| Literature DB >> 29254631 |
Chang-Hong Ding1, Qian-Bo Wang2, Shenglei Guo1, Zhen-Yue Wang3.
Abstract
Aspergillus sp., Fusarium sp., and Ramularia sp. were endophytic fungi isolated from Rumex gmelini Turcz (RGT), all of these three strains could produce some similar bioactive secondary metabolites of their host. However the ability to produce active components degraded significantly after cultured these fungi alone for a long time, and were difficult to recover. In order to obtain more bioactive secondary metabolites, the co-culture of tissue culture seedlings of RGT and its endophytic fungi were established respectively, and RGT seedling was selected as producer. Among these fungi, Aspergillus sp. showed the most significant enhancement on bioactive components accumulation in RGT seedlings. When inoculated Aspergillus sp. spores into media of RGT seedlings that had taken root for 20d, and made spore concentration in co-culture medium was 1×104mL-1, after co-cultured for 12d, the yield of chrysophaein, resveratrol, chrysophanol, emodin and physcion were 3.52-, 3.70-, 3.60-, 4.25-, 3.85-fold of the control group. The extreme value of musizin yield was 0.289mg, which was not detected in the control groups. The results indicated that co-culture with endophytic fungi could significantly enhance bioactive secondary metabolites production of RGT seedlings.Entities:
Keywords: Aspergillus sp.; Bioactive secondary metabolites; Endophytic fungi; Rumex gmelini Turcz (RGT); Seedlings
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Year: 2017 PMID: 29254631 PMCID: PMC5913822 DOI: 10.1016/j.bjm.2017.04.013
Source DB: PubMed Journal: Braz J Microbiol ISSN: 1517-8382 Impact factor: 2.476
Fig. 1Growth state of RGT tissue culture seedlings. C: control; A: RGT seedlings co-culture with Aspergillus sp.; F: RGT seedlings co-culture with Fusarium sp.; R: RGT seedlings co-culture with Ramularia sp.
Fig. 2Chromatogram of roots and rhizomes of RGT seedlings. 1: Polydatin; 2: Resveratrol; 3: Chrysophaein; 4: Musizin; 5: Emodin; 6: Chrysophanol; 7: Physcion.
Fig. 3Effect of co-culture on the yield of bioactive secondary metabolites. Different letters indicated significant differences among the treatments at p = 0.05 level. C: control; A: RGT seedlings co-culture with Aspergillus sp.; F: RGT seedlings co-culture with Fusarium sp.; R: RGT seedlings co-culture with Ramularia sp.
Fig. 4Optimization of co-culture conditions of RGT seedlings and Aspergillus sp. Different letters indicated significant differences among the treatments at p = 0.05 level. C: control; 1: co-culture when RGT seedlings had taken root for 10 d; 2: co-culture when RGT seedlings had taken root for 15 d; 3: co-culture when RGT seedlings had taken root for 20 d; 4: co-culture when RGT seedlings had taken root for 25 d; L: final concentrations of Aspergillus sp. spores in media was 1 × 103 mL–1; M: final concentrations of Aspergillus sp. spores in media was 1 × 104 mL–1; H: final concentrations of Aspergillus sp. spores in media was 1 × 105 mL−1.