Lethal Consequences of Overcoming Metabolic Restrictions Imposed on a Cooperative Bacterial Population
Quorum sensing (QS) controls cooperative activities in many Proteobacteria. In some species, QS-dependent specific metabolism contributes to the stability of the cooperation. However, the mechanism by which QS and metabolic networks have coevolved to support stable public good cooperation and mainte...
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2017-02-01
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doaj-d07c8db31c0047d7a54da049974964182021-07-02T05:51:19ZengAmerican Society for MicrobiologymBio2150-75112017-02-0181e00042-1710.1128/mBio.00042-17Lethal Consequences of Overcoming Metabolic Restrictions Imposed on a Cooperative Bacterial PopulationEunhye GooYongsung KangJae Yun LimHyeonheui HamIngyu HwangSteven E. LindowQuorum sensing (QS) controls cooperative activities in many Proteobacteria. In some species, QS-dependent specific metabolism contributes to the stability of the cooperation. However, the mechanism by which QS and metabolic networks have coevolved to support stable public good cooperation and maintenance of the cooperative group remains unknown. Here we explored the underlying mechanisms of QS-controlled central metabolism in the evolutionary aspects of cooperation. In Burkholderia glumae, the QS-dependent glyoxylate cycle plays an important role in cooperativity. A bifunctional QS-dependent transcriptional regulator, QsmR, rewired central metabolism to utilize the glyoxylate cycle rather than the tricarboxylic acid cycle. Defects in the glyoxylate cycle caused metabolic imbalance and triggered high expression of the stress-responsive chaperonin GroEL. High-level expression of GroEL in glyoxylate cycle mutants interfered with the biosynthesis of a public resource, oxalate, by physically interrupting the oxalate biosynthetic enzyme ObcA. Under such destabilized cooperativity conditions, spontaneous mutations in the qsmR gene in glyoxylate cycle mutants occurred to relieve metabolic stresses, but these mutants lost QsmR-mediated pleiotropy. Overcoming the metabolic restrictions imposed on the population of cooperators among glyoxylate cycle mutants resulted in the occurrence and selection of spontaneous qsmR mutants despite the loss of other important functions. These results provide insight into how QS bacteria have evolved to maintain stable cooperation via QS-mediated metabolic coordination.http://mbio.asm.org/cgi/content/full/8/1/e00042-17 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Eunhye Goo Yongsung Kang Jae Yun Lim Hyeonheui Ham Ingyu Hwang Steven E. Lindow |
spellingShingle |
Eunhye Goo Yongsung Kang Jae Yun Lim Hyeonheui Ham Ingyu Hwang Steven E. Lindow Lethal Consequences of Overcoming Metabolic Restrictions Imposed on a Cooperative Bacterial Population mBio |
author_facet |
Eunhye Goo Yongsung Kang Jae Yun Lim Hyeonheui Ham Ingyu Hwang Steven E. Lindow |
author_sort |
Eunhye Goo |
title |
Lethal Consequences of Overcoming Metabolic Restrictions Imposed on a Cooperative Bacterial Population |
title_short |
Lethal Consequences of Overcoming Metabolic Restrictions Imposed on a Cooperative Bacterial Population |
title_full |
Lethal Consequences of Overcoming Metabolic Restrictions Imposed on a Cooperative Bacterial Population |
title_fullStr |
Lethal Consequences of Overcoming Metabolic Restrictions Imposed on a Cooperative Bacterial Population |
title_full_unstemmed |
Lethal Consequences of Overcoming Metabolic Restrictions Imposed on a Cooperative Bacterial Population |
title_sort |
lethal consequences of overcoming metabolic restrictions imposed on a cooperative bacterial population |
publisher |
American Society for Microbiology |
series |
mBio |
issn |
2150-7511 |
publishDate |
2017-02-01 |
description |
Quorum sensing (QS) controls cooperative activities in many Proteobacteria. In some species, QS-dependent specific metabolism contributes to the stability of the cooperation. However, the mechanism by which QS and metabolic networks have coevolved to support stable public good cooperation and maintenance of the cooperative group remains unknown. Here we explored the underlying mechanisms of QS-controlled central metabolism in the evolutionary aspects of cooperation. In Burkholderia glumae, the QS-dependent glyoxylate cycle plays an important role in cooperativity. A bifunctional QS-dependent transcriptional regulator, QsmR, rewired central metabolism to utilize the glyoxylate cycle rather than the tricarboxylic acid cycle. Defects in the glyoxylate cycle caused metabolic imbalance and triggered high expression of the stress-responsive chaperonin GroEL. High-level expression of GroEL in glyoxylate cycle mutants interfered with the biosynthesis of a public resource, oxalate, by physically interrupting the oxalate biosynthetic enzyme ObcA. Under such destabilized cooperativity conditions, spontaneous mutations in the qsmR gene in glyoxylate cycle mutants occurred to relieve metabolic stresses, but these mutants lost QsmR-mediated pleiotropy. Overcoming the metabolic restrictions imposed on the population of cooperators among glyoxylate cycle mutants resulted in the occurrence and selection of spontaneous qsmR mutants despite the loss of other important functions. These results provide insight into how QS bacteria have evolved to maintain stable cooperation via QS-mediated metabolic coordination. |
url |
http://mbio.asm.org/cgi/content/full/8/1/e00042-17 |
work_keys_str_mv |
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