The Relationship between Environmental Characteristics and Risk Management Practices on Produce Farms: A Systematic Literature Review
Abstract
:1. Introduction
2. Methods
2.1. Search Strategy
2.2. Study Selection
2.3. Quality Assessment
3. Results
3.1. Literature Search Strategy and Selection
3.2. Study Characteristics
3.3. Quality Assessment
3.4. Environmental Characteristics
3.5. Relationship between Environmental Characteristics and Risk Management Practices (RMP)
3.6. Relationship between RMP and Presence of Microorganisms
4. Discussion
4.1. Study Characteristics
4.2. Quality Assessment
4.3. Environmental Characteristics
4.4. Relationship between Environmental Characteristics and RMP
4.5. Relationship between RMP and Microbial Prevalence
5. Limitations
6. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
- FAO. FAOSTAT. Food Supply—Crops Primary Equivalent. 2019. Available online: http://www.fao.org/faostat/en/#data/CC/ (accessed on 12 October 2020).
- Carstens, C.K.; Salazar, J.K.; Darkoh, C. Multistate outbreaks of foodborne illness in the United States associated with fresh produce from 2010-2017. Front. Microbiol. 2019, 10, 2667. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Painter, J.A.; Hoekstra, R.M.; Ayers, T.; Tauxe, R.V.; Braden, C.R.; Angulo, F.J.; Griffin, P.M. Attribution of foodborne illnesses, hospitalizations, and deaths to food commodities by using outbreak data, United States, 1998–2008. Emerg. Infect. Dis. 2013, 19, 407–415. [Google Scholar] [CrossRef] [PubMed]
- Bennett, S.D.; Sodha, S.V.; Ayers, T.L.; Lynch, M.F.; Gould, L.H.; Tauxe, R.V. Produce-associated foodborne disease outbreaks, USA, 1998–2013. Epidemiol. Infect. 2018, 146, 1397–1406. [Google Scholar] [CrossRef] [Green Version]
- Callejón, R.M.; Rodríguez-Naranjo, M.I.; Ubeda, C.; Hornedo-Ortega, R.; Garcia-Parrilla, M.C.; Troncoso, A.M. Reported foodborne outbreaks due to fresh produce in the United States and European Union: Trends and causes. Foodborne Pathog. Dis. 2015, 12, 32–38. [Google Scholar] [CrossRef] [PubMed]
- Bélanger, P.; Tanguay, F.; Hamel, M.; Phypers, M. Foodborne illness: An overview of foodborne outbreaks in Canada reported through outbreak summaries: 2008-2014. Can. Commun. Dis. Rep. 2015, 41, 254. [Google Scholar] [CrossRef]
- Bartz, F.E.; Lickness, J.S.; Heredia, N.; De Aceituno, A.F.; Newman, K.L.; Hodge, D.W.; Jaykus, L.-A. Contamination of fresh produce by microbial indicators on farms and in packing facilities: Elucidation of environmental routes. Appl. Environ. Microbiol. 2017, 83, e02984-16. [Google Scholar] [CrossRef] [Green Version]
- CDC. How Food Gets Contaminated—The Food Production Chain. 2017. Available online: https://www.cdc.gov/foodsafety/production-chain.html/ (accessed on 29 January 2020).
- FDA. FSMA Final Rule on Produce Safety. 2019. Available online: https://www.fda.gov/food/food-safety-modernization-act-fsma/fsma-final-rule-produce-safety/ (accessed on 11 October 2019).
- GLOBALGAP. 2020. Available online: https://www.globalgap.org/uk_en/ (accessed on 20 January 2020).
- FDA. Guidance for Industry: Guide to Minimize Microbial Food Safety Hazards for Fresh Fruits and Vegetables. 1998. Available online: https://www.fda.gov/regulatory-information/search-fda-guidance-documents/guidance-industry-guide-minimize-microbial-food-safety-hazards-fresh-fruits-and-vegetables (accessed on 15 May 2020).
- CANADAGAP. 2020. Available online: https://www.canadagap.ca/ (accessed on 15 February 2020).
- FDA. Standards for the Growing, Harvesting, Packing, and Holding of Produce for Human Consumption. 2015. Available online: https://www.federalregister.gov/documents/2015/11/27/2015-28159/standards-for-the-growing-harvesting-packing-and-holding-of-produce-for-human-consumption (accessed on 5 June 2020).
- Produce Safety Alliance. PSA Curriculum. 2020. Available online: https://producesafetyalliance.cornell.edu/curriculum/ (accessed on 11 January 2020).
- Laury-Shaw, A.; Strohbehn, C.; Naeve, L.; Wilson, L.; Domoto, P. Current trends in food safety practices for small-scale growers in the Midwest. Food Prot. Trends 2015, 35, 461–469. [Google Scholar]
- Fraser, A.M.; Simmons, O.D. Food safety education: Training farm workers in the US fresh produce sector. In Sustainability Challenges in the Agrofood Sector; Bhat, R., Ed.; John Wiley & Sons Ltd.: Hoboken, NJ, USA, 2017; pp. 643–659. [Google Scholar]
- Mahmoud, B.S.; Stafne, E.T.; Coker, C.H.; Bachman, G.R.; Bell, N. Implementing good practices programs to encourage production of high-quality, safer produce in Mississippi. J. Ext. 2016, 54, n4. [Google Scholar]
- Shaw, A.M.; Strohbehn, C.H.; Naeve, L.L.; Domoto, P.A.; Wilson, L.A. Knowledge gained from Good Agricultural Practices courses for Iowa growers. J. Ext. 2015, 53, 5RIB3. [Google Scholar]
- Nayak, R.; Tobin, D.; Thomson, J.; Radhakrishna, R.B.; Laborde, L.F. Evaluation of on-farm food safety programming in Pennsylvania: Implications for extension. J. Ext. 2015, 53, 1FEA9. [Google Scholar]
- Kline, T.R.; Kneen, H.; Barrett, E.; Kleinschmidt, A.; Doohan, D. Adapting extension food safety programming for vegetable growers to accommodate differences in ethnicity, farming scale, and other individual factors. J. Ext. 2012, 50, 1–4. [Google Scholar]
- Clements, D.P.; Bihn, E.A. The Impact of Food Safety Training on the Adoption of Good Agricultural Practices on Farms. In Safety and Practice for Organic Food; Biswas, D., Micallef, S.A., Eds.; Elsevier BV: Amsterdam, The Netherlands, 2019; pp. 321–344. [Google Scholar]
- Bihn, E.A.; Springer, L.; Pineda-Bermúdez, L. Local Food Safety Collaborative Need Assessment Report; Department of Food Science, Cornell University: Ithaca, NY, USA, 2015. [Google Scholar]
- Lichtenberg, E.; Page, E.T. Prevalence and cost of on-farm produce safety measures in the Mid-Atlantic. Food Control 2016, 69, 315–323. [Google Scholar] [CrossRef] [Green Version]
- Bovay, J.; Ferrier, P.; Zhen, C. Estimated Costs for Fruit and Vegetable Producers to Comply with the Food Safety Modernization Act’s Produce Rule; U.S. Department of Agriculture, Economic Research Service: Washington, DC, USA, 2018; p. 195.
- Calder, L.; Simmons, G.; Thornley, C.; Taylor, P.; Pritchard, K.; Greening, G.; Bishop, J. An outbreak of hepatitis A associated with consumption of raw blueberries. Epidemiol. Infect. 2003, 131, 745–751. [Google Scholar] [CrossRef]
- Gelting, R.J.; Baloch, M. A systems analysis of irrigation water quality in environmental assessments related to foodborne outbreaks. Aquat. Procedia 2013, 2, 130–137. [Google Scholar] [CrossRef]
- Buchholz, U.; Bernard, H.; Werber, D.; Böhmer, M.M.; Remschmidt, C.; Wilking, H.; Deleré, Y.; Der Heiden, M.A.; Adlhoch, C.; Dreesman, J.; et al. German outbreak of Escherichia coli O104: H4 associated with sprouts. N. Engl. J. Med. 2011, 365, 1763–1770. [Google Scholar] [CrossRef] [PubMed]
- Gelting, R.J.; Baloch, M.A.; Zarate-Bermudez, M.A.; Selman, C. Irrigation water issues potentially related to the 2006 multistate E. coli O157:H7 outbreak associated with spinach. Agric. Water Manag. 2011, 98, 1395–1402. [Google Scholar] [CrossRef]
- Mccollum, J.T.; Cronquist, A.B.; Silk, B.J.; Jackson, K.; O’Connor, K.A.; Cosgrove, S.; Gossack, J.P.; Parachini, S.S.; Jain, N.S.; Ettestad, P.; et al. Multistate outbreak of listeriosis associated with cantaloupe. N. Engl. J. Med. 2013, 369, 944–953. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Greene, S.K.; Daly, E.R.; Talbot, E.A.; Demma, L.J.; Holzbauer, S.; Patel, N.J.; Hill, T.A.; Walderhaug, M.O.; Hoekstra, R.M.; Lynch, M.F.; et al. Recurrent multistate outbreak of Salmonella Newport associated with tomatoes from contaminated fields, 2005. Epidemiol. Infect. 2008, 136, 157–165. [Google Scholar] [CrossRef]
- Faour-Klingbeil, D.; Murtada, M.; Kuri, V.; Todd, E.C.D. Understanding the routes of contamination of ready-to-eat vegetables in the Middle East. Food Control 2016, 62, 125–133. [Google Scholar] [CrossRef] [Green Version]
- Luedtke, A.N.; Chapman, B.; Powell, D.M. Implementation and analysis of an on-farm food safety program for the production of greenhouse vegetables. J. Food Prot. 2003, 66, 485–489. [Google Scholar] [CrossRef]
- Da Cruz, A.G.; Cenci, S.A.; Maia, M.C.A. Good agricultural practices in a Brazilian produce plant. Food Control 2006, 17, 781–788. [Google Scholar] [CrossRef]
- Pate, M.L.; Nummer, B. Hand safety for specialty crop production workers: A pilot study investigating frequencies of minor open-wound hand injuries and presence of pathogenic bacteria. J. Agric. Saf. Health 2013, 19, 227–236. [Google Scholar] [PubMed]
- Kokkinakis, E.; Boskou, G.; Fragkiadakis, G.A.; Kokkinaki, A.; Lapidakis, N. Microbiological quality of tomatoes and peppers produced under the good agricultural practices protocol AGRO 2-1 & 2-2 in Crete, Greece. Food Control 2007, 18, 1538–1546. [Google Scholar] [CrossRef]
- Bartz, S.; Hessel, C.T.; Rodrigues, R.D.Q.; Possamai, A.; Perini, F.O.; Jacxsens, L.; Uyttendaele, M.; Bender, R.J.; Tondo, E.C. Insights in agricultural practices and management systems linked to microbiological contamination of lettuce in conventional production systems in Southern Brazil. Int. J. Food Contam. 2015, 2, 7. [Google Scholar] [CrossRef] [Green Version]
- Öner, G.; Ișın, Ș. Evaluation of fruit-growers’ practices in terms of GLOBALGAP criteria in Aegean region, Turkey. Ege Üniv. Ziraat Fak. Derg. 2013, 1, 305–314. [Google Scholar]
- Ganpat, W.; Badrie, N.; Walter, S.; Roberts, L.; Nandlal, J.; Smith, N. Compliance with Good Agricultural Practices (GAPs) by state-registered and non-registered vegetable farmers in Trinidad, West Indies. Food Secur. 2014, 6, 61–69. [Google Scholar] [CrossRef]
- Adalja, A.; Lichtenberg, E. Implementation challenges of the food safety modernization act: Evidence from a national survey of produce growers. Food Control 2018, 89, 62–71. [Google Scholar] [CrossRef]
- Van Asseldonk, M.A.P.M.; Malaguti, L.; Breukers, M.L.H.; Van Der Fels-Klerx, H.J. Understanding preferences for interventions to reduce microbiological contamination in Dutch vegetable production. J. Food Prot. 2018, 81, 892–897. [Google Scholar] [CrossRef]
- Bihn, E.A.; Smart, C.D.; Hoepting, C.A.; Worobo, R.W. Use of surface water in the production of fresh fruits and vegetables: A survey of fresh produce growers and their water management practices. Food Prot. Trends 2013, 33, 307–314. [Google Scholar]
- Dzingirayi, G.; Korsten, L. Assessment of primary production of horticultural safety management systems of mushroom farms in South Africa. J. Food Prot. 2016, 79, 1188–1196. [Google Scholar] [CrossRef]
- Harrison, J.A.; Gaskin, J.W.; Harrison, M.A.; Cannon, J.L.; Boyer, R.R.; Zehnder, G.W. Survey of food safety practices on small to medium-sized farms and in farmers markets. J. Food Prot. 2013, 76, 1989–1993. [Google Scholar] [CrossRef]
- Ivey, M.L.L.; Lejeune, J.T.; Miller, S. Vegetable producers’ perceptions of food safety hazards in the midwestern USA. Food Control 2012, 26, 453–465. [Google Scholar] [CrossRef]
- Mdluli, F.; Thamaga-Chitja, J.; Schmidt, S. Appraisal of hygiene indicators and farming practices in the production of leafy vegetables by organic small-scale farmers in uMbumbulu (Rural KwaZulu-Natal, South Africa). Int. J. Environ. Res. Public Health 2013, 10, 4323–4338. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Mukherjee, A.; Speh, D.; Diez-Gonzalez, F. Association of farm management practices with risk of Escherichia coli contamination in pre-harvest produce grown in Minnesota and Wisconsin. Int. J. Food Microbiol. 2007, 120, 296–302. [Google Scholar] [CrossRef] [PubMed]
- Park, S.; Navratil, S.; Gregory, A.; Bauer, A.; Srinath, I.; Szonyi, B.; Nightingale, K.; Anciso, J.; Jun, M.; Han, D.; et al. Farm management, environment, and weather factors jointly affect the probability of spinach contamination by generic Escherichia coli at the preharvest stage. Appl. Environ. Microbiol. 2014, 80, 2504–2515. [Google Scholar] [CrossRef] [Green Version]
- Pires, A.F.A.; Millner, P.D.; Baron, J.; Jay-Russell, M.T. Assessment of current practices of organic farmers regarding biological soil amendments of animal origin in a multi-regional US study. Food Prot. Trends 2018, 38, 347–362. [Google Scholar]
- Soon, J.M. Food safety perceptions and practices of selected UK fresh produce farms. Qual. Assur. Saf. Crop. Foods 2012, 4, 61–76. [Google Scholar] [CrossRef]
- Cohen, N.; Hollingsworth, C.S.; Olson, R.B.; Laus, M.J.; Coli, W.M. Farm food safety practices: A survey of New England growers. Food Prot. Trends 2005, 25, 363–370. [Google Scholar]
- Hultberg, A.; Schermann, M.; Tong, C. Results from a mail survey to assess Minnesota vegetable growers’ adherence to Good Agricultural Practices. HortTechnology 2012, 22, 83–88. [Google Scholar] [CrossRef] [Green Version]
- Marine, S.C.; Martin, D.A.; Adalja, A.; Mathew, S.; Everts, K.L. Effect of market channel, farm scale, and years in production on mid-Atlantic vegetable producers’ knowledge and implementation of Good Agricultural Practices. Food Control 2016, 59, 128–138. [Google Scholar] [CrossRef] [Green Version]
- Rangarajan, A.; Pritts, M.P.; Reiners, S.; Pedersen, L.H. Focusing food safety training based on current grower practices and farm scale. HortTechnology 2002, 12, 126–131. [Google Scholar] [CrossRef] [Green Version]
- Sinkel, D.; Khouryieh, H.; Daday, J.K.; Stone, M.; Shen, C. Knowledge and implementation of Good Agricultural Practices among Kentucky fresh produce farmers. Food Prot. Trends 2018, 38, 111–121. [Google Scholar]
- Tong, C.; Schermann, M.; Diez-Gonzalez, F.; Rossbach, J. Food safety risks of leafy greens from small-acreage farms in Minnesota. J. Ext. 2017, 55, 4RIB4. [Google Scholar]
- Jackson, C.; Larcher, D.; Goodrich-Schneider, R.; Gravani, R.B.; Bihn, E.A.; Schneider, K.R. Determining the effect of Good Agricultural Practices awareness on implementation: A multi-state survey. Food Prot. Trends 2007, 27, 684–693. [Google Scholar]
- Baur, P.; Driscoll, L.; Gennet, S.; Karp, D. Inconsistent food safety pressures complicate environmental conservation for California produce growers. Calif. Agric. 2016, 70, 142–151. [Google Scholar] [CrossRef] [Green Version]
- Beretti, M.; Stuart, D. Food safety and environmental quality impose conflicting demands on Central Coast growers. Calif. Agric. 2008, 62, 68–73. [Google Scholar] [CrossRef] [Green Version]
- Duvenage, S.; Korsten, L. Assessment of foodborne pathogen presence in the peach supply chain and its potential risk to the end consumer. Food Control 2017, 78, 374–382. [Google Scholar] [CrossRef] [Green Version]
- Hamilton, K.E.; Umber, J.; Hultberg, A.; Tong, C.; Schermann, M.; Diez-Gonzalez, F.; Bender, J.B. Validation of Good Agricultural Practices (GAP) on Minnesota vegetable farms. Foodborne Pathog. Dis. 2015, 12, 145–150. [Google Scholar] [CrossRef]
- Ellis, J.D.; Strohbehn, C.H.; Henroid, D.H., Jr. Assessing on-farm food handling practices of Iowa-grown produce and eggs in regard to food safety. Food Prot. Trends 2005, 25, 758–761. [Google Scholar]
- Rodrigues, R.D.Q.; Loiko, M.R.; de Paula, C.M.D.; Hessel, C.T.; Jacxsens, L.; Uyttendaele, M.; Bender, R.J.; Tondo, E.C. Microbiological contamination linked to implementation of good agricultural practices in the production of organic lettuce in Southern Brazil. Food Control 2014, 42, 152–164. [Google Scholar] [CrossRef]
- Holvoet, K.; Sampers, I.; Seynnaeve, M.; Jacxsens, L.; Uyttendaele, M. Agricultural and management practices and bacterial contamination in greenhouse versus open field lettuce production. Int. J. Environ. Res. Public Health 2014, 12, 32–63. [Google Scholar] [CrossRef] [Green Version]
- Ssemanda, J.N.; Reij, M.W.; Van Middendorp, G.; Bouw, E.; Van Der Plaats, R.; Franz, E.; Muvunyi, C.M.; Bagabe, M.C.; Zwietering, M.H.; Joosten, H. Foodborne pathogens and their risk exposure factors associated with farm vegetables in Rwanda. Food Control 2018, 89, 86–96. [Google Scholar] [CrossRef]
- USDOL (United States Department of Labor). Fact Sheet #51: Field Sanitation Standards under the Occupational Safety and Health Act. Available online: https://www.dol.gov/sites/dolgov/files/WHD/legacy/files/whdfs51.pdf/ (accessed on 8 July 2020).
- Grace, D. Food safety in developing countries: Research gaps and opportunities. In White Paper; International Livestock Research Institute: Nairobi, Kenya, 2017. [Google Scholar]
- Oloo, B.; Daisy, L.; Oniang’O, R. Food safety legislation in some developing countries. In Food Safety—Some Global Trends; El-Samragy, Y., Ed.; IntechOpen: London, UK, 2018; pp. 19–35. [Google Scholar]
- Frankowska, A.; Jeswani, H.K.; Azapagic, A. Environmental impacts of vegetables consumption in the UK. Sci. Total. Environ. 2019, 682, 80–105. [Google Scholar] [CrossRef] [PubMed]
- Denis, N.; Zhang, H.; Leroux, A.; Trudel, R.; Bietlot, H. Prevalence and trends of bacterial contamination in fresh fruits and vegetables sold at retail in Canada. Food Control 2016, 67, 225–234. [Google Scholar] [CrossRef] [Green Version]
- Johnson, R. The U.S. Trade Situation for Fruit and Vegetable Products; Congressional Research Services: Washington, DC, USA, 2016.
- Driscoll, D.L. Introduction to primary research: Observations, surveys, and interviews. In Writing Spaces: Readings on Writings; Lowe, C., Zemliansky, P., Eds.; Parlor Press: Anderson, SC, USA, 2011; Volume 2, pp. 153–174. [Google Scholar]
- Phellas, C.; Bloch, A.; Seale, C. Structured methods: Interviews, questionnaires and observations. In Researching Society and Culture; Seale, C., Ed.; SAGE Publications: Thousand Oaks, CA, USA, 2011; pp. 181–205. [Google Scholar]
- Muijs, D. Designing Non-Experimental Studies. Doing Quantitative Research in Education with SPSS; SAGE Publications: Thousand Oaks, CA, USA, 2010. [Google Scholar]
- Kadam, P.; Bhalerao, S. Sample size calculation. Int. J. Ayurveda Res. 2010, 1, 55. [Google Scholar] [PubMed] [Green Version]
- Salkind, N. Encyclopedia of Research Design; SAGE Publications: Thousand Oaks, CA, USA, 2010. [Google Scholar]
- CDC. Foodborne Outbreaks. List of Selected Multistate Foodborne Outbreak Investigations. 2020. Available online: https://www.cdc.gov/foodsafety/outbreaks/multistate-outbreaks/outbreaks-list.html/ (accessed on 15 February 2020).
- Jay-Russell, M.; Cooley, M.; Carychao, D.; Wiscomb, G.W.; Sweitzer, R.A.; Crawford-Miksza, L.; Farrar, J.A.; Lau, D.K.; O’Connell, J.; Millington, A.; et al. Escherichia coli O157: H7 in feral swine near spinach fields and cattle, central California coast. Emerg. Infect. Dis. 2007, 13, 1908–1911. [Google Scholar] [CrossRef]
- Soderstrom, A.; Österberg, P.; Lindqvist, A.; Jönsson, B.; Lindberg, A.; Ulander, S.B.; Welinder-Olsson, C.; Löfdahl, S.; Kaijser, B.; De Jong, B.; et al. A large Escherichia coli O157 outbreak in Sweden associated with locally produced lettuce. Foodborne Pathog. Dis. 2008, 5, 339–349. [Google Scholar] [CrossRef]
- Castro-Rosas, J.; Cerna-Cortés, J.F.; Méndez-Reyes, E.; Lopez-Hernandez, D.; Gómez-Aldapa, C.A.; Estrada-García, T. Presence of faecal coliforms, Escherichia coli and diarrheagenic E. coli pathotypes in ready-to-eat salads, from an area where crops are irrigated with untreated sewage water. Int. J. Food Microbiol. 2012, 156, 176–180. [Google Scholar] [CrossRef]
- Ensink, J.H.J.; Mahmood, T.; Dalsgaard, A. Wastewater-irrigated vegetables: Market handling versus irrigation water quality. Trop. Med. Int. Health 2007, 12, 2–7. [Google Scholar] [CrossRef]
- Karg, H.; Drechsel, P. Motivating behaviour change to reduce pathogenic risk where unsafe water is used for irrigation. Water Int. 2011, 36, 476–490. [Google Scholar] [CrossRef]
- Steele, M.; Odumeru, J. Irrigation water as source of foodborne pathogens on fruit and vegetables. J. Food Prot. 2004, 67, 2839–2849. [Google Scholar] [CrossRef] [PubMed]
- Parker, J.; Wilson, R.; Lejeune, J.T.; Doohan, D.J. Including growers in the “food safety” conversation: Enhancing the design and implementation of food safety programming based on farm and marketing needs of fresh fruit and vegetable producers. Agric. Hum. Values 2012, 29, 303–319. [Google Scholar] [CrossRef]
- Harrison, J.A. Food safety hazards identified on small farms. In Food Safety for Farmers Markets: A Guide to Enhancing Safety of Local Foods; Harrison, J.A., Ed.; Springer: Cham, Switzerland, 2017; pp. 13–21. [Google Scholar]
- Rangarajan, A.; Bihn, E.A.; Gravani, R.B.; Scott, D.L.; Pritts, M.P. Food Safety Begins on the Farm: A Grower’s Guide; Cornell University: Ithaca, NY, USA, 2000. [Google Scholar]
- Soon, J.; Baines, R. Food safety training and evaluation of handwashing intention among fresh produce farm workers. Food Control 2012, 23, 437–448. [Google Scholar] [CrossRef]
- Volk, J. Compact Farms: 15 Proven Plans for Market Farms on 5 Acres or Less; Includes Detailed Farm Layouts for Productivity and Efficiency; Burns, D., Ed.; Storey Publishing: North Adams, MA, USA, 2017. [Google Scholar]
- Woods, M.; Thornsbury, S. Costs of Adopting Good Agricultural Practices (GAPs) to Ensure Food Safety in Fresh Strawberries; Department of Agricultural Economics, Michigan State University: East Lansing, MI, USA, 2005. [Google Scholar]
- FDA. Raw Manure under the FSMA Final Rule on Produce Safety. 2018. Available online: https://www.fda.gov/food/food-safety-modernization-act-fsma/raw-manure-under-fsma-final-rule-produce-safety/ (accessed on 5 June 2020).
- Wander, M. Managing Manure Fertilizers in Organic Systems. eOrganic. 2015. Available online: https://eorganic.org/node/3132 (accessed on 8 July 2020).
- Suslow, T.V. Key Points of Control and Management of Microbial Food Safety: Information for Producers, Processors, and Handlers of Fresh Market Tomatoes; Agriculture and Natural Resources, University of California: Oakland, CA, USA, 2004. [Google Scholar]
- Brandl, M.T. Fitness of human enteric pathogens on plants and implications for food safety. Annu. Rev. Phytopathol. 2006, 44, 367–392. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- VerCauteren, K.C.; Lavelle, M.J.; Hygnstrom, S. From the field: Fences and deer-damage management: A review of designs and efficacy. Wildl. Soc. Bull. 2006, 34, 191–200. [Google Scholar] [CrossRef]
- Rice, D.H. Produce Contamination by Other Wildlife. In The Produce Contamination Problem; Elsevier BV: Amsterdam, The Netherlands, 2014; pp. 167–183. [Google Scholar]
- DeCol, L.T.; Casarin, L.S.; Hessel, C.T.; Batista, A.C.F.; Allende, A.; Tondo, E.C. Microbial quality of irrigation water used in leafy green production in Southern Brazil and its relationship with produce safety. Food Microbiol. 2017, 65, 105–113. [Google Scholar] [CrossRef]
- Pilling, V.K.; Brannon, L.A.; Shanklin, C.W.; Howells, A.D.; Roberts, K.R. Identifying specific beliefs to target to improve restaurant employees’ intentions for performing three important food safety behaviors. J. Am. Diet. Assoc. 2008, 108, 991–997. [Google Scholar] [CrossRef] [Green Version]
- Grauke, L.J.; Kudva, I.T.; Yoon, J.W.; Hunt, C.W.; Williams, C.J.; Hovde, C.J. Gastrointestinal tract location of Escherichia coli O157: H7 in ruminants. Appl. Environ. Microbiol. 2002, 68, 2269–2277. [Google Scholar] [CrossRef] [Green Version]
- Berry, E.D.; Millner, P.D.; Wells, J.E.; Kalchayanand, N.; Guerini, M.N. Fate of naturally occurring Escherichia coli O157: H7 and other zoonotic pathogens during minimally managed bovine feedlot manure composting processes. J. Food Prot. 2013, 76, 1308–1321. [Google Scholar] [CrossRef]
- Tabe, N.N.; Rahman, S.; Tabe, E.S.; Doetkott, D.; Ekiri, A.B.; Khaitsa, M.L. Prevalence of Escherichia coli and Salmonella in runoff of two cattle feedlots in North Dakota. Food Prot. Trends 2016, 36, 33–42. [Google Scholar]
- Gwimbi, P. The microbial quality of drinking water in Manonyane community: Maseru District (Lesotho). Afr. Health Sci. 2011, 11, 474–480. [Google Scholar] [PubMed]
- USDA ERS. Summary Data on Annual Food Imports, Values and Volumes by Food Category and Source Country, 1999–2017. 2018. Available online: https://www.ers.usda.gov/data-products/us-food-imports/ (accessed on 18 November 2020).
Action | Setting | Aim | ||
---|---|---|---|---|
Audit OR | AND | Agriculture OR | AND | “Produce safety” OR |
Assessment OR | Produce OR | “Food safety” OR | ||
Inspection OR | Fruits OR | “Food safety practice” OR | ||
Monitoring OR | Vegetables | “Good agricultural practice” OR | ||
Survey | “Grower practice” |
Quality Criteria | Criterion Is Met If: |
---|---|
Study design | |
Was the sample size appropriate? | Sample size represents at least 50% of the population reported by the authors. |
Was the sample recruitment procedure appropriate? | The authors provided a sufficient description of the general population, the sample included, and the sample recruitment procedure so others can repeat the procedure. |
Instrument/tool Validation | |
Was the protocol reviewed by experts? | The authors validated the instrument/tool by expert reviewing. |
Have any reliability tests been conducted for the instrument? | The authors validated the instrument/tool by conducting any reliability test for consistency and stability in measuring what it is intended to measure. |
Was the instrument developed by following an established standard? | The author constructed the instrument/tool based on established produce safety standards (i.e., Produce Safety Rule, Global Good Agricultural Practices (GLOBALGAP)) or previously validated instrument/tool. |
Was the instrument pilot tested if the instrument constructed by the author? | The authors pilot tested the instrument/tool to identify potential problem areas and deficiencies in the instrument/tool prior to implementation. |
Data collectors | |
Are data collectors trained prior to data collection? | Data collectors were trained to assure the accuracy and consistency of the data collection. |
Data | |
Is data cleaned and checked for accuracy before analysis? | The data were checked for accuracy before analysis. |
Study | Country | Produce Type | Sample Size | Methods | |||||
---|---|---|---|---|---|---|---|---|---|
Fruit | Vegetable | Observation | Interview | Intervention | Survey | Microbial Analysis | |||
Direct assessment studies a | |||||||||
Faour-Klingbeil et al., 2016 [31] | Lebanon | x | 10 | x | |||||
Luedtke et al., 2003 [32] | Canada | x | 166 | x | x | x | |||
da Cruz et al., 2006 [33] | Brazil | x | 1 | x | x | ||||
Pate and Nummer, 2013 [34] | USA | x | 6 | x | |||||
Kokkinakis et al., 2007 [35] | Greece | x | 4 | x | x | ||||
Indirect assessment studies b | |||||||||
Bartz et al., 2015 [36] | Brazil | x | 3 | x | x | ||||
Öner and Isin, 2013 [37] | Turkey | x | 122 | x | |||||
Ganpat et al., 2014 [38] | Trinidad and Tobago | x | 196 | x | |||||
Laury-Shaw et al., 2015 [15] | USA | x | x | 70 | x | x | |||
Adalja and Lichtenberg, 2018 [39] | USA | x | x | 394 | x | ||||
Van Asseldonk et al., 2018 [40] | Netherlands | x | 42 | x | x | ||||
Bihn et al., 2013 [41] | USA | x | x | 84 | x | ||||
Dzingirayi and Korsten, 2016 [42] | South Africa | x | 10 | x | x | ||||
Harrison et al., 2013 [43] | USA | x | x | 226 | x | ||||
Ivey et al., 2012 [44] | USA | x | 210 | x | |||||
Mdluli et al., 2013 [45] | South Africa | x | 73 | x | x | ||||
Mukherjee et al., 2007 [46] | USA | x | x | 63 | x | x | |||
Park et al., 2014 [47] | USA | x | 12 | x | |||||
Pires et al., 2018 [48] | USA | x | x | 666 | x | ||||
Soon, 2012 [49] | UK | x | 12 | x | |||||
Cohen et al., 2005 [50] | USA | x | 297 | x | |||||
Hultberg et al., 2012 [51] | USA | x | 246 | x | |||||
Lichtenberg and Page, 2016 [23] | USA | x | 47 | x | |||||
Marine et al., 2016 [52] | USA | x | x | 313 | x | x | |||
Rangarajan et al., 2002 [53] | USA | x | x | 213 | x | ||||
Sinkel et al., 2018 [54] | USA | x | x | 160 | x | ||||
Tong et al., 2017 [55] | USA | x | 39 | x | x | ||||
Jackson et al., 2007 [56] | USA | x | x | 596 | x | ||||
Baur et al., 2016 [57] | USA | x | x | 588 | x | ||||
Beretti and Stuart, 2008 [58] | USA | x | 181 | x | |||||
Mix method studies c | |||||||||
Duvengae and Korsten, 2017 [59] | South Africa | x | 1 | x | x | x | |||
Hamilton et al., 2015 [60] | USA | x | 27 | x | x | ||||
Ellis et al., 2005 [61] | USA | x | x | 9 | x | x | |||
Rodrigues et al., 2014 [62] | Brazil | x | 3 | x | x | x | |||
Holvoet et al., 2015 [63] | Belgium | x | 8 | x | x | x | |||
Ssemanda et al., 2018 [64] | Rwanda | x | 198 | x | x | x |
Quality Criteria | Total Quality Score of Articles Reporting Each Item | ||
---|---|---|---|
Direct Assessment Studies (n = 5) | In-Direct Assessment Studies (n = 25) | Mixed-Method Studies (n = 6) | |
Study Design (2 points) | |||
Was the sample size appropriate? | 2 | 5 | 0 |
Was the sample recruitment procedure appropriate? | 2 | 18 | 3 |
Instrument/tool Validation (4 points) | |||
Was the protocol reviewed by experts? | 0 | 8 | 1 |
Have any reliability tests been conducted for the instrument? | 1 | 3 | 3 |
Was the instrument developed by following an established standard? | 3 | 8 | 3 |
Was the instrument pilot tested if the instrument constructed by the author? | 0 | 9 | 0 |
Data Collectors (1 point) | |||
Are data collectors trained prior data collection? | 0 | 0 * | 1 |
Data (1 point) | |||
Is data cleaned and checked for accuracy before analysis? | 0 | 0 | 0 |
Study | Environmental Characteristics | Risk Management Practices | |||||||||||||
---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
WHH (n = 20) | AW (n = 24) | AC (n = 6) | BSAAO (n = 17) | CS (n = 11) | HPP (n = 11) | ST (n = 11) | WHH (n = 19) | AW (n = 29) | AC (n = 18) | BSAAO (n = 27) | CS (n = 20) | HPP (n = 19) | ST (n = 14) | ||
Direct assessment studies a | |||||||||||||||
1 | Faour-Klingbeil et al., 2016 [31] | x | x | x | x | x | |||||||||
2 | Luedtke et al., 2003 [32] | x | x | x | x | ||||||||||
3 | da Cruz et al., 2006 [33] | x | x | x | x | x | x | x | x | x | x | ||||
4 | Pate and Nummer, 2013 [34] | x | x | x | |||||||||||
5 | Kokkinakis et al., 2007 [35] | x | x * | x * | x | x | x | x | x | x | |||||
Indirect assessment studies | |||||||||||||||
6 | Bartz et al., 2015 [36] | x | x | x | x | x | x | x | x | x | x | ||||
7 | Öner and Isin, 2013 [37] | x | x * | x | * | ||||||||||
8 | Ganpat et al., 2014 [38] | x | x | x | x | x | x | x | x | x | x | x | |||
9 | Laury-Shaw et al., 2015 a [15] | x | x | x | x | ||||||||||
10 | Adalja and Lichtenberg, 2018 [39] | x | x | x | x | x | x | x | |||||||
11 | Van Asseldonk et al., 2018 [40] | x | x | ||||||||||||
12 | Bihn et al., 2013 [41] | x | x | ||||||||||||
13 | Dzingirayi and Korsten, 2016 [42] | x * | x * | x * | x * | x * | x * | x * | x * | x * | |||||
14 | Harrison et al., 2013 [43] | x | x | x | x | x | x | x | x | x | x | x | |||
15 | Ivey et al., 2012 [44] | x | x | x | x | ||||||||||
16 | Mdluli et al., 2013 [45] | x | x | x | x | x | x | ||||||||
17 | Mukherjee et al., 2007 [46] | x | x | ||||||||||||
18 | Park et al., 2014 [47] | x | x | x | x | ||||||||||
19 | Pires et al., 2018 [48] | x | x | ||||||||||||
20 | Soon, 2012 [49] | x | x | x | x | x | x | x | x | x | x | x | x | x | x |
21 | Cohen et al., 2005 [50] | x | x | x | x | x | x | x | x | x | x | ||||
22 | Hultberg et al., 2012 [51] | x | x | x | x | x | x | x | x | x | |||||
23 | Lichtenberg and Page, 2016 [23] | x * | x * | x | x | x | x | x | |||||||
24 | Marine et al., 2016 [52] | x | x | x | x | x | x | x | |||||||
25 | Rangarajan et al., 2002 [53] | x | x | x | x | x | |||||||||
26 | Sinkel et al., 2018 [54] | x | x | x * | x * | x | x | x | x * | x | x * | ||||
27 | Tong et al., 2017 [55] | x | x | x | x | x | x | x | |||||||
28 | Jackson et al., 2007 [56] | x * | x * | ||||||||||||
29 | Baur et al., 2016 [57] | x | x | x | x | x | |||||||||
30 | Beretti and Stuart, 2008 [58] | x | x | x | |||||||||||
Mixed method studies | |||||||||||||||
31 | Hamilton et al., 2015 [60] | x | x | x | x | x | x | x | x | x | x | ||||
32 | Duvengae and Korsten, 2017 [59] | x | x | x | x | x | x | ||||||||
33 | Ellis et al., 2005 [61] | x | x | x | x | x | x | x | x | x | x | x | x | ||
34 | Rodrigues et al., 2014 [62] | x * | x * | x * | x * | x * | x * | x * | x * | x * | x * | x * | x * | ||
35 | Holvoet et al., 2015 [63] | x * | x | x | x | x * | x * | x * | x | x | x | x * | x * | x * | |
36 | Ssemanda et al., 2018 [64] | x * | x * | x * | x * | x |
Study | Risk Management Practices | |||||||
---|---|---|---|---|---|---|---|---|
Worker Health & Hygiene | Agricultural Water | Animal Control | BSA of Animal Origin | Cleaning & Sanitizing | Harvesting, Preparation, & Packing | Storage and Transportation | ||
1 | Duvengae and Korsten, 2017 [59] | x | x | x | ||||
2 | Luedtke et al., 2003 [32] | x | x | x | ||||
3 | da Cruz et al., 2006 [33] | x | x | x | x | x | ||
4 | Kokkinakis et al., 2007 [35] | x | x | x | x | x | x | |
5 | Bartz et al., 2015 [36] | x | x | x | x | |||
6 | Mdluli et al., 2013 [45] | x | x | x | x | |||
7 | Mukherjee et al., 2007 [46] | x/* | ||||||
8 | Tong et al., 2017 [55] | x | x | x | x | |||
9 | Rodrigues et al., 2014 [62] | x | x | x | x | x | x | |
10 | Holvoet et al., 2015 [63] | x | x/* | x | x/* | x | x | x |
11 | Ssemanda et al., 2018 [64] | x | x | x |
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Jayawardhana, D.N.; Cao, L.T.T.; Yeargin, T.A.; Gibson, K.E.; M. Fraser, A. The Relationship between Environmental Characteristics and Risk Management Practices on Produce Farms: A Systematic Literature Review. Agriculture 2020, 10, 577. https://doi.org/10.3390/agriculture10120577
Jayawardhana DN, Cao LTT, Yeargin TA, Gibson KE, M. Fraser A. The Relationship between Environmental Characteristics and Risk Management Practices on Produce Farms: A Systematic Literature Review. Agriculture. 2020; 10(12):577. https://doi.org/10.3390/agriculture10120577
Chicago/Turabian StyleJayawardhana, Dilhani Nisansala, Loan Thi Thanh Cao, Thomas A. Yeargin, Kristen E. Gibson, and Angela M. Fraser. 2020. "The Relationship between Environmental Characteristics and Risk Management Practices on Produce Farms: A Systematic Literature Review" Agriculture 10, no. 12: 577. https://doi.org/10.3390/agriculture10120577
APA StyleJayawardhana, D. N., Cao, L. T. T., Yeargin, T. A., Gibson, K. E., & M. Fraser, A. (2020). The Relationship between Environmental Characteristics and Risk Management Practices on Produce Farms: A Systematic Literature Review. Agriculture, 10(12), 577. https://doi.org/10.3390/agriculture10120577