Objective
Aim of the present study is to investigate the levels of endotoxins on product samples from potatoes, onions, and seeds, representing a relevant part of the agro-food industry in the Netherlands, to gather valuable insights in possibilities for exposure control measures early in the process of industrial processing of these products.
Methods
Endotoxin levels on 330 products samples from companies representing the potato, onion, and seed (processing) industry (four potato-packaging companies, five potato-processing companies, five onion-packaging companies, and four seed-processing companies) were assessed using the Limulus Amboecyte Lysate (LAL) assay. As variation in growth conditions (type of soil, growth type) and product characteristics (surface roughness, dustiness, size, species) are assumed to influence the level of endotoxin on products, different types, and growth conditions were considered when collecting the samples. Additionally, waste material, rotten products, felt material (used for drying), and process water were collected.
Results
A large variation in the endotoxin levels was found on samples of potatoes, onions, and seeds (overall geometric standard deviation 17), in the range between 0.7 EU g-1 to 16400000 EU g-1. The highest geometric mean endotoxin levels were found in plant material (319600 EU g-1), followed by soil material (49100 EU g-1) and the outer side of products (9300 EU g-1), indicating that removal of plant and soil material early in the process would be an effective exposure control strategy. The high levels of endotoxins found in the limited number of samples from rotten onions indicate that these rotten onions should also be removed early in the process. Mean endotoxin levels found in waste material (only available for seed processing) is similar to the level found in soil material, although the range is much larger. On uncleaned seeds, higher endotoxin levels were found than on cleaned seeds, indicating that cleaning processes are important control measures and also that the waste material should be handled with care.
Conclusions
Although endotoxin levels in batches of to-be-processed potatoes, onions, and seeds vary quite dramatically, it could be concluded that rotten products, plant material, and waste material contain particularly high endotoxin levels. This information was used to propose control measures to reduce exposure to endotoxins of workers during the production process.
[1]
A. Madsen,et al.
Attempts to reduce exposure to fungi, β-glucan, bacteria, endotoxin and dust in vegetable greenhouses and a packaging unit.
,
2014,
The Science of the total environment.
[2]
Geneviève Marchand,et al.
Measurement of endotoxins in bioaerosols at workplace: a critical review of literature and a standardization issue.
,
2013,
The Annals of occupational hygiene.
[3]
A. Madsen,et al.
Organic dust toxic syndrome at a grass seed plant caused by exposure to high concentrations of bioaerosols
,
2012,
The Annals of occupational hygiene.
[4]
J. Dutkiewicz,et al.
Biological agents as occupational hazards - selected issues.
,
2011,
Annals of agricultural and environmental medicine : AAEM.
[5]
A. Madsen,et al.
Factors Affecting Vegetable Growers’ Exposure to Fungal Bioaerosols and Airborne Dust
,
2011,
The Annals of occupational hygiene.
[6]
A. Madsen,et al.
Exposure to Dust and Endotoxin of Employees in Cucumber and Tomato Nurseries
,
2008,
The Annals of occupational hygiene.
[7]
S. Tsushima,et al.
Culturable Leaf-Associated Bacteria on Tomato Plants and Their Potential as Biological Control Agents
,
2007,
Microbial Ecology.
[8]
Suzanne Spaan,et al.
Exposure to inhalable dust and endotoxins in agricultural industries.
,
2006,
Journal of environmental monitoring : JEM.
[9]
D. Heederik,et al.
Agricultural seed dust as a potential cause of organic dust toxic syndrome
,
2005,
Occupational and Environmental Medicine.
[10]
Mariska Gröllers-Mulderij,et al.
Ontwikkeling van een protocol voor het verzamelen van (product)monsters, en de opslag, extractie en analyse van deze monsters op endotoxinen
,
2014
.
[11]
G. Tranfo,et al.
Indoor exposure to airborne endotoxin: a review of the literature on sampling and analysis methods.
,
2013,
Industrial health.