NolR: Difference between revisions
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<span style="font-size:160%"><b>Structural basis for regulation of rhizobial nodulation and symbiosis gene expression by the regulatory protein NolR </b></span> | <span style="font-size:160%"><b>Structural basis for regulation of rhizobial nodulation and symbiosis gene expression by the regulatory protein NolR (BI3323-Aug2025)</b></span> | ||
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==Structure Tour== | ==Structure Tour== | ||
<StructureSection load='4omz' size='350' side='right' caption='Crystal Structure of NolR from Sinorhizobium fredii (PDB entry [[4omz]])' scene=''> | <StructureSection load='4omz' size='350' side='right' caption='Crystal Structure of NolR from Sinorhizobium fredii complex with phosphate (PDB entry [[4omz]])' scene=''> | ||
===Abstract=== | ===Abstract=== | ||
The symbiosis between rhizobial bacteria and leguminous plants is a critical ecological process leading to nitrogen fixation. This process is tightly regulated by a series of ''nod'' genes. '''NolR''' is a global regulatory protein (transcription factor) conserved across ''Sinorhizobium'' and ''Rhizobium'' species that represses these nodulation genes to optimize symbiosis. This paper presents the crystal structures of NolR in both unliganded and DNA-bound forms, revealing an asymmetric binding mechanism and a specific conformational switch that allows the protein to recognize variable DNA sequences. | The symbiosis between rhizobial bacteria and leguminous plants is a critical ecological process leading to nitrogen fixation. This process is tightly regulated by a series of ''nod'' genes. '''NolR''' is a global regulatory protein (transcription factor) conserved across ''Sinorhizobium'' and ''Rhizobium'' species that represses these nodulation genes to optimize symbiosis. This paper presents the crystal structures of NolR in both unliganded and DNA-bound forms, revealing an asymmetric binding mechanism and a specific conformational switch that allows the protein to recognize variable DNA sequences. | ||
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* '''Consensus Binding (Oligo AT):''' In the first half-site, '''Gln56''' hydrogen bonds with Adenine 2. However, in the second half-site, the Gln56 side chain flips away from Thymine 7'. | * '''Consensus Binding (Oligo AT):''' In the first half-site, '''Gln56''' hydrogen bonds with Adenine 2. However, in the second half-site, the Gln56 side chain flips away from Thymine 7'. | ||
* '''Variable Binding (Oligo AA):''' When bound to the Oligo AA sequence (where T7' is replaced by A7'), '''Gln56''' undergoes a conformational switch. It rotates to form a hydrogen bond with the new Adenine base. | * '''Variable Binding (Oligo AA):''' When bound to the Oligo AA sequence (where T7' is replaced by A7'), '''Gln56''' undergoes a conformational switch. It rotates to form a hydrogen bond with the new Adenine base. | ||
===3D structures of NolR=== | |||
Updated on {{REVISIONDAY2}}-{{MONTHNAME|{{REVISIONMONTH}}}}-{{REVISIONYEAR}} | |||
[[4omz]] – SfNolR – ''Sinorhibozium fredii''<br /> | |||
[[4omy]], [[4on0]] – SfNolR + DNA | |||
===References=== | ===References=== | ||
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</StructureSection> | </StructureSection> | ||
[[Category:Topic Page]] | |||
Latest revision as of 07:22, 2 July 2026
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Structural basis for regulation of rhizobial nodulation and symbiosis gene expression by the regulatory protein NolR (BI3323-Aug2025) | |
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Paul C. Rosen, Samantha M. Horwitz, Daniel J. Brooks, Erica Kim, Joseph A. Ambarian, Lidia Waidmann, Katherine M. Davis and Gary Yellen PNAS, March 6, 2025, Vol. 122 No. 10 e2426324122, [1] |
Structure Tour
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