• 제목/요약/키워드: Derivatives

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중수소화(重水素化), Pentafluorobenzyl화(化)와 GLC-Mass Spectrometry에 의한 Conjugate Trienoic Acid함유(含有) Triacylglycerol 분자종(分子種)의 입체특이적 분석(分析) (Stereospecific Analysis of the Molecular Species of the Triacylglycerols Containing Conjugate Trienoic Acids by GLC-Mass Spectrometry in Combination with Deuteration and Pentafluorobenzyl Derivatization Techniques)

  • 우효경;김성진;조용계
    • 한국응용과학기술학회지
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    • 제18권3호
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    • pp.214-232
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    • 2001
  • CTA ester bonds in TG molecules were not attacked by pancreatic lipase and lipases produced by microbes such as Candida cylindracea, Chromobacterium viscosum, Geotricum candidium, Pseudomonas fluorescens, Rhizophus delemar, R. arrhizus and Mucor miehei. An aliquot of total TG of all the seed oils and each TG fraction of the oils collected from HPLC runs were deuterated prior to partial hydrolysis with Grignard reagent, because CTA molecule was destroyed with treatment of Grignard reagent. Deuterated TG (dTG) was hydrolyzed partially to a mixture of deuterated diacylglycerols (dDG), which were subsequently reacted with (S)-(+)-1-(1-naphthyl)ethyl isocyanate to derivatize into dDG-NEUs. Purified dDG-NEUs were resolved into 1, 3-, 1, 2- and 2, 3-dDG-NEU on silica columns in tandem of HPLC using a solvent of 0.4% propan-1-o1 (containing 2% water)-hexane. An aliquot of each dDG-NEU fraction was hydrolyzed and (fatty acid-PFB ester). These derivatives showed a diagnostic carboxylate ion, $(M-1)^{-}$, as parent peak and a minor peak at m/z 196 $(PFB-CH_{3})^{-}$ on NICI mass spectra. In the mass spectra of the fatty acid-PFB esters of dTGs derived from the seed oils of T. kilirowii and M. charantia, peaks at m/z 285, 287, 289 and 317 were observed, which corresponded to $(M-1)^{-}$ of deuterized oleic acid ($d_{2}-C_{18:0}$), linoleic acid ($d_{4}-C_{18:0}$), punicic acid ($d_{6}-C_{18:0}$) and eicosamonoenoic acid ($d_{2}-C_{20:0}$), respectively. Fatty acid compositions of deuterized total TG of each oil measured by relative intensities of $(M-1)^-$ ion peaks were similar with those of intact TG of the oils by GLC. The composition of fatty acid-PFB esters of total dTG derived from the seed oils of T. kilirowii are as follows; $C_{16:0}$, 4.6 mole % (4.8 mole %, intact TG by GLC), $C_{18:0}$, 3.0 mole % (3.1 mole %), $d_{2}C_{18:0}$, 11.9 mole % (12.5 mole %, sum of $C_{18:1{\omega}9}$ and $C_{18:1{\omega}7}$), $d_{4}-C_{18:0}$, 39.3 mole % (38.9 mole %, sum of $C_{18:2{\omega}6}$ and its isomer), $d_{6}-C_{18:0}$, 41.1 mole % (40.5 mole %, sum of $C_{18:3\;9c,11t,13c}$, $C_{18:3\;9c,11t,13r}$ and $C_{18:3\;9t,11t,13c}$), $d_{2}-C_{20:0}$, 0.1 mole % (0.2 mole % of $C_{20:1{\omega}9}$). In total dTG derived from the seed oils of M. charantia, the fatty acid components are $C_{16:0}$, 1.5 mole % (1.8 mole %, intact TG by GLC), $C_{18:0}$, 12.0 mole % (12.3 mole %), $d_{2}-C_{18:0}$, 16.9 mole % (17.4 mole %, sum of $C_{18:1{\omega}9}$), $d_{4}-C_{18:0}$, 11.0 mole % (10.6 mole %, sum of $C_{18:2{\omega}6}$), $d_{6}-C_{18:0}$, 58.6 mole % (57.5 mole %, sum of $C_{18:3\;9c,11t,13t}$ and $C_{18:3\;9c,11t,13c}$). In the case of Aleurites fordii, $C_{16:0}$; 2.2 mole % (2.4 mole %, intact TG by GLC), $C_{18:0}$; 1.7 mole % (1.7 mole %), $d_{2}-C_{18:0}$; 5.5 mole % (5.4 mole %, sum of $C_{18:1{\omega}9}$), $d_{4}-C_{18:0}$ ; 8.3 mole % (8.5 mole %, sum of $C_{18:2{\omega}6}$), $d_{6}-C_{18:0}$; 82.0 mole % (81.2 mole %, sum of $C_{18:3\;9c,11t,13t}$ and $C_{18:3 9c,11t,13c})$. In the stereospecific analysis of fatty acid distribution in the TG species of the seed oils of T. kilirowii, $C_{18:3\;9c,11t,13r}$ and $C_{18:2{\omega}6}$ were mainly located at sn-2 and sn-3 position, while saturated acids were usually present at sn-1 position. And the major molecular species of $(C_{18:2{\omega}6})(C_{18:3\;9c,11t,13c})_{2}$ and $(C_{18:1{\omega}9})(C_{18:2{\omega}6})(C_{18:3\;9c,11t,13c})$ were predominantly composed of the stereoisomer of $sn-1-C_{18:2{\omega}6}$, $sn-2-C_{18:3\;9c,11t,13c}$, $sn-3-C_{18:3\;9c,11t,13c}$, and $sn-1-C_{18:1{\omega}9}$, $sn-2-C_{18:2{\omega}6}$, $sn-3-C_{18:3\;9c,11t,13c}$, respectively, and the minor TG species of $(C_{18:2{\omega}6})_{2}(C_{18:3\;9c,11t,13c})$ and $ (C_{16:0})(C_{18:3\;9c,11t,13c})_{2}$ mainly comprised the stereoisomer of $sn-1-C_{18:2{\omega}6}$, $sn-2-C_{18:2{\omega}6}$, $sn-3-C_{18:3\;9c,11t,13c}$ and $sn-1-C_{16:0}$, $sn-2-C_{18:3\;9c,11t,13c}$, $sn-3-C_{18:3\;9c,11t,13c}$. The TG of the seed oils of Momordica charantia showed that most of CTA, $C_{18:3\;9c,11t,13r}$, occurred at sn-3 position, and $C_{18:2{\omega}6}$ was concentrated at sn-1 and sn-2 compared to sn-3. Main TG species of $(C_{18:1{\omega}9})(C_{18:3\;9c,11t,13t})_{2}$ and $(C_{18:0})(C_{18:3\;9c,11t,13t})_{2}$ were consisted of the stereoisomer of $sn-1-C_{18:1{\omega}9}$, $sn-2-C_{18:3\;9c,11t,13t}$, $sn-3-C_{18:3\;9c,11t,13t}$ and $sn-1-C_{18:0}$, $sn-2-C_{18:3\;9c,11t,13t}$, $sn-3-C_{18:3\;9c,11t,13t}$, respectively, and minor TG species of $(C_{18:2{\omega}6})(C_{18:3\;9c,11t,13c})_{2}$ and $(C_{18:1{\omega}9})(C_{18:2{\omega}6})(C_{18:3\;9c,11t,13c})$ contained mostly $sn-1-C_{18:2{\omega6}$, $sn-2-C_{18:3\;9c,11t,13t}$, $sn-3-C_{18:3\;9c,11t,13t}$ and $sn-1-C_{18:1{\omega}9}$, $sn-2-C_{18:2{\omega}6}$, $sn-3-C_{18:3\;9c,11t,13t}$. The TG fraction of the seed oils of Aleurites fordii was mostly occupied with simple TG species of $(C_{18:3\;9c,11t,13t})_{3}$, along with minor species of $(C_{18:2{\omega}6})(C_{18:3\;9c,11t,13t})_{2}$, $(C_{18:1{\omega}9})(C_{18:3\;9c,11t,13t})_{2}$ and $(C_{16:0})(C_{18:3\;9c,11t,13t})$. The sterospecific species of $sn-1-C_{18:2{\omega}6}$, $sn-2-C_{18:3\;9c,11t,13t}$, sn-3-C_{18:3\;9c,11t,13t}$, $sn-1-C_{18:1{\omega}9}$, $sn-2-C_{18:3\;9c,11t,13t}$, $sn-3-C_{18:3\;9c,11t,13t}$ and $sn-1-C_{16;0}$, $sn-2-C_{18:3\;9c,11t,13t}$, $sn-3-C_{18:3\;9c,11t,13t}$ are the main stereoisomers for the species of $(C_{18:2{\omega}6})(C_{18:3\;9c,11t,13t})_2$, $(C_{18:1{\omega}9})(C_{18:3\;9c,11t,13t})_{2}$ and $(C_{16:0})(C_{18:3\;9c,11t,13t})$, respectively.

Phthalimido methyl-O,O-dimethyl phosphorodithioate (Imidan)과 그의 대사물질(代謝物質)이 수도(水稻) 생육(生育)에 미치는 영향(影響)에 관(關)한 연구(硏究) (Studies on the effect of phthalimido methyl-O,O-dimethyl-phosphorodithioate (Imidan) and its possible metabolites on the growth of rice plant)

  • 이성환;이동석;이재구
    • Applied Biological Chemistry
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    • 제7권
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    • pp.105-117
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    • 1966
  • acaricide로 알려진 phthalimidomethyl O,O-dimethyl phosphorodithioat (Imidan)을 수도(水稻)에 살포(撒布)했을 때 Imidan과 그 대사물질(代謝物質)이 식물(植物)의 생육(生育)에 미치는 영향(影響)을 연구(硏究)하기 위하여 본(本) 실험(實驗)을 하였으며 이의 결과(結果)를 요약(要約)해 보면 다음과 같다. (1) Imian의 대사물질(代謝物質)로 예상(豫想)되는 다음의 8가지 화합물(化合物)을 합성(合成) 또는 정제(精製)하여 공시약제(供試藥劑)로 사용(使用)하였다. (a) N-Hydroxy methyl phthalimide (b) Phalimide (c) Phthalamdic acid (d) Phthalic acid (e) Anthranilic acid (f) p-amino benzoic acid (g) p-hydroxu benzoic acid (h) Benzoic acid (2) 상기(上記) 물질중(物質中)에서 (a),(c),(d),(e)와 Imidan의 각(各) 10 ppm과 20 ppm 의 Buffer Solution 을 만들어 밀 종자(種子)를 가지고 coleoptile straight growth test를 해 본 결과(結果) Imidan 은 10 ppm 과 20 ppm에서 모두 control 보다 생장(生長)의 촉진효과(促進?果)를 보였으며 기중(其中) phthalamidic acid 10 ppm 이 가장 좋은 성적(成績)을 보였다. 이것으로 보아 Imidan 자체(自體)는 생장(生長) 억제(抑制)의 효과(?果)를f 보이나 이것이 일단(一但) 생체내(生體內)에서 가수분해(加水分解)를 비롯한 각종(各種) 대사작용(代謝作用)을 받으면 그 대사산물(代謝産物)이 식물생장(植物生長)을 촉진(促進)하는 효과(?果)를 보이는 것 같다. (Table 1, Fig. 1 참조(參照)) (3) xylene을 용매(溶媒)로 하여 Imidan 유제(乳劑)를 만들고 이것을 희석(稀釋)하여 20 ppm, 100 ppm 및 200 ppm 의 각(各) 농도(濃度) 유화액(乳化液)을 조제(調製)한 후 이것을 배지(培地)로 하여 수도종자(水稻種子)를 발아(發芽)시킨 후 12 일(日)에 shoot와 root의 길이를 측정(測定)하였다. 이의 결과(結果)를 보면 root는 Imidan 20 ppm에서, shoot 는 Imidan 100 ppm에서 모두 xylene만의 유제구(乳劑區)인 control 보다 좋은 효과(?果)를 보였으며 여기에서 흥미(興味)있는 것은 용매(溶媒)로 사용(使用)된 xylene은 수도종자(水稻種子) 뿌리의 발육(發育)에 심(甚)한 억제효과(抑制效果)를 보이는 것 같다. (Table 2, Table 5 참조(參照)) (4) 벼를 pot에 심고 2회(回)에 걸쳐 control, Imidan, N-hydroxy methyl phthalimide, anthranilic acid 및 phthalimide의 10, 25, 50, 100 ppm 농도(濃度)의 각(各) 유제(乳劑)를 살포하고 일정기간후(一定期間後) 생육상(生育相)을 조사(調査)하였더니 Imidan 구(區)와 N-hydroxy methyl phthalimide 구(區)가 control 보다 좋은 성적(成績)을 보였다. (5) Imidan 250 ppm 유제(乳劑)를 수도엽면(水稻葉面)에 살포(撒布)하고 3 일(日), 5 일(日), 7 일(日) 및 14일후(日後)에 일정량(一定量)의 엽경(葉莖)을 채취(採取)하여 acetone으로 추출(抽出)k고 acetonitrile을 가지고 prechromatographic piriication 을 거쳐 paper chromatography에 의(依)하여 다음과 같은 대사물질(代謝物質)을 검출(檢出)하였다. Imidan $(Rf:\;0.97{\sim}0.98)$, N-hydroxy methyl phthalimide (Rf: 0.87), phthalimide $(Rf:\;0.86{\sim}0.87)$, phthalamidic acid $(Rf:\;0.13{\sim}0.14)$, phthalic acid $(Rf:\;0.02{\sim}0.03)$, benzoic acid $(Rf:\;0.42{\sim}0.43)$ 및 p-amino benzoic acid 또는 p-hydroxy benzoic acid $(Rf:\;0.08{\sim}0.09)$와 Rf=0.73, 0.59, 0.33, 0.23, 0.07의 미지물질(未知物質)을 검출(檢出)하였다. 또한 3일(日), 5일(日) 등(等) 초기(初期)에서는 미분해(未分解)의 Imidan과 최초(最初)의 가수분해(加水分解) 산물(産物)인 N-hydroxy methyl phthalimide등(等)이 비교적(比較的) 다량(多量)으로 검출(檢出)되었으나 7일(日), 14일(日) 등(等) 후기(後期)에는 생체내(生體內)에서 더 많은 분해(分解)를 받아 상기(上記) 이성분(二成分)은 양(量)이 감소(減少)되고 phthalic acid, phthalamidic acid benzoic acid 및 p-hydroxy benzoic acid 또는 p-amino benzoic acid등(等)의 양(量)이 증가(增加)되는 것을 볼 수있었으며 도체상(稻體上)에 살포(撒布)된 Imidan 은 체내(體內)에 흡수(吸收)되어 14일(日)이 경과(經過)되면 대부분(大部分)이 분해(分解)를 받는 것으로 보여진다. 이상(以上)의 결과(結果)로 보아 Imidan은 자체(自體)로서는 식물생장(植物生長) 촉진작용(促進作用)이 없으나 식물체내(植物體內)에서 여러 가지 대사작용(代謝作用)(enzyme의 작용(作用))을 맡아서 각종(各種) phthaloyl 영향(影響)을 주는 것으로 생각(生覺)된다.

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