Cooking and Pasting Characteristics of Non-Waxy and Waxy Pearled Barley Products from Korea

국내 시판 메성 및 찰성 보리쌀의 취반 및 호화특성

  • Lee, Mi-Ja (National Institute of Crop Science, Rural Development Administration) ;
  • Kim, Yang-Kil (National Institute of Crop Science, Rural Development Administration) ;
  • Seo, Jae-Whan (National Institute of Crop Science, Rural Development Administration) ;
  • Kim, Jung-Gon (National Institute of Crop Science, Rural Development Administration) ;
  • Kim, Hyung-Soon (Department of Environmental Engineering, Seonam University)
  • 이미자 (농촌진흥청 국립식량과학원) ;
  • 김양길 (농촌진흥청 국립식량과학원) ;
  • 서재환 (농촌진흥청 국립식량과학원) ;
  • 김정곤 (농촌진흥청 국립식량과학원) ;
  • 김형순 (서남대학교 환경공학부)
  • Published : 2009.10.30

Abstract

A total of 107 pearled barley products produced in Korea, 58 non-waxy and 49 waxy, were analyzed for protein and $\beta$-glucan content, whiteness, cooking characteristics (water absorption and expansibility), and pasting properties, with respect to the region of production. We compared non-waxy and waxy pearled barley products and sought correlations between levels of chemical components and cooking characteristics. Waxy pearled barley products had higher concentrations of protein (7.17-12.57%, w/w) and $\beta$-glucan (2.81-7.38%, w/w), a higher whiteness grade (27.1-49.6), and a greater water absorption (218-593%) and expansibility (366-593%) than did non-waxy barley products. The pasting temperature of non-waxy pearled barley ($73.9^{\circ}C$) was higher than that of waxy pearled barley ($66.9^{\circ}C$). Peak viscosity, hot paste viscosity, and final viscosity of non-waxy pearled barley products were higher than those of waxy products. The results showed that waxy pearled barley products had better cooking characteristics than did non-waxy products. A significant positive correlation was observed between protein and $\beta$-glucan content in both non-waxy and waxy pearled barley products ($r=0.632^{***}$ and $r=0.453^{**}$, respectively). Whiteness showed a negative correlation with protein content of both non-waxy and waxy pearled barley products ($r=-0.433^{***}$, $r=-0.343^{**}$). However, neither water absorption nor expansibility showed any significant correlation with protein or $\beta$-glucan content. The waxy ratio of 49 waxy pearled barley products ranged from 84-100%.

국내 시판 보리쌀 107개 제품을 수집하여 단백질, $\beta$-glucan 함량, 백도, 찰성비율, 취반특성 및 호화특성 등을 분석하였으며 그 결과는 다음과 같다. 국내 유통 메성보리 쌀의 단백질 함량은 6.62~11.38%였고, $\beta$-glucan 함량은 2.44~6.95%, 백도는 29.0~44.4이었으며 흡수성은 135~284%, 퍼짐성은 227~457%이었다. 찰성보리쌀의 경우 단백질은 7.17~12.57%, 백도는 27.1~49.6, $\beta$-glucan 함량은 2.81~7.38%로 메성보리쌀보다 높았으며 흡수성과 퍼짐성도 218~593%와 366~593%로 메성보리쌀보다 높았다. 즉, 찰성보리쌀 제품이 메성보리쌀 제품보다 취반특성이나 백도, $\beta$-glucan 함량 등에서 좋은 특성을 나타내었다. 호화특성은 지역별 생산제품별로 차이가 있었으며 호화개시온도는 메성보리쌀 제품이 찰성보리쌀 제품보다 높았고 최고점도, 최저점도, 최종점도들도 메성보리쌀 제품이 찰성보리쌀 제품보다 높게 나타났다. 메성과 찰성에 관계없이 단백질 함량과 $\beta$-glucan 함량은 정의 상관관계($r=0.632^{***}$, $r=0.453^{**}$)를 나타내었으며, 백도와는 부의 상관관계($r=-0.433^{***}$, $r=-0.343^{**}$)를 나타내었다. 찰성보리쌀 제품의 찰성비율을 분석한 결과 84~100% 범위였으며, 평균 찰성비율은 97%이었고 이중 16개 제품이 98%이상의 찰성비율을 나타내는 등 시중에 판매되고 있는 제품들의 찰성비율이 지역별, 제품별로 큰 차이를 보였다.

Keywords

References

  1. Arndt, E.A. (2006) Whole-grain barley for today's health and wellness needs. Cereal foods world, 51, 20-22
  2. Cheigh, H.S., Lee, N.S. and Kwon, T.W. (1976) Some nutritional composition of barley flours. Korean J. Food Sci. Technol., 8, 260-262
  3. Louise, C. and Brennan, C. (2006) The influence of a (1→3)(1→4)-β -D-glucan rich fraction from barley on the physico-chemical properties and in vitro reducing sugars release of durum wheat pasta. International J. Food Sci. Technol., 41, 910-918 https://doi.org/10.1111/j.1365-2621.2005.01141.x
  4. Pins, J.J. and Kaur, H. (2006) A review of the effects of barley β-glucan on cardiovascular and diabetic risk. Cereal Food World, 51, 8-11
  5. Macgregor, A.W. and Fincher, G.B. (1993) Carbohydrates of the barley grain. in barley Chemistry and technology. Macgregor A.W and Bhatty R. S. eds. American. Association of Cereal Chemists, St. Paul, Minesota, p 73-130
  6. Oh, H.J. (1996) Physiological function in vitro of β -glucan isolated from barley. Korean J. Food Sci. Technol., 28, 689-695
  7. Lee, Y.T. (2001) Dietary fiber composition and viscosity of extracts from domestic barley, wheat, oat, and rye. Korean J. Food Nutr., 14, 233-238
  8. Lee, W.J. (1992) Changes in dietary fiber content of barley during pearling and cooking. Korean J. Food Sci. Technol., 24, 80-182
  9. Lee, H.S. (1991) Estimation of dietary fiber intake of college students. Korean J. Nutr., 24, 534-546
  10. Faraj, A., Vasanthan, T. and Hoover, R. (2006) The influence of α-amylase hydrolyzed barley starch fractions on the viscosity of low and high purity barley β-glucan concentrates. Food Chem., 96, 56-65 https://doi.org/10.1016/j.foodchem.2005.01.056
  11. Lee, Y.T. (1996) Physicochemical characteristics and physiological functions of β-glucan in barley and oats. Korean J. Crop. Sci., 41, 10-24
  12. Morin, L.A., Temelli, E. and Mcmullen, L. (2005) Physical and sensory characteristics of reduced-fat breakfast sausages formulated with barley β-glucan. J. Food Sci., 67, 2391-2396 https://doi.org/10.1111/j.1365-2621.2002.tb09559.x
  13. Yokoyama W.H. and Shao Q. (2006) Soluble fiber prevent insulin resistance in hamsters fed high saturated fat diets. Cereal Food World, 51, 16-18
  14. Son, Y.K., Park, J.H. Lee, C.K. Lee, Y.H. and Yang, J.S. (2005) Physicochemical characteristics of korean milled waxy barley products. Treat. Crop Sci., 6, 591-596
  15. Park, S.H., Kim, K. Kim, S.K. and Park, Y.K. (1989) Proximate composition and mineral content of naked barley differing in pearling degrees. J. Korean Soc. Food Nutr., 18, 328-332
  16. Jung, E.Y., Yum, C.A. Kim, S.K. and Jang, M.S. (1987) The chemical composition of pearled, cutted and pressed barleys. Korean J. Food Sci. Technol., 19, 290-294
  17. Ninimiya, Y., Kawazu, K. Shiraishi, M. Sato, Y. and Utsunomiya, R. (2000) The discoloration factor in naked-barley kernels. Bulletin of the Oita Pretectural Agricultural Research Center, 30, 15-24
  18. Quinde, Z., Ulrich, S.E. and Baik, B.K. (2004) Genotypic variation in color and discoloration potential of barley-based food products. Cereal Chem., 81, 752-758 https://doi.org/10.1094/CCHEM.2004.81.6.752
  19. Fredriksson, H., Silverio, S., Andersson, R., Eliasson, A.C. and Aman, P. (1998) The influence of amylose and amylopectin characteristics on gelatinization and retrogradation properties of different starches. Carbohydr Polymers, 35, 119-13 https://doi.org/10.1016/S0144-8617(97)00247-6
  20. Kim, Y.S., Lee, Y.T. and Seog, H.M. (1999) Physicochemical properties of starches from waxy and non-waxy hull-less barleys. J. Korean Soc. Agric. Chem. Biotechnol., 42, 240-245
  21. Lee, S.H., Han, O., Lee, H.Y. Kim, S.S. and Chung, D.H. (1989) Physicochemical properties of rice starch by amylose content. Korean J. Food Sci. Technol. 21, 766-771
  22. Moon, S. S., Lee, K. H. and Cho, R.K. (1994) Application of near infrared reflectance spectroscopy in quality evaluation of domestic rice. Korean J. Food Sci. Technol. 26, 718-725
  23. Choi, H.C. (2002) Current status and perspectives in varietal improvement of rice cultivars for high-quality and value-added products. J. Crop Sci. 47, 15-32
  24. 농촌진흥청. (2006) 맥류제품의 소비자 선호도 분석. pp. 11-13