PqqU (PA2289) is the primary PQQ transporter in Pseudomonas aeruginosa and links carbon metabolism to iron homeostasis

Pseudomonas aeruginosa relies on the redox cofactor pyrroloquinoline quinone (PQQ) for efficient glucose and ethanol metabolism via periplasmic dehydrogenases (Gcd and ExaA). While PQQ biosynthesis is well-characterized, its uptake mechanisms remain unclear. Here, we identify PA2289 (PqqU), a TonB-dependent transporter, as the primary PQQ importer in P. aeruginosa. Growth assays with PQQ-deficient mutants (ΔpqqABCDEH) demonstrated that PqqU is the primary uptake system for exogenous PQQ, rescuing growth on glucose and ethanol. Genomic analysis across 210 P. aeruginosa and 263 Pseudomonas strains revealed high conservation of PQQ biosynthesis and utilization genes, while PqqU showed lower prevalence (47.7%) in the genus. Transcriptional analyses using fluorescent reporters and qRT-PCR demonstrated that PqqU expression remains unchanged in response to PQQ, varying carbon sources, or iron availability, suggesting constitutive regulation. Comparative proteomics between wild-type and ΔpqqABCDEH strains, cultured on glucose or ethanol, uncovered extensive proteomic shifts, underscoring P. aeruginosa's metabolic adaptability. Additionally, PQQ-dependent metabolic pathways appear to indirectly influence iron homeostasis, most likely through environmental acidification. Together, these results emphasize the critical role of PqqU in PQQ uptake and its broader significance in shaping the metabolic and environmental versatility of Pseudomonas.

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Publication Details

Journal
FEMS Microbiology Letters
Published
2026-08-26
DOI
https://doi.org/10.1093/femsle/fnag084
Primary Topic
Microbial metabolism and enzyme function
Type
article
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article

PqqU (PA2289) is the primary PQQ transporter in Pseudomonas aeruginosa and links carbon metabolism to iron homeostasis

Christos Paschalidis, Olivier Cunrath, Isabelle J. Schalk, Françoise Hoegy et al.
FEMS Microbiology Letters
Microbial metabolism and enzyme function
article

PqqU (PA2289) is the primary PQQ transporter in Pseudomonas aeruginosa and links carbon metabolism to iron homeostasis

Christos Paschalidis, Olivier Cunrath, Isabelle J. Schalk, Françoise Hoegy, Emmanuel Boutant, Manon Ferry, Gaetan L A Mislin, Anne-Eloise Revillot-Schmidt, Johana Chicher
article en

Abstract

Pseudomonas aeruginosa relies on the redox cofactor pyrroloquinoline quinone (PQQ) for efficient glucose and ethanol metabolism via periplasmic dehydrogenases (Gcd and ExaA). While PQQ biosynthesis is well-characterized, its uptake mechanisms remain unclear. Here, we identify PA2289 (PqqU), a TonB-dependent transporter, as the primary PQQ importer in P. aeruginosa. Growth assays with PQQ-deficient mutants (ΔpqqABCDEH) demonstrated that PqqU is the primary uptake system for exogenous PQQ, rescuing growth on glucose and ethanol. Genomic analysis across 210 P. aeruginosa and 263 Pseudomonas strains revealed high conservation of PQQ biosynthesis and utilization genes, while PqqU showed lower prevalence (47.7%) in the genus. Transcriptional analyses using fluorescent reporters and qRT-PCR demonstrated that PqqU expression remains unchanged in response to PQQ, varying carbon sources, or iron availability, suggesting constitutive regulation. Comparative proteomics between wild-type and ΔpqqABCDEH strains, cultured on glucose or ethanol, uncovered extensive proteomic shifts, underscoring P. aeruginosa's metabolic adaptability. Additionally, PQQ-dependent metabolic pathways appear to indirectly influence iron homeostasis, most likely through environmental acidification. Together, these results emphasize the critical role of PqqU in PQQ uptake and its broader significance in shaping the metabolic and environmental versatility of Pseudomonas.

FEMS Microbiology Letters
Institut de Biologie Moléculaire des Plantes (FR), Biotechnologie et Signalisation Cellulaire (FR), Université de Strasbourg (FR)
Life in Land
Openalex Percentile: Top 16%
Microbial metabolism and enzyme function
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