• 제목/요약/키워드: Reaction Mechanism Reduction

검색결과 209건 처리시간 0.026초

Formation of Al2O2 supported Ni2P based 3D catalyst for atmospheric deoxygenation of rubberwood sawdust

  • Pranshu Shrivastava
    • Advances in Energy Research
    • /
    • 제8권4호
    • /
    • pp.223-231
    • /
    • 2022
  • An ex-situ gravitational fixed bed pyrolysis reactor was used over Al2O3 supported Ni2P based catalyst with various Ni/P molar ratios (0.5-2.0) and constant nickel loading of 5.37 mmol/g Al2O3 to determine the hydrodeoxygenation of rubberwood sawdust (RWS) at atmospheric pressure. The 3D catalysts formed were characterized structurally as well as acidic properties were determined by hydrogen-temperature programmed reduction (TPR). The Ni2P phase formed completely on Al2O3 for 1.5 Ni/P ratio, although lesser crystallite sizes of Ni2P were seen at Ni/P ratios less than 1.5. Additionally, it was shown that when nickel loading level increased, acidity increased and specific surface area dropped, probably because nickel phosphate is not easily converted to Ni2P. When Ni/P ratio was 1.5, Ni2P phase fully formed on Al2O3. The catalytic activity was explained in terms of impacts of reaction temperature and Ni/P molar ratio. At relatively high temperature of 450℃, the high-value deoxygenated produce was predominantly composed of n-alkanes. Based on the findings, it was suggested that hydrogenolysis, hydrodeoxygenation, dehydration, decarbonylation, and hydrogenation are all part of mechanism underlying hydrotreatment of RWS. In conclusion, the synthesized Ni2P/ Al2O3 catalyst was capable of deoxygenating RWS with ease at atmospheric pressure, primarily resulting in long chained (C9-C24) hydrocarbons and acetic acid.

플랜트팜용 3원계 (Zn-Al-Mg) 합금도금 강판의 국부손상에 따른 부식 메커니즘 (Corrosion Mechanism According to Localized Damage of Zn-Al-Mg Alloy Coated Steel Sheet Used in Plant Farm)

  • 박진성;이재원;김성진
    • Corrosion Science and Technology
    • /
    • 제22권2호
    • /
    • pp.123-130
    • /
    • 2023
  • This study aimed to evaluate corrosion resistance of steel coated with GI and Zn-Al-Mg alloy using cyclic corrosion test (CCT) with electrochemical polarization and impedance measurements. Results showed that the Zn-Al-Mg alloy coated steel had a much higher corrosion rate than GI coated steel in early stages of corrosion. With prolonged immersion, however, the corrosion rate of the Zn-Al-Mg alloy coated steel greatly decreased, mainly owing to a significant decrease in the cathodic reduction reaction and an increase in polarization resistance at the surface. This was closely associated with the formation of protective corrosion products including Zn5(OH)8Cl2·H2O and Zn6Al2(OH)16CO3. Moreover, when the steel substrate was locally exposed due to mechanical damage, the kinetics of anodic dissolution from the coating layer and the formation of protective corrosion products on the surface of the Zn-Al-Mg alloy coated steel became much faster compared to the case of GI coated steel. This could provide a longer-lasting corrosion inhibition function for Zn-Al-Mg alloy coated steel used in plant farms.

Use of Postbiotic as Growth Promoter in Poultry Industry: A Review of Current Knowledge and Future Prospects

  • Muhammad Saeed;Zoya Afzal;Fatima Afzal;Rifat Ullah Khan;Shaaban S. Elnesr;Mahmoud Alagawany;Huayou Chen
    • 한국축산식품학회지
    • /
    • 제43권6호
    • /
    • pp.1111-1127
    • /
    • 2023
  • Health-promoting preparations of inanimate microorganisms or their components are postbiotics. Since probiotics are sensitive to heat and oxygen, postbiotics are stable during industrial processing and storage. Postbiotics boost poultry growth, feed efficiency, intestinal pathogen reduction, and health, making them acceptable drivers of sustainable poultry production. It contains many important biological properties, such as immunomodulatory, antioxidant, and anti-inflammatory responses. Postbiotics revealed promising antioxidant effects due to higher concentrations of uronic acid and due to some enzyme's production of antioxidants, e.g., superoxide dismutase, glutathione peroxidase, and nicotinamide adenine dinucleotide oxidases and peroxidases. Postbiotics improve intestinal villi, increase lactic acid production, and reduce Enterobacteriaceae and fecal pH, all of which lead to a better immune reaction and health of the gut, as well as better growth performance. P13K/AKT as a potential target pathway for postbiotics-improved intestinal barrier functions. Similarly, postbiotics reduce yolk and plasma cholesterol levels in layers and improve egg quality. It was revealed that favorable outcomes were obtained with various inclusion levels at 1 kg and 0.5 kg. According to several studies, postbiotic compounds significantly increased poultry performance. This review article presents the most recent research investigating the beneficial results of postbiotics in poultry.

Protective effect of Korean Red Ginseng against glucocorticoid-induced osteoporosis in vitro and in vivo

  • Kim, Jinhee;Lee, Hyejin;Kang, Ki Sung;Chun, Kwang-Hoon;Hwang, Gwi Seo
    • Journal of Ginseng Research
    • /
    • 제39권1호
    • /
    • pp.46-53
    • /
    • 2015
  • Background: Glucocorticoids (GCs) are commonly used in many chemotherapeutic protocols and play an important role in the normal regulation of bone remodeling. However, the prolonged use of GCs results in osteoporosis, which is partially due to apoptosis of osteoblasts and osteocytes. In this study, effects of Korean Red Ginseng (KRG) on GC-treated murine osteoblastic MC3T3-E1 cells and a GC-induced osteoporosis mouse model were investigated. Methods: MC3T3-E1 cells were exposed to dexamethasone (Dex) with or without KRG and cell viability was measured by the 3-(4, 5-dimethylthiazol-2-yl)-2, 5-diphenyltetrazolium bromide (MTT) assay. Realtime polymerase chain reaction was performed to evaluate the apoptotic gene expression; osteogenic gene expression and alkaline phosphatase (ALP) activity were also measured. Western blotting was performed to evaluate the mitogen-activated protein kinase (MAPK) proteins. A GC-induced osteoporosis animal model was used for in vivo study. Results and conclusion: The MTT assay revealed that Korean Red Ginseng (KRG) prevents loss of cell viability caused by Dex-induced apoptosis in MC3T3E1 cells. Real-time polymerase chain reaction data showed that groups treated with both Dex and KRG exhibited lower mRNA levels of caspase-3 and -9, whereas the mRNA levels of Bcl2, IAPs, and XIAP increased. Moreover, groups treated with both Dex and KRG demonstrated increased mRNA levels of ALP, RUNX2, and bone morphogenic proteins as well as increased ALP activity in MC3T3-E1 cells, compared to cells treated with Dex only. In addition, KRG increased protein kinase B (AKT) phosphorylation and decreased c-Jun N-terminal kinase (JNK) phosphorylation. Moreover, microcomputed tomography analysis of the femurs showed that GC implantation caused trabecular bone loss. However, a significant reduction of bone loss was observed in the KRG-treated group. These results suggest that the molecular mechanism of KRG in the GC-induced apoptosis may lead to the development of therapeutic strategies to prevent and/or delay osteoporosis.

Some Prophylactic Options to Mitigate Methane Emi ssion from Animal Agriculture in Japan

  • Takahashi, Junichi
    • Asian-Australasian Journal of Animal Sciences
    • /
    • 제24권2호
    • /
    • pp.285-294
    • /
    • 2011
  • The abatement of methane emission from ruminants is an important global issue due to its contribution to greenhouse gas with carbon dioxide. Methane is generated in the rumen by methanogens (archaea) that utilize metabolic hydrogen ($H_2$) to reduce carbon dioxide, and is a significant electron sink in the rumen ecosystem. Therefore, the competition for hydrogen used for methanogenesis with alternative reductions of rumen microbes should be an effective option to reduce rumen methanogenesis. Some methanogens parasitically survive on the surface of ciliate protozoa, so that defaunation or decrease in protozoa number might contribute to abate methanogenesis. The most important issue for mitigation of rumen methanogenesis with manipulators is to secure safety for animals and their products and the environment. In this respect, prophylactic effects of probiotics, prebiotics and miscellaneous compounds to mitigate rumen methanogenesis have been developed instead of antibiotics, ionophores such as monensin, and lasalocid in Japan. Nitrate suppresses rumen methanogenesis by its reducing reaction in the rumen. However, excess intake of nitrate causes intoxication due to nitrite accumulation, which induces methemoglobinemia. The nitrite accumulation is attributed to a relatively higher rate of nitrate reduction to nitrite than nitrite to ammonia via nitroxyl and hydroxylamine. The in vitro and in vivo trials have been conducted to clarify the prophylactic effects of L-cysteine, some strains of lactic acid bacteria and yeast and/or ${\beta}$1-4 galactooligosaccharide on nitrate-nitrite intoxication and methanogenesis. The administration of nitrate with ${\beta}$1-4 galacto-oligosaccharide, Candida kefyr, and Lactococcus lactis subsp. lactis were suggested to possibly control rumen methanogenesis and prevent nitrite formation in the rumen. For prebiotics, nisin which is a bacteriocin produced by Lactococcus lactis subsp. lactis has been demonstrated to abate rumen methanogenesis in the same manner as monensin. A protein resistant anti-microbe (PRA) has been isolated from Lactobacillus plantarum as a manipulator to mitigate rumen methanogenesis. Recently, hydrogen peroxide was identified as a part of the manipulating effect of PRA on rumen methanogenesis. The suppressing effects of secondary metabolites from plants such as saponin and tannin on rumen methanogenesis have been examined. Especially, yucca schidigera extract, sarsaponin (steroidal glycosides), can suppress rumen methanogenesis thereby improving protein utilization efficiency. The cashew nutshell liquid (CNSL), or cashew shell oil, which is a natural resin found in the honeycomb structure of the cashew nutshell has been found to mitigate rumen methanogenesis. In an attempt to seek manipulators in the section on methane belching from ruminants, the arrangement of an inventory of mitigation technologies available for the Clean Development Mechanism (CDM) and Joint Implementation (JI) in the Kyoto mechanism has been advancing to target ruminant livestock in Asian and Pacific regions.

MicroRNA-21 promotes epithelial-mesenchymal transition and migration of human bronchial epithelial cells by targeting poly (ADP-ribose) polymerase-1 and activating PI3K/AKT signaling

  • Zhang, Shiqing;Sun, Peng;Xiao, Xinru;Hu, Yujie;Qian, Yan;Zhang, Qian
    • The Korean Journal of Physiology and Pharmacology
    • /
    • 제26권4호
    • /
    • pp.239-253
    • /
    • 2022
  • Epithelial-mesenchymal transition (EMT) is known to be involved in airway remodeling and fibrosis of bronchial asthma. However, the molecular mechanisms leading to EMT have yet to be fully clarified. The current study was designed to reveal the potential mechanism of microRNA-21 (miR-21) and poly (ADP-ribose) polymerase-1 (PARP-1) affecting EMT through the PI3K/AKT signaling pathway. Human bronchial epithelial cells (16HBE cells) were transfected with miR-21 mimics/inhibitors and PARP-1 plasmid/small interfering RNA (siRNA). A dual luciferase reporter assay and biotin-labeled RNA pull-down experiments were conducted to verify the targeting relationship between miR-21 mimics and PARP-1. The migration ability of 16HBE cells was evaluated by Transwell assay. Quantitative real-time polymerase chain reaction and Western blotting experiments were applied to determine the expression of Snail, ZEB1, E-cadherin, N-cadherin, Vimentin, and PARP-1. The effects of the PI3K inhibitor LY294002 on the migration of 16HBE cells and EMT were investigated. Overexpression of miR-21 mimics induced migration and EMT of 16HBE cells, which was significantly inhibited by overexpression of PARP-1. Our findings showed that PARP-1 was a direct target of miR-21, and that miR-21 targeted PARP-1 to promote migration and EMT of 16HBE cells through the PI3K/AKT signaling pathway. Using LY294002 to block PI3K/AKT signaling pathway resulted in a significant reduction in the migration and EMT of 16HBE cells. These results suggest that miR-21 promotes EMT and migration of HBE cells by targeting PARP-1. Additionally, the PI3K/AKT signaling pathway might be involved in this mechanism, which could indicate its usefulness as a therapeutic target for asthma.

MFC의 금속 및 탄소전극에 의한 전기생산 특성과 오염저감 효과 (Electricity Generation and De-contamination Effect for Characteristic Electrode Material in a Microbial Fuel Cell System Using Bay Sediment)

  • 권성현;송형진;이은미;조대철;이인형
    • 한국환경과학회지
    • /
    • 제19권8호
    • /
    • pp.951-960
    • /
    • 2010
  • Sediment works as a resource for electric cells. This paper was designed in order to verify how sediment cells work with anodic material such as metal and carbon fiber. As known quite well, sediment under sea, rivers or streams provides a furbished environment for generating electrons via some electron transfer mechanism within specific microbial population or corrosive oxidation on the metal surfaces in the presence of oxygen or water molecules. We experimented with one type of sediment cell using different anodic material so as to attain prolonged, maximum electric power. Iron, Zinc, aluminum, copper, zinc/copper, and graphite felt were tested for anodes. Also, combined type of anodes-metal embedded in the graphite fiber matrix-was experimented for better performances. The results show that the combined type of anodes exhibited sustainable electricity production for ca. 600 h with max. $0.57\;W/m^2$ Al/Graphite. Meanwhile, graphite-only electrodes produced max. $0.11\;W/m^2$ along with quite stationary electric output, and for a zinc electrode, in which the electricity generated was not stable with time, therefore resulting in relatively sharp drop in that after 100 h or so, the maximum power density was $0.64\;W/m^2$. It was observed that the corrosive reaction rates in the metal electrodes might be varied, so that strength and stability in the electric performances(voltage and current density) could be affected by them. In addition to that, COD(chemical oxygen demand) of the sediment of the cell system was reduced by 17.5~36.7% in 600 h, which implied that the organic matter in the sediment would be partially converted into non-COD substances, that is, would suggest a way for decontamination of the aged, anaerobic sediment as well. The pH reduction for all electrodes could be a sign of organic acid production due to complicated chemical changes in the sediment.

흰쥐 뇌 미토콘드리아에 의한 superoxide radical의 생성과 이 radical이 미토콘드리아 및 미토콘드리아 외 물질에 대한 독작용과 그 기전에 관한 연구 (Generation of Superoxide Radical from Rat Brain Mitochondria and Mechanism of Its Toxic Action to Mitochondrial and Extra-mitochondrial Components)

  • 노재규;표장근;정명희;임정규;명호진
    • 대한약리학회지
    • /
    • 제21권1호
    • /
    • pp.12-26
    • /
    • 1985
  • 흰쥐 뇌 미토콘드리아에 의한 $O^{-}_{2}{\cdot}$ 의 생성과 이 radical의 유해작용 및 그 작용기전을 알아보기 위하여 본실험을 수행하였다. Succinate와 antimycin존재하에서 미토콘드리아는 $O^{-}_{2}{\cdot}$을 생성하였으며 이는 SOD-inhibitable NBT환원으로 확인되었다. 동일 조건에서 $H_2O_2$는 일차생성물인 $O^{-}_{2}{\cdot}$의 dismutation으로 생성됨을 알수 있었다. 상기조건에서 미토콘드리아의 막지질이 파괴되었고 반응액에 첨가된 isocitrate dehydrogenase와 적혈구에 각각 불활성화와 용혈이 초래되었다. 이같은 작용은 $Fe^{++}$이 있을때만 관찰 되었다. 그리고 독작용은 superoxide dismutase 혹은 castalase에 의해서 억제되었다. 또한 methional을 첨가하였을 때 ethylene이 생성되었으며 그 생성은 $Fe^{++}$에 의하여 현저히 증가하였다. Ethylene 생성 역시 상기 효소에 의하여 억제되었다. 따라서 미토콘드리아에서 발생된 $O^{-}_{2}{\cdot}$은 거대분자 및 세포에 독성을 나타낼수 있으며 이같은 작용은 $Fe^{++}$의 촉매작용에 의한 $O^{-}_{2}{\cdot}$$H_2O_2$의 상호작용으로 발생되는 $OH{\cdot}$ 에 의한것으로 추측되었다. 이상의 결과는 미토콘드리아가 유독성 산소 radical을 발생하므로 조직손상을 시킬 수 있다는 가능성을 시사하는 증거라고 생각되었다.

  • PDF

초음파를 조사(照射)한 유기화합물 수용액 속에서의 과산화수소 생성량의 측정 (Measurement of the Quantity of Hydrogen Peroxide Produced in the Ultrasound-irradiated Aqueous Solution of Organic Compounds)

  • 모세영;장홍기;이경재;장건익;손종렬
    • 대한환경공학회지
    • /
    • 제22권1호
    • /
    • pp.61-71
    • /
    • 2000
  • 수용액 속에 강력초음파를 조사(照射)하면 공동화기포 (cavitation bubble) 속의 매우 높은 온도의 열에 의해 수증기가 해리되어 OH (hydroxyl radical) 과 H (hydrogen radical) 이 생성되고 그것들이 수용액 속에 함유되어 있는 물질들을 산화 또는 환원시켜 분해시키며, 한편으로는 과산화수소를 생성한다. 따라서 생성된 과산화수소의 양과 유기물질의 초음파 분해반응메카니즘과는 상관관계가 있을 것임을 예측할 수 있으며, 이러한 예측을 확인하기 위해 공기로 포화시킨 증류수와 그 증류수에 각각 TCE, Benzene, 그리고 2,4-DCP 등 세 가지 유기물질들을 용해시킨 수용액으로부터 생성된 과산화수소의 양을 측정하고 그 결과를 분석하였다. 그 결과, 생성된 과산화수소의 양은 증류수>TCE수용액>2,4-DCP수용액 >benzene수용액의 순으로 많고 유기물질의 농도가 낮을수록 적어 TCE는 높은 온도의 수용액에서는 고온과 고압인 공동화기포내와 그 공동화기포가 파열될 때 그 주위에서 직접 열분해되고 저농도의 수용액에서는 라디칼반응에 의해 분해되며, 벤젠과 2,4-DCP는 열분해 및 라디칼반응에 의해 분해된다고 제안된 초음파 분해반응메카니즘과 일치함을 나타내었다. 사용한 실험변수인 초음파의 주파수와 음향출력, 그리고 시료물질의 농도 등의 영향은 주파수가 높고 음향출력이 낮을수록 과산화수소의 생성량이 적어 수중에 강력초음파를 조사(照射)하였을 때의 에너지원인 공동화와 이들 변수와의 관계에 대한 초음파이론과 일치하였다.

  • PDF

축산폐수에서 질소$\cdot$인의 추출을 위한 MAP공정 개발 (Phosphorus and Nitrogen Reduction from Animal Wastewater with MAP Process)

  • 오인환;이종현;정대성;조진우
    • 한국축산시설환경학회지
    • /
    • 제11권3로
    • /
    • pp.207-214
    • /
    • 2005
  • 축산폐수에서 용해인과 암모니아 질소를 제거하기 위하여 마그네슘을 첨가하여 시험을 수행하였다. 자돈사의 축산폐수를 대상으로 실험을 하였을 때 원수의 용해인의 수치가 폭기구에서 $471mg/\ell$, NaOH로 pH를 조정하여 준 구에서 $559mg/\ell$ 이었으며, 각기 $5mg/\ell$$4mg/\ell$으로 감소하여 공히 $99\%$의 제거효율을 나타내었다 특히, 실험온도가 $6-8^{\circ}C$를 유지하였는데에도 양호한 효과를 나타내어서 겨울철 낮은 온도에서도 작동이 가능할 것으로 판단되었다. 암모니아 질소의 제거효율은 폭기구에서 $15\%$, NaOH로 pH를 조절해준 구에서 $18\%$를 나타내었다. pH를 NaOH로 조정해준 구와 폭기를 시켜준 구의 비교에서 폭기만 시켜주어도 pH가 8.4 정도로 되어 pH 조정구와 유사한 제거 효과를 얻을 수 있었다. Struvite 결정체의 관찰에서 직사각형 형태의 결정체와 결정체가 서로 결합한 모양을 볼 수 있었다. 마그네슘과 인을 동시에 주입하여 암모니아 질소의 제거효율을 높이고자 한 실험에서 용해인은 인을 2g 넣은 구에서는 $99\%$로 거의 제거되었으나 4g 넣은 구에서는 절대량으로 보아서는 제거량이 많으나 효율면에서는 $15\~19\%$로 그리 높지 알았다. 암모니아 질소의 제거율도 각각 $18\%,\;15\%$로 앞선 실험의 결과와 유사하였고 향상되지 않아 반응기작에 관한 분석이 더 필요한 것으로 사료된다.

  • PDF