DOI: 10.1128/aem.01076-26 ISSN: 0099-2240
Survival, growth, and potential of horizontal gene transfer of antibiotic resistance genes of bovine
Salmonella
on the cantaloupe surface
Zaira L. Castro-Delgado, Norma Heredia, Jose Angel Merino-Mascorro, Eduardo Franco-Frías, Jorge E. Dávila-Aviña, Santos García ABSTRACT
Salmonella
outbreaks are often linked to contaminated cantaloupes, and bacterial multiple antibiotic resistance is frequently observed. Research is needed to understand the growth and survival of
Salmonella
on cantaloupe surfaces, and the mechanisms of antibiotic resistance in that environment. This study investigated the growth, survival, and capacity for horizontal gene transfer of antibiotic resistance genes in
Salmonella
on the surface of cantaloupe. Bovine-derived
Salmonella
isolates were inoculated onto the surface of cantaloupe and incubated at 35°C under 65–75% humidity for 5 days. Each isolate was co-inoculated with donor
E. coli
CSH56 harboring helper plasmid RP4-8 and mobilizable plasmid pSC27, which carries kanamycin, neomycin, and ampicillin resistance genes. One hundred microliters of the
Salmonella
suspension (1 × 10
8
CFU/mL) and 100 µL of the
E. coli
suspension (1 × 10
7
CFU/mL) was applied to each cantaloupe (1:10 ratio).
Salmonella
survival and growth were monitored on Hektoen agar, transconjugants were enumerated on Hektoen agar with kanamycin, and donor
E. coli
were quantified on MacConkey agar. All
Salmonella
isolates survived and exhibited growth within the 5-day period, with increases ranging from 0.94 log
10
CFU/mL to 3.43 log
10
CFU/mL. Notably, all
Salmonella
isolates possess the capability to accept and integrate sequences derived from the pSC27 plasmid from
E. coli
into their chromosome, both
in vitro
and on cantaloupe. After conjugation, the count of
Salmonella
mutants carrying the plasmid was 2.79 log
10
CFU/mL
in vitro
. The survival, growth, and horizontal gene transfer of
Salmonella
on the surface of cantaloupe pose significant risks to public health.
IMPORTANCE
Salmonella
, a leading cause of foodborne diseases, poses a global health threat, with multidrug resistance emerging as a severe problem. Cantaloupes have been implicated in salmonellosis outbreaks in multiple countries over the last three decades. We hypothesize that acquisition of antibiotic resistance genes from other bacteria may occur on the surface of the fruit. This study established that
Salmonella
can survive, proliferate, and acquire antibiotic resistance genes on cantaloupe surfaces. This observation underscores the potential risks on the growth and transfer of genes between pathogens such as
Salmonella
and
E. coli
in foods. This impact goes beyond disease production and contributes to the rapid escalation of antimicrobial resistance and transmission of virulence genes in foods and the environment, which is a significant threat to public health.