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Fortification of dextran and mannitol in sweet pumpkin by fermentation with Leuconostoc mesenteroides SM

Leuconostoc mesenteroides SM 젖산균 발효를 통한 dextran과 mannitol 강화 단호박 발효물 생산

  • Lim, Jong-Soon (The Center for Traditional Microorganism Resource (TMR), Keimyung University) ;
  • Son, Young-Cheol (Department of Food Science and Technology, Keimyung University) ;
  • Park, Dong-Cheol (Department of Hotel Cuisine and Food Service Management, Gimcheon College) ;
  • Lee, Sam-Pin (The Center for Traditional Microorganism Resource (TMR), Keimyung University)
  • Received : 2016.03.16
  • Accepted : 2016.06.07
  • Published : 2016.10.30

Abstract

Sweet pumpkin paste (SPP) was fermented by Leuconostoc mesenteroides SM at $25^{\circ}C$ for 3 days for enhancing its physicochemical properties. SPPs with 5%, 10%, and 15% solid contents (SC) were fortified with 20% sucrose and 0.5% yeast extract. The unfermented SPP with 15% SC indicated L, a, and b color values of 25.02, 4.66, and 13.35, respectively, and a consistency index of $48.6Pa{\cdot}s^n$. During the 3 days of fermentation, both the a and b color values decreased slightly, whereas the consistency index increased to $188.8Pa{\cdot}s^n$, giving the fermented product a pudding-like consistency. This fermented SPP (15% SC) showed the highest acid production and viable cell counts among samples, indicating pH 3.85, 1.30% acidity and $9.2{\times}10^8CFU/mL$ respectively. The added sucrose was completely utilized after 1 day of fermentation. After 3 days, the insoluble and soluble dextran contents were 8.9% and 4.5%, respectively. Furthermore, the contents of mannitol and fructose were 3.11% and 1.76%, respectively. Regarding the sensory evaluation, this fermented sample also indicated the highest color, taste and texture scores, and was the overall preferred sample. In conclusion, the fermented SPP with 15% SC was carotinoid-rich a wholesome pumpkin-based product that is rich in probiotics and lactic bacteria-produced mannitol and dextran, which gave the product an acceptable viscous pudding-like consistency and good organoleptic properties.

단호박 분말을 이용하여 식물성 젖산균의 발효 최적화를 통한 점질물 dextran, 만니톨을 생산함으로서 물성과 맛이 개선된 푸딩형태의 단호박 젖산 발효물을 제조하였다. 단호박 농도에 따라서 젖산 발효물에 영향을 주었으며, 단호박 분말 15% 조건이 가장 양호한 물리화학적 특성을 보였다. $25^{\circ}C$에서 3일 동안 발효를 수행하였을 때 15% 단호박 분말의 젖산 발효물의 pH, 산도는 각각 3.85, 1.30%이었으며, 생균수는 $4.64{\times}10^9CFU/mL$로 높은 값을 나타내었다. 단호박 분말 paste의 발효 초기에 L값 25.02, a값 4.66, b값 13.35를 나타내었으며, 발효가 진행되면서 L값을 제외하고 감소하는 경향을 보였다. 10%, 15% 단호박 분말의 발효물은 발효 1일에 설탕의 소진율 100%를 보였으며, 발효 3일에 불용성 dextran을 각각 5.6%, 8.9%를 보였으며, 수용성 dextran은 4.5% 수준으로 유사하였다. 15% 단호박 분말의 3일 후에 발효물에 과당과 만니톨 함량은 각각 1.76%, 3.11%를 나타내었다. 15% 단호박 젖산 발효물의 점조도는 초기 $48.6Pa{\cdot}s^n$로서 가장 높은 값을 보였으며, 발효 1일 $75.1Pa{\cdot}s^n$에로 증가하였으며, 발효 3일에는 $188.8Pa{\cdot}s^n$으로 크게 증가하면서 푸딩 형태의 물성을 나타내었다. 단호박 젖산 발효물의 관능평가를 통해서 15% 단호박 젖산 발효물이 색, 단맛, 조직감에서 높은 점수로 평가되었다. 결론적으로 15% 단호박 분말과 20% 설탕혼합액을 이용하여 3일 동안 젖산 발효시킴으로서 설탕은 100% 전환되었으며, protiotic 생균 $4.6{\times}10^9CFU/mL$을 포함한 만니톨, 점질물 dextran의 생성을 통해서 기능성, 맛과 조직감이 강화된 푸딩형태의 단호박 젖산발효제품을 개발할 수 있었다.

Keywords

References

  1. Mentean E, Muntean N, Duda MM (2013) Cucurbita maxima Duch. as a medicinal plant. Hop Med Plants, 21, 41-42
  2. Heo SJ, Kim JH, Kim JK, Moon KD (1998) Processing of purees from pumpkin and sweet-pumpkin. Korean J Food Soc Food Preserv, 5, 172-176
  3. Heo SJ, Kim JH, Kim JK, Moon KD (1998) The comparison of food constituents in pumpkin and sweet-pumpkin. J Korean Soc Food Cult, 13, 91-96
  4. Kim SR, Ha TY, Song HN, Kim YS, Park YK (2005) Comparison of nutritional composition and antioxidative activity for kabocha squash pumpkin. Korean J Food Sci Technol, 37, 171-177
  5. Whang HJ (1999) The change of carotenoid pigment in Korea pumpkin using drying. Food Eng Prog, 4, 214-219
  6. Kuwaki S, Nakajima N, Tanaka H, Ishihara K (2012) Plant-based paste fermented by lactic acid bacteria and yeast: functional analysis and possibility of application to functional foods. Biochemistry Insights, 5, 21-29
  7. Kohajdova Z, Karovicova J, Greifova M (2006) Lactic acid fermentation of some vegetable juices. J Food Nutr Res, 45, 115-119
  8. Semjonovs P, Denina I, Fomina A, Sakirova L, Auzina L, Patetko A, Upite D (2013) Evaluation of Lactobacillus reuteri strains for pumpkin (Cucurbita pepo L.) juice fermentation. Biotechnology, 12, 202-208 https://doi.org/10.3923/biotech.2013.202.208
  9. Sun Y, Hayakawa S, Ogawa M, Izumori K (2007) Antioxidant properties of custard pudding dessert containing rare boxose, D-psicose. Food Control, 18, 220-227 https://doi.org/10.1016/j.foodcont.2005.09.019
  10. Dogan M, Ersoz NB, Toker OS, Kaya Y, Canylmaz E (2014) Optimization of gum combination for instant pudding based on creep and recovery parameters by mixture design approach. Eur Food Res Technol, 238, 47-58 https://doi.org/10.1007/s00217-013-2063-1
  11. Choi EH, Kim DS, Choi SK, Park KB (2013) Optimization and quality characteristics of balsamic vinegar jelly with various gelling agents. Culinary Science & Hospitality Research, 19, 155-163
  12. Moon HK, Lee SW, Moon JN, Yoon SJ, Lee S, Kim GY (2012) Quality characteristics of Jelly added with mulbery juice. Korean J Food Cook Sci, 28, 797-804 https://doi.org/10.9724/kfcs.2012.28.6.797
  13. Cross ML, Stevenson LM, Gill HS (2001) Anti-allergy properties of fermented foods: an important immuno regulatory mechanism of lactic acid bacteria?. Int Immunopharmacol, 1, 891-901 https://doi.org/10.1016/S1567-5769(01)00025-X
  14. Parvez S, Malik KA, Kang SA, Kim HY (2006) Probiotics and their fermented food products are beneficial for health. J Appl Microbiol, 100, 1171-1185 https://doi.org/10.1111/j.1365-2672.2006.02963.x
  15. Vijayakumar J, Aravindan R, Viruthagiri T (2008) Recent trends in the production, purification and application of lactic acid. Chem Biochem Eng Q, 22, 245-264
  16. Hwang SK, Hong JT, Jung KH, Chang BC, Hwang KS, Shin JH, Yim SP, Yoo SK (2008) Process optimization of dextran production by Leuconostoc sp. strain YSK. isolated from fermented kimchi. J Life Sci, 18, 1377-1383 https://doi.org/10.5352/JLS.2008.18.10.1377
  17. Santos M, Teixeira JA, Rodrigues A (2000) Production of dextransucrase, dextran and fructose from sucrose using Leuconostoc mesenteroides NRRL B512(f). Biochem Eng J, 4, 177-188 https://doi.org/10.1016/S1369-703X(99)00047-9
  18. Son MJ, Jang EK, Kwon OS, Seo JH, Kim IJ, Lee IS, Park SC, Lee SP (2008) Characterization of dextran produced from Leuconostoc citreum S5 strain isolated from Korean fermented vegetable. Eur Food Res Technol, 226, 697-706 https://doi.org/10.1007/s00217-007-0579-y
  19. Kim CY, Lee JH, Kim BH, Yoo SK, Seo ES, Chos KS, Day DF. Kim DM (2002) Production of mannitol using Leuconostoc mesenteroides NRRL B-1149. Biotechnol Bioprocess Eng, 7, 234-236 https://doi.org/10.1007/BF02932977
  20. Saha BC, Racine FM (2011) Biotechnological production of mannitol and its applications. Appl Microbiol Biotechnol, 89, 879-891 https://doi.org/10.1007/s00253-010-2979-3
  21. Ghosa S, Sudha ML (2012) A review on polyols: new frontiers for health-based bakery products. Int J Food Sci Nutr, 63, 372-379 https://doi.org/10.3109/09637486.2011.627846
  22. Jo SJ, Oh SM, Jang EK, Hwang K, Lee SP (2008) Physicochemical properties of carrot juice fermented by Leuconostoc mesenteroides SM. J Korean Soc Food Sci Nutr, 37, 210-216 https://doi.org/10.3746/jkfn.2008.37.2.210
  23. Kang TH, Jung SJ, Kang SA, Jang KH, Jang EK, Kim CH, Kim IH, Kim SH, Rhee SK, Chun UH (2002) Preparation of levan oligosaccharides by acid hydrolysis and its application in growth of lactic acid-producing bacteria. KSBB J, 17, 137-141
  24. Kim DS, Thomas S, Fogler HS (2000) Effects of pH and trace minerals on long-term starvation of Leuconostoc mesenteroides. Appl Environ Microbiol, 66, 976-981 https://doi.org/10.1128/AEM.66.3.976-981.2000
  25. Kim JE, Whang K, Lee SP (2012) Physicochemical properties of dextran produced by Leuconostoc mesenteroides SM according to concentration of yeast extract and its modulation of rheological properties. Korean J Food Sci Technol, 44, 216-223 https://doi.org/10.9721/KJFST.2012.44.2.216
  26. Wisselink HW, Weusthuis RA, Eggink G, Hugenholtz J, Grobben GJ (2002) Mannitol productin by lactic acid bacteria: a review. Int Dairy J, 12, 151-161 https://doi.org/10.1016/S0958-6946(01)00153-4
  27. Ahn GH, Moon JS, Shin SY, In WK, Han NS, Seo JH (2015) A competitive quantitative polymerase chain reaction method for characterizing the population dynamics during kimchi fermentation. J Ind Microbiol Biotechnol, 42, 49-55 https://doi.org/10.1007/s10295-014-1553-x
  28. Provesi JG, Dias CO, Amante ER (2011) Changes in carotenoids during processing and storage of pumpkin puree. Food Chem, 128, 195-202 https://doi.org/10.1016/j.foodchem.2011.03.027
  29. Lee JH, Lee MK (2013) Quality characteristics of jelly incorporated with sweet pumpkin powder. J Korean Soc Food Sci Nutr, 42, 139-142 https://doi.org/10.3746/jkfn.2013.42.1.139
  30. Qian C, Decker EA, Xiao H, McClements DJ (2012) Physical and chemical stability of ${\beta}$-carotene-enriched nanoemulsions: Influence of pH, ionic strength, temperature, and emulsifier type. Food Chem, 132, 1221-1229 https://doi.org/10.1016/j.foodchem.2011.11.091
  31. Song YC (2014) Optimized production of dextran, mannitol and GABA by co-fermentation using lactic acid bacteria isolated from kimchi. MS Thesis, Keimyung University, Korea, p 18-25
  32. Tingirikari JMR, Kothari D, Goyal A (2014) Superior prebiotic and physicochemical properties of novel dextran from Weissella cibaria JAG8 for potential food applications. Food Funct, 5, 2324-2330 https://doi.org/10.1039/C4FO00319E
  33. Amrane A, Prigent Y (1998) Influence of yeast extract concentration on batch cultures of Lactobacillus helveticus: growth and production coupling. World J Microbiol Biotechnol, 14, 529-534 https://doi.org/10.1023/A:1008828415639
  34. Yoo SK, Kim DM, Day DF (2001) Co-production of dextran and mannitol by Leuconostoc mesenteroides. J Microbiol Biotechnol, 11, 880-883
  35. Ryu BH, Kim DH, Yun JW (1996) Characteristics of mannitol production by Leuconostoc sp. KY-002. Korean J Biotechnol Bioeng, 11, 636-641
  36. Jeanes A, Wilham CA, Miers JC (1948) Preparation and characterization of dextran from Leuconostoc mesenteroides. J Biol Chem, 176, 603-615