SERVALYT™ 5 - 7, Carrier Ampholytes pH 5 - 7

Ampholytes 5-7, Servalyts

42905.01
$304.00

Ampholytes 5-7 (Servalyt 5-7)

  • High Resolution ampholyte
  • Clean Separations
  • Clear Background
  • Available in 10ml & 25ml 
Volumes

 

Ampholytes 5-7 (Servalyts 5-7)

Carrier ampholytes pH 5-7

Applications: Isoelectric focusing, capillary electrophoresis, free-flow electrophoresis

 

SERVALYT 5-7 carrier ampholytes are useful in identifying acidic isotypes in purified protein samples such as monoclonal antibodies or other biosimilar protein products.

Supplied as 40 % aqueous concentrate and sterile filtered (0.2 μm). If stored at 4 °C and unopened shelf is up to 3 years. The common working concentration is in the range of 3 % to 5 %. Excellent for high resolution of acidic protein in isoelectric focusing (IEF), capillary isoelectric focusing (cIEF) and free flow electrophoresis applications.

 

Benefits:

  • Available Two Sizes: 10 ml & 25ml
  • High Resolution
  • Widest Range Available
  • Fast Staining and Clear Background
  • Ready to Use or Blending
  • 3 year shelf life

Comparison of different brands of carrier ampholytes

Using an ampholyte pH 5-7 in isoelectric focusing (IEF) offers several applications and benefits, including:

Broad separation of proteins with diverse pI values: The pH range of 5-7 allows for the separation of proteins with a wide range of isoelectric points (pI). It covers the slightly acidic to slightly basic region, enabling the analysis of proteins with different pI values within this range.

Versatile and flexible analysis: Using an ampholyte pH 5-7 in IEF provides versatility and flexibility in protein analysis. It accommodates proteins with varying acidic and slightly basic characteristics, making it suitable for a broad range of sample types and protein subsets.

Improved resolution and selectivity: The use of an ampholyte pH 5-7 enables high-resolution separation of proteins with diverse pI values. The pH gradient established by the ampholytes facilitates the migration and focusing of proteins at their respective pI positions, resulting in well-resolved and distinct protein bands. This enhances the accuracy of protein identification and characterization.

Analysis of protein isoforms and modifications: Proteins often exist in multiple isoforms or undergo post-translational modifications, leading to variations in their pI values. Using an ampholyte pH 5-7 in IEF allows for the separation and identification of these protein isoforms and modified forms. This facilitates the study of protein heterogeneity and the functional implications of isoforms and modifications.

Biomarker discovery and disease research: IEF using an ampholyte pH 5-7 finds relevance in biomarker discovery studies and disease-related research. By comparing protein expression profiles between different samples, potential biomarkers associated with specific diseases or physiological conditions can be identified. The broad separation capabilities of pH 5-7 can help detect disease-specific protein alterations and aid in diagnostic and prognostic applications.

Integration with other techniques: IEF using an ampholyte pH 5-7 can be integrated with other techniques for comprehensive protein analysis. Following the separation in the first dimension, the resolved proteins can be subjected to additional techniques such as gel electrophoresis, Western blotting, or mass spectrometry, enabling a multi-dimensional approach for protein characterization.

Proteomics research: The use of an ampholyte pH 5-7 in IEF is valuable in proteomics research. It allows for the systematic analysis of protein expression patterns, modifications, and isoforms within the pH range of 5-7. By studying proteins with pI values in this range, researchers can gain insights into cellular processes, disease mechanisms, and protein-protein interactions

In summary, using an ampholyte pH 5-7 in IEF offers broad separation, versatile analysis, improved resolution and selectivity, characterization of protein isoforms and modifications, biomarker discovery potential, integration with other techniques, and finds application in proteomics research and disease-related studies.

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