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1.
Biochemistry (Mosc) ; 88(10): 1658-1667, 2023 Oct.
Article in English | MEDLINE | ID: mdl-38105031

ABSTRACT

The gene for a previously unexplored two-domain laccase was identified in the genome of actinobacterium Streptomyces carpinensis VKM Ac-1300. The two-domain laccase, named ScaSL, was produced in a heterologous expression system (Escherichia coli strain M15 [pREP4]). The enzyme was purified to homogeneity using affinity chromatography. ScaSL laccase, like most two-domain laccases, exhibited activity in the homotrimer form. However, unlike the most two-domain laccases, it was also active in multimeric forms. The enzyme exhibited maximum activity at 80°C and was thermally stable. Half-inactivation time of ScaSL at 80°C was 40 min. The laccase was able to oxidize a non-phenolic organic compound ABTS at a maximum rate at pH 4.7, and to oxidized a phenolic compound 2,6-dimethoxyphenol at a maximum rate at pH 7.5. The laccase stability was observed in the pH range 9-11. At pH 7.5, laccase was slightly inhibited by sodium azide, sodium fluoride, and sodium chloride; at pH 4.5, the laccase was completely inhibited by 100 mM sodium azide. The determined Km and kcat of the enzyme for ABTS were 0.1 mM and 20 s-1, respectively. The Km and kcat for 2,6-dimethoxyphenol were 0.84 mM and 0.36 s-1, respectively. ScaSL catalyzed polymerization of humic acids and lignin. Redox potential of the laccase was 0.472 ± 0.007 V. Thus, the ScaSL laccase is the first characterized two-domain laccase with a middle redox potential. Crystal structure of ScaSL was determined with 2.35 Å resolution. Comparative analysis of the structures of ScaSL and other two-domain laccases suggested that the middle potential of ScaSL may be associated with conformational differences in the position of the side groups of amino acids at position 230 (in ScaSL numbering), which belong to the second coordination sphere of the copper atom of the T1 center.


Subject(s)
Laccase , Laccase/metabolism , Sodium Azide , Oxidation-Reduction , Hydrogen-Ion Concentration , Enzyme Stability , Kinetics
2.
Int J Mol Sci ; 23(15)2022 Jul 29.
Article in English | MEDLINE | ID: mdl-35955512

ABSTRACT

ExuR and UxuR are paralogous proteins belonging to the GntR family of transcriptional regulators. Both are known to control hexuronic acid metabolism in a variety of Gammaproteobacteria but the relative impact of each of them is still unclear. Here, we apply 2D difference electrophoresis followed by mass-spectrometry to characterise the changes in the Escherichia coli proteome in response to a uxuR or exuR deletion. Our data clearly show that the effects are different: deletion of uxuR resulted in strongly enhanced expression of D-mannonate dehydratase UxuA and flagellar protein FliC, and in a reduced amount of outer membrane porin OmpF, while the absence of ExuR did not significantly alter the spectrum of detected proteins. Consequently, the physiological roles of proteins predicted as homologs seem to be far from identical. Effects of uxuR deletion were largely dependent on the cultivation conditions: during growth with glucose, UxuA and FliC were dramatically altered, while during growth with glucuronate, activation of both was not so prominent. During the growth with glucose, maximal activation was detected for FliC. This was further confirmed by expression analysis and physiological tests, thus suggesting the involvement of UxuR in the regulation of bacterial motility and biofilm formation.


Subject(s)
Escherichia coli Proteins , Escherichia coli , Escherichia coli/genetics , Escherichia coli/metabolism , Escherichia coli Proteins/genetics , Escherichia coli Proteins/metabolism , Gene Expression Regulation, Bacterial , Glucose/metabolism , Hexuronic Acids/metabolism , Proteome/metabolism , Transcription Factors/metabolism
3.
Biochemistry (Mosc) ; 86(7): 833-842, 2021 Jul.
Article in English | MEDLINE | ID: mdl-34284708

ABSTRACT

The structure and the RNA-binding properties of the Lsm protein from Halobacterium salinarum have been determined. A distinctive feature of this protein is the presence of a short L4 loop connecting the ß3 and ß4 strands. Since bacterial Lsm proteins (also called Hfq proteins) have a short L4 loop and form hexamers, whereas archaeal Lsm proteins (SmAP) have a long L4 loop and form heptamers, it has been suggested that the length of the L4 loop may affect the quaternary structure of Lsm proteins. Moreover, the L4 loop covers the region of SmAP corresponding to one of the RNA-binding sites in Hfq, and thus can affect the RNA-binding properties of the protein. Our results show that the SmAP from H. salinarum forms heptamers and possesses the same RNA-binding properties as homologous proteins with the long L4 loop. Therefore, the length of the L4 does not govern the number of monomers in the protein particles and does not affect the RNA-binding properties of Lsm proteins.


Subject(s)
Halobacterium salinarum/metabolism , Host Factor 1 Protein/metabolism , Amino Acid Sequence , Archaeal Proteins/chemistry , Archaeal Proteins/metabolism , Host Factor 1 Protein/chemistry , Protein Conformation , Sequence Alignment
4.
Biochemistry (Mosc) ; 86(4): 397-408, 2021 Apr.
Article in English | MEDLINE | ID: mdl-33941062

ABSTRACT

Ribosomal protein L1 is a conserved two-domain protein that is involved in formation of the L1 stalk of the large ribosomal subunit. When there are no free binding sites available on the ribosomal 23S RNA, the protein binds to the specific site on the mRNA of its own operon (L11 operon in bacteria and L1 operon in archaea) preventing translation. Here we show that the regulatory properties of the r-protein L1 and its domain I are conserved in the thermophilic bacteria Thermus and Thermotoga and in the halophilic archaeon Haloarcula marismortui. At the same time the revealed features of the operon regulation in thermophilic bacteria suggest presence of two regulatory regions.


Subject(s)
Haloarcula marismortui/genetics , Operon/genetics , Regulatory Sequences, Nucleic Acid , Ribosomal Proteins/genetics , Thermotoga maritima/genetics , Thermus thermophilus/genetics , Gene Expression Regulation, Archaeal , Gene Expression Regulation, Bacterial , Haloarcula marismortui/metabolism , Hot Temperature , Thermotoga maritima/metabolism , Thermus thermophilus/metabolism
5.
J Struct Biol ; 209(1): 107408, 2020 01 01.
Article in English | MEDLINE | ID: mdl-31669310

ABSTRACT

Staphylococcus aureus hibernation promoting factor (SaHPF) is responsible for the formation of 100S ribosome dimers, which in turn help this pathogen to reduce energy spent under unfavorable conditions. Ribosome dimer formation strongly depends on the dimerization of the C-terminal domain of SaHPF (CTDSaHPF). In this study, we solved the crystal structure of CTDSaHPF at 1.6 Šresolution and obtained a precise arrangement of the dimer interface. Residues Phe160, Val162, Thr171, Ile173, Tyr175, Ile185 andThr187 in the dimer interface of SaHPF protein were mutated and the effects were analyzed for the formation of 100S disomes of ribosomes isolated from S. aureus. It was shown that substitution of any of single residues Phe160, Val162, Ile173, Tyr175 and Ile185 in the SaHPF homodimer interface abolished the ribosome dimerization in vitro.


Subject(s)
Bacterial Proteins/genetics , Ribosomal Proteins/genetics , Ribosomes/genetics , Staphylococcal Infections/genetics , Staphylococcus aureus/ultrastructure , Bacterial Proteins/chemistry , Bacterial Proteins/ultrastructure , Cryoelectron Microscopy , Dimerization , Hibernation/genetics , Humans , Protein Binding/genetics , Ribosomal Proteins/chemistry , Ribosomal Proteins/ultrastructure , Ribosomes/ultrastructure , Staphylococcal Infections/microbiology , Staphylococcus aureus/pathogenicity
6.
Protein J ; 34(2): 103-10, 2015 Apr.
Article in English | MEDLINE | ID: mdl-25681234

ABSTRACT

L1 is a conserved protein of the large ribosomal subunit. This protein binds strongly to the specific region of the high molecular weight rRNA of the large ribosomal subunit, thus forming a conserved flexible structural element--the L1 stalk. L1 protein also regulates translation of the operon that comprises its own gene. Crystallographic data suggest that L1 interacts with RNA mainly by means of its domain I. We show here for the first time that the isolated domain I of the bacterial protein L1 of Thermus thermophilus and Escherichia coli is able to incorporate in vivo into the E. coli ribosome. Furthermore, domain I of T. thermophilus L1 can regulate expression of the L1 gene operon of Archaea in the coupled transcription-translation system in vitro, as well as the intact protein. We have identified the structural elements of domain I of the L1 protein that may be responsible for its regulatory properties.


Subject(s)
Bacterial Proteins/chemistry , Operon/genetics , RNA, Bacterial/chemistry , Ribosomal Proteins/chemistry , Ribosomes/chemistry , Archaeal Proteins/chemistry , Archaeal Proteins/genetics , Bacterial Proteins/genetics , Base Sequence , Escherichia coli/chemistry , Escherichia coli/genetics , Molecular Sequence Data , Plasmids , Protein Structure, Tertiary , RNA, Bacterial/genetics , RNA, Ribosomal, 23S/chemistry , RNA, Ribosomal, 23S/genetics , Ribosomal Proteins/genetics , Surface Plasmon Resonance , Thermus thermophilus/chemistry , Thermus thermophilus/genetics
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