• Title/Summary/Keyword: nitrite accumulation

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Effect of Saline Concentrations on Biological Nitrification in Batch Reactor

  • Lee, Young Joon;Nguyen, Viet Hoang;Nguyen, Hong Khanh;Pham, Tuan Linh;Kim, Gi Youn
    • Journal of Integrative Natural Science
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    • v.4 no.2
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    • pp.103-112
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    • 2011
  • This study was carried out on 4 batch reactors to determine the specific ammonium oxidizing rate (SAOR), specific nitrate forming rate (SNFR) and inhibitory degree of nitrifying activities with saline concentrations. Under salt free condition ammonia was consumed during the reaction period within 200 min. When the salt level increased to 10, 20 and 30 g $NaClL^{-1}$ in reactor, ammonia depletion took 250, 300 and above 350 min, respectively. During concentration above 10 g $NaClL^{-1}$, there was nitrite accumulation. Also, at 30 g $NaClL^{-1}$ ammonia did not depleted and $NO_2{^-}$-N accumulated until the final reaction. Nitrate formation rates decreased with increasing salt concentration. SAOR and SNFR showed a decreasing trend as salinity concentrations were increased. The SAOR was reduced from 0.2 to 0.08 mg $NH_4{^+}$-N $g^{-1}VSS\;day^{-1}$ as the salt concentration increased from 0 to 30 g $NaClL^{-1}$. Similarly, the SNFR decreased from 0.26 kg $NO_3{^-}$-N $kg^{-1}VSS\;day^{-1}$ at saline free to 0.1 kg $NO_3{^-}$-N $kg^{-1}VSS\;day^{-1}$ at saline 30 g L-1. A severe inhibition of nitrifiers activity was observed at increased salt concentrations. The inhibition ratio of specific ammonium oxidation rates were 17, 47 and 60% on the reactor of 10, 20 and 30 g $NaClL^{-1}$ added, respectively. The inhibition ratio of specific nitrate forming rates also were inhibited 30, 53 and 62% on the reactor of 10, 20 and 30 g $NaClL^{-1}$ added, respectively. As the salinity concentrations increased from 0 to 30 mg $NaClL^{-1}$, the average MLSS concentration increased from 1,245 to 1,735 $mgL^{-1}$. The SS concentration of supernatant in reactor which settled about 30 minutes was not severely difference between concentration of salt free reactor and one of those high salt contained reactors.

Effect of Fermented Natural Materials Mixtures with Lactobacilluse acidophilus on Anti-obesity Activity (유산균 발효 천연소재 혼합물의 항비만 효과)

  • Jeong, Hee Gyeong;Bak, Ok Ran;Kim, Kyung Je;Jin, Seong Woo;Koh, Young Woo;Im, Seung Bin;Ha, Neul-I;Seo, Kyoungsun
    • Proceedings of the Plant Resources Society of Korea Conference
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    • 2019.04a
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    • pp.103-103
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    • 2019
  • 최근 식생활의 변화로 인한 동물성 포화지방, 고칼로리 식품의 섭취 증가와 운동 부족, 스트레스 등의 여러 요인으로 비만인구 비율이 증가 추세를 보이고 있다. 유자, 석류등 천연소재 추출액에는 플라보노이드 성분이 풍부하여 항암, 항산화, 항염증, 항미생물 활성 등 생리활성이 있는 것으로 보고된 바 있다. 발효유로 대표되는 유산균 제품은 장 건강, 항산화 등 다양한 장점을 지니고 있으나, 짧은 유통기간 및 냉장유통 등 보존성에 있어 취약점을 가지고 있다. 따라서 천연 추출물을 주원료로 Lactobacillus acidophilus로 발효한 천연소재발효물을 활용하여 항비만 효과에 관한 연구를 수행하였다. 유산균 발효유의 풍미 유지하면서 유통기간을 늘릴 수 있는 가공법을 개발하고 건강식품 소재 개발 및 산업화를 통하여 국민의 건강 증진을 도모하고자 본 연구를 수행하였다. 천연소재 프로바이오틱스 발효물을 제조하여 세포독성, NO생성 억제능, 항비만 활성, 관능검사를 수행한 결과는 다음과 같다. 천연소재 추출물 및 천연소재추출발효혼합물을 각각 10, 50, 100, $500{\mu}g/mL$의 농도로 처리한 시험구들의 세포생존율을 측정한 결과 가장 고농도인 $500{\mu}g/mL$의 농도에서 각각 96.2, 95.1, 97.3, 96.2, 98.1, 97.0 %로 확인되어, 높은 수준의 안전성이 확인되었다. 천연소재 추출물 및 천연소재추출발효혼합물의 항염증효과를 분석하고자 수행한 Nitrite 생성저해 효과를 분석한 결과, NO 생성율은 $500{\mu}g/mL$의 농도에서 각각 98.1, 98.2, 96.2, 97.3, 91.2, 95.3 %로 확인되어 시험구 D의 항염증 활성이 가장 높은 것으로 나타났다. 동일한 농도로 처리하였을 때 lipid accumulation은 각각 100.0, 99.1, 98.2, 98.5, 87.6, 91.8 %로 나타나 D시험구와 E시험구에서 지방세포 분화억제효과가 확인되었다. 관능검사 시행 결과, 농축비율에 따른 관능적 기호도는 5 brix > 3 brix > 1 brix > 10 brix 순으로 나타났다.

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Allomyrina dichotoma larva extract attenuates free fatty acid-induced lipotoxicity in pancreatic beta cells

  • Kim, Kyong;Kwak, Min-Kyu;Bae, Gong-Deuk;Park, Eun-Young;Baek, Dong-Jae;Kim, Chul-Young;Jang, Se-Eun;Jun, Hee-Sook;Oh, Yoon Sin
    • Nutrition Research and Practice
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    • v.15 no.3
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    • pp.294-308
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    • 2021
  • BACKGROUD/OBJECTIVES: Allomyrina dichotoma larva (ADL), one of the many edible insects recognized as future food resources, has a range of pharmacological activities. In a previous study, an ADL extract (ADLE) reduced the hepatic insulin resistance of high-fat diet (HFD)-induced diabetic mice. On the other hand, the associated molecular mechanisms underlying pancreatic beta-cell dysfunction remain unclear. This study examined the effects of ADLE on palmitate-induced lipotoxicity in a beta cell line of a rat origin, INS-1 cells. MATERIALS/METHODS: ADLE was administered to high-fat diet treated mice. The expression of apoptosis-related molecules was measured by Western blotting, and reactive oxidative stress generation and nitric oxide production were measured by DCH-DA fluorescence and a Griess assay, respectively. RESULTS: The administration of ADLE to HFD-induced diabetic mice reduced the hyperplasia, 4-hydroxynonenal levels, and the number of apoptotic cells while improving the insulin levels compared to the HFD group. Treatment of INS-1 cells with palmitate reduced insulin secretion, which was attenuated by the ADLE treatment. Furthermore, the ADLE treatment prevented palmitate-induced cell death in INS-1 cells and isolated islets by reducing the apoptotic signaling molecules, including cleaved caspase-3 and PARP, and the Bax/Bcl2 ratio. ADLE also reduced the levels of reactive oxygen species generation, lipid accumulation, and nitrite production in palmitate-treated INS-1 cells while increasing the ATP levels. This effect corresponded to the decreased expression of inducible nitric oxide synthase (iNOS) mRNA and protein. CONCLUSIONS: ADLE helps prevent lipotoxic beta-cell death in INS-1 cells and HFD-diabetic mice, suggesting that ADLE can be used to prevent or treat beta-cell damage in glucose intolerance during the development of diabetes.

Socheongja and Socheong 2 Extracts Suppress Lipopolysaccharide-induced Inflammation and Oxidative Stress in RAW 264.7 Macrophages through Activating Nrf2/HO-1 Signaling and Suppressing MAPKs Pathway (RAW 264.7 대식세포에서 Nrf2/HO-1 신호 전달계 활성화와 MAPKs 경로 억제를 통한 소청자와 소청2호의 LPS 매개 염증성 및 산화적 스트레스 반응의 억제)

  • Kwon, Da Hye;Choi, Eun Ok;Hwang, Hye-Jin;Kim, Kook Jin;Hong, Su Hyun;Lee, Dong Hee;Choi, Yung Hyun
    • Journal of Life Science
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    • v.28 no.2
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    • pp.207-215
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    • 2018
  • Inflammatory response and oxidative stress play critical roles in the development and progression of many human diseases. Therefore, a great deal of attention has been focused on finding functional materials that can control inflammation and oxidative stress simultaneously. The purpose of this study was to investigate the effects of Socheongja and Socheong 2, Korean black seed coat soybean varieties, on the inflammatory and oxidative stress induced by lipopolysaccharide (LPS) in RAW 264.7 macrophages. Our data indicated that the extracts of Socheongja (SCJ) and Socheong 2 (SC2) significantly suppressed LPS-induced production of nitrite oxide (NO) and prostaglandin $E_2$, key pro-inflammatory mediators, by suppressing the expression of inducible NO synthase and cyclooxygenase-2. It was also found that SCJ and SC2 reduced the LPS-induced secretion of pro-inflammatory cytokines, such as tumor necrosis $factor-{\alpha}$ and $interleukin-1{\beta}$, which was concomitant with a decrease in the protein levels. In addition, SCJ and SC2 markedly diminished LPS-stimulated intracellular reactive oxygen species accumulation, and effectively enhanced nuclear factor erythroid 2-related factor 2 (Nrf2) and heme oxygenase (HO)-1 expression. Furthermore, LPS-induced activation of mitogen-activated protein kinases (MAPKs) was abrogated by SCJ and SC2. Taken together, these data suggest that SCJ and SC2 may offer protective roles against LPS-induced inflammatory and oxidative responses in RAW 264.7 macrophages through attenuating MAPKs pathway, and these effects are mediated, at least in part, through activating Nrf2/HO-1 pathway. Given these results, we propose that SCJ and SC2 have therapeutic potential in the treatment of inflammatory and oxidative disorders caused by over-activation of macrophages.

Innovative Technology of Landfill Stabilization Combining Leachate Recirculation with Shortcut Biological Nitrogen Removal Technology (침출수 재순환과 생물학적 단축질소제거공정을 병합한 매립지 조기안정화 기술 연구)

  • Shin, Eon-Bin;Chung, Jin-Wook;Bae, Woo-Keun;Kim, Seung-Jin;Baek, Seung-Cheon
    • Journal of Korean Society of Environmental Engineers
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    • v.29 no.9
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    • pp.1035-1043
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    • 2007
  • A leachate containing an elevated concentration of organic and inorganic compounds has the potential to contaminate adjacent soils and groundwater as well as downgradient areas of the watershed. Moreover high-strength ammonium concentrations in leachate can be toxic to aquatic ecological systems as well as consuming dissolved oxygen, due to ammonium oxidation, and thereby causing eutrophication of the watershed. In response to these concerns landfill stabilization and leachate treatment are required to reduce contaminant loading sand minimize effects on the environment. Compared with other treatment technologies, leachate recirculation technology is most effective for the pre-treatment of leachate and the acceleration of waste stabilization processes in a landfill. However, leachate recirculation that accelerates the decomposition of readily degradable organic matter might also be generating high-strength ammonium in the leachate. Since most landfill leachate having high concentrations of nitrogen also contain insufficient quantities of the organic carbon required for complete denitrification, we combined a shortcut biological nitrogen removal (SBNR) technology in order to solve the problem associated with the inability to denitrify the oxidized ammonium due to the lack of carbon sources. The accumulation of nitrite was successfully achieved at a 0.8 ratio of $NO_2^{-}-N/NO_x-N$ in an on-site reactor of the sequencing batch reactor (SBR) type that had operated for six hours in an aeration phase. The $NO_x$-N ratio in leachate produced following SBR treatment was reduced in the landfill and the denitrification mechanism is implied sulfur-based autotrophic denitrification and/or heterotrophic denitrification. The combined leachate recirculation with SBNR proved an effective technology for landfill stabilization and nitrogen removal in leachate.