Vinylsulfone-PEG8-COOH

Product#: LPA1417_25 mg
$437.06
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Vinylsulfone-PEG8-COOH

Cat. No.  LPA1417

Size        25 mg

Description

Vinylsulfone-PEG8-COOH is an advanced, mono-functionalized PEG-based crosslinker designed for a wide range of biological research applications. This versatile molecule features a vinylsulfone group at one end, an octaethylene glycol (PEG8) spacer in the middle, and a carboxylic acid (COOH) group at the other end. Its chemical structure can be represented as:
 
CH2=CH-SO2-CH2-CH2-(OCH2-CH2)8-OCH2-CH2-COOH

The vinylsulfone group, developed through BioActs' leading technology, offers several advantages:
1. Stability across a wide pH range
2. High temperature resistance
3. Reactivity with primary amines and thiol groups

The PEG8 spacer imparts hydrophilicity to the crosslinker, providing numerous benefits:
a. Does not penetrate cell membranes
b. Reduces potential aggregation and precipitation of conjugated complexes
c. Enhances solubility and stability of modified biomolecules
d. Potentially decreases immunogenicity of conjugated proteins
e. Increases bioavailability and bio-stability of conjugates
f. Provides a longer spacer arm for improved flexibility in bioconjugation Immunogenicity: Helps minimize immunogenic responses when conjugated to proteins or peptides.

Applications of Vinylsulfone-PEG8-COOH include protein modification and labeling, bioconjugation techniques, crosslinking of biomolecules, surface functionalization, nanoparticle modification, drug delivery systems, peptide synthesis, and development of biosensors and diagnostic tools.

The vinylsulfone group forms stable thioether bonds with thiol groups and reacts efficiently with primary amines at higher pH levels. It provides an alternative to maleimide chemistry, especially in applications where hydrolysis is a concern.
The carboxylic acid terminus can be further activated or used for additional reactions, enhancing the crosslinker's versatility. It can be activated with EDC/NHS for amine coupling, allows for orthogonal conjugation strategies, and enables the creation of more complex multi-functional constructs.

Vinylsulfone-PEG8-COOH is a highly effective crosslinking reagent that combines the benefits of vinylsulfone chemistry with the advantageous properties of an extended PEG spacer. Its unique structure and reactivity make it an invaluable tool for researchers in biochemistry, bioengineering, and related fields, offering new possibilities for protein modification, bioconjugation, and the development of novel biomaterials. The longer PEG8 spacer provides additional flexibility and hydrophilicity, making it particularly useful for applications requiring increased solubility or reduced steric hindrance.
 
Specifications
  • Reactive group: Vinylsulfone
  • Molecular Weight: 687.75 g/mol
  • Solubility: Water, DMF, DMSO
  • Storage conditions: -20 ℃ 

 NHS ester
 
Quick link (Cat.#) Series Quick link (Cat.#) Series
LPA1411 Vinylsulfone-PEG2-COOH LPA1421 Vinylsulfone-PEG2B-COOH
LPA1412 Vinylsulfone-PEG3-COOH LPA1422 Vinylsulfone-PEG3B-COOH
LPA1413 Vinylsulfone-PEG4-COOH LPA1423 Vinylsulfone-PEG4B-COOH
LPA1414 Vinylsulfone-PEG5-COOH LPA1424 Vinylsulfone-PEG5B-COOH
LPA1415 Vinylsulfone-PEG6-COOH LPA1425 Vinylsulfone-PEG6B-COOH
LPA1416 Vinylsulfone-PEG7-COOH LPA1426 Vinylsulfone-PEG7B-COOH
LPA1417 Vinylsulfone-PEG8-COOH LPA1427 Vinylsulfone-PEG8B-COOH


Background

Biochemical Polymers & Labeling


The optimal labeling condition for biomolecules is to achieve an appropriate degree of conjugation ratio yet to retain the important functionality of the original biomolecules such as binding affinity, activatory or inhibitory activity, solubility and biological membrane permeability. The high-number of labeling often causes conjugated biomolecule to precipitate out of solution or to lose its functional properties, thus the degree of labeling should be determined from experimental optimization process. There are two major types of reactive dyes: amine-reactive dye and thiol-reactive dye. The primary target of amine-reactive probes at protein is lysine residue, and thiol residue is the main target for thiol-reactive probes. In mammalian proteins, the occurrence frequency of lysine residue is 7.2% and that of thiol is 3.3%.

      Amino-labeling is the widely utilized method to conjugate proteins, peptides, oligonucleotides and other biomolecules with dyes. Amine-reactive dyes might be used to prepare bioconjugates for fluorescent analog cytochemistry, immunochemistry, cell tracing, receptor labeling, FITC, etc. The primary target for amine-reactive probe is lysine residue, which has the fifth highest occurrence frequency of the 20 natural amino acids in mammalian proteins. A typical IgG antibody has about 90 lysine residues, and the maximum number of labeling will be around 30 residues with excess amount of reagent and prolonged incubation. However, maintaining functional properties requires the degree of labeling less than 10 dyes per antibody. BioActs provides three major classes (NHS, Sulfo-MHS and Vinylsulfone) of amine-reactive Flamma® Fluors dyes, and they can cover the entire spectral range from visible to NIR region. 

      Thiol-reactive dyes are mainly used for labeling proteins for the observation of conformational change, multi-subunit complexes assembly and ligand-binding processes. In proteins and peptides, the primary targets of thiol-reactive probes are cysteine residues. Unlike amine-labeling, the low abundance of cysteine residues enable to achieve saturated labeling without risk of conjugated protein precipitation and fluorescence self-quenching interactions. Thiols play a principal role in maintaining the appropriate oxidation–reduction state of proteins, cells and organisms, and they are easily oxidized to form disulfides. Thiols can also be generated by the reduction of cysteine disulfides with reducing agents such as dithiothreitol (DTT), 2-mercaptoethanol or tris-(2-carboxyethyl)phosphine (TCEP). However, the reducing process may cause to disrupt the tertiary structure of protein. Maleimide is a well-known reactive group that can specially label thiol of cysteine residue without interacting with amino functionality. In labeling process, thiol is added to the double bond of maleimide via 1,4-addition pathway to form thioether linkage. Maleimides apparently do not react with methionine, histidine or tyrosine, but they also react with amines in the strong basic environment. BioActs offers Flamma® Fluors maleimide series as thiol-reactive fluorescence dyes. 

      Click chemistry is a typical type of bioorthogonal reactions, which the reaction occurs inside of living systems yet without interfering with native biochemical processes. The most widely utilized click chemistry is 1,3-dipolar cycloaddition between an azide and an alkyne to produce 1,4-disubstituted 1,2,3-triazole. The triazole ring is stable under hydrolysis, oxidation or reduction, and it survives ionization process in mass spectrometry (MS) analysis. There are two types of 1,3-dipolar cycloaddition methods: copper(I)-catalyzed azide-alkyne cycloaddition (CuAAC) and strain-promoted azide-alkyne cycloaddition (SPAAC). BioActs offers Flamma® Fluors Alkyne dyes for CuAAC, Flamma® Fluors ADIBO products for SPAAC and Flamma® Fluors Azide dyes for both CuAAC and SPAAC.


Citation & Reference

1. Marina V. Backer. Vascular endothelial growth factor selectively targets boronated dendrimers to tumor vasculature. Mol Cancer Ther 4.9 (2005): 1423-9.

2. Zhenhui Chen. Spatial and Dynamic Interactions between Phospholamban and the Canine Cardiac Ca2 Pump Revealed with Use of Heterobifunctional Cross-linking Agents. J Biol Chem 278.48 (2003): 48348-56.

3. Katharina Deiss. Raf Kinase Inhibitor Protein (RKIP) Dimer Formation Controls Its Target Switch from Raf1 to G Protein-coupled Receptor Kinase (GRK) 2. J Biol Chem 287.28 (2012): 23407-17.

4. Nicole Schmitz. Displaying Fel d1 on virus-like particles prevents reactogenicity despite greatly enhanced immunogenicity: a novel therapy for cat allergy. J Exp Med 206.9 (2009): 1941-55.

5. Ariane L. Jansma. NMR Analysis of the Structure, Dynamics, and Unique Oligomerization Properties of the Chemokine CCL27. J Biol Chem 285.19 (2010): 14424-37.

 

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