2013
DOI: 10.6023/cjoc201307012
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Synthesis of Unnatural Small Molecules by Plant Specific Polyketide Synthases

Abstract: Plant polyketide synthases (PKSs) catalyze iterative decarboxylative condensations of malonyl units (Claisen-type C-C bond formation) with a CoA-linked starter molecule to produce linear chain polyketide intermediates. By Claisen, aldol cyclization, or lactonization, and aromatization, the linear chain polyketide intermediates produce varied unnatural small molecules. In this review, the functions of the known plant PKSs are summarized, and the catalytic mechanisms and applications of plant PKSs in the synthes… Show more

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Cited by 4 publications
(4 citation statements)
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“…黄酮是一类具有 C 6 -C 3 -C 6 骨架的酚性化合物, 具有 抗癌、抗炎、抗菌、抗病毒、抗血栓、抗骨质疏松和抗 动脉粥样硬化等多种生物活性 [21] . (Scheme 1) [16,22,23] . 研究证明 CHS 在体外具有非常广泛 的底物选择性, 不仅可以接受 4-香豆酰辅酶 A 为底物, 还可以接受苯甲酰辅酶 A、长链脂肪酰辅酶 A 等为底 物 [16] , 生成结构多样的"非天然的天然产物", 这种特 [24] .…”
Section: 最 近 国 内 学 者 利 用 组 合 合 成 策 略 在 抗 霉 素 (Antimycin)、 苯二酚内酯(Bunclassified
“…黄酮是一类具有 C 6 -C 3 -C 6 骨架的酚性化合物, 具有 抗癌、抗炎、抗菌、抗病毒、抗血栓、抗骨质疏松和抗 动脉粥样硬化等多种生物活性 [21] . (Scheme 1) [16,22,23] . 研究证明 CHS 在体外具有非常广泛 的底物选择性, 不仅可以接受 4-香豆酰辅酶 A 为底物, 还可以接受苯甲酰辅酶 A、长链脂肪酰辅酶 A 等为底 物 [16] , 生成结构多样的"非天然的天然产物", 这种特 [24] .…”
Section: 最 近 国 内 学 者 利 用 组 合 合 成 策 略 在 抗 霉 素 (Antimycin)、 苯二酚内酯(Bunclassified
“…Derivatives of acridine are utilised to treat hypertension, cancer, cardiovascular, Alzheimer's, Parkinson's diseases, and few of them are used in the preparation of lasers and photosensitizers [12–18] . Literature reports showed several strategies for the synthesis of acridine derivatives with different catalytic systems [19–48] . Some of them include Cu(II) Schiff base, [22] (Zn(OAc) 2 ⋅ 7H 2 O), [23] (−SiO 2 ), [24] silica bonded sulfonic acid, [25] methane sulfonic acid, [26,27] In(OTf), [28] (Fe 3 O 4 nanoparticles), [29] (PdRuNi@GOnano particles), [30] ([2‐MPyH]OTf), [31] ionic liquids, [32,33] (Amberlyst‐15), [34,35] β ‐cyclodextrin monosulphonic acid, [36] (P 2 O 5 ), [37] [B(C 6 F 5 ) 3 ], [38] L‐proline [39] and other methods [40–48] .…”
Section: Introductionmentioning
confidence: 99%
“…Literature reports showed several strategies for the synthesis of acridine derivatives with different catalytic systems [19–48] . Some of them include Cu(II) Schiff base, [22] (Zn(OAc) 2 ⋅ 7H 2 O), [23] (−SiO 2 ), [24] silica bonded sulfonic acid, [25] methane sulfonic acid, [26,27] In(OTf), [28] (Fe 3 O 4 nanoparticles), [29] (PdRuNi@GOnano particles), [30] ([2‐MPyH]OTf), [31] ionic liquids, [32,33] (Amberlyst‐15), [34,35] β ‐cyclodextrin monosulphonic acid, [36] (P 2 O 5 ), [37] [B(C 6 F 5 ) 3 ], [38] L‐proline [39] and other methods [40–48] . Many of the above methods suffer from lengthy reaction times, lower yields and cumbersome reaction conditions, which necessitated searching for eco‐friendly synthetic strategies.…”
Section: Introductionmentioning
confidence: 99%
“…Their utility in the pharmaceutical industry has also been reported [8]. A number of methods have been developed for the synthesis of acridine compounds containing 1,4-dihydropyridines, from dimedone, aldehyde and different anilines or ammonium acetate via traditional heating in organic solvents [9], in water catalyzed by TEBAC [10], under microwave irradiation [11], and using ionic liquids are emerging as effective solvents for green processes. In recent years L-Proline has drawn much interest in different organic reactions due to its experimental simpilicity in water and organic solvents, L-Proline has shown considerable catalytic efficiency in different transformations such as enamine based direct catalytic asymmetric aldol condensation [12], a-amination reaction [13],…”
Section: Introductionmentioning
confidence: 99%