Search bioRxiv⌕ Search

bioRxiv · 10.1101/2024.09.07.611820

Pentose Phosphate Pathway Protects E. coli from Antibiotic Lethality

Abstract

Disruption of both branches of the canonical pentose phosphate pathway (PPP) in E. coli by combined inactivation of the zwf and talAB genes provokes the restoration of the ancient anabolic variant of PPP (aPPP). In the aPPP, pentose-5-phosphates are synthesized unidirectionally from fructose-6-phosphate and glyceraldehyde-3-phosphate by transketolase B, aldolase A, and phosphatase GlpX, converting sedoheptulose-1,7-bisphosphate to sedoheptulose-7-phosphate. Unexpectedly, the double zwf talAB mutant exhibits decreased survival after treatment by diverse classes of antibiotics with little effect on the minimal inhibitory concentration. Simultaneously, we found that killing effect of antimicrobials on the zwf talAB mutant could be reversed by the inactivation of either purR or deoB genes, both responsible for ribose-5-phosphate content in the mutant strain. Enhanced biosynthesis of the cell wall component ADP-heptose from sedoheptulose-7-phosphate also suppressed killing effect of antibiotics on the zwf talAB mutant. Furthermore, the inactivation of the Entner-Doudoroff pathway ({Delta}edd) or shifting the metabolic equilibrium by the addition of exogenous phosphogluconate reverts aPPP to glycolysis, preventing the accumulation of excess pentose phosphates and the occurrence of the futile cycle in zwf talAB cells, thus desensitizing them to antibiotics. Our findings show that ribose-5-phosphate metabolism plays a crucial role in bacterial tolerance to a wide range of bactericidal antibiotics. We propose that targeting PPP could be a promising strategy for developing new therapeutic agents aimed at potentiating clinically significant antimicrobials. IMPORTANCERecent studies have revealed the crucial role of bacterial cells metabolic status in its susceptibility to the lethal action of antibacterial drugs. However, there is still no clear understanding of which key metabolic nodes are optimal targets to improve the effectiveness of bacterial infection treatment. Our study establishes that the disruption of the canonical pentose phosphate pathway induces one-way anabolic synthesis of pentose phosphates (aPPP) in E. coli cells, significantly increasing the killing efficiency of various antibiotics. It is also demonstrated that the activation of ribose-5-phosphate utilization processes restores bacterial tolerance to antibiotics. We consider the synthesis of ribose-5-phosphate to be one of the determining factors of bacterial cell stress resistance. Understanding bacterial metabolic pathways, particularly the aPPPs role in antibiotic sensitivity, offers insights for developing novel adjuvant therapeutic strategies to enhance antibiotic potency.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

Seregina, T., Shakulov, R., Shatalin, K., Petrushanko, I., Mitkevich, V., Makarov, A., Mironov, A., Nudler, E.. 2024-09-07. Pentose Phosphate Pathway Protects E. coli from Antibiotic Lethality. https://doi.org/10.1101/2024.09.07.611820

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related preprints

A conserved cysteine-histidine-glutamate metal site identifies DUF501 (Rv1025), an essential uncharacterised protein family of Mycobacterium tuberculosis, as a candidate metalloenzyme and drug target

A substantial fraction of the Mycobacterium tuberculosis proteome remains functionally uncharacterised. Rv1025, a 155-residue protein carrying the domain of unknown function DUF501 (Pfam PF04417), is essential by transposon mutagenesis and vulnerable by CRISPR interference, an attractive but neglected drug target, yet has never been functionally described. The family (4,370 proteins, no Gene Ontology term, no solved structure) is uncharacterised across all organisms and essential in three Actinobacterial genera. A Foldseek search of the AlphaFold model against complete structural databases finds no significant homolog, indicating a novel fold. The operon eno-divIC-Rv1025-ppx2 is conserved across the Actinobacteria phylum, yet AlphaFold-Multimer finds no direct complex between Rv1025 and its neighbour DivIC. Instead, conservation across 8,700 homologous sequences reveals a near-invariant Cys113-His115-Glu59 cluster forming a pocket. Holo AlphaFold3 predictions with Zn, Fe and Mn confidently place a divalent metal on this triad at 2.25-2.47 A; mutating the triad relocates the metal, and an independent backbone-geometry predictor recovers the same site, confirming specificity. The triad is universal across the family: present in all 1,472 near-complete bacterial sequences of the Pfam alignment, with no non-conservative substitution among the 2,228 sequences examined, a defining feature of bacterial DUF501 rather than a mycobacterial peculiarity. We propose that DUF501 is a metal-binding protein and candidate metalloenzyme, the first functional hypothesis for this family, whose conserved, essential metal pocket is a promising drug target. As the predictions build on a conservation-defined site within a fully computational study, they are supportive rather than proof of metal occupancy and warrant experimental validation.

microbiology↗

Mycoplasmal endosymbionts of Trichomonas vaginalis are associated with reduced risk for Chlamydia trachomatis endometrial infection in asymptomatic, coinfected, women.

Trichomonas vaginalis is a protozoan parasite that causes trichomoniasis, the most common curable non-viral sexually transmitted infection, and Chlamydia trachomatis is a bacterial pathogen that can ascend to the upper genital tract and cause pelvic inflammatory disease, infertility, and ectopic pregnancy. T. vaginalis harbors bacterial endosymbionts, including Candidatus Malacoplasma girerdii, an obligate symbiont, and Metamycoplasma hominis, which can live freely or symbiotically. In a 16S rRNA sequencing study of the cervicovaginal microbiome of women at high risk for chlamydial infection, Ca. M. girerdii abundance was one of 13 features predicting lack of chlamydial spread to the endometrium, despite no direct association between T. vaginalis infection and reduced chlamydial ascension. Investigating the relationship between these microorganisms further, we found that T. vaginalis vaginal abundance correlated positively with chlamydial burden in women whose infection was confined to the cervix, while a nonsignificant inverse relationship was seen in women with endometrial spread. Among participants with high chlamydial burden, Ca. M. girerdii was detected exclusively in women without endometrial infection. Both endosymbionts trended toward more frequent detection, and higher abundance, in coinfected women without endometrial spread, while M. hominis abundance correlated strongly with T. vaginalis burden in this group. These findings suggest that mycoplasmal endosymbionts of T. vaginalis, rather than T. vaginalis itself, are microbial factors limiting chlamydial ascension, and point to a three-way interaction between parasite, endosymbiont, and bacterial pathogen that shapes upper genital tract C. trachomatis infection risk.

microbiology↗

Understanding the physiological alterations of Vibrio cholerae upon exposure to L-ascorbic acid

The scourge of cholera remains a major global public health threat. It affects up to 4 million people worldwide and causes tens of thousands of deaths each year. The disease is experiencing a concerning resurgence in many parts of Africa, the Middle East, and Asia. To effectively tackle cholera and circumvent rising antimicrobial resistance, targeted biological and preventive approaches, complementing traditional rehydration, are urgently needed. In this regard, our group has demonstrated the efficacy of L-ascorbic acid in controlling the growth and pathogenesis of Vibrio cholerae in vitro. The present work further provides a mechanistic elucidation of the L-ascorbic acid-mediated physiological changes in V. cholerae and also bolsters such a non-antibiotic approach to control cholera.

microbiology↗