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      • KCI등재

        콩 종자에서 쿠니츠트립신인히비터와 P34 단백질의 유전

        한은희,성미경,백운장,심상인,김민철,정종일 한국작물학회 2012 한국작물학회지 Vol.57 No.1

        인체내에서 소화불량 및 알레르기 반응을 일으킴으로써 콩의 품질을 저하시키는 물질인 Kunitz trypsin inhibitor(KTI) 단백질이 결핍되고, P34 단백질을 적게 함유하는 콩 계통을 선발하기 위해서, 현재까지 보고되지 않은 KTI 단백질의 유무와 P34 단백질 함량간의 유전관계에 대한 정보를 얻기 위하여 본 연구에서 얻어진 결과는 다음과 같다. 1. 07B1과 PI567476의 교배를 통해 얻어진 479개의 F2 종자를 대상으로 SDS-PAGE를 이용한 KTI 단백질의 유무를 확인한 결과, KTI 단백질이 존재하는 종자의 수는 353개, 결핍된 종자는 126개로 3 : 1로 분리하였다. 2 Western blot을 이용한 P34 단백질의 함량을 확인 한 결과, P34 단백질 함량이 보통 또는 높은 종자가 363개, 함량이 낮은 종자는 116개로 P34 단백질 함량에 대한 유전분리비는 3 : 1로 나타났다. 3. 전체 F2 종자 479개 중에서 KTI 단백질이 존재하며, P34 단백질 함량이 보통 또는 높은 종자가 266개, KTI 단백질이 존재하고 P34 단백질 함량이 낮은 종자가 88개, KTI 단백질이 결핍이고 P34 단백질함량이 보통 또는 높은 종자가 102개, KTI 단백질이 결핍이며 P34 단백질 함량이 적은 종자가 23개로 9:3:3:1의 분리비에 적합하여 KTI 단백질 유무와 P34 단백질 함량간에는 독립유전을 하였다. Soybean [Glycine max (L.) Merr.] protein is a high quality source for food and feed. But, antinutritional factors in the raw mature soybean are exist. Kunitz trypsin inhibitor (KTI) protein is a main antinutritional factor in soybean seed. Also, P34 protein, referred as Gly m Bd 30K, has been identified as a predominant immunodominant allergen. Genetic relationship between KTI protein and P34 protein could be useful in soybean breeding program for the genetic elimination or reduction of these factors. The objective of this study was to determine the independent inheritance or linkage between KTI protein and P34 protein in soybean seed. A total of 479 F2 seeds were obtained from the cross of 07B1 and PI567476 parents. KTI protein and relative amount of P34 protein were analysed from F2 seeds harvested from the F1 plants by using SDS-PAGE and Western blot analysis. The segregation ratios of 3 : 1 for KTI protein (353 KTI protein present : 126 KTI protein absent) and relative amount of P34 protein (363 normal amount of P34 protein : 116 low amount of P34 protein). The segregation ratio of 3 : 1 suggested that KTI protein and relative amount of P34 protein in mature soybean seed were controlled by a single major gene. The segregation ratios of 9 : 3 : 3 : 1 (266 KTI protein present, normal amount of P34 protein: 88 KTI protein present, low amount of P34 protein: 102 KTI protein absent, normal amount of P34 protein: 23 KTI protein absent, low amount of P34 protein) and Chi-square value (~chi2 =3.31, P=0.346) were observed in F2 seeds. This data showed that KTI protein was inherited independently with relative amount of P34 protein in soybean. These results will be helpful in breeding program for selecting the line with lacking KTI protein and reduced amount of P34 protein in soybean.

      • KCI등재

        Evaluation of Resistance to the Aphid (Aphis glycines Matsumura) in Soybean Cultivars and Germplasms

        김명식,정종일,성미경,백운장,김민환 한국작물학회 2012 한국작물학회지 Vol.57 No.4

        Native of soybean aphid (Aphis glycines Matsumura)is an Asia and aphid is one of the dangerous pests in soybean [Glycine max (L.) Merr.]. High density aphid populations can reduce crop production by causing severe damage. The objective of this study was evaluation of resistance to the soybean aphid in soybean cultivars and germplasms. A total of fifty five soybean cultivars or germplasms, including two susceptible and two resistant check varieties, were infested to evaluate their resistance in the field cage and greenhouse test by aphid colonies which derived from wild collected one soybean aphid biotype in Korea. The average number of reproduced soybean aphid was evaluated with 62.7 aphids in the resistant check variety PI 567598B and also estimated with 1,807 aphids for susceptible check variety Williams 82. In soybean varieties and germplasms, the average reproduced soybean aphid populations ranged from the lowest 497 aphids for Junjeori to the highest 3,862 aphids for Mansu. About seventy six percent of soybean cultivars and germplasms were shown high density soybean aphid populations when compared with another susceptible check variety PI 567543C in the field cage test. From the greenhouse test to evaluate aphid index, 87.3% of soybean cultivars or germplasms presented aphid index with 9.0. No soybean cultivars and germplasms were observed with soybean resistant phenotype when regarded a aphid resistant level as less than 10% aphid reproductions compared with susceptible check Williams 82. Although no Korean soybean cultivars were identified with resistant trait to the soybean aphid, we found one great resistant genetic resource PI 567598B in this study. This result will be helpful to further study for providing useful genetic information for soybean researchers.

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