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Chemiluminescence-based Assays for Detection of Nitric Oxide and its Derivatives from Autoxidation and Nitrosated Compounds
Published on: February 16, 2022
Nitric oxide dioxygenation reaction in DevS and the initial response to nitric oxide in Mycobacterium tuberculosis
Erik T Yukl1, Alexandra Ioanoviciu, Santhosh Sivaramakrishnan
1Division of Environmental and Biomolecular Systems, Oregon Health and Science University, 20000 Northwest Walker Road, Beaverton, Oregon 97006-8921, United States.
Abstract:
DevS and DosT from Mycobacterium tuberculosis (MTB) are paralogous heme-based sensor kinases that respond to hypoxia and to low concentrations of nitric oxide (NO). Both proteins work with the response regulator DevR as a two-component regulatory system to induce the dormancy regulon in MTB. While DevS and DosT are inactive when dioxygen is bound to the heme Fe(II) at their sensor domain, autokinase activity is observed in their heme Fe(II)-NO counterparts. To date, the conversion between active and inactive states and the reactivity of the heme-oxy complex toward NO have not been investigated. Here, we use stopped-flow UV-vis spectroscopy and rapid freeze quench resonance Raman spectroscopy to probe these reactions in DevS. Our data reveal that the heme-O(2) complex of DevS reacts efficiently with NO to produce nitrate and the oxidized Fe(III) heme through an NO dioxygenation reaction that parallels the catalytic reactions of bacterial flavohemoglobin and truncated hemoglobins. Autophosphorylation activity assays show that the Fe(III) heme state of DevS remains inactive but exhibits a high affinity for NO and forms an Fe(III)-NO complex that is readily reduced by ascorbate, a mild reducing agent. On the basis of these results, we conclude that upon exposure to low NO concentrations, the inactive oxy-heme complex of DevS is rapidly converted to the Fe(II)-NO complex in the reducing environment of living cells and triggers the initiation of dormancy.
Insights
Mycobacterium tuberculosis DevS protein, crucial for dormancy, converts its inactive oxy-heme to an active Fe(II)-NO complex upon nitric oxide exposure, initiating dormancy.
Area of Science:
- Microbiology
- Biochemistry
- Molecular Biology
Background:
- DevS and DosT are paralogous sensor kinases in Mycobacterium tuberculosis (MTB).
- They regulate the dormancy regulon with response regulator DevR.
- Both proteins are inactive with dioxygen bound to heme Fe(II) but active with heme Fe(II)-NO.
Purpose of the Study:
- Investigate the conversion between active and inactive states of DevS.
- Determine the reactivity of the heme-oxy complex toward nitric oxide (NO).
Main Methods:
- Stopped-flow UV-vis spectroscopy.
- Rapid freeze quench resonance Raman spectroscopy.
- Autophosphorylation activity assays.
Main Results:
- The heme-O(2) complex of DevS reacts with NO, producing nitrate and oxidized Fe(III) heme via NO dioxygenation.
- The inactive Fe(III) heme state binds NO with high affinity, forming an Fe(III)-NO complex.
- This complex is readily reduced by ascorbate.
Conclusions:
- DevS's inactive oxy-heme complex converts to the active Fe(II)-NO complex in a reducing cellular environment upon exposure to low NO concentrations.
- This conversion triggers the initiation of dormancy in MTB.
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