Distribution and Diversity of Rhodopsin-Producing Microbes in the Chesapeake Bay [Environmental Microbiology]

Maresca, J. A., Miller, K. J., Keffer, J. L., Sabanayagam, C. R., Campbell, B. J.
The American Society for Microbiology (ASM)
Published 2018
Publication Date:
2018-06-19
Publisher:
The American Society for Microbiology (ASM)
Print ISSN:
0099-2240
Electronic ISSN:
1098-5336
Topics:
Biology
Published by:
_version_ 1836398978687565824
autor Maresca, J. A., Miller, K. J., Keffer, J. L., Sabanayagam, C. R., Campbell, B. J.
beschreibung Although sunlight is an abundant source of energy in surface environments, less than 0.5% of the available photons are captured by (bacterio)chlorophyll-dependent photosynthesis in plants and bacteria. Metagenomic data indicate that 30 to 60% of the bacterial genomes in some environments encode rhodopsins, retinal-based photosystems found in heterotrophs, suggesting that sunlight may provide energy for more life than previously suspected. However, quantitative data on the number of cells that produce rhodopsins in environmental systems are limited. Here, we use total internal reflection fluorescence microscopy to show that the number of free-living microbes that produce rhodopsins increases along the salinity gradient in the Chesapeake Bay. We correlate this functional data with environmental data to show that rhodopsin abundance is positively correlated with salinity and with indicators of active heterotrophy during the day. Metagenomic and metatranscriptomic data suggest that the microbial rhodopsins in the low-salinity samples are primarily found in Actinobacteria and Bacteroidetes , while those in the high-salinity samples are associated with SAR-11 type Alphaproteobacteria . IMPORTANCE Microbial rhodopsins are common light-activated ion pumps in heterotrophs, and previous work has proposed that heterotrophic microbes use them to conserve energy when organic carbon is limiting. If this hypothesis is correct, rhodopsin-producing cells should be most abundant where nutrients are most limited. Our results indicate that in the Chesapeake Bay, rhodopsin gene abundance is correlated with salinity, and functional rhodopsin production is correlated with nitrate, bacterial production, and chlorophyll a . We propose that in this environment, where carbon and nitrogen are likely not limiting, heterotrophs do not need to use rhodopsins to supplement ATP synthesis. Rather, the light-generated proton motive force in nutrient-rich environments could be used to power energy-dependent membrane-associated processes, such as active transport of organic carbon and cofactors, enabling these organisms to more efficiently utilize exudates from primary producers.
citation_standardnr 6286397
datenlieferant ipn_articles
feed_id 516
feed_publisher The American Society for Microbiology (ASM)
feed_publisher_url http://www.asm.org/
insertion_date 2018-06-19
journaleissn 1098-5336
journalissn 0099-2240
publikationsjahr_anzeige 2018
publikationsjahr_facette 2018
publikationsjahr_intervall 7984:2015-2019
publikationsjahr_sort 2018
publisher The American Society for Microbiology (ASM)
quelle Applied and Environmental Microbiology
relation http://aem.asm.org/cgi/content/short/84/13/e00137-18?rss=1
search_space articles
shingle_author_1 Maresca, J. A., Miller, K. J., Keffer, J. L., Sabanayagam, C. R., Campbell, B. J.
shingle_author_2 Maresca, J. A., Miller, K. J., Keffer, J. L., Sabanayagam, C. R., Campbell, B. J.
shingle_author_3 Maresca, J. A., Miller, K. J., Keffer, J. L., Sabanayagam, C. R., Campbell, B. J.
shingle_author_4 Maresca, J. A., Miller, K. J., Keffer, J. L., Sabanayagam, C. R., Campbell, B. J.
shingle_catch_all_1 Distribution and Diversity of Rhodopsin-Producing Microbes in the Chesapeake Bay [Environmental Microbiology]
Although sunlight is an abundant source of energy in surface environments, less than 0.5% of the available photons are captured by (bacterio)chlorophyll-dependent photosynthesis in plants and bacteria. Metagenomic data indicate that 30 to 60% of the bacterial genomes in some environments encode rhodopsins, retinal-based photosystems found in heterotrophs, suggesting that sunlight may provide energy for more life than previously suspected. However, quantitative data on the number of cells that produce rhodopsins in environmental systems are limited. Here, we use total internal reflection fluorescence microscopy to show that the number of free-living microbes that produce rhodopsins increases along the salinity gradient in the Chesapeake Bay. We correlate this functional data with environmental data to show that rhodopsin abundance is positively correlated with salinity and with indicators of active heterotrophy during the day. Metagenomic and metatranscriptomic data suggest that the microbial rhodopsins in the low-salinity samples are primarily found in Actinobacteria and Bacteroidetes , while those in the high-salinity samples are associated with SAR-11 type Alphaproteobacteria . IMPORTANCE Microbial rhodopsins are common light-activated ion pumps in heterotrophs, and previous work has proposed that heterotrophic microbes use them to conserve energy when organic carbon is limiting. If this hypothesis is correct, rhodopsin-producing cells should be most abundant where nutrients are most limited. Our results indicate that in the Chesapeake Bay, rhodopsin gene abundance is correlated with salinity, and functional rhodopsin production is correlated with nitrate, bacterial production, and chlorophyll a . We propose that in this environment, where carbon and nitrogen are likely not limiting, heterotrophs do not need to use rhodopsins to supplement ATP synthesis. Rather, the light-generated proton motive force in nutrient-rich environments could be used to power energy-dependent membrane-associated processes, such as active transport of organic carbon and cofactors, enabling these organisms to more efficiently utilize exudates from primary producers.
Maresca, J. A., Miller, K. J., Keffer, J. L., Sabanayagam, C. R., Campbell, B. J.
The American Society for Microbiology (ASM)
0099-2240
00992240
1098-5336
10985336
shingle_catch_all_2 Distribution and Diversity of Rhodopsin-Producing Microbes in the Chesapeake Bay [Environmental Microbiology]
Although sunlight is an abundant source of energy in surface environments, less than 0.5% of the available photons are captured by (bacterio)chlorophyll-dependent photosynthesis in plants and bacteria. Metagenomic data indicate that 30 to 60% of the bacterial genomes in some environments encode rhodopsins, retinal-based photosystems found in heterotrophs, suggesting that sunlight may provide energy for more life than previously suspected. However, quantitative data on the number of cells that produce rhodopsins in environmental systems are limited. Here, we use total internal reflection fluorescence microscopy to show that the number of free-living microbes that produce rhodopsins increases along the salinity gradient in the Chesapeake Bay. We correlate this functional data with environmental data to show that rhodopsin abundance is positively correlated with salinity and with indicators of active heterotrophy during the day. Metagenomic and metatranscriptomic data suggest that the microbial rhodopsins in the low-salinity samples are primarily found in Actinobacteria and Bacteroidetes , while those in the high-salinity samples are associated with SAR-11 type Alphaproteobacteria . IMPORTANCE Microbial rhodopsins are common light-activated ion pumps in heterotrophs, and previous work has proposed that heterotrophic microbes use them to conserve energy when organic carbon is limiting. If this hypothesis is correct, rhodopsin-producing cells should be most abundant where nutrients are most limited. Our results indicate that in the Chesapeake Bay, rhodopsin gene abundance is correlated with salinity, and functional rhodopsin production is correlated with nitrate, bacterial production, and chlorophyll a . We propose that in this environment, where carbon and nitrogen are likely not limiting, heterotrophs do not need to use rhodopsins to supplement ATP synthesis. Rather, the light-generated proton motive force in nutrient-rich environments could be used to power energy-dependent membrane-associated processes, such as active transport of organic carbon and cofactors, enabling these organisms to more efficiently utilize exudates from primary producers.
Maresca, J. A., Miller, K. J., Keffer, J. L., Sabanayagam, C. R., Campbell, B. J.
The American Society for Microbiology (ASM)
0099-2240
00992240
1098-5336
10985336
shingle_catch_all_3 Distribution and Diversity of Rhodopsin-Producing Microbes in the Chesapeake Bay [Environmental Microbiology]
Although sunlight is an abundant source of energy in surface environments, less than 0.5% of the available photons are captured by (bacterio)chlorophyll-dependent photosynthesis in plants and bacteria. Metagenomic data indicate that 30 to 60% of the bacterial genomes in some environments encode rhodopsins, retinal-based photosystems found in heterotrophs, suggesting that sunlight may provide energy for more life than previously suspected. However, quantitative data on the number of cells that produce rhodopsins in environmental systems are limited. Here, we use total internal reflection fluorescence microscopy to show that the number of free-living microbes that produce rhodopsins increases along the salinity gradient in the Chesapeake Bay. We correlate this functional data with environmental data to show that rhodopsin abundance is positively correlated with salinity and with indicators of active heterotrophy during the day. Metagenomic and metatranscriptomic data suggest that the microbial rhodopsins in the low-salinity samples are primarily found in Actinobacteria and Bacteroidetes , while those in the high-salinity samples are associated with SAR-11 type Alphaproteobacteria . IMPORTANCE Microbial rhodopsins are common light-activated ion pumps in heterotrophs, and previous work has proposed that heterotrophic microbes use them to conserve energy when organic carbon is limiting. If this hypothesis is correct, rhodopsin-producing cells should be most abundant where nutrients are most limited. Our results indicate that in the Chesapeake Bay, rhodopsin gene abundance is correlated with salinity, and functional rhodopsin production is correlated with nitrate, bacterial production, and chlorophyll a . We propose that in this environment, where carbon and nitrogen are likely not limiting, heterotrophs do not need to use rhodopsins to supplement ATP synthesis. Rather, the light-generated proton motive force in nutrient-rich environments could be used to power energy-dependent membrane-associated processes, such as active transport of organic carbon and cofactors, enabling these organisms to more efficiently utilize exudates from primary producers.
Maresca, J. A., Miller, K. J., Keffer, J. L., Sabanayagam, C. R., Campbell, B. J.
The American Society for Microbiology (ASM)
0099-2240
00992240
1098-5336
10985336
shingle_catch_all_4 Distribution and Diversity of Rhodopsin-Producing Microbes in the Chesapeake Bay [Environmental Microbiology]
Although sunlight is an abundant source of energy in surface environments, less than 0.5% of the available photons are captured by (bacterio)chlorophyll-dependent photosynthesis in plants and bacteria. Metagenomic data indicate that 30 to 60% of the bacterial genomes in some environments encode rhodopsins, retinal-based photosystems found in heterotrophs, suggesting that sunlight may provide energy for more life than previously suspected. However, quantitative data on the number of cells that produce rhodopsins in environmental systems are limited. Here, we use total internal reflection fluorescence microscopy to show that the number of free-living microbes that produce rhodopsins increases along the salinity gradient in the Chesapeake Bay. We correlate this functional data with environmental data to show that rhodopsin abundance is positively correlated with salinity and with indicators of active heterotrophy during the day. Metagenomic and metatranscriptomic data suggest that the microbial rhodopsins in the low-salinity samples are primarily found in Actinobacteria and Bacteroidetes , while those in the high-salinity samples are associated with SAR-11 type Alphaproteobacteria . IMPORTANCE Microbial rhodopsins are common light-activated ion pumps in heterotrophs, and previous work has proposed that heterotrophic microbes use them to conserve energy when organic carbon is limiting. If this hypothesis is correct, rhodopsin-producing cells should be most abundant where nutrients are most limited. Our results indicate that in the Chesapeake Bay, rhodopsin gene abundance is correlated with salinity, and functional rhodopsin production is correlated with nitrate, bacterial production, and chlorophyll a . We propose that in this environment, where carbon and nitrogen are likely not limiting, heterotrophs do not need to use rhodopsins to supplement ATP synthesis. Rather, the light-generated proton motive force in nutrient-rich environments could be used to power energy-dependent membrane-associated processes, such as active transport of organic carbon and cofactors, enabling these organisms to more efficiently utilize exudates from primary producers.
Maresca, J. A., Miller, K. J., Keffer, J. L., Sabanayagam, C. R., Campbell, B. J.
The American Society for Microbiology (ASM)
0099-2240
00992240
1098-5336
10985336
shingle_title_1 Distribution and Diversity of Rhodopsin-Producing Microbes in the Chesapeake Bay [Environmental Microbiology]
shingle_title_2 Distribution and Diversity of Rhodopsin-Producing Microbes in the Chesapeake Bay [Environmental Microbiology]
shingle_title_3 Distribution and Diversity of Rhodopsin-Producing Microbes in the Chesapeake Bay [Environmental Microbiology]
shingle_title_4 Distribution and Diversity of Rhodopsin-Producing Microbes in the Chesapeake Bay [Environmental Microbiology]
timestamp 2025-06-30T23:35:37.843Z
titel Distribution and Diversity of Rhodopsin-Producing Microbes in the Chesapeake Bay [Environmental Microbiology]
titel_suche Distribution and Diversity of Rhodopsin-Producing Microbes in the Chesapeake Bay [Environmental Microbiology]
topic W
uid ipn_articles_6286397