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51270-93-0

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51270-93-0 Usage

Explanation

The molecular formula represents the number of atoms of each element present in a molecule of the compound.
2. Cyclic organic compound

Explanation

The compound has a ring structure formed by the arrangement of its atoms.
3. Contains a triazine ring

Explanation

A triazine ring is a six-membered ring consisting of three carbon atoms and three nitrogen atoms.
4. Contains a thiol group (-SH)

Explanation

A thiol group is a functional group containing a sulfur-hydrogen bond, which provides the compound with strong reducing properties.
5. Used as a reducing and stabilizing agent

Explanation

The compound's strong reducing properties allow it to stabilize metal nanoparticles during their synthesis.
6. Applications in pharmaceuticals, agrochemicals, and materials science

Explanation

The compound's versatility and ability to chelate metal ions make it a valuable tool in various industries.
7. Ability to chelate metal ions

Explanation

The compound can form multiple bonds with metal ions, which is useful for stabilizing and controlling the reactivity of these ions.
8. Strong reducing properties

Explanation

The presence of the thiol group (-SH) in the compound contributes to its strong reducing properties, making it useful in various chemical reactions and processes.

Check Digit Verification of cas no

The CAS Registry Mumber 51270-93-0 includes 8 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 5 digits, 5,1,2,7 and 0 respectively; the second part has 2 digits, 9 and 3 respectively.
Calculate Digit Verification of CAS Registry Number 51270-93:
(7*5)+(6*1)+(5*2)+(4*7)+(3*0)+(2*9)+(1*3)=100
100 % 10 = 0
So 51270-93-0 is a valid CAS Registry Number.

51270-93-0Downstream Products

51270-93-0Relevant academic research and scientific papers

Visualized detection of melamine in milk by supramolecular hydrogelations

Zhang, Jianwu,Ou, Caiwen,Shi, Yang,Wang, Ling,Chen, Minsheng,Yang, Zhimou

supporting information, p. 12873 - 12876 (2015/01/09)

We reported a visualized detection system for melamine based on supramolecular dydrogelations.

Lipid membrane adhesion and fusion driven by designed, minimally multivalent hydrogen-bonding lipids

Ma, Mingming,Gong, Yun,Bong, Dennis

supporting information; scheme or table, p. 16919 - 16926 (2010/04/04)

Cyanuric acid (CA) and melamine (M) functionalized lipids can form membranes that exhibit robust hydrogen-bond driven surface recognition in water, facilitated by multivalent surface clustering of recognition groups and variable hydration at the lipid-water interface. Here we describe a minimal lipid recognition cluster: three CA or M recognition groups are forced into proximity by covalent attachment to a single lipid headgroup. This trivalent lipid system guides recognition at the lipid-water interface using cyanurate-melamine hydrogen bonding when incorporated at 0.1-5 mol percent in fluid phospholipid membranes, inducing both vesicle-vesicle binding and membrane fusion. Fusion was accelerated when the antimicrobial peptide magainin was used to anchor trivalent recognition, or when added exogenously to a preassembled lipid vesicle complex, underscoring the importance of coupling recognition with membrane disruption in membrane fusion. Membrane apposition and fusion were studied in vesicle suspensions using light scattering, FRET assays for lipid mixing, surface plasmon resonance, and cryo-electron microscopy. Recognition was found to be highly spatially selective as judged by vesicular adhesion to surface patterned supported lipid bilayers (SLBs). Fusion to SLBs was also readily observed by fluorescence microscopy. Together, these studies indicate effective and functional recognition of trivalent phospholipids, despite low mole percentage concentration, solvent competition for hydrogen bond donor/acceptor sites, and simplicity of structure. This novel designed molecular recognition motif may be useful for directing aqueous-phase assembly and biomolecular interactions.

Intra- and intermembrane pairwise molecular recognition between synthetic hydrogen-bonding phospholipids

Ma, Mingming,Paredes, Angel,Bong, Dennis

supporting information; experimental part, p. 14456 - 14458 (2009/02/08)

Multivalency and preorganization are fundamental aspects of molecular recognition at the lipid membrane-water interface and can render weak monomeric binding interactions selective and robust; this concept is important throughout biology, biotechnology, and materials science. Though hydrogen bonding is typically weakened in water, intramembrane hydrogen bonding between native lipids has been well-studied and is thought to contribute to lipid bioactivity and membrane function. We hypothesized that avidity and preorganization effects at the lipid-water interface could overcome solvent competition and allow for selective hydrogen-bond recognition between small, unstructured components. We have found that electrostatically identical vesicular membranes composed of cyanuric acid and melamine functionalized phospholipids 1 and 2 undergo selective apposition, fusion and adhesion in suspension and on solid support, indicating that their well-known low-dielectric hydrogen bonding properties translate effectively to the lipid-water interface. This work is notable and of general interest given the few detailed studies of aqueous phase hydrogen-bonding systems; we have extensively characterized this system, gaining structural, functional, and thermodynamic data. Furthermore, we have found that the designed lipid-lipid headgroup interactions result in dramatic alteration of the lipid phase morphology, providing insight into the coupling of molecular interactions with assembly state. As such, this work contributes to our understanding of fundamental phenomena such as molecular recognition at the lipid-water interface membrane chemistry and further illustrates the general possibility of designing selective hydrogen-bonding adhesive interactions from simple starting materials at other polar-apolar interfaces; this could have numerous materials and biotechnological applications. Copyright

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