您好,欢迎访问仪器信息网
注册
安捷伦科技(中国)有限公司

关注

已关注

品牌合作伙伴
钻石23年 钻石

已认证

粉丝量 0

科学仪器行业领军企业科学仪器行业售后服务十佳企业

采购咨询:400-629-8889

售后咨询:400-820-3278

当前位置: 安捷伦 > 解决方案 > 分析到制备的方法转换 – 聚焦梯度实现UHPLC到制备的方法放大

分析到制备的方法转换 – 聚焦梯度实现UHPLC到制备的方法放大

2018/09/03 15:06

阅读:301

分享:
应用领域:
制药/生物制药
发布时间:
2018/09/03
检测样品:
其他
检测项目:
O-乙酰水杨酸,水杨酸
浏览次数:
301
下载次数:
参考标准:
暂无

方案摘要:

Synthesizing novel compounds or isolating natural products can be a laborious and time-consuming process. After analyzing the precious sample on an analytical UHPLC system, the crucial step is to transfer the method to a preparative system with a minimal risk of losing valuable work or collecting impure compounds. This Technical Overview describes a practical way to optimize the scale-up process for reversed-phase chromatography from an analytical UHPLC system to preparative LC systems using a focused gradient to increase the sample load on the preparative column to achieve optimum purity.

产品配置单:

分析仪器

Agilent 1260 Infinity II 制备型液相色谱

型号: 1260 Infinity II Preparative

产地: 德国

品牌: 安捷伦

面议

参考报价

联系电话

分析软件

OpenLAB 软件

型号: OpenLAB

产地: 美国

品牌: 安捷伦

面议

参考报价

联系电话

Agilent 1290 Infinity II Multisampler

型号: 1290 Infinity II Multisampler

产地: 德国

品牌: 安捷伦

面议

参考报价

联系电话

方案详情:

Abstract 

Synthesizing novel compounds or isolating natural products can be a laborious and time-consuming process. After analyzing the precious sample on an analytical UHPLC system, the crucial step is to transfer the method to a preparative system with a minimal risk of losing valuable work or collecting impure compounds. 

This Technical Overview describes a practical way to optimize the scale-up process for reversed-phase chromatography from an analytical UHPLC system to preparative LC systems using a focused gradient to increase the sample load on the preparative column to achieve optimum purity.

Introduction 

Generic gradients are suitable to cope with a large variety of sample types when there is no capacity or time to optimize the separation. Each gradient can be divided into four different steps. After the injection, an isocratic hold step can be applied to remove the injected solvent from the column and to improve resolution especially for polar compounds. The second step is a linear slope, which will be applied to separate effectively based on the chromatographic properties of the target compounds, followed by a purge phase. In the last step, the column is re-equilibrated at the initial solvent composition for the next sample analysis or purifi cation run. To improve resolution around the target compound, the linear slope has to be modifi ed. 

In preparative chromatography, most often the goal is to isolate, effi ciently, a large amount of one or a few target compounds out of a crude mixture. Ideally, the chromatographic resolution around the target peak and the column load are increased without signifi cantly increasing the separation runtime. From the crude sample, an optimized method can be generated with the goal to extend the resolution between the target peak (green peak, Figures 1 and 2) and its neighbor compounds. 

A basic approach to generate optimized preparative methods can be to divide the linear generic gradient method into time slices (described in the Technical Note 5991-3070EN1 ). This approach generates a set of preparative methods that can be used in any further sample purifi cation simply by identifying the time slice where the target peak elutes.

In this Technical Overview, an approach with focused gradients on target peak was used. This approach generates then a unique and dedicated method to a concerned target peak which has the advantage to increase the resolution better than the time slices method. 

All optimization steps occur on the analytical system. After obtaining the fi rst chromatographic information of the crude mixture by using a generic gradient, the resolution is optimized by fl attening the slope followed by a loading study to determine the maximum column load before scaling up to the preparative column dimensions.

Conclusion 

A scale-up from a 2.1-mm id column on a UHPLC system to a 1260 Infinity Preparative scale system equipped with a 21.2-mm id column was successfully developed. 

For all scale-up situations, a correct method transfer was required to keep the resolution constant. This ensured maximum purity and recovery from the precious sample. 

The steps in Table 3 summarize the process.

下载本篇解决方案:

资料文件名:
资料大小
下载
5991-2013EN.pdf
995KB
相关仪器

更多

OpenLAB 软件

型号:OpenLAB

面议

Agilent 1260 Infinity II 制备型液相色谱

型号:1260 Infinity II Preparative

面议

Agilent 1290 Infinity II Multisampler

型号:1290 Infinity II Multisampler

面议

8850 气相色谱系统

型号:8850

面议

相关方案

应用 QuEChERS 方法结合 Agilent 7000 系列三重四极杆气质联用仪测定甜菜中 的多农药残留

本文介绍了一种用于分析甜菜中 267 种农药的简便、高通量方法。该方法将 QuEChERS 样品前处理方法与 Agilent 7000 系列三重四极杆气质联用系统相结合,并通过基质匹配标样校准进行定量,以降低基质干扰引起的定量偏差。结果表明,该方法在 2–200 μg/kg 的基质加标浓度范围内具有良好的线性关系。绝大部分目标农药化合物的定量限 (LOQ) 低至2 μg/kg,灵敏度高。加标回收率测试表明,在 2、5、10、100 和 200 μg/kg 的加标浓度下,大部分农药化合物的回收率在 80%–120% 的范围内 (n = 5) ,且相对标准偏差 (RSD)低于 10%。该方法适用于对甜菜中的多种农药残留进行常规分析。

食品/农产品

2024/05/13

使用 Agilent BioTek Synergy Neo2 Hybrid 多功能微孔板检测仪测定脂质纳米颗粒表观 pKa

脂质纳米颗粒 (LNPs) 已被用作各种有效载荷的递送系统。本应用简报展示了 Agilent BioTek Synergy Neo2 Hybrid 多功能微孔板检测仪用于测定 mRNA LNPs 表观 pKa 的实用性。

制药/生物制药

2024/05/13

使用 ICP-OES 结合自动稀释测定锂盐中的多种元素

使用 Agilent 5800 VDV ICP-OES 和 Agilent ADS 2 自动稀释器自动分析锂离子电池前驱体化学品

能源/新能源

2024/05/13

使用配备高级稀释系统的 ICP-MS 对 高基质样品进行高效分析

在用 Agilent 7850 ICP-MS 分析前,使用 Agilent ADS 2 对沉积物和土壤进行自动稀释

环保

2024/05/13

推荐产品
供应产品

安捷伦科技(中国)有限公司

查看电话

沟通底价

提交后,商家将派代表为您专人服务

获取验证码

{{maxedution}}s后重新发送

获取多家报价,选型效率提升30%
提交留言
点击提交代表您同意 《用户服务协议》 《隐私政策》 且同意关注厂商展位