Vroom Madeline M, Rodriguez-Ocasio Yaneli, Lynch Jonathan B, Ruby Edward G, Foster Jamie S
Department of Microbiology and Cell Science, Space Life Science Lab, University of Florida, Merritt Island, FL, USA.
Pacific Biosciences Research Center, Kewalo Marine Laboratory, University of Hawai'i at Manoa, Honolulu, HI, USA.
NPJ Microgravity. 2021 Mar 8;7(1):8. doi: 10.1038/s41526-021-00138-8.
Reduced gravity, or microgravity, can have a pronounced impact on the physiology of animals, but the effects on their associated microbiomes are not well understood. Here, the impact of modeled microgravity on the shedding of Gram-negative lipopolysaccharides (LPS) by the symbiotic bacterium Vibrio fischeri was examined using high-aspect ratio vessels. LPS from V. fischeri is known to induce developmental apoptosis within its symbiotic tissues, which is accelerated under modeled microgravity conditions. In this study, we provide evidence that exposure to modeled microgravity increases the amount of LPS released by the bacterial symbiont in vitro. The higher rates of shedding under modeled microgravity conditions are associated with increased production of outer-membrane vesicles (OMV), which has been previously correlated to flagellar motility. Mutants of V. fischeri defective in the production and rotation of their flagella show significant decreases in LPS shedding in all treatments, but levels of LPS are higher under modeled microgravity despite loss of motility. Modeled microgravity also appears to affect the outer-membrane integrity of V. fischeri, as cells incubated under modeled microgravity conditions are more susceptible to cell-membrane-disrupting agents. These results suggest that, like their animal hosts, the physiology of symbiotic microbes can be altered under microgravity-like conditions, which may have important implications for host health during spaceflight.
低重力或微重力会对动物的生理机能产生显著影响,但其对相关微生物群落的影响尚不清楚。在此,我们使用高纵横比容器研究了模拟微重力对共生细菌费氏弧菌革兰氏阴性脂多糖(LPS)释放的影响。已知费氏弧菌的LPS会在其共生组织内诱导发育性细胞凋亡,在模拟微重力条件下这种凋亡会加速。在本研究中,我们提供证据表明,体外暴露于模拟微重力会增加细菌共生体释放的LPS量。模拟微重力条件下更高的释放率与外膜囊泡(OMV)产量增加有关,此前已将其与鞭毛运动性联系起来。费氏弧菌中鞭毛产生和旋转有缺陷的突变体在所有处理中LPS释放均显著减少,但尽管失去运动性,模拟微重力条件下LPS水平仍较高。模拟微重力似乎还会影响费氏弧菌的外膜完整性,因为在模拟微重力条件下培养的细胞对细胞膜破坏剂更敏感。这些结果表明,与它们的动物宿主一样,共生微生物在微重力样条件下的生理机能可能会发生改变,这可能对太空飞行期间的宿主健康具有重要意义。