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Physiological responses of basil to low oxygen availability in soilless culture

2026/04/23 by Katharina Huntenburg, Jack Farmer, Jos de Wit +2 · 2 voices
Agricultural and Biological Sciences · Engineering · #Soil Carbon and Nitrogen Dynamics #Polymer-Based Agricultural Enhancements

paper · pdf · doi:10.1080/14620316.2026.2661609

openalex created_date 2025/10/10 · openalex publication_date 2026/04/23 · openalex updated_date 2026/07/26

Abstract

Soilless cultivation systems in controlled environment agriculture create varying rootzone oxygen conditions, which can impact biomass production. The present study investigates the effect of mild hypoxia and its effect on shoot biomass production, root anatomy and architecture of basil (Ocimum basilicum L.) in ebb-flood, deep-water, and aeroponic systems in a greenhouse. After 4–5 weeks, aeroponically grown plants produced greater shoot biomass than those in the ebb-flood system, although root dry weights did not differ significantly. Using optical coherence tomography (OCT), we non-destructively quantified aerenchyma formation, confirming the suitability of OCT for imaging living root tissues. Aerenchyma developed 14–21 days after transplanting and were more extensive in unaerated deep-water systems than in aerated or aeroponic systems. Ethylene emission 20 days after transplanting did not differ between treatments. Thus, basil shows adaptative responses at mild hypoxia, which can lead to yield losses. This emphasises the need to define rootzone oxygen thresholds.

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