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A series of unprecedented binaphthyl-osmium nanoparticles (OsNPs) with chiral modifiers were applied in the heterogeneous asymmetric dihydroxylation of alkenes. A remarkable size effect of the OsNPs, depending on the density of the covalent organic shells, on the reactivity and enantioselectivity of the dihydroxylation reaction was revealed. Successful recycling of the OsNPs was also demonstrated and high reaction efficiency and enantioselectivity were maintained.

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Phthalazine – Wikipedia,
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Chemistry involves the study of all things chemical – chemical processes, chemical compositions and chemical manipulation – in order to better understand the way in which materials are structured, how they change and how they react in certain situations. , Product Details of 643-79-8, 643-79-8, Name is Benzene-1,2-dicarboxaldehyde, molecular formula is C8H6O2, belongs to phthalazine compound. In a document, author is Zare, Mohammad Reza, introduce the new discover.

Sulfonated magnetic nanoparticles (SO3H-Fe3O4@SiO2 MNPs) have been explored as an efficient, cost-effective, and recyclable nanocatalyst for the facile synthesis of 3,4-dihydro-2H-indazolo[1,2-b]phthalazin-1,6,11(13H)-triones through a one-pot three-component reaction between aldehydes, dimedone, and phthalhydrazide under mild and green (solvent-free) conditions. Simple separation of the catalyst using an external magnet, efficient recyclability of the developed magnetic nanocatalyst up to five fresh runs without significant loss in its catalytic activity, excellent yields of the designed reactions (88 to 98%), low reaction times as well as solvent-free and facial reaction condition are some advantages of the present procedure that qualified the fabricated magnetic nanocatalyst for industrial applications.

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Phthalazine – Wikipedia,
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The synthesis of 1H-indazolo[1,2-b]phthalazine-1,6,11(13H)-trione derivatives, using one-pot three-component condensation reaction of 3-nitrophthalic anhydride, hydrazine monohydrate, dimedone, and aromatic aldehydes in the presence of ZrO(NO3)(2).2H(2)O as the novel catalyst and in reflux conditions in EtOH was reported. Quantum theoretical calculations for three structures of compounds (5a, 5b, and 5c) were performed using the Hartree-Fock (HF) and density functional theory (DFT). From the optimized structure, geometric parameters were obtained and experimental measurements were compared with the calculated data. The structures of the products were confirmed by IR, H-1 NMR, C-13 NMR, mass spectra, and elemental analyses. The IR spectra data and H-1 NMR and C-13 NMR chemical shift computations of the 1H-indazolo[1,2-b]phthalazine-1,6,11(13H)-trione derivatives in the ground state were calculated. Frontier molecular orbitals (FMOs), total density of states (DOS), thermodynamic parameters, and molecular electrostatic potential (MEP) of the title compounds were investigated by theoretical calculations. Molecular properties such as the ionization potential (I), electron affinity (A), chemical hardness (eta), electronic chemical potential (mu), and electrophilicity (omega) were investigated for the structures. Thus, there was an excellent agreement between experimental and theoretical results.

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Novel 1-anilino-4-phenylphthalazine derivatives, compositions containing them, and their use as JAK1 inhibitors and for the treatment of cancer, inflammatory and autoimmune diseases are claimed. This represents a novel scaffold for JAK inhibitors and is highly distinct from the JAK1 inhibitors previously described, although the same scaffold has been employed in other kinase inhibitors.

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Hydrated ferric sulfate can be used as an efficient and reusable catalyst for the synthesis of 2H-indazolo[2,1-b]phthalazine-trione derivatives via one-pot three-component condensation reaction of phthalhydrazide, aromatic aldehydes and cyclic-1,3-diketones in ethanol under reflux conditions.

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The isolation, quantitation, and characterization of drug metabolites in biological fluids remain challenging. Rapid access to oxidized drugs could facilitate metabolite identification and enable early pharmacology and toxicity studies. Herein, we compared biotransformations to classical and new chemical C-H oxidation methods using oxcarbazepine, naproxen, and an early compound hit (phthalazine 1). These studies illustrated the low preparative efficacy of biotransformations and the inability of chemical methods to oxidize complex pharmaceuticals. We also disclose an aerobic catalytic protocole (CuI/air) to oxidize tertiary amines and benzylic CH’s in drugs. The reaction tolerates a broad range of functionalities and displays a high level of chemoselectivity, which is not generally explained by the strength of the C-H bonds but by the individual structural chemotype. This study represents a first step toward establishing a chemical toolkit (chemotransformations) that can selectively oxidize C-H bonds in complex pharmaceuticals and rapidly deliver drug metabolites.

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Phthalazine – Wikipedia,
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Novel 2,3-dihydrofuran derivatives were synthesized through a tandem Knoevenagel-Michael cyclization in good yield by reacting alpha-tosyloxy ketone, 5,5-dimethyl-1,3-cyclohexanedione, and various aldehydes in the presence of phthalazine in acetonitrile. These compounds were subjected to in vitro antibacterial screening against eight micro-organisms by using diffusion method and also in vitro cytotoxicity screening against four human cancerous cell lines by applying MTT assay. Some of the compounds showed impressive activities.

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Background: Extensive studies were reported in the synthesis of several phthalazine derivatives as promising anticancer agents as potent VEGFR-2 inhibitors. Vatalanib (PTK787) was the first anilinophthalazine published derivative as a potent inhibitor of VEGFR. The discovery of vatalanib as a clinical candidate led to the design and synthesis of different anilinophthalazine derivatives as potent inhibitors for VEGFR-2. The objective of present research work is the synthesis of new agents with the same essential pharmacophoric features of the reported and clinically used VEGFR-2 inhibitors (e.g vatalanib and sorafenib). The main core of our molecular design rationale comprised bioisosteric modification strategies of VEGFR-2 inhibitors at four different positions. Material and Methods: A correlation between structure and biological activity of our designed phthalazines was established using molecular docking and VEGFR-2 kinase assay. Results and Discussion: In view of their expected anticancer activity, novel triazolo[3,4-a]phthalazine derivatives 5-6a-o and 3-substituted-bis([1,2,41triazolo)[3,4-a:4′,3′-c]phthalazines 9a-b were designed, synthesized and evaluated for their anti-proliferative activity against two human tumor cell lines HCT-116 human colon adenocarcinoma and MCF-7 breast cancer. It was found that, compound 6o the most potent derivative against both HCT116 and MCF-7 cancer cell lines. Compounds 6o, 6m, 6d and 9b showed the highest anticancer activities against HCT116 human colon adenocarcinoma with IC50 of 7 +/- 0.06, 13 +/- 0.11, 15 +/- 0.14 and 23 +/- 0.22 mu M respectively while compounds 6o, 6d, 6a and 6n showed the highest anticancer activities against MCF-7 breast cancer with IC50 of 16.98 +/- 0.15, 18.2 +/- 0.17, 57.54 +/- 0.53 and 66.45 +/- 0.67 mu M respectively. Sorafenib as a highly potent VEGFR-2 inhibitor was used as a reference drug with IC50 of 5.47 +/- 0.3 and 7.26 +/- 0.3 mu M respectively. Nine compounds were further evaluated for their VEGFR-2 inhibitory activity. Compounds 6o, 6m, 6d and 9b emerged as the most active counterparts against VEGFR-2 with IC50 values of 0.1 +/- 0.01, 0.15 +/- 0.02, 0.28 +/- 0.03 and 0.38 +/- 0.04 mu M, respectively comparable to that of sorafenib (IC50 = 0.1+0.02) mu M. Furthermore, molecular docking studies were carried out for all synthesized compounds to investigate their binding pattern and predict their binding affinities towards VEGFR-2 active site. In silico ADMET studies were calculated for the tested compounds. Most of our designed compounds exhibited good ADMET profile. Conclusion: The obtained results showed that, the most active compounds could be useful as a template for future design, optimization, adaptation and investigation to produce more potent and selective VEGFR-2 inhibitors with higher anticancer analogs.

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Reference:
Phthalazine – Wikipedia,
,Phthalazine | C8H6N2 – PubChem

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A convenient synthesis has been achieved of 11 substituted phthalazines starting from the condensation of 2-(p-toluoyl) benzoic acid with hydrazine and some of its simple congeners, H2NNHR. Four of the phthalazines showed activity as inhibitors of the corrosion of steel immersed in 5 M HCl solutions.

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The prevalence of solvent effects in heterogeneous catalysis in condensed media has motivated developing quantitative kinetic, and theoretical assessments of solvent structures and their interactions with reaction intermediates and transition states. 643-79-8, Name is Benzene-1,2-dicarboxaldehyde, molecular formula is C8H6O2, belongs to phthalazine compound. In a document, author is Ghahremani, Mahboubeh, introduce the new discover, Computed Properties of https://www.ambeed.com/products/643-79-8.html.

In this study, the nanoparticles of amorphous silica were easily extracted from low-cost rice husk ash. They were functionalized with 3-(chloropropyl) trimethoxysilane by incorporating chloropropyl groups directly through the condensation of nanosilica and 3-chloropropyl trimethoxysilane. The target composite was synthesized by nucleophilic substitution of 1,4-diazabicyclo[2.2.2]octane (DABCO) onto the propyl groups. The effective required extent of this nanocomposite for the preparation of phthalazine-trione and phthalazine-dione derivatives is surprising under reflux conditions via the one-pot three-component condensation reaction of phthalhydrazide, aromatic aldehydes, and diketones. This green catalyst is easily recovered and re-utilized for the next reaction at least four runs without having any considerable influence on the yields. This simple green methodology not only improves the purity of the product, but also provides environmental and economic advantages. Furthermore, H-1 and C-13 chemical shift values, X-ray spectra, and the structural characteristics of phthalazine-dione compounds have been investigated in detail. The obtained values from DFT calculations including chemical shifts and structural parameters were compared with the corresponding experimental data. The calculated H-1 and C-13 chemical shifts and X-ray spectra are in good agreement with experimental ones.

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