Braam Mouton – Industry Presentation, 5 Nov 2019
Introduction
- The gas composition of the storage environment is adapted according to sensors, enabling adjustment in response to fruit metabolism.
- Three sensor types for monitoring:
- Chlorophyll fluorescence (CF)
- Respiration quotient (RQ)
- Ethanol (ET)
Benefits of Dynamic Controlled Atmosphere (DCA)
- DCA enables:
- Comparison of fruit quality maintenance between systems.
- Comparison of respiratory quotient readings and subsequent oxygen control between DCA-CF and DCA-RQ storage systems.
- Determining the effect of ethylene scrubbing on the storability of fruit under DCA-CF storage.
- Comparing biochemical data between fruit stored under different long-term storage techniques.
- Evaluating the effect of different low oxygen storage techniques on the overall sensory sensation of fruit.
Static CA vs. DCA
- Static CA:
No in situ sensors to monitor fruit response to the modified atmosphere. Low tolerance towards deviations from set gas levels. - XLO (Extra Low Oxygen):
- O₂: 1.2–1.5%, CO₂: 0.6–1.0%
- Better quality maintenance compared to standard CA storage.
- DCA-CF:
- O₂: 0.3–0.8%, CO₂: 0.3–0.8%
- Sensors measure chlorophyll fluorescence; a sharp increase shows O₂ stress.
- Better quality maintenance and reduced incidence of O₂-related disorders compared to standard CA (O₂: 1.5%, CO₂: 1.0%).
- Sensitive ethylene sensors (0.001 ppm) are used.
DCA-RQ: Principle and Benefits
- Sensors measure the CO₂ produced and O₂ consumed during storage; respiratory quotient (RQ) is calculated:
- Equation: C₆H₁₂O₆ + O₂ → CO₂ + H₂O + energy
- RQ = CO₂ produced / O₂ consumed (1 = aerobic, >1 = anaerobic)
- When RQ value is above the set-point, the oxygen partial pressure is raised.
- Benefits of DCA-RQ:
- Better quality maintenance compared to standard CA storage.
- Measures the overall metabolic response.
- Monitors: Flesh firmness, total soluble solids, titratable acidity, starch breakdown, superficial scald incidence/severity, colour change, external defects (e.g., greasiness), internal defects (e.g., core flush, browning).
Experimental Design
- Treatments:
- DCA-CF
- DCA-CF + ethylene scrubbing
- DCA-RQ
- XLO + ethylene scrubbing
- Evaluation per date, per replicate, per treatment:
- Maturity indexing
- Scald development (20 fruit)
- Remainder: 60 fruit for biochemical, 10 for ethylene
Ethylene and Its Effects
- Ethylene primarily influences:
- Greasiness
- Green colour loss
- Superficial scald incidence/severity
- Firmness
- Titratable acidity (TA)
Why Ethylene Matters
- The synthesis of α-farnesene is ethylene dependent (Watkins et al., 1993; Ju & Curry, 2000).
- 1-MCP’s efficiency in lowering scald in apples confirms ethylene is the main inducer of scald (Fan et al., 1999; Zanella, 2003).
- Initial low oxygen stress treatments reduce ethylene production during cold storage, resulting in reduced superficial scald (Pesis et al., 2010).
Practical Implications
- Regulation of ethylene action or biosynthesis affects volatile production in apple (Defilippi et al., 2005).
- Ethylene level (tested: 2440, 178, 0.231 ml/l) had no significant influence on flesh firmness and TA retention in ‘McIntosh’ apples stored for 210 days under 1.5% CO₂ + 1.0% O₂ (Lidster et al., 1983).
- Malic acid degradation is suppressed under low ethylene conditions (Defilippi et al., 2004).
- In ‘Cox Orange Pippin’, flesh firmness retention was extended by ethylene scrubbing at O₂ levels of 1.25, 1.0, and 0.75%, both after 153 days of storage and after 14 days shelf life (Stow, 1990).
- Ethylene scrubbing significantly reduced TA acidity loss under CA storage at 0.75% O₂ in ‘Cox Orange Pippin’ stored for 153 days (Stow, 1990).
Biochemical Parameters Under Different Low O₂ Storage Techniques
- Parameters per evaluation date, per replicate, per treatment:
- ROS, MHO & ACC, α-farnesene, internal gases
- EtOH, CTols (frozen), O₂, CO₂, C₂H₄
- 10–20 fruit per reading
Analytical Methods
- Headspace volatile analysis: α-farnesene, MHO, ethanol (GC-MS, 3 replicates, 10 fruit per replicate, in duplicate)
- Reactive oxygen species (ROS) production: Fluorescent confocal microscopy (3 replicates, 10 fruit per replicate)
- Conjugated trienols (CTols): HPLC, UV spectrophotometry (3 replicates, 20 fruit/rep)
- Fruit peel frozen with liquid nitrogen, stored at -80°C until analysis
Expected Outcomes
- Fruit quality storage profiling for different long-term methods.
- Understanding control of O₂ & CO₂ under different methods.
- Comparison of RQ values of DCA-CF and DCA-RQ storage methods.
- Does ethylene scrubbing influence long-term DCA/CA storage quality?
- Biochemical data between fruit stored under different long-term storage methods:
- Mechanisms (e.g., α-farnesene vs. internal ethylene/ACC)
- Ethanol levels in DCA-RQ vs. DCA-CF vs. XLO
- Sensory experience between fruit stored under different long-term storage methods.
Sensory and Storage Observations
- Core flush incidence decreases with decreasing O₂ concentrations in long-term storage for ‘Granny Smith’ (Zanella, 2003), but ethylene scrubbing under low O₂ (1.25, 1.0, 0.75%) increased core flush in ‘Cox Orange Pippin’ (Stow, 1990).
- Modified atmosphere of 1.0% O₂ decreased ethylene accumulation and suppressed ethylene and CO₂ production at end of storage compared to conventional CA (Lidster et al., 1983). Is additional ethylene scrubbing economical?
- Ethylene is an important modulator in aroma compound biosynthesis under normoxia (Defilippi et al., 2005).
References
- Bessemans, N., et al. (2016). A novel type of dynamic controlled atmosphere storage based on the respiratory quotient (RQ-DCA). Postharvest Biology and Technology, 115, 91-102.
- Both, V., et al. (2016). Effect of low oxygen conditioning and ultralow oxygen storage on the volatile profile, ethylene production and respiration rate of ‘Royal Gala’ apples. Scientia Horticulturae, 209, 156-164.
- Defilippi, B.G., et al. (2004). Impact of Suppression of Ethylene Action or Biosynthesis on Flavor Metabolites in Apple (Malus domestica Borkh) Fruits. J. Agric. Food Chem., 52, 5694-5701.
- Defilippi, B.G., et al. (2005). Relationship of Ethylene Biosynthesis to Volatile Production, Related Enzymes, and Precursor Availability in Apple Peel and Flesh Tissues. J. Agric. Food Chem., 53, 3133-3141.
- Fan, X., et al. (1999). Development of Apple Superficial Scald, Soft Scald, Core Flush, and Greasiness Is Reduced by MCP. Agric. Food Chem., 47, 3063-3068.
- Ju, Z. & Curry, E. (2000). Evidence that α-farnesene biosynthesis during fruit ripening is mediated by ethylene regulated gene expression in apples. Postharvest Biol Technol., 19, 9-16.
- Lidster, P.D., et al. (1983). Fruit quality and respiration of ‘McIntosh’ apples in response to ethylene, very low oxygen and carbon dioxide storage atmospheres. Scientia Hortic., 20, 71-83.
- Pesis, E., et al. (2010). Short anaerobiosis period prior to cold storage alleviates bitter pit and superficial scald in Granny Smith apples. J Sci Food Agric., 90, 2114-2123.
- Stow, J. (1990). The effects of removal of ethylene from low oxygen storage atmospheres on the quality of ‘Cox’s Orange Pippin’ apples. Scientia Hortic., 43, 281-290.
- Wang, Y. (2016). Storage Temperature, Controlled Atmosphere, and 1-Methylcyclopropene Effects on a-Farnesene, Conjugated Trienols, and Peroxidation in Relation with Superficial Scald, Pithy Brown Core, and Fruit Quality of ‘d’Anjou’ Pears during Long-term Storage. J. Am. Soc. Hortic. Sci., 141(2), 177-185.
- Watkins, C.B., et al. (1993). Relationships between α-farnesene, ethylene production and superficial scald development of apples. Acta Hortic., 343, 155-160.
- Wright, A.H., et al. (2012). Dynamic controlled atmosphere (DCA): Does fluorescence reflect physiology in storage? Postharvest Biology and Technology, 64, 19-30.
- Zanella, A. (2003). Control of apple superficial scald and ripening—a comparison between 1-methylcyclopropene and diphenylamine postharvest treatments, initial low oxygen stress and ultra low oxygen storage. Postharvest Biology and Technology, 27, 69-78.