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PMID: 8939703 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, Non-P.H.S.

Nonsteric factors dominate binding of nitric oxide, azide, imidazole, cyanide, and fluoride to the rhizobial heme-based oxygen sensor FixL.

Chemistry & biology ·Vol. 3 ·No. 10 ·1996-10-00 ·Pages 841-50

Winkler WC, Gonzalez G, Wittenberg JB, Hille R, Dakappagari N, Jacob A, Gonzalez LA, Gilles-Gonzalez MA

Abstract

The FixL protein is a heme-based sensor. Binding of oxygen to a unique heme domain inhibits a kinase domain of the type found in two-component regulators. Oxygen association is slow, but the dissociation rate is comparable to that of myoglobins. We have probed the size and chemistry of the FixL heme pocket by measuring the affinites, on rates and off rates for a wide variety of ferric heme ligands. Cyanide, but not fluoride, regulates the kinase activity. To examine how the sensory heme domain interacts with the kinase, we asked how the presence of the kinase domain affects ligand binding. The affinities of ferric FixL for heme ligands follow the same trend as their pKa values: cyanide > 4-methyl imidazole > imidazole > fluoride > azide >> thiocyanate. The association rates follow the reverse trend. Striking differences from myoglobin include a 6-fold greater affinity for, and faster binding to, the bulky ligand imidazole, a 14-fold faster on rate for nitric oxide, a 2 800-fold lower affinity for azide, and a complete failure to bind thiocyanate. The presence of the kinase domain does not alter the affinity or binding kinetics of the high-spin ligand fluoride, but affects the off rates of other ligands. The EPR spectrum shows a characteristic pentacoordinate nitrosyl heme, indicating that the Fe-His bond in FixL is strained. The importance of ligand deprotonation to the on rates and the fact that large ligands bind readily indicate that the heme pocket is open and apolar. Ligand basicity strongly influences the strength of binding. The destabilization of inhibitory ligands by the presence of the kinase domain is consistent with a 'load' imposed by coupling to the inactivating mechanism.

MeSH Terms
Azides/metabolism Bacterial Proteins/metabolism Cyanides/metabolism Fluorides/metabolism Heme/metabolism Hemeproteins/metabolism Histidine Kinase Imidazoles/metabolism Ligands Nitric Oxide/metabolism Protein Binding Sinorhizobium meliloti/metabolism
Chemicals
Azides Bacterial Proteins Cyanides Hemeproteins Imidazoles Ligands Nitric Oxide Heme FixL protein, Bacteria Histidine Kinase Fluorides
Authors & Affiliations
8 authors, click to expand affiliations / ORCID
Winkler W C
Department of Microbiology and Plant Biotechnology Center, The Ohio State University, 1060 Carmack Road, Columbus, Ohio 43210-1002, USA. [email protected]
Gonzalez G
Wittenberg J B
Hille R
Dakappagari N
Jacob A
Gonzalez L A
Gilles-Gonzalez M A
Article Info
Journal
Chemistry & biology
Abbr.
Chem Biol
ISSN
1074-5521
Published
1996-10-00
Pages
841-50
Language
English
Region
United States
NLM ID
9500160
Subset
IM
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