Click Chemistry, Conjugation
Monodisperse PEG
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| Catalog No. | Name | Structure | M.W. | Purity | Buy |
|---|---|---|---|---|---|
|
BPG-1712
CAS: 134978-97-5
|
2-(2-(2-Aminoethoxy)ethoxy)acetic acid |
|
163.17 | ≥95% | |
|
BPG-1728
CAS: 208827-90-1
|
Triethylene Glycol Mono(2-propynyl) Ether |
|
188.22 | >95% | |
|
BPG-2062
CAS: 166108-71-0
|
Fmoc-N-amido-PEG2-acetic acid |
|
385.41 | 98% | |
|
BPG-2569
CAS: 1952360-91-6
|
Fmoc-N-amido-PEG12-propionic acid |
|
839.96 | ≥99% | |
|
BPG-2243
CAS: 557756-85-1
|
Fmoc-N-amido-PEG4-propionic acid |
|
487.54 | ≥95% | |
|
BPG-3555
CAS: 1312309-64-0
|
Azido-PEG2-NHS ester |
|
300.27 | ≥98% | |
|
BPG-3566
CAS: 65869-64-9
|
Bis-PEG1-NHS ester |
|
356.28 | ≥98% | |
|
BPG-3587
CAS: 1433997-01-3
|
Mal-PEG2-NHS ester |
|
354.31 | ≥98% | |
|
BPG-3586
CAS: 1599472-25-9
|
Mal-PEG6-NHS ester |
|
530.52 | ≥98% | |
|
BPG-3605
CAS: 1305053-43-3
|
Pyridin-2-yldisulfanyl-PEG4-NHS |
|
488.57 | ≥98% | |
|
BPG-3606
CAS: 1252257-56-9
|
SPDP-PEG8-NHS |
|
735.86 | ≥95% | |
|
BPG-3590
CAS: 1807512-47-5
|
Mal-PEG2-PFP |
|
423.29 | ≥98% | |
|
BPG-3588
CAS: 1325208-25-0
|
Mal-PEG4-NHS |
|
442.42 | ≥98% | |
|
BPG-3591
CAS: 1415800-42-8
|
Mal-PEG4-PFP |
|
511.39 | ≥98% | |
|
BPG-4774
CAS: 1137109-21-7
|
Mal-PEG6-NHS |
|
601.60 | ≥98% | |
|
BPG-3592
CAS: 1263044-88-7
|
Mal-Ph-CONH-PEG4-NHS ester |
|
561.54 | ≥98% | |
|
BPG-3607
CAS: 2101206-78-2
|
Propargyl-O-C1-amido-PEG3-C2-NHS ester |
|
414.41 | 98% | |
|
BPG-3556
CAS: 1245718-89-1
|
Azido-PEG3-NHS ester |
|
344.32 | ≥98% | |
|
BPG-3557
CAS: 944251-24-5
|
NHS-PEG4-azide |
|
388.37 | 95% | |
|
BPG-3575
CAS: 1807521-07-8
|
Ald-Ph-PEG2-NHS |
|
406.39 | ≥98% |
- 1-Isothiocyanato-PEGn-alcohol 12
- 1-Isothiocyanato-PEGn-azide 12
- 1,1,1-Trifluoroethyl-PEGn-azide 12
- 1,1,1-Trifluoroethyl-PEGn-propargyl 11
- 1,1,1-Trifluoroethyl-PEGn-Tos 11
- 3,4-Dibromo-Mal-PEGn-Amine TFA salt 12
- 3,4-Dibromo-Mal-PEGn-COOH 12
- 3,4-Dibromo-Mal-PEGn-NHBoc 12
- Acid-PEGn-NHS ester 13
- Acid-PEGn-phosphonic acid 12
- Acid-PEGn-S-S-PEGn-acid 1
- Acid-PEGn-sulfonic acid 12
- AcS-PEGn-acid 12
- AcS-PEGn-NH2 12
- AcS-PEGn-NHS 12
- AcS-PEGn-OH 12
- AcS-PEGn-propargyl 12
- AcS-PEGn-t-butyl ester 12
- Allyl-CONH-PEGn-COOH 12
- Allyl-PEGn-OH 11
- Amino-PEGn-alcohol 10
- Amino-PEGn-amine 10
- Amino-PEGn-CH2COOH 12
- Amino-PEGn-CH2COOtBu 12
- Amino-PEGn-COOH 12
- Amino-PEGn-COOMe 12
- Amino-PEGn-COOtBu 12
- Amino-PEGn-IC 12
- Aminooxy-amido-PEGn-propargyl 12
- Aminooxy-PEGn-acid 12
- Aminooxy-PEGn-alcohol 12
- Aminooxy-PEGn-Aminooxy 12
- Aminooxy-PEGn-methane 12
- Aminooxy-PEGn-NHBoc 12
- Azido-PEGn-(CH2)3-methyl ester 12
- Azido-PEGn-Acid 12
- Azido-PEGn-Amido-tri-(t-butoxycarbonylethoxymethyl)-methane 12
- Azido-PEGn-amine 13
- Azido-PEGn-Br 12
- Azido-PEGn-CH2COOH 12
- Azido-PEGn-hydrazide-Boc 12
- Azido-PEGn-NHS ester 13
- Azido-PEGn-t-Butyl ester 13
- Benzaldehyde-PEGn-azide 12
- Benzyl-PEGn-Acid 12
- Benzyl-PEGn-alcohol 12
- Benzyl-PEGn-Boc 12
- Benzyl-PEGn-Br 11
- Benzyl-PEGn-MS 12
- Benzyl-PEGn-N3 12
- Benzyl-PEGn-NH2 11
- Benzyl-PEGn-Ots 12
- Benzyl-PEGn-THP 12
- Bis-PEGn-NHS ester 13
- Bis-PEGn-sulfonic acid 12
- Bis-propargyl-PEGn 12
- Bis-sulfone-PEGn-Acid 12
- Bis-sulfone-PEGn-NHS Ester 12
- Boc-Aminooxy-PEGn 12
- Boc-NH-PEGn-C2-Boc 12
- Boc-NH-PEGn-C3-acid 12
- Boc-NH-PEGn-Ms 12
- Boc-NH-PEGn-NH-Boc 12
- Br-PEGn-acid 12
- Br-PEGn-Br 11
- Br-PEGn-CH2COOH 12
- Br-PEGn-COOtBu 12
- Br-PEGn-MS 12
- Br-PEGn-NHBoc 12
- Br-PEGn-OH 11
- Br-PEGn-THP 12
- BrCH2CONH-PEGn-acid 12
- BrCH2CONH-PEGn-COOtBu 12
- BrCH2CONH-PEGn-N3 12
- BrCH2CONH-PEGn-NHS ester 12
- BrCH2CONH-PEGn-OMe 12
- CbzNH-PEGn-Br 12
- CbzNH-PEGn-CH2CH2NH2 12
- CHO-Ph-CONH-PEGn-acid 12
- CHO-Ph-CONH-PEGn-amine 12
- CHO-Ph-CONH-PEGn-azide 12
- CHO-Ph-CONH-PEGn-COOtBu 12
- CHO-Ph-CONH-PEGn-NHBoc 12
- CHO-Ph-CONH-PEGn-NHS ester 12
- CHOCH2-PEGn-COOH 12
- Cl-C6-PEGn-NHCO-C3-NHS 12
- Cl-C6-PEGn-O-CH2COOH 12
- Cl-PEGn-acid 12
- COOH-CH2-PEGn-CH2-COOH 12
- COOH-PEGn-COOH 13
- COOH-PEGn-COOMe 12
- COOH-PEGn-COOtBu 12
- COOtBu-PEGn-COOtBu 13
- COOtBu-PEGn-I 12
- DNP-PEGn-COOH 12
- DNP-PEGn-COOtBu 12
- DNP-PEGn-DNP 12
- DNP-PEGn-N3 12
- DNP-PEGn-NH2 12
- DNP-PEGn-NHBoc 12
- DNP-PEGn-NHS ester 12
- DNP-PEGn-OH 12
- Fmoc-N-amido-PEGn-acid 12
- Fmoc-NH-PEGn-alcohol 10
- Fmoc-NH-PEGn-CH2COOH 12
- Fmoc-NH-PEGn-NHS ester 12
- Fmoc-NH-PEGn-t-butyl ester 12
- Fmoc-NMe-PEGn-acid 12
- Fmoc-PEGn-Ala-Ala-Asn-PAB 12
- HO-PEGn-C2-PFP ester 12
- HO-PEGn-CH2-COOH 12
- HO-PEGn-CH2-COOMe 12
- HO-PEGn-COOH 12
- HO-PEGn-COOMe 12
- HO-PEGn-COOtBu 12
- HO-PEGn-ethyl ester 12
- HO-PEGn-OH 7
- HO-PEGn-THP 12
- HO-Pr-PEGn-Pr-OH 12
- Lipoamide-PEGn-Mal 12
- Lipoamido-PEGn-acid 12
- Lipoamido-PEGn-alcohol 12
- Lipoamido-PEGn-azide 12
- m-PEGn-(CH2)3-acid 12
- m-PEGn-(CH2)3-methyl ester 11
- m-PEGn-(CH2)8-Phosphonic acid 12
- m-PEGn-(CH2)8-phosphonic acid ethyl ester 12
- m-PEGn-acid 13
- m-PEGn-AcS 12
- m-PEGn-amine 11
- m-PEGn-Br 11
- m-PEGn-Ph-CHO 11
- m-PEGn-phosphonic acid ethyl ester 12
- m-PEGn-sulfonic acid 12
- Mal-amido-PEGn-DNP 12
- Mal-amido-PEGn-NHS ester 2
- Mal-amido-PEGn-TFP ester 12
- Mal-PEGn-acid 12
- Mal-PEGn-COOtBu 12
- Mal-PEGn-Mal 12
- Mal-PEGn-NHS ester 13
- Mal-PEGn-OH 12
- Mal-PEGn-PFP ester 12
- Mal-Ph-CONH-PEGn-NHS ester 12
- MeNH-PEGn-COOtBu 12
- MeNH-PEGn-NHMe 12
- Ms-PEGn-MS 12
- N,N'-DME-N-PEGn-Boc 12
- NHBoc-PEG-COOH 12
- NHBoc-PEGn-amine 11
- NHBoc-PEGn-NHS ester 12
- NHBoc-PEGn-OH 11
- NHPI-PEGn-C2-NHS ester 12
- NHPI-PEGn-C2-PFP ester 12
- NP-PEGn-NHS 12
- Propargyl-O-C1-amido-PEGn-C2-NHS ester 12
- Propargyl-PEGn-acid 12
- Propargyl-PEGn-alcohol 12
- Propargyl-PEGn-CH2COO-NHS ester 11
- Propargyl-PEGn-CH2COOH 11
- Propargyl-PEGn-CH2COOtBu 11
- Propargyl-PEGn-COOtBu 12
- Propargyl-PEGn-NHBoc 12
- SPDP-PEGn-COOH 12
- SPDP-PEGn-NHS ester 13
- t-Boc-Aminooxy-PEGn-azide 12
- t-Boc-Aminooxy-PEGn-NHS ester 12
- Tbdms-PEGn-alcohol 10
- Tos-PEGn-acid 12
- Tos-PEGn-CH2COOH 11
- Tos-PEGn-COOtBu 12
- Tos-PEGn-THP 12
- Tos-PEGn-Tos 12
- Tr-PEGn-OH 12
Background
Monodisperse PEG has uniform chain length and molecular weight, unlike polydisperse PEG, which contains polymer chains of different lengths. Monodisperse PEG is synthesized using iterative chain expansion techniques that control polymer size and dispersion precisely. Monodisperse PEG products are generally a small molecule monodisperse pure PEG reagent consisting of two, three, or four PEG repeating units, with a small overall molecular weight, and their molecular weight is related to the number of repeating units in the PEG, with more repeating units increasing the molecular weight. The monodisperse PEG offered by BOC Sciences retains the good solubility of polyethylene glycol in water, and it also confers modified biomolecules flexibility, anticoagulant, and anti-macrophage phagocytosis.
Fig. 1. Synthetic Strategies for Monodisperse PEG (Molecular Pharmaceutics, 2017, 14(10): 3473-3479).
Structural Features of Monodisperse PEG
Hydroxyl Ends
PEG carries hydroxyl (-OH) groups at both ends, which makes PEG highly hydrophilic. These hydroxyl ends can be reacted with other compounds, such as binding to drug molecules to form PEG drug conjugates or chemically modifying material surfaces.
Narrow Molecular Weight Distribution
A distinctive feature of monodisperse PEG is its narrow molecular weight distribution, i.e., the molecular weights are relatively uniform with no significant molecular weight deviation. This monodispersity allows PEG to provide more accurate and controlled performance in experimental and applied research, providing greater reliability and consistency.
Advantages of Monodisperse PEG
- Improved pharmacokinetics: Enhanced solubility; improved stability.
- Increased circulation time: Reduced amount of drug required; reduced frequency of administration; decreased renal clearance increases circulation time.
- Reduces toxicity: Improved safety; reduced immunogenicity; reduced antigenicity; reduced protein hydrolysis.
- Facilitates purification and characterization: Monodisperse PEG simplifies the purification process due to the absence of multiple molecular weight classes.
- Precise functionalization and conjugation: The homogeneous structure of monodisperse PEG allows for precise functionalization and conjugation at specific chain ends.
Preparation of Monodisperse PEG
(1) PEG Preparation by Hydroxyl-Terminated
- First, a suitable starting agent is selected and reacted with a certain molar ratio of ethylene oxide to form a starting agent containing hydroxyl groups.
- Then, under an inert atmosphere, the starting agent is reacted with excess ethylene oxide at a certain temperature to polymerize to form PEG.
- At the end of the reaction, unreacted starting agent and low molecular weight impurities are removed by an appropriate purification step to obtain monodisperse PEG.
(2) PEG Preparation with Molecular Weight Control
- First, a suitable starting agent and a catalyst for the polymerization reaction, such as an alkali metal or alkaline earth metal salt, are selected.
- In a suitable reaction solvent, mix the starting agent with ethylene oxide at a certain molar ratio and add the catalyst.
- The reaction temperature, reaction time and the molar ratio of the starting agent to ethylene oxide are controlled to control the extent of the polymerization reaction and the molecular weight distribution.
- At the end of the reaction, the unreacted starting agent and impurities are removed to obtain the target product monodisperse PEG.
Applications of Monodisperse PEG
Bionic Materials
Monodisperse PEG can be used to prepare nanoparticles, microcapsules and microspheres with specific shapes and functions. These bionanomaterials can be applied in the fields of drug delivery, tissue engineering and biosensing.
Biological Separation and Purification
Monodisperse PEG has important applications in biological separation and purification processes. It can be used as a precipitant for proteins and nucleic acids to promote aggregation and separation of target molecules. In addition, PEG is commonly used in column chromatography, gel filtration and solvent precipitation steps of protein purification.
Chemical Synthesis and Catalysis
Monodisperse PEG also has applications in chemical synthesis and catalytic reactions. It can be used as a catalyst or solvent to catalyze chemical reactions and improve reaction efficiency and selectivity. In addition, PEG can be used as a protective agent for reactants or as a stabilizer for intermediates.
If you are interested in our monodisperse PEG products, please keep in touch with us.
Reference
- Yu, Z. et al. Application of monodisperse PEGs in pharmaceutics: monodisperse polidocanols. Molecular Pharmaceutics. 2017, 14(10): 3473-3479.
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