An integrated dynamic model of ethylene biosynthesis and respiration of Conference pear (Pyrus communis) during storage and shelf life
Aug 25, 2026·
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0 min read
Hoang Minh Phan
Bert E. Verlinden
Pieter Verboven
Maarten L.A.T.M. Hertog
Bart M. Nicolai
Abstract
Respiration and ethylene biosynthesis rates change dynamically in maturing and ripening climacteric fruit.
However, typically in modelling work, under low-temperature controlled atmosphere storage, the temporal changes
of these metabolic processes have often been neglected. This paper proposes a simplified modelling approach to
describe and integrate the temporal changes of respiration and ethylene biosynthesis during storage and subsequent
shelf-life. The model starts from transcriptome levels of the involved enzymes and incorporates enzyme synthesis
and degradation. The interaction between oxygen and ethylene metabolism at the pathway and signalling level is
explicitly incorporated in the kinetic equations. These dynamic models of respiration and ethylene biosynthesis
were calibrated using mainly shelf-life data (18 °C in regular air) obtained after storage under various conditions.
The models were then validated using data from a storage experiment under standard CA (-1 °C, 3 kPa O2, 0.7 kPa CO2)
and DCA (-1 °C) conditions in both laboratory and industry settings. The goodness of fit, expressed by the adjusted
coefficient of determination R2adj, for the coupled model of ethylene and respiration was 0.68. Overall, the model
was able to capture the dynamic pattern of respiration and ethylene biosynthesis, aligning acceptably with the measured
data in shelf-life. Specifically, the exchange rate of respiratory gases generally increases and stabilises after one week
in shelf-life, while the peak of the ethylene exchange rate usually shifts earlier with later shelf-life stages from
different storage conditions.
Type
Publication
Postharvest Biology and Technology, 243
Status
Peer-reviewed
Funding
EU Horizon 2020 - The ENOUGH Project (No. 101036588)
