• 제목/요약/키워드: antinutritional factor

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양돈 사료에 있어 대두의 이용 (Utilization of Soybean for Swine Diets)

  • 유종상;김인호
    • 한국산학기술학회논문지
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    • 제8권1호
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    • pp.156-166
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    • 2007
  • 대두박은 가축사료에 사용되는 식물성 단백질원이다. 대두박은 대두에서 기름을 추출한 부산물로서 높은 단백질 함량과 낮은 섬유질 함량을 가지고 있어 양돈 사료에서 널리 이용되고 있다. 그러나 이러한 대두는 여러 종류의 항영양인자를 가지고 있어 소화율과 성장능력을 감소시키는 단점을 가지고 있다. 따라서 이러한 단점을 보완하기 위하여 열처리하는 방법, HP 100, HP 200 및 HP 300과 같이 미생물을 이용한 방법, 수용성 비단백질 구성성분을 제거하는 방법, 정제대두단백과 비단백태화합물 제거 등의 방법을 이용하고 있다. 대두를 적당히 열처리를 하면 대부분의 항영양인자가 파괴되어 성돈에서 피해가 없지만 어린돼지에서는 영양소 소화율을 감소시킨다. 그래서 자돈에서는 유제품과 유사한 사양능력을 가지는 농축대두단백이나 정제대두단백 같은 가공대두제품을 이용하여 급여해야 한다.

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A New Soybean Cultivar "Gaechuck#2": Yellow Soybean Cultivar with Lipoxygenase2,3-free and Kunitz Trypsin Inhibitor-free

  • Chung, Jong Il
    • 한국육종학회지
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    • 제41권4호
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    • pp.612-615
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    • 2009
  • Lipoxygenase and Kunitz trypsin inhibitor protein are the main antinutritional factor in mature soybean seed. A new soybean cultivar, "Gaechuck#2" with yellow seed coat, lipoxygenase2,3-free and Kunitz trypsin inhibitor protein-free was developed. It was selected from the population derived from the cross between "Jinpumkong2ho" and C242. Plants of "Gaechuck#2" have determinate growth habit with purple flowers, tawny pubescence, yellow seed coat, yellow hilum, oval leaflet shape and brown pods at maturity. Seed protein and oil content on a dry weight basis were 40.7% and 18.7%, respectively. It has shown a resistant reaction to soybean necrosis, soybean mosaic virus, Cercospora leaf spot and blight, black root rot, pod and stem blight, and soybean pod borer. Gaechuck#2 matured in 4 October with plant height of 54cm and a 100-seed weight of 24.4g. Average Yield of Gaechuck#2 was 230 - 250 kg/10a in 2005 - 2007.

Inheritance between Le Gene and Ti Gene in Soybean (Glycine max L.)

  • Lee, Kyoung Ja;Park, Mo Se;Sung, Mi Kyung;Kim, Myung Sik;Chung, Jong Il
    • 한국육종학회지
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    • 제40권2호
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    • pp.97-100
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    • 2008
  • Lectin protein and Kunitz trypsin inhibitor (KTI) protein of mature soybean seed are a main antinutritional factor in soybean seed. The Le gene controls a lectin protein and Ti gene controls the KTI protein in soybean. Ti locus has been located on linkage group 9 in the classical linkage map of soybean. Position of Le locus on linkage map was not identified. Genetic relationship between Ti locus and Le locus could be useful in soybean breeding program for the genetic elimination of these factors. The objective of this study was to determine the independent inheritance or linkage between Ti locus and Le locus in soybean seed. Two $F_2$ populations were developed from three parents (Gaechuck#1, T102, and PI548415). The $F_1$ seeds from Gaechuck#1 (titiLeLe) ${\times}$ T102 (TiTilele) and Gaechuck#1 (titiLeLe) ${\times}$ PI548415 (TiTilele) were obtained. The lectin and KTI protein were analysed from $F_2$ seeds harvested from the $F_1$ plants to find independent assortment or linkage between Ti locus and Le locus. The segregation ratios of 3 : 1 for Le locus (129 Le_ : 44 lele) and Ti locus (132 Ti_ : 41 titi) and were observed. The segregation ratios of 9 : 3 : 3 : 1 (95 Le_Li_ : 34 Le_titi: 37 leleTi_ : 7 leletiti) between Le gene and Ti gene in $F_2$ seeds were observed. This data showed that Ti gene was inherited independently with the Le gene in soybean. These results will be helpful in breeding program for selecting the line with lacking both KTI and lectin protein in soybean.

콩 종자에서 쿠니츠트립신인히비터와 P34 단백질의 유전 (Inheritance of Kunitz Trypsin Inhibitor and P34 Protein in Soybean Seed)

  • 한은희;성미경;백운장;심상인;김민철;정종일
    • 한국작물학회지
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    • 제57권1호
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    • pp.78-82
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    • 2012
  • 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 $F_2$ 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 $F_2$ 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.

Molecular and Biochemical Characteristics of ${\beta}$-Propeller Phytase from Marine Pseudomonas sp. BS10-3 and Its Potential Application for Animal Feed Additives

  • Nam, Seung-Jeung;Kim, Young-Ok;Ko, Tea-Kyung;Kang, Jin-Ku;Chun, Kwang-Hoon;Auh, Joong-Hyuck;Lee, Chul-Soon;Lee, In-Kyu;Park, Sunghoon;Oh, Byung-Chul
    • Journal of Microbiology and Biotechnology
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    • 제24권10호
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    • pp.1413-1420
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    • 2014
  • Phytate is an antinutritional factor that impacts the bioavailability of essential minerals such as $Ca^{2+}$, $Mg^{2+}$, $Mn^{2+}$, $Zn^{2+}$, and $Fe^{2+}$ by forming insoluble mineral-phytate salts. These insoluble mineral-phytate salts are hydrolyzed rarely by monogastric animals, because they lack the hydrolyzing phytases and thus excrete the majority of them. The ${\beta}$-propeller phytases (BPPs) hydrolyze these insoluble mineral-phytate salts efficiently. In this study, we cloned a novel BPP gene from a marine Pseudomonas sp. This Pseudomonas BPP gene (PsBPP) had low sequence identity with other known phytases and contained an extra internal repeat domain (residues 24-279) and a typical BPP domain (residues 280-634) at the C-terminus. Structure-based sequence alignment suggested that the N-terminal repeat domain did not possess the active-site residues, whereas the C-terminal BPP domain contained multiple calcium-binding sites, which provide a favorable electrostatic environment for substrate binding and catalytic activity. Thus, we overexpressed the BPP domain from Pseudomonas sp. to potentially hydrolyze insoluble mineral-phytate salts. Purified recombinant PsBPP required $Ca^{2+}$ or $Fe^{2+}$ for phytase activity, indicating that PsBPP hydrolyzes insoluble $Fe^{2+}$-phytate or $Ca^{2+}$-phytate salts. The optimal temperature and pH for the hydrolysis of $Ca^{2+}$-phytate by PsBPP were $50^{\circ}C$ and 6.0, respectively. Biochemical and kinetic studies clearly showed that PsBPP efficiently hydrolyzed $Ca^{2+}$-phytate salts and yielded myo-inositol 2,4,6-trisphosphate and three phosphate groups as final products. Finally, we showed that PsBPP was highly effective for hydrolyzing rice bran with high phytate content. Taken together, our results suggest that PsBPP has great potential in the animal feed industry for reducing phytates.