Population dynamics and cross-feeding in an antibiotic-degrading synthetic ecosystem. Insights from single-cell Raman spectroscopy and stable isotope probing
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Autor:in (Körperschaft)
Publikationsdatum
2026
Typ der Arbeit
Studiengang
Typ
01A - Beitrag in wissenschaftlicher Zeitschrift
Herausgeber:innen
Herausgeber:in (Körperschaft)
Betreuer:in
Übergeordnetes Werk
Environmental Science & Technology Letters
Themenheft
DOI der Originalpublikation
Link
Zugehörige Forschungsdaten
Reihe / Serie
Reihennummer
Jahrgang / Band
13
Ausgabe / Nummer
8
Seiten / Dauer
1122-1126
Patentnummer
Verlag / Herausgebende Institution
American Chemical Society
Verlagsort / Veranstaltungsort
Auflage
Version
Programmiersprache
Abtretungsempfänger:in
Praxispartner:in/Auftraggeber:in
Zusammenfassung
We report on commensalism enabling the entire degradation of the sulfadiazine antibiotic by a consortium composed of Microbacterium sp. strain BR1 and Terrabacter. 13C,15N-labeled sulfadiazine was synthesized and used as sole source of carbon in axenic cultures of Microbacterium and Terrabacter as well as cocultures of both genera. HPLC analyses showed that Microbacterium degraded sulfadiazine with accumulation of 2-aminopyrimidine, while the Terrabacter culture did not degrade sulfadiazine. The consortium degraded labeled sulfadiazine without any accumulation of 2-aminopyrimidine. Cross-feeding was efficiently synchronized in the synthetic consortium, and the release of 2-aminopyrimidine from sulfadiazine by Microbacterium is a prerequisite for its degradation by Terrabacter. Raman spectra in the fingerprint region enabled the discrimination of the two genera at the single cell level and the calculation of the cell number ratio, providing quantitative insight into the population dynamics in coculture. The cell counts in axenic culture and coculture were consistent with HPLC analyses, reflecting their metabolic activities and trophic interactions. Stable isotope probing and subsequent analyses of Raman spectra of Terrabacter in the synthetic consortium revealed a significant shift from 1000 cm–1 to 988 cm–1, proving that this bacterium assimilates 2-AP for biomass synthesis and that less than 50% of Terrabacter cells were degrading 2-AP.
Schlagwörter
Fachgebiet (DDC)
Veranstaltung
Startdatum der Ausstellung
Enddatum der Ausstellung
Startdatum der Konferenz
Enddatum der Konferenz
Datum der letzten Prüfung
ISBN
ISSN
2328-8930
Sprache
Englisch
Während FHNW Zugehörigkeit erstellt
Ja
Zukunftsfelder FHNW
Publikationsstatus
Veröffentlicht
Begutachtung
peer-reviewed
Open Access-Status
Hybrid
Zitation
Xue, R., Wu, X., Ji, R., Lin, L., Yang, K., Corvini, P., Cui, L., Zhu, Y.-G., & Li, H.-Z. (2026). Population dynamics and cross-feeding in an antibiotic-degrading synthetic ecosystem. Insights from single-cell Raman spectroscopy and stable isotope probing. Environmental Science & Technology Letters, 13(8), 1122–1126. https://doi.org/10.1021/acs.estlett.6c00474