東北大学 · Medicine
Teruo Miyazawa 교수의 연구실은 생체막 지질의 산화손상 평가 및 항산화 물질의 체내 대사 동태를 중심으로 한 생화학적 연구를 수행하고 있습니다. 특히, 허브, 과일, 녹차 등 식물성 항산화 물질(안토시아닌, 카테킨 등)의 흡수 및 대사 메커니즘을 고성능액체크로마토그래피(HPLC)와 발광검출 기반 분석 기술을 통해 정량적으로 규명하고 있습니다. 또한, 나노입자 표면에 계면활성제를 코ating한 나노소재의 응용과 생체막 지질 과산화물질의 정량 분석 기술 개발을 통해 나노의학 및 식품나노기술 분야의 기초 연구를 이끌고 있습니다.
표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.
We determined red fruit anthocyanins, cyanidin-3-glucoside (Cy-g) and cyanidin-3,5-diglucoside (Cy-dg), incorporated into plasma and liver of rats and human plasma by UV-HPLC. Fifteen minutes after an oral supplementation of a mixture of 320 mg of Cy-g and 40 mg of Cy-dg/kg of body weight, rats showed an increase to a maximum of 1563 microg (3490 nmol) of Cy-g/L and 195 microg (320 nmol) of Cy-dg/L in plasma and 0.067 microg (0.15 nmol) of Cy-g/g and a trace of Cy-dg together with methylated met
Tea catechins, (-)-epigallocatechin-3-gallate (EGCg) and (-)-epigallocatechin (EGC), have been reported to suppress oxidation of plasma low density lipoprotein (LDL) in vitro. If dietary catechins can be efficiently incorporated into human blood plasma, anti-atherosclerotic effects in preventing oxidative modification of LDL would be expected. In this study, a newly developed chemiluminescence detection-high pressure liquid chromatography (CL-HPLC) method for measuring plasma catechins was used
Surfactants, whose existence has been recognized as early as 2800 BC, have had a long history with the development of human civilization. With the rapid development of nanotechnology in the latter half of the 20th century, breakthroughs in nanomedicine and food nanotechnology using nanoparticles have been remarkable, and new applications have been developed. The technology of surfactant-coated nanoparticles, which provides new functions to nanoparticles for use in the fields of nanomedicine and
Microgreens, a hypothesized term used for the emerging food product that is developed from various commercial food crops, such as vegetables, grains, and herbs, consist of developed cotyledons along with partially expanded true leaves. These immature plants are harvested between 7-21 days (depending on variety). They are treasured for their densely packed nutrients, concentrated flavors, immaculate and tender texture as well as for their vibrant colors. In recent years, microgreens are on demand
Abstract A chemiluminescence - high performance liquid chromatography (CL-HPLC) system was developed for the hydroperoxide-specific detection of phosphatidylcholine hydroperoxide. In this system, chemiluminescence detector was equipped with normal phase HPLC. Luminol-cytochrome c solution was used as the hydroperoxide-specific luminescent reagent. A detection limit of 7 nmol hydroperoxide-O2 of phosphatidylcholine hydroperoxide could be achieved. Key Words: HPLCchemiluminescencehydroperoxidephos
The quantification of phospholipid hydroperoxides in biological tissues is important in order to know the degree of peroxidative damage of membrane lipids. For this purpose, optimal conditions for the chemiluminescent simultaneous assay of phosphatidylcholine hydroperoxide (PCOOH) and phosphatidylethanolamine hydroperoxide (PEOOH) in rat liver and brain were determined. A chemiluminescence detection-high performance liquid chromatography (CL-HPLC) method that incorporates cytochrome c and lumino
A chemiluminescence-high performance liquid chromatography (CL-HPLC) system was newly developed and used for the hydroperoxide-specific determination of phosphatidylcholine hydroperoxide (PCOOH) in human plasma. The method involves separation of phosphatidylcholine derivatives from plasma lipids by normal phase HPLC and subsequent detection of hydroperoxide-dependent chemiluminescence (CL) of PCOOH. CL was produced through luminol oxidation during the reaction of the hydroperoxide and cytochrome