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培养基离子组成控制沙门氏菌在太空飞行中的调节和毒力反应。

Media ion composition controls regulatory and virulence response of Salmonella in spaceflight.

作者信息

Wilson James W, Ott C Mark, Quick Laura, Davis Richard, Höner zu Bentrup Kerstin, Crabbé Aurélie, Richter Emily, Sarker Shameema, Barrila Jennifer, Porwollik Steffen, Cheng Pui, McClelland Michael, Tsaprailis George, Radabaugh Timothy, Hunt Andrea, Shah Miti, Nelman-Gonzalez Mayra, Hing Steve, Parra Macarena, Dumars Paula, Norwood Kelly, Bober Ramona, Devich Jennifer, Ruggles Ashleigh, CdeBaca Autumn, Narayan Satro, Benjamin Joseph, Goulart Carla, Rupert Mark, Catella Luke, Schurr Michael J, Buchanan Kent, Morici Lisa, McCracken James, Porter Marc D, Pierson Duane L, Smith Scott M, Mergeay Max, Leys Natalie, Stefanyshyn-Piper Heidemarie M, Gorie Dominic, Nickerson Cheryl A

机构信息

The Biodesign Institute, Center for Infectious Diseases and Vaccinology, Arizona State University, Tempe, Arizona, United States of America.

出版信息

PLoS One. 2008;3(12):e3923. doi: 10.1371/journal.pone.0003923. Epub 2008 Dec 12.

Abstract

The spaceflight environment is relevant to conditions encountered by pathogens during the course of infection and induces novel changes in microbial pathogenesis not observed using conventional methods. It is unclear how microbial cells sense spaceflight-associated changes to their growth environment and orchestrate corresponding changes in molecular and physiological phenotypes relevant to the infection process. Here we report that spaceflight-induced increases in Salmonella virulence are regulated by media ion composition, and that phosphate ion is sufficient to alter related pathogenesis responses in a spaceflight analogue model. Using whole genome microarray and proteomic analyses from two independent Space Shuttle missions, we identified evolutionarily conserved molecular pathways in Salmonella that respond to spaceflight under all media compositions tested. Identification of conserved regulatory paradigms opens new avenues to control microbial responses during the infection process and holds promise to provide an improved understanding of human health and disease on Earth.

摘要

太空飞行环境与病原体在感染过程中遇到的情况相关,并会引发微生物发病机制中一些用传统方法未观察到的新变化。目前尚不清楚微生物细胞如何感知与太空飞行相关的生长环境变化,并协调与感染过程相关的分子和生理表型的相应变化。在此,我们报告称,太空飞行诱导的沙门氏菌毒力增加受培养基离子组成的调节,并且磷酸根离子足以在太空飞行模拟模型中改变相关的发病机制反应。通过对两次独立航天飞机任务进行全基因组微阵列和蛋白质组分析,我们在沙门氏菌中鉴定出了在所有测试培养基组成下对太空飞行有反应的进化保守分子途径。鉴定出保守的调控模式为控制感染过程中的微生物反应开辟了新途径,有望增进我们对地球上人类健康和疾病的理解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/377d/2592540/d7578c695354/pone.0003923.g001.jpg

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