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About This Item
Empirical Formula (Hill Notation):
C21H36N2O10
Molecular Weight:
476.52
UNSPSC Code:
12162002
NACRES:
NA.23
description
2 NHBoc, 1 carboxyl (core)
Quality Level
form
solid
mol wt
generation 1
no. Surface Groups
2
color
white to off-white
functional group
carboxylic acid (core)
storage temp.
−20°C
Related Categories
General description
- Polymer architecture: Dendron
- End Group Functionality: Boc-protected amine
- Boc : tert-Butyloxycarbonyl
- Bis-MPA : 2,2-Bis(hydroxymethyl)propionic acid
Application
Bis-MPA (or 2,2-bis(methylol)propionic acid) is an aliphatic, pro-chiral molecule comprised of two hydroxyls and one carboxylic group that has been used in the synthesis of many different types of polymers. Dendrons synthesized from bis-MPA are biodegradable and have low cytotoxicity, making them well suited for use in biological research applications. These materials have been used in many applications such as signal amplification in bioassays and in drug delivery applications. Both the amine-functionalized dendrimers (after Boc deprotection) and carboxylic acid-functionalized core can be readily used in EDC or DCC coupling reactions with carbonyl or amine-containing compounds, respectively, to yield highly functionalized materials for a variety of biomedical applications.
Storage Class Code
11 - Combustible Solids
WGK
WGK 3
Flash Point(F)
Not applicable
Flash Point(C)
Not applicable
Regulatory Information
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Anna Carlmark et al.
Chemical Society reviews, 42(13), 5858-5879 (2013-05-01)
Dendritic polymers are highly branched, globular architectures with multiple representations of functional groups. These nanoscale organic frameworks continue to fascinate researchers worldwide and are today under intensive investigation in application-driven research. A large number of potential application areas have been
Articles
Dendritic molecules' biomedical applications, particularly bis-MPA dendritic scaffolds, hold promise for drug delivery.
Dendrimers, polymer nanostructures, are synthesized for specific purposes by manipulating critical nanoscale design parameters (CNDPs).
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