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1.
ACS Chem Biol ; 16(9): 1680-1691, 2021 09 17.
Article in English | MEDLINE | ID: mdl-34477366

ABSTRACT

While alarmone nucleotides guanosine-3',5'-bisdiphosphate (ppGpp) and guanosine-5'-triphosphate-3'-diphosphate (pppGpp) are archetypical bacterial second messengers, their adenosine analogues ppApp (adenosine-3',5'-bisdiphosphate) and pppApp (adenosine-5'-triphosphate-3'-diphosphate) are toxic effectors that abrogate bacterial growth. The alarmones are both synthesized and degraded by the members of the RelA-SpoT Homologue (RSH) enzyme family. Because of the chemical and enzymatic liability of (p)ppGpp and (p)ppApp, these alarmones are prone to degradation during structural biology experiments. To overcome this limitation, we have established an efficient and straightforward procedure for synthesizing nonhydrolysable (p)ppNuNpp analogues starting from 3'-azido-3'-deoxyribonucleotides as key intermediates. To demonstrate the utility of (p)ppGNpp as a molecular tool, we show that (i) as an HD substrate mimic, ppGNpp competes with ppGpp to inhibit the enzymatic activity of human MESH1 Small Alarmone Hyrolase, SAH; and (ii) mimicking the allosteric effects of (p)ppGpp, (p)ppGNpp acts as a positive regulator of the synthetase activity of long ribosome-associated RSHs Rel and RelA. Finally, by solving the structure of the N-terminal domain region (NTD) of T. thermophilus Rel complexed with pppGNpp, we show that as an HD substrate mimic, the analogue serves as a bona fide orthosteric regulator that promotes the same intra-NTD structural rearrangements as the native substrate.


Subject(s)
Adenine Nucleotides/metabolism , Bacterial Proteins/metabolism , Ligases/metabolism , Adenine Nucleotides/chemical synthesis , Allosteric Site , Bacillus subtilis , Deoxyribonucleotides , Escherichia coli , Gene Expression Regulation, Bacterial/drug effects , Protein Binding , Protein Conformation , Pyrophosphatases/metabolism
2.
Mol Cell ; 81(16): 3310-3322.e6, 2021 08 19.
Article in English | MEDLINE | ID: mdl-34416138

ABSTRACT

Amino acid starvation is sensed by Escherichia coli RelA and Bacillus subtilis Rel through monitoring the aminoacylation status of ribosomal A-site tRNA. These enzymes are positively regulated by their product-the alarmone nucleotide (p)ppGpp-through an unknown mechanism. The (p)ppGpp-synthetic activity of Rel/RelA is controlled via auto-inhibition by the hydrolase/pseudo-hydrolase (HD/pseudo-HD) domain within the enzymatic N-terminal domain region (NTD). We localize the allosteric pppGpp site to the interface between the SYNTH and pseudo-HD/HD domains, with the alarmone stimulating Rel/RelA by exploiting intra-NTD autoinhibition dynamics. We show that without stimulation by pppGpp, starved ribosomes cannot efficiently activate Rel/RelA. Compromised activation by pppGpp ablates Rel/RelA function in vivo, suggesting that regulation by the second messenger (p)ppGpp is necessary for mounting an acute starvation response via coordinated enzymatic activity of individual Rel/RelA molecules. Control by (p)ppGpp is lacking in the E. coli (p)ppGpp synthetase SpoT, thus explaining its weak synthetase activity.


Subject(s)
Allosteric Regulation/genetics , Escherichia coli Proteins/genetics , GTP Pyrophosphokinase/genetics , Guanosine Pentaphosphate/genetics , Pyrophosphatases/genetics , Amino Acids/metabolism , Bacillus subtilis/genetics , Bacillus subtilis/metabolism , Catalytic Domain/genetics , Escherichia coli/genetics , Escherichia coli/metabolism , Hydrolases/genetics , Ribosomes/genetics , Ribosomes/metabolism , Starvation/genetics , Starvation/metabolism
3.
Nucleic Acids Res ; 49(1): 444-457, 2021 01 11.
Article in English | MEDLINE | ID: mdl-33330919

ABSTRACT

In the Gram-positive Firmicute bacterium Bacillus subtilis, amino acid starvation induces synthesis of the alarmone (p)ppGpp by the RelA/SpoT Homolog factor Rel. This bifunctional enzyme is capable of both synthesizing and hydrolysing (p)ppGpp. To detect amino acid deficiency, Rel monitors the aminoacylation status of the ribosomal A-site tRNA by directly inspecting the tRNA's CCA end. Here we dissect the molecular mechanism of B. subtilis Rel. Off the ribosome, Rel predominantly assumes a 'closed' conformation with dominant (p)ppGpp hydrolysis activity. This state does not specifically select deacylated tRNA since the interaction is only moderately affected by tRNA aminoacylation. Once bound to the vacant ribosomal A-site, Rel assumes an 'open' conformation, which primes its TGS and Helical domains for specific recognition and stabilization of cognate deacylated tRNA on the ribosome. The tRNA locks Rel on the ribosome in a hyperactivated state that processively synthesises (p)ppGpp while the hydrolysis is suppressed. In stark contrast to non-specific tRNA interactions off the ribosome, tRNA-dependent Rel locking on the ribosome and activation of (p)ppGpp synthesis are highly specific and completely abrogated by tRNA aminoacylation. Binding pppGpp to a dedicated allosteric site located in the N-terminal catalytic domain region of the enzyme further enhances its synthetase activity.


Subject(s)
Bacillus subtilis/metabolism , Bacterial Proteins/metabolism , Guanosine Pentaphosphate/biosynthesis , RNA, Transfer/metabolism , Ribosomes/metabolism , Acylation , Allosteric Site , Bacillus subtilis/genetics , Catalytic Domain , GTP Pyrophosphokinase/metabolism , Hydrolysis , Models, Genetic , Models, Molecular , Protein Conformation , RNA Processing, Post-Transcriptional , Ribosome Subunits, Large, Bacterial/metabolism
4.
Nat Chem Biol ; 16(8): 834-840, 2020 08.
Article in English | MEDLINE | ID: mdl-32393900

ABSTRACT

Bifunctional Rel stringent factors, the most abundant class of RelA/SpoT homologs, are ribosome-associated enzymes that transfer a pyrophosphate from ATP onto the 3' of guanosine tri-/diphosphate (GTP/GDP) to synthesize the bacterial alarmone (p)ppGpp, and also catalyze the 3' pyrophosphate hydrolysis to degrade it. The regulation of the opposing activities of Rel enzymes is a complex allosteric mechanism that remains an active research topic despite decades of research. We show that a guanine-nucleotide-switch mechanism controls catalysis by Thermus thermophilus Rel (RelTt). The binding of GDP/ATP opens the N-terminal catalytic domains (NTD) of RelTt (RelTtNTD) by stretching apart the two catalytic domains. This activates the synthetase domain and allosterically blocks hydrolysis. Conversely, binding of ppGpp to the hydrolase domain closes the NTD, burying the synthetase active site and precluding the binding of synthesis precursors. This allosteric mechanism is an activity switch that safeguards against futile cycles of alarmone synthesis and degradation.


Subject(s)
Proto-Oncogene Proteins c-rel/genetics , Proto-Oncogene Proteins c-rel/metabolism , Amino Acid Sequence , Bacteria/metabolism , Bacterial Proteins/metabolism , Catalytic Domain , Gene Expression Regulation, Bacterial/genetics , Genes, rel/genetics , Guanosine Pentaphosphate/metabolism , Guanosine Tetraphosphate/metabolism , Hydrolases/metabolism , Ligases/metabolism , Ligases/physiology , Nucleotides/metabolism , Ribosomes/metabolism , Thermus thermophilus/enzymology , Thermus thermophilus/metabolism
5.
Acta Crystallogr F Struct Biol Commun ; 75(Pt 8): 561-569, 2019 Aug 01.
Article in English | MEDLINE | ID: mdl-31397328

ABSTRACT

The stringent response, controlled by (p)ppGpp, enables bacteria to trigger a strong phenotypic resetting that is crucial to cope with adverse environmental changes and is required for stress survival and virulence. In the bacterial cell, (p)ppGpp levels are regulated by the concerted opposing activities of RSH (RelA/SpoT homologue) enzymes that can transfer a pyrophosphate group of ATP to the 3' position of GDP (or GTP) or remove the 3' pyrophosphate moiety from (p)ppGpp. Bifunctional Rel enzymes are notoriously difficult to crystallize owing to poor stability and a propensity for aggregation, usually leading to a loss of biological activity after purification. Here, the production, biochemical analysis and crystallization of the bifunctional catalytic region of the Rel stringent factor from Thermus thermophilus (RelTtNTD) in the resting state and bound to nucleotides are described. RelTt and RelTtNTD are monomers in solution that are stabilized by the binding of Mn2+ and mellitic acid. RelTtNTD crystallizes in space group P4122, with unit-cell parameters a = b = 88.4, c = 182.7 Å, at 4°C and in space group P41212, with unit-cell parameters a = b = 105.7, c = 241.4 Å, at 20°C.


Subject(s)
Bacterial Proteins/chemistry , Crystallography, X-Ray/methods , GTP Pyrophosphokinase/chemistry , Thermus thermophilus/enzymology , Amino Acid Sequence , Bacterial Proteins/metabolism , Catalytic Domain , Crystallization , GTP Pyrophosphokinase/metabolism , Models, Molecular , Protein Conformation
6.
Sci Adv ; 4(3): eaap9714, 2018 03.
Article in English | MEDLINE | ID: mdl-29546243

ABSTRACT

Bacterial protein synthesis is intricately connected to metabolic rate. One of the ways in which bacteria respond to environmental stress is through posttranslational modifications of translation factors. Translation elongation factor Tu (EF-Tu) is methylated and phosphorylated in response to nutrient starvation upon entering stationary phase, and its phosphorylation is a crucial step in the pathway toward sporulation. We analyze how phosphorylation leads to inactivation of Escherichia coli EF-Tu. We provide structural and biophysical evidence that phosphorylation of EF-Tu at T382 acts as an efficient switch that turns off protein synthesis by decoupling nucleotide binding from the EF-Tu conformational cycle. Direct modifications of the EF-Tu switch I region or modifications in other regions stabilizing the ß-hairpin state of switch I result in an effective allosteric trap that restricts the normal dynamics of EF-Tu and enables the evasion of the control exerted by nucleotides on G proteins. These results highlight stabilization of a phosphorylation-induced conformational trap as an essential mechanism for phosphoregulation of bacterial translation and metabolism. We propose that this mechanism may lead to the multisite phosphorylation state observed during dormancy and stationary phase.


Subject(s)
Peptide Elongation Factor Tu/chemistry , Peptide Elongation Factor Tu/metabolism , Protein Biosynthesis , Guanosine 5'-O-(3-Thiotriphosphate)/metabolism , Guanosine Diphosphate/metabolism , Models, Molecular , Nucleotides/metabolism , Phosphorylation , Phosphothreonine/metabolism , Protein Binding , Protein Conformation , Thermodynamics
7.
Nucleic Acids Res ; 46(4): 2133-2144, 2018 02 28.
Article in English | MEDLINE | ID: mdl-29361130

ABSTRACT

Synthetic genetic sensors and circuits enable programmable control over timing and conditions of gene expression and, as a result, are increasingly incorporated into the control of complex and multi-gene pathways. Size and complexity of genetic circuits are growing, but stay limited by a shortage of regulatory parts that can be used without interference. Therefore, orthogonal expression and regulation systems are needed to minimize undesired crosstalk and allow for dynamic control of separate modules. This work presents a set of orthogonal expression systems for use in Escherichia coli based on heterologous sigma factors from Bacillus subtilis that recognize specific promoter sequences. Up to four of the analyzed sigma factors can be combined to function orthogonally between each other and toward the host. Additionally, the toolbox is expanded by creating promoter libraries for three sigma factors without loss of their orthogonal nature. As this set covers a wide range of transcription initiation frequencies, it enables tuning of multiple outputs of the circuit in response to different sensory signals in an orthogonal manner. This sigma factor toolbox constitutes an interesting expansion of the synthetic biology toolbox and may contribute to the assembly of more complex synthetic genetic systems in the future.


Subject(s)
Escherichia coli/genetics , Gene Expression Regulation , Sigma Factor/metabolism , Bacillus subtilis , Escherichia coli/metabolism , Genome , Plasmids/genetics , Promoter Regions, Genetic
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