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2,5,8,11,14,17,20,23,26,29,32,35-Dodecaoxaheptatriacontan-37-amine is a long-chain amine compound with multiple amine groups that can be used for various applications in different industries.

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  • 869718-87-6 Structure
  • Basic information

    1. Product Name: 2,5,8,11,14,17,20,23,26,29,32,35-Dodecaoxaheptatriacontan-37-amine
    2. Synonyms: 2,5,8,11,14,17,20,23,26,29,32,35-Dodecaoxaheptatriacontan-37-amine;MeO-dPEG12)-NH2;MPEG12-NH2;Poly(oxy-1,2-ethanediyl),a-(2-aMinoethyl)-w-Methoxy-;m-PEG12-amine;Methyl-PEG12-amine
    3. CAS NO:869718-87-6
    4. Molecular Formula: C25H53NO12
    5. Molecular Weight: 560
    6. EINECS: N/A
    7. Product Categories: N/A
    8. Mol File: 869718-87-6.mol
  • Chemical Properties

    1. Melting Point: N/A
    2. Boiling Point: N/A
    3. Flash Point: N/A
    4. Appearance: /
    5. Density: N/A
    6. Refractive Index: N/A
    7. Storage Temp.: N/A
    8. Solubility: N/A
    9. CAS DataBase Reference: 2,5,8,11,14,17,20,23,26,29,32,35-Dodecaoxaheptatriacontan-37-amine(CAS DataBase Reference)
    10. NIST Chemistry Reference: 2,5,8,11,14,17,20,23,26,29,32,35-Dodecaoxaheptatriacontan-37-amine(869718-87-6)
    11. EPA Substance Registry System: 2,5,8,11,14,17,20,23,26,29,32,35-Dodecaoxaheptatriacontan-37-amine(869718-87-6)
  • Safety Data

    1. Hazard Codes: N/A
    2. Statements: N/A
    3. Safety Statements: N/A
    4. WGK Germany:
    5. RTECS:
    6. HazardClass: N/A
    7. PackingGroup: N/A
    8. Hazardous Substances Data: 869718-87-6(Hazardous Substances Data)

869718-87-6 Usage

Uses

Used in Bioconjugation:
2,5,8,11,14,17,20,23,26,29,32,35-Dodecaoxaheptatriacontan-37-amine is used as a bioconjugation agent for linking biological molecules, such as proteins or nucleic acids, to other molecules or surfaces. The multiple amine groups provide reactive sites for covalent attachment.
Used in Drug Delivery:
2,5,8,11,14,17,20,23,26,29,32,35-Dodecaoxaheptatriacontan-37-amine is used as a component in drug delivery systems to improve the solubility, stability, and bioavailability of therapeutic agents. The amine groups can be used to attach drug molecules or modify the surface of drug delivery vehicles.
Used in PEG Hydrogel:
2,5,8,11,14,17,20,23,26,29,32,35-Dodecaoxaheptatriacontan-37-amine is used as a crosslinker in the formation of PEG hydrogels, which are three-dimensional networks of polyethylene glycol (PEG) polymers. The amine groups can react with PEG molecules to form stable hydrogel structures.
Used in Crosslinking:
2,5,8,11,14,17,20,23,26,29,32,35-Dodecaoxaheptatriacontan-37-amine is used as a crosslinking agent to connect different molecules or polymers together. The multiple amine groups can react with functional groups on other molecules to form covalent bonds, creating a network structure.
Used in Surface Functionalization:
2,5,8,11,14,17,20,23,26,29,32,35-Dodecaoxaheptatriacontan-37-amine is used for surface functionalization to modify the properties of materials, such as improving biocompatibility, enhancing adhesion, or providing specific chemical functionalities. The amine groups can be used to attach various functional groups or molecules to surfaces.

Check Digit Verification of cas no

The CAS Registry Mumber 869718-87-6 includes 9 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 6 digits, 8,6,9,7,1 and 8 respectively; the second part has 2 digits, 8 and 7 respectively.
Calculate Digit Verification of CAS Registry Number 869718-87:
(8*8)+(7*6)+(6*9)+(5*7)+(4*1)+(3*8)+(2*8)+(1*7)=246
246 % 10 = 6
So 869718-87-6 is a valid CAS Registry Number.

869718-87-6Downstream Products

869718-87-6Relevant articles and documents

Photophysics of Perylene Diimide Dianions and Their Application in Photoredox Catalysis

Li, Han,Wenger, Oliver S.

supporting information, (2021/12/23)

The two-electron reduced forms of perylene diimides (PDIs) are luminescent closed-shell species whose photochemical properties seem underexplored. Our proof-of-concept study demonstrates that straightforward (single) excitation of PDI dianions with green

Novel method for preparing tris (3,6 -dioxo-heptyl) amine

-

, (2021/04/14)

The invention relates to a new method for preparing tris(3,6-dioxaheptyl)amine. The new method is characterized in that ammonia water, diethylene glycol monomethyl ether and thionyl chloride are takenas raw materials, and the tris(3,6-dioxaheptyl)amine is synthesized through three steps. The new method provided by the invention has the following advantages that reaction conditions are mild, the operation is safe, and the danger of using high-risk chemicals such as hydrogen and Raney nickel is avoided; the reaction conversion rate is high, and the product yield is high; only products, sodium chloride and a very small amount of pre-distillation fractions are produced in the process, excess materials can be recycled after treatment, three wastes are very few, and the production process is green and environmentally friendly.

Hybrids of Small-Molecule CD4 Mimics with Polyethylene Glycol Units as HIV Entry Inhibitors

Kobayakawa, Takuya,Tsuji, Kohei,Konno, Kiju,Himeno, Ai,Masuda, Ami,Yang, Tingting,Takahashi, Kohei,Ishida, Yusuke,Ohashi, Nami,Kuwata, Takeo,Matsumoto, Kaho,Yoshimura, Kazuhisa,Sakawaki, Hiromi,Miura, Tomoyuki,Harada, Shigeyoshi,Matsushita, Shuzo,Tamamura, Hirokazu

, p. 1481 - 1496 (2021/02/27)

CD4 mimics are small molecules that inhibit the interaction of gp120 with CD4. We have developed several CD4 mimics. Herein, hybrid molecules consisting of CD4 mimics with a long alkyl chain or a PEG unit attached through a self-cleavable linker were synthesized. In anti-HIV activity, modification with a PEG unit appeared to be more suitable than modification with a long alkyl chain. Thus, hybrid molecules of CD4 mimics, with PEG units attached through an uncleavable linker, were developed and showed high anti-HIV activity and low cytotoxicity. In investigation of pharmacokinetics in a rhesus macaque, a hybrid compound had a more effective PK profile than that of the parent compound, and intramuscular injection was a more useful administration route to maintain the high blood concentration of the CD4 mimic than intravenous injection. The presented hybrid molecules of CD4 mimics with a PEG unit would be practically useful when combined with a neutralizing antibody.

Self-Assembly and Molecular Recognition in Water: Tubular Stacking and Guest-Templated Discrete Assembly of Water-Soluble, Shape-Persistent Macrocycles

Wang, Qiuhua,Zhong, Yulong,Miller, Daniel P.,Lu, Xiaoxing,Tang, Quan,Lu, Zhong-Lin,Zurek, Eva,Liu, Rui,Gong, Bing

, p. 2915 - 2924 (2020/02/04)

Supramolecular chemistry in aqueous media is an area with great fundamental and practical significance. To examine the role of multiple noncovalent interactions in controlled assembling and binding behavior in water, the self-association of five water-soluble hexakis(m-phenylene ethynylene) (m-PE) macrocycles, along with the molecular recognition behavior of the resultant assemblies, is investigated with UV-vis, fluorescence, CD, and NMR spectroscopy, mass spectrometry, and computational studies. In contrast to their different extents of self-aggregation in organic solvents, all five macrocycles remain aggregated in water at concentrations down to the micromolar (μM) range. CD spectroscopy reveals that 1-F6 and 1-H6, two macrocycles carrying chiral side chains and capable of H-bonded self-association, assemble into tubular stacks. The tubular stacks serve as supramolecular hosts in water, as exemplified by the interaction of macrocycles 1-H6 and 2-H6 and guests G1 through G4, each having a rod-like oligo(p-phenylene ethynylene) (p-PE) segment flanked by two hydrophilic chains. Fluorescence and 1H NMR spectroscopy revealed the formation of kinetically stable, discrete assemblies upon mixing 2-H6 and a guest. The binding stoichiometry, determined with fluorescence, 1H NMR, and ESI-MS, reveals that the discrete assemblies are novel pseudorotaxanes, each containing a pair of identical guest molecules encased by a tubular stack. The two guest molecules define the number of macrocyclic molecules that comprise the host, which curbs the "infinite" stack growth, resulting in a tubular stack with a cylindrical pore tailoring the length of the p-PE segment of the bound guests. Each complex is stabilized by the action of multiple noncovalent forces including aromatic stacking, side-chain H-bonding, and van der Waals interactions. Thus, the interplay of multiple noncovalent forces aligns the molecules of macrocycles 1 and 2 into tubular stacks with cylindrical inner pores that, upon binding rod-like guests, lead to tight, discrete, and well-ordered tubular assemblies that are unprecedented in water.

Targeting G Protein-Coupled Receptors with Magnetic Carbon Nanotubes: The Case of the A3 Adenosine Receptor

Pineux, Florent,Federico, Stephanie,Klotz, Karl-Norbert,Kachler, Sonja,Michiels, Carine,Sturlese, Mattia,Prato, Maurizio,Spalluto, Giampiero,Moro, Stefano,Bonifazi, Davide

, p. 1909 - 1920 (2020/09/11)

The A3 adenosine receptor (AR) is a G protein-coupled receptor (GPCR) overexpressed in the membrane of specific cancer cells. Thus, the development of nanosystems targeting this receptor could be a strategy to both treat and diagnose cancer. Iron-filled carbon nanotubes (CNTs) are an optimal platform for theranostic purposes, and the use of a magnetic field can be exploited for cancer magnetic cell sorting and thermal therapy. In this work, we have conjugated an A3AR ligand on the surface of iron-filled CNTs with the aim of targeting cells overexpressing A3ARs. In particular, two conjugates bearing PEG linkers of different length were designed. A docking analysis of A3AR showed that neither CNT nor linker interferes with ligand binding to the receptor; this was confirmed by in vitro preliminary radioligand competition assays on A3AR. Encouraged by this result, magnetic cell sorting was applied to a mixture of cells overexpressing or not the A3AR in which our compound displayed indiscriminate binding to all cells. Despite this, it is the first time that a GPCR ligand has been anchored to a magnetic nanosystem, thus it opens the door to new applications for cancer treatment.

MULTI-ELECTRON REDOX-ACTIVE ORGANIC MOLECULES FOR HIGH-ENERGY-DENSITY NONAQUEOUS REDOX FLOW BATTERIES

-

Page/Page column 10-13, (2020/12/11)

The invention relates to 1,4-diaminoanthraquinones and an electrolyte, and their use in batteries.

Anion Recognition in Water by Charge-Neutral Halogen and Chalcogen Bonding Foldamer Receptors

Borissov, Arseni,Marques, Igor,Lim, Jason Y.C.,Félix, Vítor,Smith, Martin D.,Beer, Paul D.

, p. 4119 - 4129 (2019/03/07)

A novel strategy for the recognition of anions in water using charge-neutral σ-hole halogen and chalcogen bonding acyclic hosts is demonstrated for the first time. Exploiting the intrinsic hydrophobicity of halogen and chalcogen bond donor atoms integrated into a foldamer structural molecular framework containing hydrophilic functionalities, a series of water-soluble receptors was constructed for an anion recognition investigation. Isothermal titration calorimetry (ITC) binding studies with a range of anions revealed the receptors to display very strong and selective binding of large, weakly hydrated anions such as I- and ReO4-. This is achieved through the formation of 2:1 host-guest stoichiometric complex assemblies, resulting in an encapsulated anion stabilized by cooperative, multidentate, convergent σ-hole donors, as shown by molecular dynamics simulations carried out in water. Importantly, the combination of multiple σ-hole-anion interactions and hydrophobic collapse results in I- affinities in water that exceed all known σ-hole receptors, including cationic systems (β2 up to 1.68 × 1011 M-2). Furthermore, the anion binding affinities and selectivity trends of the first example of an all-chalcogen bonding anion receptor in pure water are compared with halogen bonding and hydrogen bonding receptor analogues. These results further advance and establish halogen and chalcogen bond donor functions as new tools for overcoming the challenging goal of anion recognition in pure water.

A halogen-bonding foldamer molecular film for selective reagentless anion sensing in water

Hein, Robert,Borissov, Arseni,Smith, Martin D.,Beer, Paul D.,Davis, Jason J.

, p. 4849 - 4852 (2019/05/02)

We describe self-assembled monolayers of novel halogen-bonding and hydrogen-bonding foldamer receptors capable of selectively recruiting perrhenate, iodide and thiocyanate in water. Unprecedented anion sensing via impedance-derived capacitance spectroscopy enables subsequent sensitive and selective anion detection without the need for a redox probe. Importantly, the sensing of any anion should be possible using this novel electrochemical approach.

Cell-Penetrating Dynamic-Covalent Benzopolysulfane Networks

Cheng, Yangyang,Zong, Lili,López-Andarias, Javier,Bartolami, Eline,Okamoto, Yasunori,Ward, Thomas R.,Sakai, Naomi,Matile, Stefan

supporting information, p. 9522 - 9526 (2019/06/24)

Cyclic oligochalcogenides (COCs) are emerging as promising systems to penetrate cells. Clearly better than and different to the reported diselenolanes and epidithiodiketopiperazines, we introduce the benzopolysulfanes (BPS), which show efficient delivery, insensitivity to inhibitors of endocytosis, and compatibility with substrates as large as proteins. This high activity coincides with high reactivity, selectively toward thiols, exceeding exchange rates of disulfides under tension. The result is a dynamic-covalent network of extreme sulfur species, including cyclic oligomers, from dimers to heptamers, with up to nineteen sulfurs in the ring. Selection from this unfolding adaptive network then yields the reactivities and selectivities needed to access new uptake pathways. Contrary to other COCs, BPS show high retention on thiol affinity columns. The identification of new modes of cell penetration is important because they promise new solutions to challenges in delivery and beyond.

Curcumin derivative and uses thereof

-

Paragraph 0150; 0159; 0160, (2019/08/01)

The present invention relates to a curcumin derivative represented by a general formula (I) or a pharmaceutically acceptable salt thereof, and a preparation method thereof, a composition containing aneffective amount of the compound represented by the general formula (I) or the pharmaceutically acceptable salt thereof, and applications of the compound represented by the general formula (I) or thepharmaceutically acceptable salt thereof in preparation of drugs for treatment of cancers, fatty liver, inflammations and the like, wherein R and R are defined in the specification.

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