• Title/Summary/Keyword: hydrolysis conditions

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High Temperature Cooking of Fish Protein Extracts for Plastein Reaction

  • Lee, Keun-Tai;Park, Seong-Min;Lee, Sang-Ho;Ryu, Hong-Soo;Yoon, Ho-Dong
    • Preventive Nutrition and Food Science
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    • v.2 no.4
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    • pp.321-327
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    • 1997
  • High Temperature-cooking conditions of cultured fishes(loach, crucian carp, bastard halibut, and jacopever) were optimized by response surface methodology(RSM), and plastein products were prepared using enzymatic hydrolysis. Four models were proposed with regard to effects of time(t), temperature(T), and water/fish meat (w/f) ratio on the amount of 0.3M TCA soluble fractions. The model coefficients were ranged from p<0.0001 for jacopever to p<0.0433 for bastared halibut. Cooking conditions for 60% hydrolysis were optimized at 1) 14$0^{\circ}C$ except for crucian carp(136$^{\circ}C$); 2) 10.08 hours(loach), 7.25 hours(crucian carp), 9.85 hours(ba-stard harlibut), and 9.37 hours(iacopever); 3) 1:1(w/f) ratio except for the crucian carp(1.1:1). When protein hydrolyzates were employed for the plastein synthesis, optimum plastein-reaction conditions were determined to be pH 9.0 with chymotrypsin for the loach and crucian carp hydrolyzates, pH 9.0 with papain for the bastard halibut hydrolyzate, and pH 11.0 with trypsin for the jacopever hydrolyzate. Plastein reaction could be performed in water at concentration up to 20%(w/f).

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Structural and Morphological Behavior of TiO2 Rutile Obtained by Hydrolysis Reaction of Na2Ti3O7

  • Lee, Seoung-Soo;Byeon, Song-Ho
    • Bulletin of the Korean Chemical Society
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    • v.25 no.7
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    • pp.1051-1054
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    • 2004
  • The structural transformation behavior of $Na_2Ti_3O_7$ by hydrolysis was investigated in mild and strong acidic aqueous medium. Compared with $K_2Ti_4O_9,\;Na_2Ti_3O_7$ exhibits quite different structural and morphological transformation behavior despite their similar layered structural characteristics. $TiO_2(B)$ obtained by heat treatment of $H_2Ti_3O_7\;at\;350^{\circ}C$ transforms to rutile $H_2Ti_3O_7\;at\;900^{\circ}C$. This temperature is much lower than $1200{\circ}C$, the temperature for anatase to rutile transition when $K_2Ti_4O_9$ is used as a starting titanate. A rectangular rod shape and size of $TiO_2(B)$ particles obtained from $Na_2Ti_3O_7$ is also different from a fibrous structure of $TiO_2(B)$ prepared using $K_2Ti_4O_9$. Rutile crystals of 100 nm diameter with a corn-like morphology and large surface area are directly obtained when the hydrolysis of $Na_2Ti_3O_7$ is carried out at $100^{\circ}C$ in a strong acid solution. The structure of starting titanates and the hydrolysis conditions are an important factor to decide the particle size and morphology of $TiO_2(B)\;and\;TiO_2$.

Disposal and Waste-to-Fuel of Infected Poultry with Avian Influenza(AI) Using Thermal Hydrolysis Reaction (열가수분해 반응을 이용한 조류인플루엔자(AI) 감염 가금류의 사체처리 및 연료화)

  • Song, Chul-Woo;Kim, Nam-Chan;Jeong, Guk;Ryu, Jae-Keun
    • Journal of the Korea Organic Resources Recycling Association
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    • v.24 no.4
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    • pp.49-57
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    • 2016
  • In this study, a thermal hydrolysis technology was used to treat the poultry carcasses that were killed due to Avian Influenza (AI) occurrence, as well as to determine the possibility of fueling for the resultant products. Experimental results showed that the poultry carcasses were liquefied except for sand, and showed the optimum efficiency at $190^{\circ}C$ and operating time of 60 minutes. It has been shown that liquid products obtained after thermal hydrolysis has good conditions for fuel conversion since it had high carbon contents and calorific value, as well as low ash content. In addition, it was possible to operate the thermal hydrolysis facility by using only the waste heat generated in the combustion without injecting the auxiliary fuel, and the exhaust gas generated in the combustion has a small influence on the atmosphere.

Effect of SAA Pretreatment on SSF at Low Temperature to Bioethanol Production from Rice Straw (암모니아수 침지 전처리 공정을 이용한 볏짚의 저온 동시당화발효)

  • Jang, Suh Yoon;Kim, Jun Seok
    • Korean Chemical Engineering Research
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    • v.52 no.4
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    • pp.430-435
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    • 2014
  • Physical and chemical barriers, caused by the close association of the main components of cellulosic biomass, hinder the hydrolysis of cellulose to fermentable sugars. Since the main goal of pretreatment is to increase the enzyme accessibility improving digestibility of cellulose, development of an effective pretreatment process has been considered to be important. In this study, SAA (Soaking in Aqueous Ammonia) was chosen as pretreatment because this is the simple and low-cost method. Rice straw of which the production is outstandingly high in domestic agriculture residues in Korea was chosen as raw material. SSA pretreatment with various reaction time of 3 h to 72 h was tested. The enzymatic hydrolysis and SSF (Simultaneous Saccharification and Fermentation) were performed at three different temperature (30, 40 and $50^{\circ}C$) to investigate performance of SSF upon various pretreatment conditions. As a result, this SAA treated-rice straw was found to have great potential for effective enzymatic hydrolysis and SSF with lower enzyme dosage at lower temperature ($30^{\circ}C$) than its conventional SSF. In SAA addition, SAA reduced fermentation time to 24 h owing to increase the initial hydrolysis rate substantially.

A Study on the Yield of Functional Components of Citrus Peel Extracts using Optimized Hot Water Extraction and Enzymatic Hydrolysis (열수추출 및 효소처리에 따른 감귤 과피 추출물의 기능성성분 수득에 대한 연구)

  • Noh, Jung-Eun;Yoon, Sung-Ran;Lim, Ae-Kyoung;Kim, Hye-Jeong;Huh, Dam;Kim, Dae-Ik
    • Korean journal of food and cookery science
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    • v.28 no.1
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    • pp.51-55
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    • 2012
  • This study was conducted to investigate the physicochemical properties of citrus peel extracts with different hot water extraction and enzymatic hydrolysis conditions. Enzymatic hydrolysis was also employed using Viscozyme L and results were compared with that of optimized hot water extract. Hot water extraction was performed under different parameters; the sample to solvent ratio(1:20, 1:15, 1:10), extraction time(2, 4 hrs), extraction temperature(85, $95^{\circ}C$) and enzymatic hydrolysis(0, 1%) and the subsequent extracts were used for determining their physicochemical properties, such as total yield, total phenolics, total flavonoids, and electron donating ability (EDA). With the increase in the sample to solvent ratio and extraction time, total yield, total phenolics, total flavonoids and EDA increased. But extraction temperature did not significantly affect the hot water extract. As hot water extract was hydrolyzed by the enzyme, total yield and active ingredients increased rapidly. In the result of total yield, total phenolics, total flavonoids and EDA, the activity of enzyme-treated extract was higher than those of enzyme-untreated extract. Based upon the overall hot water extraction efficiency, it was found that 20 times volume or 120 min at a time at $95^{\circ}C$ after enzyme treatment was optimal.

Preparation Of levan Oligosaccharides by Acid Hydrolysis and It Application in Growth of lactic Acid-producing Bacteria (산가수 분해법에 의한 레반 올리고당의 제조 및 유산군 생육촉진 효과 연구)

  • 강태호;정성제;강순아;강기효;장은경;김승환;김철호;이상기;전억한
    • KSBB Journal
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    • v.17 no.2
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    • pp.137-141
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    • 2002
  • Levan oligosaccoharides and low molecular weight levin were produced from levin by acid hydrolysis and following column chromatography. Levan hydrolysis was progressed proportionally as increased incubation time. In terms of levan hydrolysis reaction, no differences were found from the sources of levan. Optimum hydrolysis conditions for the formation of levan oligosaccharides were, 0.38 M H$_2$S0$_4$; and incubation at 95$\^{C}$ for 4 min. The purified products were determined as the mixture of oligosaccharides (degree of polymerization (DP) of 3-6), Two of lactic acid-producing bacteria, Lactobacillus plantarum KCTC 3104 and Pediococcus pentosaceus KCTC 3507, were studied in vitro for their ability to metabolize levin oligosaccharides. Apparently, the growth of both cells were increased by levin oligosaccharide diet, compared with those of levan diets, suggesting that levan oligosaccharides may be beneficial in selectively growth of lactic acid-producing bacteria.

Studies on the Utilization of Agricultural Wastes.(Part I) Acid-Hydrolysis of Straws and the Utilization of the Hydrolyzate (농산폐자원의 이용에 관한 연구(제일보) 산당화 및 당화액을 이용한 효모 생산)

  • Bae, Moo;Kim, Byung-Hong;Yoon, Ae-Sook
    • Microbiology and Biotechnology Letters
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    • v.1 no.1
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    • pp.31-36
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    • 1973
  • A method for acid-hydrolysis of agricultural wastes and its utilization was investigated. In order to obtain fermentable sugar solution from cellulosic wastes such as cereal straws and hulls, in particular, of rice, barley and wheat, the chemical compositions were analyzed and optimum conditions of hydrolysis determined. The cereal straws contain 42 to 55 % of crude cellulose including hemicellulose. On the hydrolysis with 1% of sulfuric acid at 40 psig, 35.6% of the reducing sugar based on the weight of dry matter was formed from rice straw, (variety Chinheung) in 30 min. More powerful condition of hydrolysis would appear to decompose the sugar formed into other compounds, for instance, furfural. Under atmospheric pressure with 5% of the acid, rice straw was hydrolyzed to 35% of reducing sugar content in 3 hours. Candida utilis could assimilate the sugars in the hydrolyzate up to more than 97%, and a yield of the yeast cells reached 55% to the utilized sugars.

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The Effect of Acid Hydrolysis and Enzymatic Saccharification in Bioethanol Production Process Using Fruit Peels (과일껍질을 이용한 바이오에탄올 생산 공정에서 산 가수분해 및 효소당화의 영향)

  • Lee, Seung Bum;Kim, Hyungjin
    • Applied Chemistry for Engineering
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    • v.25 no.6
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    • pp.619-623
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    • 2014
  • The acid hydrolysis and enzymatic saccharification were carried out for the production of cellulosic ethanol. The possibility of bio-energy production from tangerine peel and apple and watermelon rind was evaluated by determining the optimum production condition. The optimum conditions for the production of cellulosic ethanol from fruit peel were as follows: the sulfuric acid concentration and reaction time of acid hydrolysis for the ethanol production from an apple rind were 20 wt% and 90 min, respectively. The concentration of sulfuric acid for tangerine peel and a watermelon rind at the hydrolysis time of 60 min were 15 wt% and 10 wt%, respectively. A viscozyme was proven as the best conversion for the ethanol production when using enzymatic saccharification from fruit peels. The optimum enzymatic saccharification time for tangerine peel and apple and watermelon rind were 60, 180, and 120 min, respectively.

Biotransformation of flavonoid-7-O-glucuronides by $\beta$-glucuronidases

  • Choi, Ran-Joo;Ha, In-Jin;Choi, Jae-Sue;Park, You-Mie;Kim, Yeong-Shik
    • Natural Product Sciences
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    • v.16 no.1
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    • pp.1-5
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    • 2010
  • $\beta$-Glucuronidases (E.C. 3.2.1.31) from Escherichia coli, Helix pomatia, and bovine liver activity have been investigated on 7-O-glucuronides (baicalin, wogonoside, and luteolin-7-O-glucuronide) and 3-O-glucuronides (quercetin-3-O-glucuronide and kaempferol-3-O-glucuronide). Bovine liver enzyme was not active on any of these substrates. E. coli and H. pomatia enzymes were active on 7-O-glucuronides, however, 3-O-glucuronides were resistant to $\beta$-glucuronidase hydrolysis. These results suggest that glucuronic acid at 7-position is more susceptible to E. coli and H. pomatia $\beta$-glucuronidases than that at 3-position. In addition, the subtle difference of aglycone structure on 7-O-glucuronides affected the preference of enzyme. E. coli enzyme was favorable for the hydrolysis of baicalin, however, H. pomatia enzyme was found to be efficient for the hydrolysis of wogonoside. Both enzymes showed the similar hydrolytic activity towards luteolin-7-O-glucuronide. When the Scutellaria baicalensis crude extract was subjected to enzymatic hydrolysis, baicalin and wogonoside were successfully converted to their aglycone counterparts with H. pomatia at 50 mM sodium bicarbonate buffer pH 4.0. Accordingly, the enzymatic transformation of glycosides may be quite useful in preparing aglycones under mild conditions.

Upcycling the Spent Mushroom Substrate of the Grey Oyster Mushroom Pleurotus pulmonarius as a Source of Lignocellulolytic Enzymes for Palm Oil Mill Effluent Hydrolysis

  • Yunan, Nurul Anisa Mat;Shin, Tan Yee;Sabaratnam, Vikineswary
    • Journal of Microbiology and Biotechnology
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    • v.31 no.6
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    • pp.823-832
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    • 2021
  • Mushroom cultivation along with the palm oil industry in Malaysia have contributed to large volumes of accumulated lignocellulosic residues that cause serious environmental pollution when these agroresidues are burned. In this study, we illustrated the utilization of lignocellulolytic enzymes from the spent mushroom substrate of Pleurotus pulmonarius for the hydrolysis of palm oil mill effluent (POME). The hydrolysate was used for the production of biohydrogen gas and enzyme assays were carried out to determine the productivities/activities of lignin peroxidase, laccase, xylanase, endoglucanase and β-glucosidase in spent mushroom substrate. Further, the enzyme cocktails were concentrated for the hydrolysis of POME. Central composite design of response surface methodology was performed to examine the effects of enzyme loading, incubation time and pH on the reducing sugar yield. Productivities of the enzymes for xylanase, laccase, endoglucanase, lignin peroxidase and β-glucosidase were 2.3, 4.1, 14.6, 214.1, and 915.4 U g-1, respectively. A maximum of 3.75 g/lof reducing sugar was obtained under optimized conditions of 15 h incubation time with 10% enzyme loading (v/v) at a pH of 4.8, which was consistent with the predicted reducing sugar concentration (3.76 g/l). The biohydrogen cumulative volume (302.78 ml H2.L-1 POME) and 83.52% biohydrogen gas were recorded using batch fermentation which indicated that the enzymes of spent mushroom substrate can be utilized for hydrolysis of POME.