Ligand cross-feeding resolves bacterial vitamin B12 auxotrophies
Cobalamin (vitamin B 12 , herein referred to as B 12 ) is an essential cofactor for most marine prokaryotes and eukaryotes 1 , 2 . Synthesized by a limited number of prokaryotes, its scarcity affects microbial interactions and community dynamics 2 – 4 . Here we show that two bacterial B 12 auxotroph...
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| Vydané v: | Nature (London) Ročník 629; číslo 8013; s. 886 - 892 |
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| Hlavní autori: | , , , , , , , , |
| Médium: | Journal Article |
| Jazyk: | English |
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London
Nature Publishing Group UK
23.05.2024
Nature Publishing Group |
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| ISSN: | 0028-0836, 1476-4687, 1476-4687 |
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| Abstract | Cobalamin (vitamin B
12
, herein referred to as B
12
) is an essential cofactor for most marine prokaryotes and eukaryotes
1
,
2
. Synthesized by a limited number of prokaryotes, its scarcity affects microbial interactions and community dynamics
2
–
4
. Here we show that two bacterial B
12
auxotrophs can salvage different B
12
building blocks and cooperate to synthesize B
12
. A
Colwellia
sp. synthesizes and releases the activated lower ligand α-ribazole, which is used by another B
12
auxotroph, a
Roseovarius
sp., to produce the corrin ring and synthesize B
12
. Release of B
12
by
Roseovarius
sp. happens only in co-culture with
Colwellia
sp. and only coincidently with the induction of a prophage encoded in
Roseovarius
sp. Subsequent growth of
Colwellia
sp. in these conditions may be due to the provision of B
12
by lysed cells of
Roseovarius
sp. Further evidence is required to support a causative role for prophage induction in the release of B
12
. These complex microbial interactions of ligand cross-feeding and joint B
12
biosynthesis seem to be widespread in marine pelagic ecosystems. In the western and northern tropical Atlantic Ocean, bacteria predicted to be capable of salvaging cobinamide and synthesizing only the activated lower ligand outnumber B
12
producers. These findings add new players to our understanding of B
12
supply to auxotrophic microorganisms in the ocean and possibly in other ecosystems.
Two species of auxotrophic marine bacteria are shown to share precursors to synthesize the essential cofactor vitamin B
12
, and such ligand cross-feeding may be a common phenomenon in the ocean and other ecosystems. |
|---|---|
| AbstractList | Cobalamin (vitamin B
12
, herein referred to as B
12
) is an essential cofactor for most marine prokaryotes and eukaryotes
1
,
2
. Synthesized by a limited number of prokaryotes, its scarcity affects microbial interactions and community dynamics
2
–
4
. Here we show that two bacterial B
12
auxotrophs can salvage different B
12
building blocks and cooperate to synthesize B
12
. A
Colwellia
sp. synthesizes and releases the activated lower ligand α-ribazole, which is used by another B
12
auxotroph, a
Roseovarius
sp., to produce the corrin ring and synthesize B
12
. Release of B
12
by
Roseovarius
sp. happens only in co-culture with
Colwellia
sp. and only coincidently with the induction of a prophage encoded in
Roseovarius
sp. Subsequent growth of
Colwellia
sp. in these conditions may be due to the provision of B
12
by lysed cells of
Roseovarius
sp. Further evidence is required to support a causative role for prophage induction in the release of B
12
. These complex microbial interactions of ligand cross-feeding and joint B
12
biosynthesis seem to be widespread in marine pelagic ecosystems. In the western and northern tropical Atlantic Ocean, bacteria predicted to be capable of salvaging cobinamide and synthesizing only the activated lower ligand outnumber B
12
producers. These findings add new players to our understanding of B
12
supply to auxotrophic microorganisms in the ocean and possibly in other ecosystems.
Two species of auxotrophic marine bacteria are shown to share precursors to synthesize the essential cofactor vitamin B
12
, and such ligand cross-feeding may be a common phenomenon in the ocean and other ecosystems. Cobalamin (vitamin B12, herein referred to as B12) is an essential cofactor for most marine prokaryotes and eukaryotes1,2. Synthesized by a limited number of prokaryotes, its scarcity affects microbial interactions and community dynamics2-4. Here we show that two bacterial B12 auxotrophs can salvage different B12 building blocks and cooperate to synthesize B12. A Colwellia sp. synthesizes and releases the activated lower ligand α-ribazole, which is used by another B12 auxotroph, a Roseovarius sp., to produce the corrin ring and synthesize B12. Release of B12 by Roseovarius sp. happens only in co-culture with Colwellia sp. and only coincidently with the induction of a prophage encoded in Roseovarius sp. Subsequent growth of Colwellia sp. in these conditions may be due to the provision of B12 by lysed cells of Roseovarius sp. Further evidence is required to support a causative role for prophage induction in the release of B12. These complex microbial interactions of ligand cross-feeding and joint B12 biosynthesis seem to be widespread in marine pelagic ecosystems. In the western and northern tropical Atlantic Ocean, bacteria predicted to be capable of salvaging cobinamide and synthesizing only the activated lower ligand outnumber B12 producers. These findings add new players to our understanding of B12 supply to auxotrophic microorganisms in the ocean and possibly in other ecosystems.Cobalamin (vitamin B12, herein referred to as B12) is an essential cofactor for most marine prokaryotes and eukaryotes1,2. Synthesized by a limited number of prokaryotes, its scarcity affects microbial interactions and community dynamics2-4. Here we show that two bacterial B12 auxotrophs can salvage different B12 building blocks and cooperate to synthesize B12. A Colwellia sp. synthesizes and releases the activated lower ligand α-ribazole, which is used by another B12 auxotroph, a Roseovarius sp., to produce the corrin ring and synthesize B12. Release of B12 by Roseovarius sp. happens only in co-culture with Colwellia sp. and only coincidently with the induction of a prophage encoded in Roseovarius sp. Subsequent growth of Colwellia sp. in these conditions may be due to the provision of B12 by lysed cells of Roseovarius sp. Further evidence is required to support a causative role for prophage induction in the release of B12. These complex microbial interactions of ligand cross-feeding and joint B12 biosynthesis seem to be widespread in marine pelagic ecosystems. In the western and northern tropical Atlantic Ocean, bacteria predicted to be capable of salvaging cobinamide and synthesizing only the activated lower ligand outnumber B12 producers. These findings add new players to our understanding of B12 supply to auxotrophic microorganisms in the ocean and possibly in other ecosystems. Cobalamin (vitamin B12, herein referred to as B12) is an essential cofactor for most marine prokaryotes and eukaryotes1,2. Synthesized by a limited number of prokaryotes, its scarcity affects microbial interactions and community dynamics2 4. Here we show that two bacterial B12 auxotrophs can salvage different B12 building blocks and cooperate to synthesize B12. A Colivellia sp. synthesizes and releases the activated lower ligand a-ribazole, which is used by another B12 auxotroph, a Roseouarius sp., to produce the corrin ring and synthesize B12. Release of B12 by Roseouarius sp. happens only in co-culture with Colivellia sp. and only coincidently with the induction of a prophage encoded in Roseouarius sp. Subsequent growth of Colivellia sp. in these conditions may be due to the provision of B12 by lysed cells of Roseouarius sp. Further evidence is required to support a causative role for prophage induction in the release of B12. These complex microbial interactions of ligand cross-feeding and joint B12 biosynthesis seem to be widespread in marine pelagic ecosystems. In the western and northern tropical Atlantic Ocean, bacteria predicted to be capable of salvaging cobinamide and synthesizing only the activated lower ligand outnumber B12 producers. These findings add new players to our understanding of B12 supply to auxotrophic microorganisms in the ocean and possibly in other ecosystems. |
| Author | Wienhausen, Gerrit Sultana, Sabiha Bruns, Stefan Wilkes, Heinz Azam, Farooq Simon, Meinhard Dlugosch, Leon Moraru, Cristina Tran, Den Quoc |
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| Copyright | The Author(s), under exclusive licence to Springer Nature Limited 2024. Springer Nature or its licensor (e.g. a society or other partner) holds exclusive rights to this article under a publishing agreement with the author(s) or other rightsholder(s); author self-archiving of the accepted manuscript version of this article is solely governed by the terms of such publishing agreement and applicable law. Copyright Nature Publishing Group May 23, 2024 2024. The Author(s), under exclusive licence to Springer Nature Limited. |
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,
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| Title | Ligand cross-feeding resolves bacterial vitamin B12 auxotrophies |
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