Among them acrylic monomers contain largest number of products and are often utilized for biomaterials or biocompatible materials research, using conventional radical polymerization or controlled radical polymerization. In addition to the common monomers for biomaterials research including 2-hydroxyethyl methacrylate (= HEMA) (Product No. M0085)1) and N-isopropylacrylamide (= NIPAAm) (Product No. I0401).2) We have zwitterionic monomers or monomers with reactive functional groups useful for conjugation with proteins or peptides present in our catalog.
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Monomers and Macromonomers [Biomaterials/Biocompatible Materials Research Reagents]

We present in this product category the monomers used for biomaterials research classified according   to their   chemical   structures such as acrylic monomers, lactone monomers, dithiol monomers, and diisocyanate monomers.   
    Zwitterionic monomers contain both cationic and anionic groups in the same molecule. Common   zwitterionic monomer   structures include phosphobetaines, sulfobetaines, and carboxybetaines.3,4) One of the phosphobetaine   zwitterionic monomers, 2-methacryloyloxyethyl phosphorylcholine (= MPC)   (Product No. M2005)5) is the most studied zwitterionic monomer and has been   applied to   toiletries or soft contact lenses.4) We offer   3-[[2-(methacryloyloxy)ethyl]dimethylammonio]propane-1-sulfonate (= SPE) (Product No. M1971)6) as a sulfobetaine   monomer, 3-[[2-(methacryloyloxy)ethyl]dimethylammonio]propionate (= CBMA) (Product No. M2359)7) and   3-[(3-acrylamidopropyl)dimethylammonio]propanoate (= CBAA) (Product No. A3279)7) as carboxybetaine   monomers.  
      Zwitterionic polymers synthesized from its zwitterionic monomers are expected to be applied to   surface coating   materials in medical devices including stents, catheters, and membranes for dialysis.4,8,9,10,11) Research   towards drug delivery system (DDS) have been increasing lately; e.g. application as nanomicellar drug   carriers,12) as coating materials for nanoparticles with prolonged blood circulation,13) and as   hydrogels providing sustained release of the therapeutic materials.14) Application for assays or diagnosis   are also expected, and noise reduction of a glucose sensor by coating electrodes by zwitterionic polymers was also   reported.15) In addition, cell culture mediums are another promising application of zwitterionic monomers.   For example, expansion of human hematopoietic stem cells with reduced differentiation on a zwitterionic hydrogel was   reported.16)  
  As monomers are helpful for the conjugation of polymers with proteins or peptides, We offer   N-succinimidyl acrylate (Product No. S0814) and N-succinimidyl    methacrylate (Product No. S0812) having NHS ester moiety which react with primary   amines,   and pentafluorophenyl acrylate (Product No. P2179) and pentafluorophenyl methacrylate (Product No. P2289) having   pentafluorophenyl ester group, etc.  
     References
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  - 1) Permeation of water through some hydrogels
 - 2) Cellular interactions with synthetic polymer surfaces in culture
 - 3) Molecular design of zwitterionic polymer interfaces: Searching for the difference
 - 4) Zwitterionic polymers and hydrogels for antibiofouling applications in implantable devices
 - 5) Preparation of Phospholipid Polymers and Their Properties as Polymer Hydrogel Membranes
 - 6) Influence of Composition on Properties of Hydrogels of 2-Hydroxyethyl Methacrylate with a Sulphobetaine Comonomer
 - 7) Synthesis and characteristics of the poly(carboxybetaine)s and the corresponding cationic polymers
 - 8) Cell membrane-inspired phospholipid polymers for developing medical devices with excellent biointerfaces
 - 9) Latest advances in zwitterionic structures modified dialysis membranes
 - 10) Vascular catheters with a nonleaching poly-sulfobetaine surface modification reduce thrombus formation and microbial attachment
 - 11) Zwitterionic poly-carboxybetaine coating reduces artificial lung thrombosis in sheep and rabbits
 - 12) Micelles with ultralow critical micelle concentration as carriers for drug delivery
 - 13) Biodegradable zwitterionic polymer membrane coating endowing nanoparticles with ultra-long circulation and enhanced tumor photothermal therapy
 - 14) Injectable, self-healable zwitterionic cryogels with sustained microRNA - cerium oxide nanoparticle release promote accelerated wound healing
 - 15) Reduction of measurement noise in a continuous glucose monitor by coating the sensor with a zwitterionic polymer
 - 16) Expansion of primitive human hematopoietic stem cells by culture in a zwitterionic hydrogel
 
Explore Monomers and Macromonomers [Biomaterials/Biocompatible Materials Research Reagents] Categories
											Acrylamide Monomers [Biomaterials/Biocompatible Materials Research Reagents]
												
											Acrylate Monomers [Biomaterials/Biocompatible Materials Research Reagents]
												
											Diacrylic Monomers [Biomaterials/Biocompatible Materials Research Reagents]
												
											Methacrylamide Monomers [Biomaterials/Biocompatible Materials Research Reagents]
												
											Methacrylate Monomers [Biomaterials/Biocompatible Materials Research Reagents]
												
											
											  
											
							                  
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![3-[[2-(Methacryloyloxy)ethyl]dimethylammonio]propane-1-sulfonate (= SPE)](https://www.tcichemicals.com/assets/cms-images/Category13257_M1971.png)
![3-[[2-(Methacryloyloxy)ethyl]dimethylammonio]propionate (= CBMA)](https://www.tcichemicals.com/assets/cms-images/Category13257_M2359.png)
![3-[(3-Acrylamidopropyl)dimethylammonio]propanoate (= CBAA)](https://www.tcichemicals.com/assets/cms-images/Category13257_A3279.png)



