Department of Paraclinical Sciences, Faculty of Veterinary Medicine, Norwegian University of Life Sciences (NMBU), Ås, Norway.
Department of Physics, Umeå University, Umeå, Sweden.
Environ Microbiol. 2024 Sep;26(9):e16678. doi: 10.1111/1462-2920.16678.
Species within the Bacillus cereus sensu lato group, known for their spore-forming ability, are recognized for their significant role in food spoilage and food poisoning. The spores of B. cereus are adorned with numerous pilus-like appendages, referred to as S-ENAs and L-ENAs. These appendages are thought to play vital roles in self-aggregation, adhesion, and biofilm formation. Our study investigates the role of S-ENAs and L-ENAs, as well as the impact of various environmental factors on spore-to-spore contacts and the interaction between spores and vegetative cells, using both bulk and single-cell approaches. Our findings indicate that ENAs, especially their tip fibrillae, play a crucial role in spore self-aggregation, but not in the adhesion of spores to vegetative cells. The absence of L-BclA, which forms the L-ENA tip fibrillum, reduced spore aggregation mediated by both S-ENAs and L-ENAs, highlighting the interconnected roles of S-ENAs and L-ENAs. We also found that increased salt concentrations in the liquid environment significantly reduced spore aggregation, suggesting a charge dependency of spore-spore interactions. By shedding light on these complex interactions, our study offers valuable insights into spore dynamics. This knowledge can inform future studies on spore behaviour in environmental settings and assist in developing strategies to manage bacterial aggregation for beneficial purposes, such as controlling biofilms in food production equipment.
生存在中温需氧芽孢杆菌感观亚种群中的微生物,以其形成孢子的能力而闻名,它们在食品变质和食物中毒中扮演着重要的角色。芽孢杆菌的孢子表面装饰着许多类似菌毛的附属物,称为 S-ENAs 和 L-ENAs。这些附属物被认为在自我聚集、黏附和生物膜形成中起着至关重要的作用。我们的研究使用了批量和单细胞方法,调查了 S-ENAs 和 L-ENAs 的作用,以及各种环境因素对孢子间接触和孢子与营养细胞相互作用的影响。我们的研究结果表明,ENAs,特别是它们的尖端纤维,在孢子的自我聚集中起着至关重要的作用,但在孢子与营养细胞的黏附中没有作用。缺乏形成 L-ENA 尖端纤维的 L-BclA 会降低由 S-ENAs 和 L-ENAs 介导的孢子聚集,突出了 S-ENAs 和 L-ENAs 之间相互关联的作用。我们还发现,在液体环境中增加盐浓度会显著降低孢子聚集,这表明了孢子间相互作用的电荷依赖性。通过揭示这些复杂的相互作用,我们的研究为孢子动力学提供了有价值的见解。这些知识可以为未来在环境背景下研究孢子行为提供信息,并有助于制定控制细菌聚集的策略,以达到有益的目的,例如控制食品生产设备中的生物膜。