Abstract:
Ensuring microbial safety of the commercially important giant freshwater prawn (GFP),
Macrobrachium rosenbergii, is crucial given its rising commercial value and sensitivity to
postharvest handling conditions. Staphylococcus aureus is a major foodborne pathogen of
concern in crustaceans; however, its behaviour under different storage conditions remains
poorly understood. This study examined the growth of naturally contaminated S. aureus
on GFP stored under three standard postharvest methods. A total of 72 fresh male
prawns (average weight, 440 ± 38 g; length, 30 ± 4 cm) from the Ridiyagama Reservoir,
Sri Lanka, were transported under chilled conditions and randomly assigned to three
treatments (n=24 per treatment): (i) ice storage (1:1, w/w), (ii) freezing at −20◦C,
and (iii) blast freezing at −35◦C followed by storage at −20 ◦C. Microbiological counts
were performed at three-day intervals from day 0 to day 21, following ISO standard
procedures, with analyses performed in triplicate at each time point. The initial (day 0)
S. aureus count in GFP was 269 ± 63 CFU/g. S. aureus showed significantly different
survival patterns (p<0.05) across the three storage methods. Ice-stored samples exhibited
continuous and substantial growth, reaching a 3,977 ± 440% increase by day 21, with
three distinct proliferation phases: a gradual increase during days 0–9 (83 ± 19%), a
moderate rise from days 9–15 (575 ± 76%), and a sharp escalation during days 15–21,
resulting in a net increase of 3,402% in the final phase. Conversely, freezing at −20◦C
led to a gradual decline in S. aureus counts (56 ± 4% of initial levels by day 21), whereas
blast-freezing resulted in the greatest reduction, with counts at 28 ± 5% of the initial
level. Prawns stored on ice exceeded international microbial limits after day 12, whereas
both frozen treatments remained within regulatory limits established by the European
Union (EU), Asian, and Oceania standards throughout the storage period. These results
indicate that ice storage promotes S. aureus growth due to favourable conditions, whereas
freezing, particularly blast freezing, decreases the pathogen’s persistence. Rapid freezing
thus provides superior microbial safety for GFP and should be prioritised in postharvest
handling systems to uphold product quality and compliance with international standards.