Literature DB >> 24928505

Mechanistic insight into the enzymatic reduction of truncated hemoglobin N of Mycobacterium tuberculosis: role of the CD loop and pre-A motif in electron cycling.

Sandeep Singh1, Naveen Thakur1, Ana Oliveira2, Ariel A Petruk3, Mangesh Dattu Hade1, Deepti Sethi1, Axel Bidon-Chanal2, Marcelo A Martí3, Himani Datta1, Raman Parkesh1, Dario A Estrin3, F Javier Luque2, Kanak L Dikshit4.   

Abstract

Many pathogenic microorganisms have evolved hemoglobin-mediated nitric oxide (NO) detoxification mechanisms, where a globin domain in conjunction with a partner reductase catalyzes the conversion of toxic NO to innocuous nitrate. The truncated hemoglobin HbN of Mycobacterium tuberculosis displays a potent NO dioxygenase activity despite lacking a reductase domain. The mechanism by which HbN recycles itself during NO dioxygenation and the reductase that participates in this process are currently unknown. This study demonstrates that the NADH-ferredoxin/flavodoxin system is a fairly efficient partner for electron transfer to HbN with an observed reduction rate of 6.2 μM/min(-1), which is nearly 3- and 5-fold faster than reported for Vitreoscilla hemoglobin and myoglobin, respectively. Structural docking of the HbN with Escherichia coli NADH-flavodoxin reductase (FdR) together with site-directed mutagenesis revealed that the CD loop of the HbN forms contacts with the reductase, and that Gly(48) may have a vital role. The donor to acceptor electron coupling parameters calculated using the semiempirical pathway method amounts to an average of about 6.4 10(-5) eV, which is lower than the value obtained for E. coli flavoHb (8.0 10(-4) eV), but still supports the feasibility of an efficient electron transfer. The deletion of Pre-A abrogated the heme iron reduction by FdR in the HbN, thus signifying its involvement during intermolecular interactions of the HbN and FdR. The present study, thus, unravels a novel role of the CD loop and Pre-A motif in assisting the interactions of the HbN with the reductase and the electron cycling, which may be vital for its NO-scavenging function.
© 2014 by The American Society for Biochemistry and Molecular Biology, Inc.

Entities:  

Keywords:  Electron Transfer; Hemoglobin; Hemoglobin Myoglobin; Microbial Pathogenesis; Molecular Biology; Mycobacterium Tuberculosis; Nitric Oxide

Mesh:

Substances:

Year:  2014        PMID: 24928505      PMCID: PMC4118117          DOI: 10.1074/jbc.M114.578187

Source DB:  PubMed          Journal:  J Biol Chem        ISSN: 0021-9258            Impact factor:   5.157


  40 in total

1.  Electron-tunneling pathways in proteins.

Authors:  D N Beratan; J N Onuchic; J R Winkler; H B Gray
Journal:  Science       Date:  1992-12-11       Impact factor: 47.728

2.  Hemoglobins dioxygenate nitric oxide with high fidelity.

Authors:  Paul R Gardner; Anne M Gardner; Wayne T Brashear; Tomohiko Suzuki; Angela N Hvitved; Kenneth D R Setchell; John S Olson
Journal:  J Inorg Biochem       Date:  2006-01-24       Impact factor: 4.155

3.  Protein electron transfer rates set by the bridging secondary and tertiary structure.

Authors:  D N Beratan; J N Betts; J N Onuchic
Journal:  Science       Date:  1991-05-31       Impact factor: 47.728

4.  Ligand-induced dynamical regulation of NO conversion in Mycobacterium tuberculosis truncated hemoglobin-N.

Authors:  Axel Bidon-Chanal; Marcelo A Martí; Alejandro Crespo; Mario Milani; Modesto Orozco; Martino Bolognesi; F Javier Luque; Darío A Estrin
Journal:  Proteins       Date:  2006-08-01

5.  The three-dimensional structure of flavodoxin reductase from Escherichia coli at 1.7 A resolution.

Authors:  M Ingelman; V Bianchi; H Eklund
Journal:  J Mol Biol       Date:  1997-04-25       Impact factor: 5.469

Review 6.  Nitric oxide detoxification--a new era for bacterial globins in biotechnology?

Authors:  Alexander D Frey; Pauli T Kallio
Journal:  Trends Biotechnol       Date:  2005-02       Impact factor: 19.536

7.  Mechanism of NO-induced oxidation of myoglobin and hemoglobin.

Authors:  R F Eich; T Li; D D Lemon; D H Doherty; S R Curry; J F Aitken; A J Mathews; K A Johnson; R D Smith; G N Phillips; J S Olson
Journal:  Biochemistry       Date:  1996-06-04       Impact factor: 3.162

Review 8.  Nitric oxide dioxygenase function and mechanism of flavohemoglobin, hemoglobin, myoglobin and their associated reductases.

Authors:  Paul R Gardner
Journal:  J Inorg Biochem       Date:  2005-01       Impact factor: 4.155

9.  Oxidation of nitrogen oxides by bound dioxygen in hemoproteins.

Authors:  M P Doyle; J W Hoekstra
Journal:  J Inorg Biochem       Date:  1981-07       Impact factor: 4.155

10.  Reduction of methemoglobin by ferredoxin and ferredoxin-NADP reductase system.

Authors:  M Nagai; A Tomoda; Y Yoneyama
Journal:  J Biol Chem       Date:  1981-09-10       Impact factor: 5.157

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  3 in total

1.  THB1 regulates nitrate reductase activity and THB1 and THB2 transcription differentially respond to NO and the nitrate/ammonium balance in Chlamydomonas.

Authors:  Emanuel Sanz-Luque; Francisco Ocaña-Calahorro; Aurora Galván; Emilio Fernández
Journal:  Plant Signal Behav       Date:  2015

2.  New Insights Into the Function of Flavohemoglobin in Mycobacterium tuberculosis: Role as a NADPH-Dependent Disulfide Reductase and D-Lactate-Dependent Mycothione Reductase.

Authors:  Naveen Thakur; Amar Nath Sharma; Mangesh Dattu Hade; Ajay Chhaya; Ashwani Kumar; Ravinder Singh Jolly; Kanak L Dikshit
Journal:  Front Cell Infect Microbiol       Date:  2022-02-10       Impact factor: 5.293

Review 3.  Immunological properties of oxygen-transport proteins: hemoglobin, hemocyanin and hemerythrin.

Authors:  Christopher J Coates; Heinz Decker
Journal:  Cell Mol Life Sci       Date:  2016-08-12       Impact factor: 9.261

  3 in total

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