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濒危藏药植物Maxim的遗传转化及通过高效液相色谱法揭示的生物碱生产概况

Genetic transformation of the endangered Tibetan medicinal plant Maxim and alkaloid production profiling revealed by HPLC.

作者信息

Lei Tianxiang, Wang Huan, Li Songling, Shen Jianwei, Chen Shilong, Cai Xiaojian, Zhou Dangwei

机构信息

1Key Laboratory of Adaptation and Evolution of Plateau Biota (AEPB), Northwest Institute of Plateau Biology, Chinese Academy of Sciences, Xining, 810008 Qinghai People's Republic of China.

4University of Chinese Academy of Sciences, Beijing, 100093 People's Republic of China.

出版信息

3 Biotech. 2018 Mar;8(3):179. doi: 10.1007/s13205-018-1203-5. Epub 2018 Mar 13.

Abstract

To achieve a high yield of tropane alkaloids (TA) and exploit the alpine plant sustainably, an optimized protocol for induction and establishment of hairy roots culture of Maxim was developed through selection of appropriate strain and the explant type. The hypocotyl is more readily facile to induce the HR than the cotyledon is when infected with the three different agrobacterium strains. MUS440 has an efficiency (of up to 20%), whereas the ATCC10060 (A4) can induce HR on both types of explants with the highest frequency (33.33%), root length (21.17 ± 2.84 cm), and root number (10.83 ± 1.43) per explant than the other strains. The highest HR production resulted from using hypocotyl as explants. Independent transformed HR was able to grow vigorously and to propagate on a no-hormone 1/2MS liquid medium. The presence of pRi B gene in transformation of HR was confirmed by PCR amplification. In the liquid medium, the HR growth curve appeared to be "S" shaped, and ADB had increased to 4.633 g/l. Moreover, HPLC analysis showed that HR lines have an extraordinary ability to produce atropine (229.88 mg/100 g), anisodine (4.09 mg/100 g), anisodamine (12.85 mg/100 g), and scopolamine (10.69 mg/100 g), which were all more significant than the control roots. In conclusion, our study optimized the culture condition and established a feasible genetics reactor for green exploration and biological study in the alpine region.

摘要

为了实现高产量的托烷生物碱(TA)并可持续地开发高山植物,通过选择合适的菌株和外植体类型,开发了一种优化的方法来诱导和建立马尿泡毛状根培养体系。当用三种不同的农杆菌菌株感染时,下胚轴比子叶更容易诱导出毛状根。MUS440的诱导效率(高达20%),而ATCC10060(A4)在两种外植体上诱导毛状根的频率最高(33.33%),每外植体的根长(21.17±2.84厘米)和根数(10.83±1.43)均高于其他菌株。使用下胚轴作为外植体时,毛状根的产量最高。独立转化的毛状根能够在无激素的1/2MS液体培养基上旺盛生长并增殖。通过PCR扩增证实了毛状根转化中pRi B基因的存在。在液体培养基中,毛状根的生长曲线呈“S”形,生物量干重增加到4.633克/升。此外,高效液相色谱分析表明,毛状根系具有非凡的能力来产生阿托品(229.88毫克/100克)、樟柳碱(4.09毫克/100克)、山莨菪碱(12.85毫克/100克)和东莨菪碱(10.69毫克/100克),这些均比对照根更为显著。总之,我们的研究优化了培养条件,并建立了一个可行的遗传反应器,用于高山地区的绿色开发和生物学研究。

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