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Sesquiterpenoids Bioconversion Analysis by Wood Rot Fungi

  • Lee, Su-Yeon;Ryu, Sun-Hwa;Choi, In-Gyu;Kim, Myungkil
    • 한국균학회소식:학술대회논문집
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    • 한국균학회 2016년도 춘계학술대회 및 임시총회
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    • pp.19-20
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    • 2016
  • Sesquiterpenoids are defined as $C_{15}$ compounds derived from farnesyl pyrophosphate (FPP), and their complex structures are found in the tissue of many diverse plants (Degenhardt et al. 2009). FPP's long chain length and additional double bond enables its conversion to a huge range of mono-, di-, and tri-cyclic structures. A number of cyclic sesquiterpenes with alcohol, aldehyde, and ketone derivatives have key biological and medicinal properties (Fraga 1999). Fungi, such as the wood-rotting Polyporus brumalis, are excellent sources of pharmaceutically interesting natural products such as sesquiterpenoids. In this study, we investigated the biosynthesis of P. brumalis sesquiterpenoids on modified medium. Fungal suspensions of 11 white rot species were inoculated in modified medium containing $C_6H_{12}O_6$, $C_4H_{12}N_2O_6$, $KH_2PO_4$, $MgSO_4$, and $CaCl_2$ for 20 days. Cultivation was stopped by solvent extraction via separation of the mycelium. The metabolites were identified as follows: propionic acid (1), mevalonic acid lactone (2), ${\beta}$-eudesmane (3), and ${\beta}$-eudesmol (4), respectively (Figure 1). The main peaks of ${\beta}$-eudesmane and ${\beta}$-eudesmol, which were indicative of sesquiterpene structures, were consistently detected for 5, 7, 12, and 15 days These results demonstrated the existence of terpene metabolism in the mycelium of P. brumalis. Polyporus spp. are known to generate flavor components such as methyl 2,4-dihydroxy-3,6-dimethyl benzoate; 2-hydroxy-4-methoxy-6-methyl benzoic acid; 3-hydroxy-5-methyl phenol; and 3-methoxy-2,5-dimethyl phenol in submerged cultures (Hoffmann and Esser 1978). Drimanes of sesquiterpenes were reported as metabolites from P. arcularius and shown to exhibit antimicrobial activity against Gram-positive bacteria such as Staphylococcus aureus (Fleck et al. 1996). The main metabolites of P. brumalis, ${\beta}$-Eudesmol and ${\beta}$-eudesmane, were categorized as eudesmane-type sesquiterpene structures. The eudesmane skeleton could be biosynthesized from FPP-derived IPP, and approximately 1,000 structures have been identified in plants as essential oils. The biosynthesis of eudesmol from P. brumalis may thus be an important tool for the production of useful natural compounds as presumed from its identified potent bioactivity in plants. Essential oils comprising eudesmane-type sesquiterpenoids have been previously and extensively researched (Wu et al. 2006). ${\beta}$-Eudesmol is a well-known and important eudesmane alcohol with an anticholinergic effect in the vascular endothelium (Tsuneki et al. 2005). Additionally, recent studies demonstrated that ${\beta}$-eudesmol acts as a channel blocker for nicotinic acetylcholine receptors at the neuromuscular junction, and it can inhibit angiogenesis in vitro and in vivo by blocking the mitogen-activated protein kinase (MAPK) signaling pathway (Seo et al. 2011). Variation of nutrients was conducted to determine an optimum condition for the biosynthesis of sesquiterpenes by P. brumalis. Genes encoding terpene synthases, which are crucial to the terpene synthesis pathway, generally respond to environmental factors such as pH, temperature, and available nutrients (Hoffmeister and Keller 2007, Yu and Keller 2005). Calvo et al. described the effect of major nutrients, carbon and nitrogen, on the synthesis of secondary metabolites (Calvo et al. 2002). P. brumalis did not prefer to synthesize sesquiterpenes under all growth conditions. Results of differences in metabolites observed in P. brumalis grown in PDB and modified medium highlighted the potential effect inorganic sources such as $C_4H_{12}N_2O_6$, $KH_2PO_4$, $MgSO_4$, and $CaCl_2$ on sesquiterpene synthesis. ${\beta}$-eudesmol was apparent during cultivation except for when P. brumalis was grown on $MgSO_4$-free medium. These results demonstrated that $MgSO_4$ can specifically control the biosynthesis of ${\beta}$-eudesmol. Magnesium has been reported as a cofactor that binds to sesquiterpene synthase (Agger et al. 2008). Specifically, the $Mg^{2+}$ ions bind to two conserved metal-binding motifs. These metal ions complex to the substrate pyrophosphate, thereby promoting the ionization of the leaving groups of FPP and resulting in the generation of a highly reactive allylic cation. Effect of magnesium source on the sesquiterpene biosynthesis was also identified via analysis of the concentration of total carbohydrates. Our current study offered further insight that fungal sesquiterpene biosynthesis can be controlled by nutrients. To profile the metabolites of P. brumalis, the cultures were extracted based on the growth curve. Despite metabolites produced during mycelia growth, there was difficulty in detecting significant changes in metabolite production, especially those at low concentrations. These compounds may be of interest in understanding their synthetic mechanisms in P. brumalis. The synthesis of terpene compounds began during the growth phase at day 9. Sesquiterpene synthesis occurred after growth was complete. At day 9, drimenol, farnesol, and mevalonic lactone (or mevalonic acid lactone) were identified. Mevalonic acid lactone is the precursor of the mevalonic pathway, and particularly, it is a precursor for a number of biologically important lipids, including cholesterol hormones (Buckley et al. 2002). Farnesol is the precursor of sesquiterpenoids. Drimenol compounds, bi-cyclic-sesquiterpene alcohols, can be synthesized from trans-trans farnesol via cyclization and rearrangement (Polovinka et al. 1994). They have also been identified in the basidiomycota Lentinus lepideus as secondary metabolites. After 12 days in the growth phase, ${\beta}$-elemene caryophyllene, ${\delta}$-cadiene, and eudesmane were detected with ${\beta}$-eudesmol. The data showed the synthesis of sesquiterpene hydrocarbons with bi-cyclic structures. These compounds can be synthesized from FPP by cyclization. Cyclic terpenoids are synthesized through the formation of a carbon skeleton from linear precursors by terpene cyclase, which is followed by chemical modification by oxidation, reduction, methylation, etc. Sesquiterpene cyclase is a key branch-point enzyme that catalyzes the complex intermolecular cyclization of the linear prenyl diphosphate into cyclic hydrocarbons (Toyomasu et al. 2007). After 20 days in stationary phase, the oxygenated structures eudesmol, elemol, and caryophyllene oxide were detected. Thus, after growth, sesquiterpenes were identified. Per these results, we showed that terpene metabolism in wood-rotting fungi occurs in the stationary phase. We also showed that such metabolism can be controlled by magnesium supplementation in the growth medium. In conclusion, we identified P. brumalis as a wood-rotting fungus that can produce sesquiterpenes. To mechanistically understand eudesmane-type sesquiterpene biosynthesis in P. brumalis, further research into the genes regulating the dynamics of such biosynthesis is warranted.

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산화질소 공여물과 산화질소 합성효소 길항제가 백서 폐미세혈관 내피세포 산화제 손상에 미치는 영향 (The Effect of Nitric Oxide Donor or Nitric Oxide Synthase Inhibitor on Oxidant Injury to Cultured Rat Lung Microvascular Endothelial Cells)

  • 장준;;김세규;김성규;이원영;강경호;유세화;채양석
    • Tuberculosis and Respiratory Diseases
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    • 제45권6호
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    • pp.1265-1276
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    • 1998
  • 연구배경 : NO는 생체내에서 생성되는 유리 반응기로서 혈관 긴장도외 완화, 혈소판 응집 저지, 혈관 내피세포에 대한 백혈구 유착 방해, 감염에 대한 숙주 방어 등에서 중요한 역할을 한다. NO는 전이 금속(transition metal), 산소, 기타 반응기 등과 쉽게 반응하므로 여러 생체내 반응에 관여하여 산화제 손상을 촉진시키거나 감소시킬 가능성이 제기되었다. 급성 폐손상 및 급성 호흡곤란 증후군에서는 폐혈관 내피세포 및 호중구의 상호작용 및 산화제 손상이 매우 중요한 병인으로 알려져 있으며, NO를 급성 호흡곤란 증후군에서 흡입하여 치료하는 것은 산화제에 의한 혈관 내피세포 손상에서 외부로부터 NO를 공급하는 상황이다. 본 연구에서는 외인성 NO의 공여나 내인성 NO 억제가 산화제에 의한 폐미세혈관 내피세포의 손상을 악화시키거나 완화시킬 수 있는지를 관찰하였다. 방 법 : 산화제에 의한 세포손상은 백서 폐미세혈관 내피세포에 과산화수소를 생성하는 glucose oxidase(GO)를 투여하여 야기시키고 이를 $^{51}Cr$ 방출 측정으로 평가하였다. 산화제에 의한 폐혈관 내피세포의 손상에 외인성 NO가 미치는 영향은 NO 공여물인 SNAP 혹은 SNP를 산화제와 동시에 투여하여 평가하였다. 산화제에 의한 폐혈관 내피세포의 손상에 내인성 NO 억제가 미치는 영향은 NOS 길항제인 L-NMMA을 추가로 투여하여 평가하였다. INF-$\gamma$, TNF-$\alpha$ LPS 등으로 내인성 NO 생성을 자극한 후 L-NMMA의 효과도 관찰하였으며, NO 공여물이나 내피세포로 부터의 NO생성은 nitrite 측정으로 평가하였다. 결 과 : 백서 폐 미세혈관 내피세포에서 $^{51}Cr$ 방출이 GO 5mU/ml에서 $8.7{\pm}0.5%$, 10 mU/ml에서 $14.4{\pm}2.9%$, 15 mU/ml에서 $32.3{\pm}2.9%$, 20 mU/ml에서 $55.5{\pm}0.3%$. 30 mU/ml에서 $67.8{\pm}0.9%$로 GO 15 mU/ml 이상에서 대조군의 $9.6{\pm}0.7%$에 비하여 유의하게 증가하였으며 (P<0.05; n=6). 이에 0.5mM L-NMMA를 추가하여도 영향이 없었다. INF-$\gamma$ 500 U/ml, TNF-$\alpha$ 150 U/ml, LPS 1 ${\mu}g/ml$을 배양액에 첨가하여 24시간 경과시 배양액 중 nitrite 농도가 $3.9{\pm}0.3\;{\mu}M$로 증가하였으며, 이에 L-NMMA 0.5 mM을 첨가하면 $0.2{\pm}0.l\;{\mu}M$로 유의하게 억제되었다(p<0.05 ; n=6). INF-$\gamma$, TNF-$\alpha$ LPS 자극후 GO에 의한 $^{51}Cr$ 방출에 L-NMMA는 영향을 주지 않았다. GO 20 mU/ml에 의한 $^{51}Cr$ 방출이 SNAP 100 ${\mu}M$의 추가로 대조군 수준으로 현저히 억제되었으나, SNP, potassium ferrocyanide, potassium ferricyanide 등의 추가는 영향이 없었다. Hanks' balanced salt solution(HBSS) 중의 SNAP 100 ${\mu}M$로 부터 4 시간 동안 nitrite가 $23.0{\pm}1.0\;{\mu}M$ 농도로 축적되었으나, SNP는 1 mM에서도 nitrite가 검출되지 않았다. SNAP은 HBSS 중의 GO가 과산화수소를 시간 경과에 따라 생성하는데 영향이 없었다. 결 론 : 결론적으로 폐미세혈관 내피세포에서 GO에 의하여 생성되는 과산화수소로 산화제 손상을 야기하였으며, NO 공여물인 SNAP으로부터 제공된 외연성 NO가 산화제 손상을 방지하고 이 보호효과는 NO 방출 능력에 의할 가능성이 시사되었다. 따라서 생체내 환경에 따라 외인성 NO가 내피세포에 대한 산화제 손상에 보호 효과가 있을 수 있다고 추정된다.

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