Abhishek D. Kancherla, Lijun Liu, Logan Tillery, Roger Shek, Justin K. Craig, Alexandra J. Machen, Steve Seibold, Kevin P. Battaile, Selma Fradi, Lynn K. Barrett, Sandhya Subramanian, Peter Myler, Wesley C. Van Voorhis, Scott Lovell
{"title":"肺炎克雷伯氏菌中 NAD(P)H 硝基还原酶的晶体结构。","authors":"Abhishek D. Kancherla, Lijun Liu, Logan Tillery, Roger Shek, Justin K. Craig, Alexandra J. Machen, Steve Seibold, Kevin P. Battaile, Selma Fradi, Lynn K. Barrett, Sandhya Subramanian, Peter Myler, Wesley C. Van Voorhis, Scott Lovell","doi":"10.1107/S2053230X24006472","DOIUrl":null,"url":null,"abstract":"<p><i>Klebsiella pneumoniae</i> (<i>Kp</i>) is an infectious disease pathogen that poses a significant global health threat due to its potential to cause severe infections and its tendency to exhibit multidrug resistance. Understanding the enzymatic mechanisms of the oxygen-insensitive nitroreductases (<i>Kp</i>-NRs) from <i>Kp</i> is crucial for the development of effective nitrofuran drugs, such as nitrofurantoin, that can be activated as antibiotics. In this paper, three crystal structures of two <i>Kp</i>-NRs (PDB entries 7tmf/7tmg and 8dor) are presented, and an analysis of their crystal structures and their flavin mononucleotide (FMN)-binding mode is provided. The structures with PDB codes 7tmf (<i>Kp</i>-NR1a), 7tmg (<i>Kp</i>-NR1b) and 8dor (<i>Kp</i>-NR2) were determined at resolutions of 1.97, 1.90 and 1.35 Å, respectively. The <i>Kp</i>-NR1a and <i>Kp</i>-NR1b structures adopt an αβ fold, in which four-stranded antiparallel β-sheets are surrounded by five helices. With domain swapping, the β-sheet was expanded with a β-strand from the other molecule of the dimer. The difference between the structures lies in the loop spanning Leu173–Ala185: in <i>Kp</i>-NR1a the loop is disordered, whereas the loop adopts multiple conformations in <i>Kp</i>-NR1b. The FMN interactions within <i>Kp</i>-NR1/NR2 involve hydrogen-bond and π-stacking interactions. <i>Kp</i>-NR2 contains four-stranded antiparallel β-sheets surrounded by eight helices with two short helices and one β-sheet. Structural and sequence alignments show that <i>Kp</i>-NR1a/b and <i>Kp</i>-NR2 are homologs of the <i>Escherichia coli</i> oxygen-insensitive NRs YdjA and NfnB and of <i>Enterobacter cloacae</i> NR, respectively. By homology inference from <i>E. coli</i>, <i>Kp</i>-NR1a/b and <i>Kp</i>-NR2 may detoxify polynitroaromatic compounds and <i>Kp</i>-NR2 may activate nitrofuran drugs to cause bactericidal activity through a ping-pong bi-bi mechanism, respectively.</p>","PeriodicalId":7029,"journal":{"name":"Acta crystallographica. 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Understanding the enzymatic mechanisms of the oxygen-insensitive nitroreductases (<i>Kp</i>-NRs) from <i>Kp</i> is crucial for the development of effective nitrofuran drugs, such as nitrofurantoin, that can be activated as antibiotics. In this paper, three crystal structures of two <i>Kp</i>-NRs (PDB entries 7tmf/7tmg and 8dor) are presented, and an analysis of their crystal structures and their flavin mononucleotide (FMN)-binding mode is provided. The structures with PDB codes 7tmf (<i>Kp</i>-NR1a), 7tmg (<i>Kp</i>-NR1b) and 8dor (<i>Kp</i>-NR2) were determined at resolutions of 1.97, 1.90 and 1.35 Å, respectively. The <i>Kp</i>-NR1a and <i>Kp</i>-NR1b structures adopt an αβ fold, in which four-stranded antiparallel β-sheets are surrounded by five helices. With domain swapping, the β-sheet was expanded with a β-strand from the other molecule of the dimer. The difference between the structures lies in the loop spanning Leu173–Ala185: in <i>Kp</i>-NR1a the loop is disordered, whereas the loop adopts multiple conformations in <i>Kp</i>-NR1b. The FMN interactions within <i>Kp</i>-NR1/NR2 involve hydrogen-bond and π-stacking interactions. <i>Kp</i>-NR2 contains four-stranded antiparallel β-sheets surrounded by eight helices with two short helices and one β-sheet. Structural and sequence alignments show that <i>Kp</i>-NR1a/b and <i>Kp</i>-NR2 are homologs of the <i>Escherichia coli</i> oxygen-insensitive NRs YdjA and NfnB and of <i>Enterobacter cloacae</i> NR, respectively. By homology inference from <i>E. coli</i>, <i>Kp</i>-NR1a/b and <i>Kp</i>-NR2 may detoxify polynitroaromatic compounds and <i>Kp</i>-NR2 may activate nitrofuran drugs to cause bactericidal activity through a ping-pong bi-bi mechanism, respectively.</p>\",\"PeriodicalId\":7029,\"journal\":{\"name\":\"Acta crystallographica. 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Crystal structures of NAD(P)H nitroreductases from Klebsiella pneumoniae
Klebsiella pneumoniae (Kp) is an infectious disease pathogen that poses a significant global health threat due to its potential to cause severe infections and its tendency to exhibit multidrug resistance. Understanding the enzymatic mechanisms of the oxygen-insensitive nitroreductases (Kp-NRs) from Kp is crucial for the development of effective nitrofuran drugs, such as nitrofurantoin, that can be activated as antibiotics. In this paper, three crystal structures of two Kp-NRs (PDB entries 7tmf/7tmg and 8dor) are presented, and an analysis of their crystal structures and their flavin mononucleotide (FMN)-binding mode is provided. The structures with PDB codes 7tmf (Kp-NR1a), 7tmg (Kp-NR1b) and 8dor (Kp-NR2) were determined at resolutions of 1.97, 1.90 and 1.35 Å, respectively. The Kp-NR1a and Kp-NR1b structures adopt an αβ fold, in which four-stranded antiparallel β-sheets are surrounded by five helices. With domain swapping, the β-sheet was expanded with a β-strand from the other molecule of the dimer. The difference between the structures lies in the loop spanning Leu173–Ala185: in Kp-NR1a the loop is disordered, whereas the loop adopts multiple conformations in Kp-NR1b. The FMN interactions within Kp-NR1/NR2 involve hydrogen-bond and π-stacking interactions. Kp-NR2 contains four-stranded antiparallel β-sheets surrounded by eight helices with two short helices and one β-sheet. Structural and sequence alignments show that Kp-NR1a/b and Kp-NR2 are homologs of the Escherichia coli oxygen-insensitive NRs YdjA and NfnB and of Enterobacter cloacae NR, respectively. By homology inference from E. coli, Kp-NR1a/b and Kp-NR2 may detoxify polynitroaromatic compounds and Kp-NR2 may activate nitrofuran drugs to cause bactericidal activity through a ping-pong bi-bi mechanism, respectively.
期刊介绍:
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