i.e., by culturing cells or organisms in a modified culture media having a specific natural molecular building block (e.g., amino acid, nucleotide, carbohydrate) modified with a tagged chemical analog. Here we explore the effect of the azide group incorporation into the magnetotactic bacteria (MSR-1) by adding a modified amino acid, 3-Azido-d-Alanine, during their cultivation. We show the existence of a concentration limit to effectively incorporate the azide group while maintaining the magnetic properties of the cells. We explore the use of this modification to explore the combination with versatile single-cell tagging methods.
向活生物体和细胞中添加生物分子是为机器人系统创建生物材料或生物杂交体的基础。生物正交化学能够用在生物条件下原本不存在的官能团对生物分子进行共价修饰,因此适用于微生物和细胞。点击化学是一种生物正交化学方法,可用于对活生物体进行研究和操控。通过代谢标记,即将细胞或生物体在含有用带标签化学类似物修饰的特定天然分子构建块(例如氨基酸、核苷酸、碳水化合物)的改良培养基中培养,已实现将生物正交点击化学手柄叠氮基团引入活微生物中。在此,我们通过在趋磁细菌(MSR-1)培养过程中添加修饰氨基酸3-叠氮基-D-丙氨酸来探索叠氮基团引入对其产生的影响。我们发现存在一个浓度限制,在有效引入叠氮基团的同时能保持细胞的磁性。我们探索利用这种修饰来与多种单细胞标记方法相结合。