Meneghel Julie, Passot Stéphanie, Cenard Stéphanie, Réfrégiers Matthieu, Jamme Frédéric, Fonseca Fernanda
UMR GMPA, AgroParisTech, INRA, Université Paris-Saclay, 78850, Thiverval-Grignon, France.
Synchrotron SOLEIL, L'Orme des Merisiers, Saint Aubin, BP 489, 91192 Gif-sur-Yvette, France.
Appl Microbiol Biotechnol. 2017 Sep;101(18):6907-6917. doi: 10.1007/s00253-017-8444-9. Epub 2017 Aug 5.
Cryopreservation of lactic acid bacteria may lead to undesirable cell death and functionality losses. The membrane is the first target for cell injury and plays a key role in bacterial cryotolerance. This work aimed at investigating at a subcellular resolution the membrane fluidity of two populations of Lactobacillus delbrueckii subsp. bulgaricus when subjected to cold and osmotic stresses associated to freezing. Cells were cultivated at 42 °C in mild whey medium, and they were exposed to sucrose solutions of different osmolarities (300 and 1800 mOsm L) after harvest. Synchrotron fluorescence microscopy was used to measure membrane fluidity of cells labeled with the cytoplasmic membrane probe 1-[4 (trimethylamino) phenyl]-6-phenyl-1,3,5-hexatriene (TMA-DPH). Images were acquired at 25 and 0 °C, and more than a thousand cells were individually analyzed. Results revealed that a bacterial population characterized by high membrane fluidity and a homogeneous distribution of fluidity values appeared to be positively related to freeze-thaw resistance. Furthermore, rigid domains with different anisotropy values were observed and the occurrence of these domains was more important in the freeze-sensitive bacterial population. The freeze-sensitive cells exhibited a broadening of existing highly rigid lipid domains with osmotic stress. The enlargement of domains might be ascribed to the interaction of sucrose with membrane phospholipids, leading to membrane disorganization and cell degradation.
乳酸菌的冷冻保存可能会导致不良的细胞死亡和功能丧失。细胞膜是细胞损伤的首要靶点,在细菌的耐冻性中起关键作用。本研究旨在以亚细胞分辨率研究两株德氏乳杆菌保加利亚亚种在与冷冻相关的低温和渗透压胁迫下的膜流动性。细胞在42°C的温和乳清培养基中培养,收获后暴露于不同渗透压(300和1800 mOsm/L)的蔗糖溶液中。利用同步辐射荧光显微镜测量用细胞质膜探针1-[4-(三甲氨基)苯基]-6-苯基-1,3,5-己三烯(TMA-DPH)标记的细胞的膜流动性。在25°C和0°C下采集图像,并对一千多个细胞进行单独分析。结果表明,具有高膜流动性和流动性值均匀分布的细菌群体似乎与冻融抗性呈正相关。此外,还观察到具有不同各向异性值的刚性结构域,这些结构域的出现对冻敏细菌群体更为重要。冻敏细胞在渗透压胁迫下表现出现有高度刚性脂质结构域的拓宽。结构域的扩大可能归因于蔗糖与膜磷脂的相互作用,导致膜紊乱和细胞降解。