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Kronborg, K.

Publications and source records attributed to Kronborg, K..

5 recordsLinked to original sources

Catalytic Mechanism and Differential Alarmone Regulation of a Conserved Stringent Nucleosidase

Understanding how bacteria rapidly adapt their metabolism in response to external stimuli is key to addressing the present crisis of antibiotics-resistant infections. In the Gram-negative bacterium Escherichia coli, the universal stringent response is elicited in response to some antibiotics and involves production of the global alarmones, (p)ppGpp, which bind directly to many cellular targets. The nucleosidase PpnN that cleaves nucleotides into 5-phosphate ribose and nucleobase, was shown to be a target of (p)ppGpp and control the delicate balance of bacterial fitness and persistence to fluoroquinolone antibiotics, thus conferring optimal survival strategies to bacteria during antibiotic selective pressure. Although both pppGpp and ppGpp stimulate the enzymatic activity of PpnN, they exert distinct effects on the enzymes cooperativity. The molecular mechanism underlying this subtle difference as well as the precise catalytic mechanism of PpnN, remain obscure. In this study, we provide mechanistic insights into the interaction of PpnN with substrate analogue, reaction products and alarmone molecules, which allows us to understand the catalytic mechanism of this family of nucleosidases and the differential modes of regulation by ppGpp and pppGpp, respectively. Comparison with the homologous LOG proteins involved in cytokinin production in plants reveals an ancient, universal mechanism for cleaving purine monophosphates that bacteria have incorporated regulatory controls through alarmones upon stringent responses. IMPORTANCEThis study explores the distinct manners that the stringent alarmones pppGpp and ppGpp interact with the nucleosidase PpnN, which diverge from their typical, consistent effects on other target proteins. Furthermore, PpnN plays a key role in balancing bacterial fitness and tolerance to antibiotics, yet its catalytic mechanism has remained unclear. Through a combination of structural biology, molecular simulations, biochemistry, mutagenesis, and physiological analyses, this research uncovers the mechanistic differences in how both alarmones differentially impact enzyme cooperativity of PpnN and activation under stress conditions. Additionally, by analysing structures of PpnN complexed with substrate analogues, reaction products, and alarmones, as well as conducting bioinformatic comparisons, we propose a conserved catalytic mechanism shared with its homologue, LOG, a protein involved in cytokinin signalling - a critical growth hormone in plants. These insights underscore the nuanced regulatory roles of alarmones and PpnN/LOG group of nucleosidases, highlighting their evolutionary diversification to meet the varied environmental survival needs across organisms.

biochemistry↗

cCMP and cUMP stimulate the acid phosphatase activity of AphA in Haemophilus influenzae

We recently detailed the competitive inhibition of cyclic AMP (cAMP) on three periplasmic enzymes, AphA, NadN, and Hel, in Haemophilus influenzae Rd KW20. This inhibitory effect is vital for orchestrating the nutritional growth and competence development in KW20. Here, we extended the study to the three other second messengers, i.e., cyclic GMP, cyclic UMP, and cyclic CMP, each sharing structural similarities with cAMP. Notably, cGMP competitively inhibits AphAs acid phosphatase activity akin to cAMP. In contrast, both cUMP and cCMP stimulate AphAs phosphatase activity in a dose-dependent manner. This novel finding underscores the intriguing opposing effects of cyclic purine and pyrimidine nucleotides on AphA, suggesting potential intricate biological crosstalk among these second messengers.

biochemistry↗

Substrate promiscuity of the Escherichia coli xanthine oxidase

PpnN is a cytosolic nucleosidase that cleaves nucleotide monophosphates to nucleobases and ribose-5-phosphate and plays a crucial role in regulating bacterial competitive fitness and persistence. To quantify the PpnN reaction, here we developed an enzyme-coupled assay, wherein PpnN hydrolyzes IMP to hypoxanthine, which is then converted by xanthine oxidase (XO) into xanthine, uric acid and hydrogen peroxide. The detection of hydrogen peroxide via horseradish peroxidase and Amplex Red provides a measure of PpnN enzymatic activity. Surprisingly, we found that in addition to IMP, other nucleotides like GMP significantly increased the signal, suggesting that the corresponding nucleobases might also be substrates for XO. Direct tests by using guanine confirmed XOs capacity to use it as a substrate, albeit less effectively than hypoxanthine. These findings suggest a potential guanine aminohydrolase activity of E. coli XO and broaden our understanding of nucleobase metabolism in bacterial systems.

biochemistry↗

Escherichia coli acid phosphatase AphA expression is upregulated under carbon and phosphate starvations and inhibited by CytR

This study investigates the regulation of E. coli aphA expression under nutrient starvation. Using transcriptional reporters with truncated aphA promoter sequences, we found that starvation of carbon and phosphate, but not amino acid, stimulated aphA expression through distinct promoter regions. Deletions of crp or cyaA reduced aphA expression, confirming their importance in aphA regulation during carbon starvation. Conversely, CytR deletion increased aphA expression, suggesting CytRs role as a repressor of aphA expression. Collectively, these data imply a potential connection between CytR, aphA expression, and the broader context of natural competence evolution and bacterial nutrient absorption.

microbiology↗

Cyclic AMP competitively inhibits periplasmic phosphatases to coordinate nutritional growth with competence development of Haemophilus influenzae

Natural competence is an important means of horizontal gene transfer that bacteria use to gain new physiological traits such as multiple drug resistance. Most naturally competent bacteria tightly regulate the window of competence state to maximize their ecological fitness under specific conditions. Here we study the inhibitory effect of purine nucleotides on the natural competence in Haemophilus influenzae Rd KW20. We first identified a periplasmic acid phosphatase AphAEc of E. coli as a new cyclic AMP (cAMP)-binding protein. cAMP competitively inhibits AphAEc. Subsequently, we found that cAMP also competitively inhibits AphAHi and two additional periplasmic phosphatases NadNHi and HelHi of KW20. HelHi cleaves NADP to NAD, and NadNHi cleaves NAD to NMN and NR (nicotinamide ribose), providing the essential growth factor V for KW20. Consistently, we found that cAMP inhibits growth of KW20 in sBHI medium supplemented with NAD, but not NR. Moreover, the combined deletion of aphAHi, nadNHi, and helHi, but not the single or double deletion mutants, made KW20 immune to the inhibition of nucleotides on competence development. However, nucleosides still inhibited the competence of the triple mutant. Finally, cAMP in a dose-dependent manner restored the competence inhibited by the nucleotide GMP, but not by the nucleoside guanosine. Altogether, we revealed an antagonistic mechanism of cAMP and nucleotides in regulating cell growth and competence of H. influenzae. Similar mechanisms are discussed in other H. influenzae related organisms and Vibrio cholerae. Author summaryHaemophilus influenzae is an important human pathogen, causing respiratory tract infection including pneumonia. Extensive drug resistance is observed in Haemophilus influenzae species, which is attributed to their well-described natural competence system. Natural competence is a physiological state that some bacteria, under certain conditions, become active to take up external DNA and integrate it into the chromosome. External DNA may contain an antibiotic resistance gene and thereby confer antibiotic resistance on Haemophilus influenzae. Therefore, it is important to understand how natural competence of Haemophilus influenzae is regulated by external cues. Previously, it was found that the secondary messenger cyclic AMP (cAMP) activates while nucleotides inhibit the competence development of Haemophilus influenzae Rd KW20. However, the interplay between cAMP and nucleotides is unclear. Here we show that cAMP competitively inhibits three periplasmic phosphatases of Haemophilus influenzae Rd KW20 and thereby inhibits the utilization of nutritional nucleotides and the essential growth factor NAD. Via this mechanism, cAMP activates the competence development of Haemophilus influenzae Rd KW20 only after external nucleotides are sufficiently depleted, coupling growth arrest with competence development. Similar mechanisms are anticipated to function in bacteria closely related to Haemophilus influenzaee, and also Vibrio cholerae, another important human pathogen.

microbiology↗