Functional Properties of Soybean Curd Whey Concentrate by Nanofiltration and Effects on Rheological Properties of Wheat Flour Dough

나노여과에 의한 순물 농축액의 기능적 특성 및 밀가루 반죽의 리올로지 성질에 미치는 영향

  • Eom, Sang-Mi (Dept. of Food Science and Technology, Sejong University) ;
  • Kim, You-Pung (Dept. of Food Science and Technology, Sejong University) ;
  • Chang, Eun-Jung (Dept. of Food Science and Technology, Sejong University) ;
  • Kim, Woo-Jung (Dept. of Food Science and Technology, Sejong University) ;
  • Oh, Hoon-Il (Dept. of Food Science and Technology, Sejong University)
  • 엄상미 (세종대학교 식품공학과) ;
  • 김유풍 (세종대학교 식품공학과) ;
  • 장은정 (세종대학교 식품공학과) ;
  • 김우정 (세종대학교 식품공학과) ;
  • 오훈일 (세종대학교 식품공학과)
  • Published : 2006.09.30

Abstract

This study was designed to investigate the feasibility of utilizing concentrates of sunmul(soybean curd whey), the waste by-product of soybean curd processing, as functional food ingredients. Sunmul was concentrated by nanofiltration fo11owing ultrafiltration and then freeze-dried. The oil adsorption capacity of the nanofiltraion(NF) powder(97.33g/100g) was similar to that of sunmul powder(94.17g/100g), but was lower than that of ISP(isolated soy protein). However, the water holding capacity of NF powder could not be determined because the NF powder completely dissolved in water. The protein solubilities of sunmul powder and ISP in distilled H$_{2}$O, 0.1M and 0.5M NaCl were lowest at pH 4.0 and increased at more acidic or alkaline conditions. However, the protein solubility of NF powder was at its minimum at pH 6.0 and increased at more acidic or alkaline conditions. Emulsifying activity indexes of NF powder in 4% and 6% solution were minimal at pH 4.0 and 6.0, respectively, which were 3 to 8 times lower than that of sunmul powder. The emulsion stability of 4% sunmul solution was lowest at pH 4.0, but that of NF powder was highest at pH 5.0 and decreased at more acidic or alkaline conditions at all concentrations of solution. The total free amino acid contents of protein in sunmul, and NF power were 99.07 and 2,110.10mg%, respectively, and NF powder exhibited especially high threonine content. Rapid viscosity analysis of dough with 1 to 5% added NF powder demonstrated that all of the peak and final viscosities decreased with increasing NF powder concentration compared to the control.

두부 순물 분말 및 NF 분리 농축 분말의 일반성분과 이들 분말을 식품에 첨가할 경우 반드시 고려해야할 유지 및 수분 흡착력, 용해도, 유화력과 밀가루 반죽에 첨가시 리올로지 특성에 미치는 영향을 조사하였다. 일반 성분의 경우, 순물 분말과 순물의 NF 분리농축 분말의 수분 함량은 큰 차이가 없었고, NF 분리농축 분말의 회분 함량은 17.5%로 순물 분말에 비해 27.6% 정도 낮았다. 순물 분말과 NF 분리 농축 분말은 각각 0.97, 0.94 g/g의 유지 흡착력을 가지고 있어 ISP의 유지 흡착력에 비해 낮았으며, NF분리 농축 분말의 경우 수분 흡수력은 나타나지 않았다. 증류수, 0.1M 및 0.5M NaCl 처리구에서 NF 농축 분말은 순물분말과는 달리 pH 6.0 부근에서 각각 가장 낮은 단백질 용해도를 나타내었다. 4% 및 6% NF 분리 농축 분말용액의 유화력은각각 pH4.0 및 6.0에서 최저값을 나타내었으며 EAI 값은 19${\sim}$50으로 순물 분말보다 3${\sim}$8배 정도 낮았다. 유리아미노산 함량에 있어서 NF분리 농축 분말의 경우 threonine이 854.87 mgg%로 가장 많이 함유되었으며 그 다음이 arginine >tyrosine >glycine순으로 높게 나타났다. NF 분리 농축 분말의총 유리아미노산 함량은 2,110.1 mgg%로 순물 분말보다 약 21배 정도 높았다. 또한 밀가루에 NF 분리 농축분말을 첨가한 경우 그 첨가량이 증가할수록 최고 점도와 최종 점도 모두 감소하였다.

Keywords

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