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1.
Nucleic Acids Res ; 52(7): 3924-3937, 2024 Apr 24.
Artigo em Inglês | MEDLINE | ID: mdl-38421610

RESUMO

RNA ligases are important enzymes in molecular biology and are highly useful for the manipulation and analysis of nucleic acids, including adapter ligation in next-generation sequencing of microRNAs. Thermophilic RNA ligases belonging to the RNA ligase 3 family are gaining attention for their use in molecular biology, for example a thermophilic RNA ligase from Methanobacterium thermoautotrophicum is commercially available for the adenylation of nucleic acids. Here we extensively characterise a newly identified RNA ligase from the thermophilic archaeon Palaeococcus pacificus (PpaRnl). PpaRnl exhibited significant substrate adenylation activity but low ligation activity across a range of oligonucleotide substrates. Mutation of Lys92 in motif I to alanine, resulted in an enzyme that lacked adenylation activity, but demonstrated improved ligation activity with pre-adenylated substrates (ATP-independent ligation). Subsequent structural characterisation revealed that in this mutant enzyme Lys238 was found in two alternate positions for coordination of the phosphate tail of ATP. In contrast mutation of Lys238 in motif V to glycine via structure-guided engineering enhanced ATP-dependent ligation activity via an arginine residue compensating for the absence of Lys238. Ligation activity for both mutations was higher than the wild-type, with activity observed across a range of oligonucleotide substrates with varying sequence and secondary structure.


Assuntos
RNA Ligase (ATP) , RNA Ligase (ATP)/metabolismo , RNA Ligase (ATP)/genética , RNA Ligase (ATP)/química , Especificidade por Substrato , Proteínas Arqueais/metabolismo , Proteínas Arqueais/genética , Proteínas Arqueais/química , Planococáceas/enzimologia , Planococáceas/genética , Engenharia de Proteínas , Mutação , Modelos Moleculares , Trifosfato de Adenosina/metabolismo , Oligonucleotídeos/metabolismo , Oligonucleotídeos/genética
2.
Biosci Rep ; 42(10)2022 10 28.
Artigo em Inglês | MEDLINE | ID: mdl-36148777

RESUMO

Antibiotics are the cornerstone of modern medicine and agriculture, and rising antibiotic resistance is one the biggest threats to global health and food security. Identifying new and different druggable targets for the development of new antibiotics is absolutely crucial to overcome resistance. Adjuvant strategies that either enhance the activity of existing antibiotics or improve clearance by the host immune system provide another mechanism to combat antibiotic resistance. Targeting a combination of essential and non-essential enzymes that play key roles in bacterial metabolism is a promising strategy to develop new antimicrobials and adjuvants, respectively. The enzymatic synthesis of L-cysteine is one such strategy. Cysteine plays a key role in proteins and is crucial for the synthesis of many biomolecules important for defense against the host immune system. Cysteine synthesis is a two-step process, catalyzed by two enzymes. Serine acetyltransferase (CysE) catalyzes the first step to synthesize the pathway intermediate O-acetylserine, and O-acetylserine sulfhydrylase (CysK/CysM) catalyzes the second step using sulfide or thiosulfate to produce cysteine. Disruption of the cysteine biosynthesis pathway results in dysregulated sulfur metabolism, altering the redox state of the cell leading to decreased fitness, enhanced susceptibility to oxidative stress and increased sensitivity to antibiotics. In this review, we summarize the structure and mechanism of characterized CysE and CysK/CysM enzymes from a variety of bacterial pathogens, and the evidence that support targeting these enzymes for the development of new antimicrobials or antibiotic adjuvants. In addition, we explore and compare compounds identified thus far that target these enzymes.


Assuntos
Cisteína Sintase , Serina O-Acetiltransferase , Antibacterianos/farmacologia , Antibacterianos/uso terapêutico , Bactérias/metabolismo , Cisteína/metabolismo , Cisteína Sintase/química , Cisteína Sintase/genética , Farmacorresistência Bacteriana , Serina O-Acetiltransferase/química , Serina O-Acetiltransferase/metabolismo , Sulfetos , Enxofre/metabolismo , Tiossulfatos
3.
Biochem J ; 479(1): 57-74, 2022 01 14.
Artigo em Inglês | MEDLINE | ID: mdl-34890451

RESUMO

Serine acetyltransferase (SAT) catalyzes the first step in the two-step pathway to synthesize l-cysteine in bacteria and plants. SAT synthesizes O-acetylserine from substrates l-serine and acetyl coenzyme A and is a key enzyme for regulating cellular cysteine levels by feedback inhibition of l-cysteine, and its involvement in the cysteine synthase complex. We have performed extensive structural and kinetic characterization of the SAT enzyme from the antibiotic-resistant pathogen Neisseria gonorrhoeae. Using X-ray crystallography, we have solved the structures of NgSAT with the non-natural ligand, l-malate (present in the crystallization screen) to 2.01 Šand with the natural substrate l-serine (2.80 Å) bound. Both structures are hexamers, with each monomer displaying the characteristic left-handed parallel ß-helix domain of the acyltransferase superfamily of enzymes. Each structure displays both extended and closed conformations of the C-terminal tail. l-malate bound in the active site results in an interesting mix of open and closed active site conformations, exhibiting a structural change mimicking the conformation of cysteine (inhibitor) bound structures from other organisms. Kinetic characterization shows competitive inhibition of l-cysteine with substrates l-serine and acetyl coenzyme A. The SAT reaction represents a key point for the regulation of cysteine biosynthesis and controlling cellular sulfur due to feedback inhibition by l-cysteine and formation of the cysteine synthase complex. Data presented here provide the structural and mechanistic basis for inhibitor design and given this enzyme is not present in humans could be explored to combat the rise of extensively antimicrobial resistant N. gonorrhoeae.


Assuntos
Cisteína/antagonistas & inibidores , Retroalimentação Fisiológica , Neisseria gonorrhoeae/enzimologia , Serina O-Acetiltransferase/química , Serina O-Acetiltransferase/metabolismo , Acetilcoenzima A/metabolismo , Sequência de Aminoácidos , Biocatálise , Domínio Catalítico , Clonagem Molecular/métodos , Cristalização , Cristalografia por Raios X/métodos , Cisteína/biossíntese , Cisteína/química , Escherichia coli/genética , Escherichia coli/metabolismo , Cinética , Ligantes , Malatos/química , Malatos/metabolismo , Ligação Proteica , Conformação Proteica em alfa-Hélice , Conformação Proteica em Folha beta , Serina/química , Serina/metabolismo , Serina O-Acetiltransferase/genética
4.
Microbiology (Reading) ; 164(12): 1471-1480, 2018 12.
Artigo em Inglês | MEDLINE | ID: mdl-30307392

RESUMO

The principal mechanism of reducing sulfur into organic compounds is via the synthesis of l-cysteine. Cysteine is used for protein and glutathione synthesis, as well as being the primary sulfur source for a variety of other molecules, such as biotin, coenzyme A, lipoic acid and more. Glutathione and other cysteine derivatives are important for protection against the oxidative stress that pathogenic bacteria such as Neisseria gonorrhoeae and Neisseria meningitidis encounter during infection. With the alarming rise of antibiotic-resistant strains of N. gonorrhoeae, the development of inhibitors for the future treatment of this disease is critical, and targeting cysteine biosynthesis enzymes could be a promising approach for this. Little is known about the transport of sulfate and thiosulfate and subsequent sulfate reduction and incorporation into cysteine in Neisseria species. In this review we investigate cysteine biosynthesis within Neisseria species and examine the differences between species and with other bacteria. Neisseria species exhibit different arrangements of cysteine biosynthesis genes and have slight differences in how they assimilate sulfate and synthesize cysteine, while, most interestingly, N. gonorrhoeae by virtue of a genome deletion, lacks the ability to reduce sulfate to bisulfide for incorporation into cysteine, and as such uses the thiosulfate uptake pathway for the synthesis of cysteine.


Assuntos
Cisteína/biossíntese , Neisseria/metabolismo , Transporte Biológico , Cisteína/metabolismo , Cisteína Sintase/metabolismo , Inibidores Enzimáticos , Regulação Bacteriana da Expressão Gênica , Neisseria/enzimologia , Neisseria/genética , Oxirredução , Estresse Oxidativo , Sulfatos/metabolismo , Tiossulfatos/metabolismo
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