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1.
以辛弗林的吸附量、解吸率和所得粉末中辛弗林的含量为指标,从选用的6种大孔吸附树脂中筛选出较好的AB-8树脂。通过静态和动态实验,对辛弗林在AB-8树脂上吸附和解吸的条件进行优化,并考察其吸附等温线、吸附和解吸性能。结果表明,在环境温度约25℃下,使用AB-8树脂纯化辛弗林的较优工艺参数为:上柱液pH值7~8,流速2BV/h,溶液处理量3BV,洗脱剂为20%乙醇,洗脱速度1BV/h,收集洗脱液3BV。按此工艺条件,辛弗林的解吸率为87.2%,3BV洗脱液浓缩干燥后,所得粉末中辛弗林含量为56.6%。  相似文献   

2.
大孔树脂分离纯化楮果总黄酮优化工艺研究   总被引:1,自引:0,他引:1  
筛选适合分离纯化楮果总黄酮的大孔树脂并确定最优工艺条件。以静态吸附率和解吸率为指标对8种大孔树脂进行筛选,确定D101树脂的分离纯化效果最佳。通过动态吸附实验考察上样流速、上样溶液pH值、上样溶液浓度、乙醇浓度、洗脱流速、洗脱剂用量等工艺条件对分离纯化效果的影响,确定最优工艺条件如下:上样流速为2BV/h,pH值为6,上样溶液浓度为0.05mg/mL,80%乙醇作洗脱剂,洗脱流速为5BV/h,洗脱剂用量为7.5BV。采用最优工艺条件,楮果总黄酮含量提高至22.26%,产品精制倍数为4.79,表明D101树脂能有效纯化楮果总黄酮。  相似文献   

3.
考察了HPD-826、HPD-417、ADS-17、HPD-722、HPD-450、AB-8、HPD-600、D-101,共8种大孔树脂对藏药白花龙胆花总黄酮的吸附和解吸性能,通过静态吸附量和解吸附率及静态吸附曲线的绘制,筛选出AB-8树脂的效果最佳;以AB-8树脂为目标,进行了动态吸附实验,考察了上柱液浓度、pH值、上柱液流速、乙醇浓度、解吸剂流速、解吸体积等对AB-8树脂吸附和解吸效果的影响,确定出AB-8树脂动态吸附白花龙胆花总黄酮的最佳条件:上柱液浓度为6.5mg/mL,pH为3.79,上柱流速4BV/h;最佳洗脱条件:用50%乙醇进行洗脱,解吸流速为3BV/h,解吸体积4BV。在此条件下,白花龙胆花总黄酮纯度由原来的22.10%,变为65.75%,产品精制倍数为65.75%/22.10%=2.97,表明AB-8树脂可用于白花龙胆花总黄酮的分离纯化。  相似文献   

4.
大孔吸附树脂分离纯化香椿叶总黄酮的研究   总被引:5,自引:3,他引:2  
比较了AB-8、S-8、X-5、NKA-9、D-3520、NKA、聚酰胺、硅胶8种吸附剂对香椿叶黄酮类化合物的吸附及脱附性能.在静态吸附试验的基础上,筛选出效果较好的X-5树脂进行动态试验研究.结果表明,X-5树脂在约15℃下对香椿叶总黄酮动态吸附-脱附较优的工艺参数为:上柱液pH值5~6,上柱速度3BV/h,溶液处理量6BV/次;脱附剂为70%乙醇,脱附剂的流速3BV/h,脱附剂用量6BV/次.此工艺条件能够分离纯化香椿叶黄酮类化合物,树脂使用1次时,总黄酮的收率达95.5%,总黄酮的纯度由7.2%提高到43.5%;树脂重复使用5次时,总黄酮的收率仍达80%以上,总黄酮的纯度可由7.2%提高到20%以上.  相似文献   

5.
大孔树脂对油茶叶黄酮的吸附分离特性研究   总被引:1,自引:0,他引:1  
选择6种大孔吸附树脂,比较其对油茶叶黄酮(FCOA)的吸附量和解吸率,筛选出较优的油茶叶黄酮吸附剂,并对其静态吸附动力学曲线和动态吸附性能进行了考察。实验结果表明,D101树脂适合于FCOA的吸附分离,其吸附机理符合Langmuir单分子层吸附。D101树脂吸附分离FCOA适宜的工艺参数为:上样液浓度为1.2mg/mL左右,pH值3.29,上样流速2BV/h,溶液处理量为19BV;洗脱剂为70%乙醇,洗脱流速2BV/h,洗脱剂用量约4BV。  相似文献   

6.
比较了D-101、D-160、AB-8、NKA-9和聚酰胺等5种吸附树脂对枇杷花总黄酮的吸附及解吸附性能。在静态吸附和动态吸附实验基础上,筛选出效果较好的AB-8树脂进行动态吸附参数的研究。考察了样品液pH值、样品液浓度、洗脱液浓度、上样速度、洗脱速度等对AB-8树脂吸附和解吸效果的影响,确定了AB-8树脂动态吸附枇杷花总黄酮的最佳条件。获得的最佳纯化条件如下,样品液pH值为5.5,样品液浓度为12mg/mL,洗脱液为30%的乙醇水溶液,上样速度为2BV/h,洗脱速度为1BV/h。纯化后样品总黄酮含量达86.7%,比纯化前总黄酮含量高5~6倍。实验结果表明,AB-8树脂可用于分离纯化枇杷花总黄酮。  相似文献   

7.
大孔吸附树脂分离纯化仙人掌中总黄酮的研究   总被引:3,自引:0,他引:3  
考察了4种大孔吸附树脂对仙人掌总黄酮的吸附分离性能,筛选出效果最佳的树脂为AB-8。以总黄酮的吸附量、总黄酮含量和回收率为考察指标,采用紫外分光光度法测定总黄酮。确定了AB-8树脂吸附分离仙人掌总黄酮的工艺条件:上样浓度为15mg/mL,仙人掌总黄酮最大吸附量为18.6mg/mL,吸附流速为5mL/min,洗脱剂为70%乙醇,洗脱剂用量为6倍柱体积,树脂可重复使用3次。经AB-8树脂分离纯化后,总黄酮含量从29%提高到76%,总黄酮回收率为86%。实验结果表明,AB-8树脂可用于仙人掌总黄酮的分离纯化。  相似文献   

8.
考察了S-8、AB-8、NKA-II、NKA-9 4种大孔吸附树脂对杜仲内生真菌拟茎点霉属XP-8发酵液中松脂醇二葡萄糖苷(Pinoresinol Diglucoside,PDG)的吸附和脱附性能,筛选出S-8树脂的吸附和脱附性能最好;探讨了S-8树脂在静态吸附条件下对发酵液中PDG的吸附平衡和吸附动力学,考察了温度和pH值对吸附效果的影响;进行了动态吸附实验,确定了最佳吸附和洗脱条件。结果表明,在静态吸附条件下,Langmuir方程可很好地描述PDG在S-8树脂上的吸附平衡,液膜扩散和颗粒内扩散分别是控制吸附初期和后期吸附速率的主要步骤;动态吸附的最佳条件是,上样浓度为0.195mg/mL、上样温度为20℃、pH 9、进样流速1BV/h,溶液处理量20BV;最佳动态洗脱条件是,洗脱液为30%的乙醇水溶液,洗脱液流速1BV/h,用量为6BV。整个动态吸附洗脱过程结束后的PDG得率为89.8%。  相似文献   

9.
吸附树脂分离纯化柚核中的柠檬苦素   总被引:2,自引:0,他引:2  
比较了大孔吸附树脂AB-8、HZ-816、HZ-818、HZ-803、HZ-806、D101对柠檬苦素的吸附性能,筛选出最佳树脂HZ-816进行柠檬苦素的分离纯化实验。实验表明,HZ-816能有效的吸附和解析柚核中的柠檬苦素,并确定了最佳工艺参数。柠檬苦素样品溶液经HZ-816树脂吸附与脱附后回收率为60%,含量由2.1%提高到47.1%,提高了22倍。  相似文献   

10.
不同树脂对瓜果腐霉代谢产物中除草活性成分的吸附分析   总被引:1,自引:0,他引:1  
利用HPD400、HPD500、HPD600、HPD700、HPD850、ADS-17、D101、DM130大孔吸附树脂对瓜果腐霉培养滤液中除草活性成分的吸附情况进行了研究,通过对树脂吸附后的流出液和洗脱液的浓缩物进行HPLC检测分析,确定了其除草活性成分。实验发现,在所选择的8种树脂中以HPD500、HPD850、HPD600、ADS-17对除草活性成分的吸附能力最强,其中以HPD500和HPD600树脂的10%的乙醇洗脱液中除草活性成分含量最高。综合结果表明,以HPD500树脂作为吸附瓜果腐霉培养滤液中除草活性成分的适宜树脂。研究发现,HPD500树脂对除草活性成分吸附和解吸附的最佳条件是:吸附最适温度为20℃,树脂吸附饱和度为33.75mL/g,较适宜吸附流速为2BV/h,较适宜脱附流速为1BV/h,洗脱剂浓度为10%乙醇,洗脱剂用量为2.5BV。  相似文献   

11.
采用静态吸附法考察了D101、AB-8、NKA-2、NKA-9、HPD 100、HPD600等6种大孔吸附树脂对(R,S)-告依春的吸附及解吸性能,筛选出效果最佳的AB-8树脂,并对其进行动态考察.最佳富集条件为:上样液pH 6,生药质量-体积浓度为0.200g/mL,解吸液为2BV量70%乙醇,在优化条件下(R,S)-告依春在浸膏中含量可从0.76%提高到12.48%.结果表明,AB-8型大孔吸附树脂可用来从板蓝根水提取液中富集(R,S)-告依春.  相似文献   

12.
In the present study, the performance and separation characteristics of eight macroporous resins for the separation of luteolin (LU) from pigeonpea leaves extracts have been evaluated. The adsorption and desorption properties of LU on macroporous resins including AB-8, NKA-9, NKA-2, D3520, D101, H1020, H103 and AL-2 have been compared. AL-2 resin offers the best adsorption and desorption capacity for LU than other resins based on the research results, and its adsorption data at 25 degrees C fit best to the Freundlich isotherm. Dynamic adsorption and desorption experiments have been carried out with the column packed by AL-2 resin to optimize the separation process of LU from pigeonpea leaves extracts. The optimum parameters for adsorption were sample solution LU concentration 65.5 microg/ml, pH 5, processing volume 3 BV, flow rate 1.5BV/h, temperature 25 degrees C; for desorption were elution solvent ethanol-water (50:50, v/v) 2 BV and followed by ethanol-water (60:40, v/v) 2 BV, and flow rate 1BV/h. After treated with AL-2 resin, the LU content in the product was increased 19.8-fold from 0.129% to 2.55%, with a recovery yield of 78.54%. The results showed that AL-2 resin revealed a good ability to separate LU. Therefore, we conclude that results in this study may provide scientific references for the large-scale LU production from pigeonpea or other plants extracts.  相似文献   

13.
The separation and enrichment of 10-deacetylbaccatin III (10-DAB III) and 7-xylosyl-10-deacetyl paclitaxel were studied on seven macroporous resins with special structures. The performance of 7-xylosyl-10-deacetyl paclitaxel and 10-DAB III on macroporous resins including AB-8, ADS-17, ADS-21, ADS-31, ADS-8, H1020 and NKA-II was compared according to their adsorption and desorption properties. AB-8 provided a much higher adsorption capacity for 7-xylosyl-10-deacetyl paclitaxel and 10-DAB III than other resins, and its adsorption data fitted well to the Langmuir and Freundlich isotherm. According to the adsorption and desorption capacities and the adsorption isotherms, AB-8 demonstrated a remarkable capability for the preparative separation of 7-xylosyl-10-deacetyl paclitaxel and 10-DAB III from the remainder extracts free of paclitaxel. In order to optimize parameters of separation, dynamic adsorption and desorption experiments were carried out on the columns packed with AB-8 resin. The optimal conditions were: the processing volume 15 BV; concentrations of 7-xylosyl-10-deacetyl paclitaxel and 10-DAB III in feed solution 0.0657 mg/mL and 0.1494 mg/mL; flow rate 1 mL/min; temperature 35 degrees C. The gradient elution program was as follows: 30% ethanol for 3 BV, then 80% of ethanol for 6 BV, flow rate 1 mL/min. After the AB-8 resin treatment, the contents of 7-xylosyl-10-deacetyl paclitaxel and 10-DAB III in the product had increased from 0.053% and 0.2% to 3.34% and 1.69%, which were 62.43-fold and 8.54-fold of those in the untreated extracts, respectively, and the recoveries of 7-xylosyl-10-deacetyl paclitaxel and 10-DAB III were 85.85% and 52.78%. The performance achieved good separation and higher recovery of 7-xylosyl-10-deacetyl paclitaxel and 10-DAB III from remainder extracts free of paclitaxel by using AB-8 resin. It is a fast and effective method for the separation and enrichment of 7-xylosyl-10-deacetyl paclitaxel and 10-DAB III.  相似文献   

14.
大孔树脂分离纯化丹酚酸的研究   总被引:2,自引:0,他引:2  
比较了D301R、D392、D380大孔阴离子交换树脂和X-5.AB-8、NKA-9、SP825大孔吸附树脂对丹参水溶性成分的吸附和解吸能力,筛选出效果较好的SP825进行分离纯化丹酚酸的研究.实验表明,大孔吸附树脂SP825能分离出纯度为95.32%的丹参素,在梯度洗脱条件下可得到以丹参素(水洗脱)和丹酚酸B(乙醇洗脱)为主的产品.在最佳吸附与解吸工艺参数下,丹参素、紫草酸、迷迭香酸、丹酚酸A和丹酚酸B的收率分别为:36.92%、80.39%、82.45%、43.07%和41.03%.  相似文献   

15.
In present study, the performance and separation characteristics of 21 macroporous resins for the enrichment and purification of deoxyschizandrin and γ-schizandrin, the two major lignans from Schisandra chinensis extracts, were evaluated. According to our results, HPD5000, which adsorbs by the molecular tiers model, was the best macroporous resin, offering higher adsorption and desorption capacities and higher adsorption speed for deoxyschizandrin and γ-schizandrin than other resins. Columns packed with HPD5000 resin were used to perform dynamic adsorption and desorption tests to optimize the technical parameters of the separation process. The results showed that the best adsorption time is 4 h, the rate of adsorption is 0.85 mL/min (4 BV/h) and the rate of desorption is 0.43 mL/min (2 BV/h). After elution with 90% ethanol, the purity of deoxy-schizandrin increased 12.62-fold from 0.37% to 4.67%, the purity of γ-schizandrin increased 15.8-fold from 0.65% to 10.27%, and the recovery rate was more than 80%.  相似文献   

16.
大孔吸附树脂分离纯化荔枝核黄酮类化合物的研究   总被引:6,自引:2,他引:6  
比较了D101、D3520、NKAII、AB-8、X-5、HPD-100、HPD-300、HPD-600等8种大孔吸附树脂对荔枝核中抗乙肝活性成分黄酮类化合物的吸附及解吸性能,筛选出效果较好的HPD-300树脂进行分离纯化实验研究。实验表明,HPD-300树脂能够有效地吸附和解吸荔枝核黄酮类化合物,并确定了最佳的吸附和解吸工艺参数。采用最佳的工艺条件分离纯化荔枝核黄酮类化合物,黄酮类化合物的含量由31%提高到82%。  相似文献   

17.
Jia G  Lu X 《Journal of chromatography. A》2008,1193(1-2):136-141
In present study, the performance and separation characteristics of five macroporous resins for the enrichment and purification of asiaticoside and madecassoside from Centella asiatica extracts have been evaluated. The adsorption and desorption properties of total triterpene saponins (80% purity) on macroporous resins including HPD100, HPD300, X-5, AB-8 and D101 have been compared. According to our results, HPD100 offered higher adsorption and desorption capacities and higher adsorption speed for asiaticoside and madecassoside than other resins. Column packed with HPD100 resin was used to perform dynamic adsorption and desorption tests to optimize the separation process of asiaticoside and madecassoside from C. asiatica extracts. After the treatment with gradient elution on HPD100 resin, the content of madecassoside in the product increased from 3.9 to 39.7%, and the recovery yield was 70.4%; for asiaticoside the content increased from 2.0 to 21.5%, and the recovery yield was 72.0%. The results showed that HPD100 resin revealed a good ability to separate madecassoside and asiaticoside, and the method can be referenced for the separation of other triterpene saponins from herbal raw materials.  相似文献   

18.
大孔吸附树脂分离纯化金银花中黄酮类物质的研究   总被引:3,自引:0,他引:3  
比较了AB-8、S-8、NKA-9和D-101 4种大孔吸附树脂对金银花提取液中黄酮类物质的吸附及解吸附性能.在静态吸附试验基础上,筛选出效果较好的D-101树脂进行动态试验研究,结果表明,D-101树脂在30℃下对金银花黄酮类物质的静态吸附-动态解吸较优的工艺参数为:上样液pH值2.46,解吸液为95%乙醇,解吸液的流速为3mL/min,pH值11,4.5BV解吸液即可完全洗脱被树脂吸附的黄酮类物质,其解吸率高达98.00%.在试验研究范围内,树脂吸附金银花黄酮是自发性放热过程,并且符合Langmuir方程,此外树脂对黄酮的吸附动力学可用Pseudo-second-order模型较好地拟合,其表观吸附速率常数为Kso℃=3.43×10-2g/(mg·min).  相似文献   

19.
An efficient separation process of flavonoid from Taxus wallichiana var. mairei remainder extracts free of taxoids was developed in this study. AB‐8 macroporous resin and polyamide resin offered the fine adsorption capacity, and its adsorption rate at 30°C fitted well to the Langmuir and Freundich isotherms. Resin dynamic adsorption and desorption experiments were conducted to optimize the separation process of total flavonoids from T. wallichiana var. mairei remainder extracts free of taxoids. The optimum parameters for adsorption by AB‐8 resin were as follows: (1) the concentration of flavonoids in a sample solution of 5.61 mg/mL with a processing volume of 2 bed volume (BV) (60 mL); (2) for desorption, ethanol–water (80:20, v/v), with 6 BV as an eluent at a flow rate of 2 BV/h. After a one‐run treatment with AB‐8 resin, the content of flavonoids was increased 5.10‐fold from 4.05 to 20.65%. The optimum parameters for adsorption by polyamide resin were as follows: processing volume of 2 BV (30 mL); for desorption, ethanol–water (70:30, v/v), with 8 BV as an eluent at a flow rate of 2 BV/h. After one‐run treatment with polyamide resin, the content of total flavonoids increased from 20.65 to 65.21%. The method will provide a potential approach for large‐scale separation and purification of flavonoid for its wide pharmaceutical use.  相似文献   

20.
大孔吸附树脂分离提取多杀菌素   总被引:2,自引:0,他引:2  
采用大孔吸附树脂法分离提取多杀菌素.从11种大孔吸附树脂中筛选出DM11进行了静态、动态吸附性能实验,并考察了不同吸附、解吸条件的影响.结果表明,DM11的静态吸附容量为25.63mg/g(wet resin),其吸附等温线符合Langmuir吸附等温式.采用丙酮做洗脱剂,洗脱率为97.5%,动态吸附最佳吸附pH为9.5,吸附流速为6BV/h,穿透吸附容量为21.2mg/ml(wet resin),洗脱流速1.5BV/h.  相似文献   

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