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All Resin samples come as 2.5 ml pre-filled colums compatible with the AKTA system. You can request up to 40 samples at a time. The first Resin Sample is free, the quote for the other samples will be shared with you in the confirmation email.
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Resin parameters

Matrix
Highly cross-linked agarose with dextran extension arms
functional group
Quaternary ammonium group
Function
SAX
d50, µm
90
Dynamic Binding Capacity
≥160 mg BSA/ml
Total ionic capacity
0.18–0.26 mmol Cl−/ml
Recommended Flow Rate
90–400 cm/h
Maximum Flow Rate
500 cm/h
Maximum Working Pressure
3 bar
maximum temperature
4–30°C
* Measurement conditions of dynamic binding capacity: packing height, 10 cm; test flow rate, 300 cm/h; test buffer: 0.05M Tris-HCl solution, pH 7.5, when BSA breakthrough reaches 10% of starting concentration.

Chemical resistance

pH Stability
2–14
Chemical Stability
All commonly used aqueous buffers, non-ionised detergent, 1M NaOH, 6M guanidine hydrochloride
Avoid
Oxidising agents, anionic detergents
* The physical and chemical properties and functions of the chromatographic resin have no obvious change after being placed in an environment of 40°C and pH 2–14 for 7 days.

Resin description

Q Persefose XL is a strong anion exchange IEX resin that separates molecules by differences in the nature and magnitude of their charge under defined conditions. The resin is used for the separation and purification of biological molecules such as recombinant proteins, antibodies, nucleic acids, viruses, virus-like particles and polysaccharides.

Q Persefose XL combines extremely high capacity with high flow rates:

  • The highly cross-linked agarose matrix is rigid, so it achieves a high process flow rate under low back pressure and improves process efficiency.
  • Its high capacity and high flow rate suit the capture stage of downstream processing of crude samples.

Method of use

Chromatographic conditions

Buffer selection. Select a buffer salt whose buffer group does not interact with the resin. In bind and elute mode, the equilibration buffer should be low in salt, below 5 mS/cm, and high in pH, usually one pH unit above the isoelectric point of the target molecule, to support binding. Consider the stability of the sample in the buffer. The elution buffer is usually the equilibration buffer with a high concentration of salt added, such as 1M NaCl.

In flow-through mode, the equilibration buffer should use conditions that favour the binding of impurities. Once the target molecule has completely flowed through, wash directly with a high-concentration salt buffer.

Flow rate. Select a linear flow rate of 90–400 cm/h according to the column bed height.

Sample pretreatment. Filter the sample through a 0.45 µm microporous membrane before loading to prevent the column from clogging. Adjust the pH and conductivity of the sample to be consistent with the equilibration buffer, using dilution, ultrafiltration or desalting.

Chromatography steps

  1. Equilibration. Use equilibration buffer to fully equilibrate the column until the pH and conductivity are stable and consistent with the equilibration buffer. This step usually requires 3–5 column bed volumes (CV).
  2. Sample loading. Determine the loading volume and loading amount on Q Persefose XL from the binding capacity measured in a small-scale test.
  3. Washing. Use equilibration buffer or another suitable buffer to wash the column until the UV signal stabilises and returns to baseline.
  4. Elution. Elute by increasing the concentration of salt ions in the elution buffer, applied as a linear or step gradient, to separate molecules of different binding strength. pH gradient elution or mixed elution can also be used.
  5. Regeneration. Rinse the column with a high-salt buffer, such as 2M NaCl.
  6. Re-equilibration. Re-equilibrate the column with equilibration buffer.

In flow-through mode, collect during the sample loading step. Stop collecting once all target molecules have passed through the washing step. Use high-salt buffer directly at the elution step to wash impurities away.

Cleaning and regeneration

Contaminants such as lipids, endotoxins and proteins accumulate on the column as the number of uses increases. Determine the frequency of cleaning-in-place (CIP) according to the degree of contamination. Where contamination is considerable, CIP after each use is recommended to ensure repeatability of results and to prolong the working life of the resin.

Recommended cleaning conditions by contaminant type:

  • Strongly binding proteins: wash with 5 CV of 2M NaCl solution, or use a high-salt buffer at pH 2 or above, such as 1M NaAc solution.
  • Strongly hydrophobic and precipitated proteins: wash with 5 CV of 1M NaOH solution, then wash out the alkali with 5–10 CV of ultrapure or pure water.
  • Lipoproteins and lipids: wash with 5 CV of 70% ethanol or 30% isopropanol, then rinse with 5–10 CV of ultrapure or pure water.

Degas 70% ethanol or 30% isopropanol before use. Keep the flow rate at 30–60 cm/h during CIP. Use reverse cleaning where clogging is severe.

To reduce microbial load, treat the resin with 0.5–1M NaOH solution for 15–30 minutes.

Storage

Keep unopened resin in the original container at 4–30°C in a well-ventilated, dry and clean place. Do not freeze. Wash the used column with 2–3 CV of 20% ethanol solution and store at 2–8°C.

Destruction and recycling

Chromatography resin is difficult to degrade in nature, so incineration of waste resin is recommended. For resin that has been in contact with biologically active samples such as viruses and blood, follow local biosafety requirements before destroying or disposing of it.

Packing method

Detailed information on resin packaging is available on request. Please contact your local distributor.

Ordering information

  • 714-00025 — 25 ml
  • 714-00100 — 100 ml
  • 714-00500 — 500 ml
  • 714-01000 — 1 L
  • 714-05000 — 5 L
  • 714-10000 — 10 L
  • 714-20000 — 20 L
Download Data Sheet

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