• Title/Summary/Keyword: Good Agricultural Practice (GAP)

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Distribution of Microorganisms in Perilla Leaf and Cultivation Area (들깻잎과 생산환경의 미생물 분포)

  • Kim, Se-Ri;Lee, Ji-Young;Lee, Seo-Hyun;Ko, Hyeon-Seok;Yoon, Yo-Han;Kwon, Se-Hyeok;Ryu, Kyoung-Yul;Yun, Hye-Jeong;Kim, Won-Il;Yun, Jong-Chul;Kim, Doo-Ho;Chung, Duck-Hwa
    • Korean Journal of Food Science and Technology
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    • v.43 no.2
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    • pp.243-248
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    • 2011
  • The prevalence and distribution of hazardous microorganisms were investigated from the major perilla cultivation area at Milyang, Gyeongnam province, Korea. Aerobic plate count (APC) and coliform count of perilla leaves were 4.82 log CFU/g and 3.85 log CFU/g, respectively. E. coli, S. aureus and B. cereus were detected in 3.0% (4/114), 7.9% (9/114) and 46.5% (53/114) of examined perilla leaves. However, E. coli O157:H7, Salmonella spp, and L. monocytogenes were not detected. The distribution of hazardous microorganisms in perilla leaf cultivation environment were compared and the concentration of APC and coliform counts were more than 3.0 log CFU/(mL, g, $100cm^2$, hand) from most of the samples. S. aureus were detected from irrigation water, packing table, packing vinyl, hand, and clothes. Also, B. cereus was frequently detected from the examined samples. Especially, packing table and collection container were contaminated with maximum 5.5 log $CFU/100cm^2$ of B. cereus. Good Agricultural Practice (GAP) system should be introduced to farms to enhance the safety of perilla leaves.

Establishment of Korean Maximum Residue Limits for Pesticides in Foods (한국의 식품중 농약 잔류허용기준 설정)

  • Park, Kun-Sang;Im, Moo-Hyeog;Choi, Dong-Mi;Jeong, Ji-Yoon;Chang, Moon-Ik;Kwon, Kwang-Il;Hong, Moo-Ki;Lee, Chul-Won
    • The Korean Journal of Pesticide Science
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    • v.9 no.1
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    • pp.51-59
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    • 2005
  • Korean maximum residue limits (MRLs) for pesticides have been established based on scientific data of good agricultural practice, acceptable daily intake (ADI), food intake, average body weight and others. MRLs for pesticides are generally set under the principle that theoretical maximum daily intake (TMDI) are always below ADI. As results, 104 MRLs are going to be newly established for 24 pesticides and 102 MRLs are going to be added for 63 pesticides that have regulation already, Among new pesticides, ethaboxam and flupyrazofos are effective components that are first developed in Korea. In case of dithiocarbamates, MRLs are classified by 3 groups such as dimethyldithiocarbamates, ethylenebis (dithiocarbamate)s and propineb.

Safety Evaluation from Aflatoxin risk of Korean Angelicae Gigantis Radix Based on Critical Control Points (중점관리기준에 기초한 국내생산 당귀의 산지 수확 후 아플라톡신의 안전성 평가 연구)

  • Choi, Hye-Jin;An, Tae-Jin;Ahn, Young-Sup;Park, Chung-Berm;Kim, Ju-Il;Park, Seong-Hwan;Yang, Hyun;Do, Kee-Hun;Moon, Yu-Seok
    • Korean Journal of Medicinal Crop Science
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    • v.19 no.1
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    • pp.47-53
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    • 2011
  • HACCP methodology was applied in the post-harvest processing and storage of domestic medicinal produces. Particularly in terms of mold and mycotoxin contamination, candidate critical control points (CCP) in the conventional practice in Korean farms were selected and monitored by comparing with on the standard guided processing and storage. When each processing of Angelicae Gigantis Radix were assessed for their safety, the drying steps such as the sun drying or the thermal drying depending on each farm made differences in mold contamination. Moreover, the storage conditions before or after the processing were another critical determinant in the fungal contamination. In other words, storage under $4{\circ}C$ rather than at room temperature was favorable for reducing mold growth in the harvested crops. Occurrence rate of Aflatoxin $B_1 \;(AFB_1)$ in Angelicae Gigantis Radix were 12.8%, but amount of $AFB_1$ in all the collected samples were below 10 ppb regulatory limit allowed in Korea. However, for a few samples of Angelicae Gigantis Radix, still relatively high levels of total amount of the major aflatoxins (aflatoxin $B_1\; +\; B_2\; +\; G_1\; +\; G_2$) were observed around 0.18~49.94 ppb, which is not regulated presently in Korea. It thus can be suggested that post-harvest processing and storage of Korean medicinal crops need further investigation and monitoring to establish the Good Agricultural Practice (GAP), particularly to minimize microbial risk including mold and mycotoxin contamination under the changing climate. Additionally, it is also warranted for new enacting of regulatory limits for total aflatoxins in the medicinal crops.

Analysis Study on the use of Frequency and the Cooking Method of Leaf and Stem Vegetables in High School Foodservice (고등학교 급식식단의 엽경채류 식재료 사용 빈도 및 조리방법 분석 연구)

  • Min, Ji-Hyeon;Lee, Jong-Kyung;Kim, Hyun-Jung;Yoon, Ki-Sun
    • Journal of Food Hygiene and Safety
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    • v.31 no.4
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    • pp.250-257
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    • 2016
  • This study was conducted to extract the factors affecting the microbial safety of leaf and stem vegetables in the high school foodservice and to provide information for supplying the safe foodservice menu. The lunch and dinner menu (1,945 data) of the total 6 high schools at the Central and the South Region in March, June, September, and December were collected. The frequency analysis and the multiple correspondence analysis (MCA) based on the 3 factors (potentially hazardous food (PHF), leafy and stem vegetables in the menu, the cooking methods) were conducted. The most frequent PHF was the menu of blanched vegetables, salads, seaweeds and fried chicken. The most frequent consumed leaf and stem vegetables were spinach, chive, lettuce, Western cabbage, perilla leaf, iceberg lettuce, chicory, leek and broccoli. MCA based on the leaf and stem vegetables, the region, and the cooking method (cooked/non-cooked) showed that garlic stem and spinach were more used in the Central Region, while water drop-wort were more used in the South Region. Iceberg lettuce, Bok choy and leek were included frequently in the PHF menu. Plant products frequently used in PHF menu requires the food safety system such as Good Agricultural Practice (GAP) to reduce the microbial risk. The menu database according to raw materials based on cooking methods (heating or mixing) as well as the development and verification of menu based on the microbial safety will be contributed to provide the safer foodservice menu.