El-Baraky, Iman A’s team published research in Clinics and Research in Hepatology and Gastroenterology in 2021-09-30 | 58-97-9

Clinics and Research in Hepatology and Gastroenterology published new progress about Geometric phase. 58-97-9 belongs to class tetrahydrofurans, and the molecular formula is C9H13N2O9P, Electric Literature of 58-97-9.

El-Baraky, Iman A.; Abbassi, Maggie M.; Ebeid, Fatma S.; Hassany, Mohamed; Sabry, Nirmeen A.; El-Sayed, Manal H. published the artcile< Beta-thalassemia major alters sofosbuvir/ledipasvir exposure in Hepatitis C virus infected adolescent patients>, Electric Literature of 58-97-9, the main research area is beta thalassemia major sofosbuvir ledipasvir Hepatitis C virus; Hepatitis C virus; Ledipasvir; Pharmacokinetics; Sofosbuvir; Thalassemia.

Hepatitis C virus (HCV) infected adolescents with beta-thalassemia major (BTM) are considered a potential population for HCV micro-elimination model development where BTM may neg. impact the pharmacokinetic exposure parameters of sofosbuvir/ledipasvir (SOF/LED).The study aimed at studying the effect of BTM on SOF/LED and SOF metabolite (GS-331007) pharmacokinetics.A prospective, controlled study recruiting BTM and control HCV infected adolescents (Clinicaltrials.gov identifier-NCT04353986). Pharmacokinetic exposure to GS-331007 and LED was the primary pharmacokinetic outcome. No-effect boundaries were set to 90confidence interval (CI) of exposure geometric mean ratio (GMR) within 70-143. Dose suitability was based on the 90CI of exposure GMR within 50-200compared to adults. The percentage of patients achieving sustained virol. response 12 wk post-treatment (SVR12) was the primary efficacy endpoint.Thirteen patients were enrolled per study group. All patients were included in the pharmacokinetic anal. (n=26). BTM patients showed lower GS-331007 and LED exposure that could, resp., be as low as 45.4and 36.1compared to their control group. GS-331007 exposure in BTM patients was nearly half (56.8, 90CI 45.3-71.2) that observed in adults. Despite that low drug exposure in 46.2of BTM patients may alert dose unsuitability, they achieved SVR12. Moreover, patients with total bilirubin ≥1.93 mg/dL were predicted to have low GS-331007 exposure (0.913 receiver operating characteristic area under the curve with sensitivity and specificity >80).The identified systematically lower drug exposure in BTM patients might partially explain relapses or treatment failures among BTM patients reported in other studies. BTM may be a hurdle towards implementing HCV micro-elimination model that may necessitate dose-adjustment.

Clinics and Research in Hepatology and Gastroenterology published new progress about Geometric phase. 58-97-9 belongs to class tetrahydrofurans, and the molecular formula is C9H13N2O9P, Electric Literature of 58-97-9.

Referemce:
Tetrahydrofuran – Wikipedia,
Tetrahydrofuran | (CH2)3CH2O – PubChem

Meng, Xiaoyu’s team published research in Journal of Catalysis in 2020-12-31 | 97-99-4

Journal of Catalysis published new progress about Adsorption energy. 97-99-4 belongs to class tetrahydrofurans, and the molecular formula is C5H10O2, Recommanded Product: (Tetrahydrofuran-2-yl)methanol.

Meng, Xiaoyu; Wang, Lei; Chen, Lifang; Xu, Ming; Liu, Ning; Zhang, Junbo; Yang, Yusen; Wei, Min published the artcile< Charge-separated metal-couple-site in NiZn alloy catalysts towards furfural hydrodeoxygenation reaction>, Recommanded Product: (Tetrahydrofuran-2-yl)methanol, the main research area is nickel zinc alloy catalyst furfural hydrodeoxygenation reaction.

Catalytic conversion of biomass furfural (FAL) to high value-added products (e.g., 2-methylfuran, MF) has attracted considerable attention, in which control over catalytic selectivity plays a crucial issue. Herein, a series of heterogonous NiZn alloy supported on the mixed metal oxides (MMO) were synthesized derived from layered double hydroxides (LDHs) with various Ni/Zn ratio (3/1, 1/1 or 1/3). XRD, HRTEM and XAFS measurements confirm that with the increase of Zn content, the corresponding NiZn alloy transforms from α-NiZn to β-NiZn. Dramatically, the selectivity of MF displays an improvement from 12% to 95% along with this phase transformation process; and the MF yield reaches to 95% over Ni1Zn3-MMO sample. A combination study including XPS, CO-DRIFTS, in situ FT-IR and DFT calculation verifies that metallic Ni serves as active site, resulting in an effective suppression of side reactions. Moreover, a charge-separated metal-couple-site (Niδ–Znδ+) is on the surface of Ni1Zn3-MMO originating from electron transfer between Ni and Zn. This active structure stabilizes a η2(C, O) adsorption configuration of intermediate, in which C atom is bonded to the Niδ- site and O atom is attached to the Znδ+ site. This work provides an efficient and cost-effective catalyst that can simultaneously inhibit C=C hydrogenation and promote C-O cleavage, which would be potentially used in catalytic conversion of biomass-derived platform mols.

Journal of Catalysis published new progress about Adsorption energy. 97-99-4 belongs to class tetrahydrofurans, and the molecular formula is C5H10O2, Recommanded Product: (Tetrahydrofuran-2-yl)methanol.

Referemce:
Tetrahydrofuran – Wikipedia,
Tetrahydrofuran | (CH2)3CH2O – PubChem

Hernandez-Ruiz, Raquel’s team published research in Chemistry – A European Journal in 2021 | CAS: 696-59-3

2,5-Dimethoxytetrahydrofuran(cas: 696-59-3) is a member of ether. When aromatic ethers are exposed to halogen in the presence or absence of a catalyst, they undergo halogenation, such as bromination.Name: 2,5-Dimethoxytetrahydrofuran

Name: 2,5-DimethoxytetrahydrofuranIn 2021 ,《Mo-Catalyzed One-Pot Synthesis of N-Polyheterocycles from Nitroarenes and Glycols with Recycling of the Waste Reduction Byproduct. Substituent-Tuned Photophysical Properties》 appeared in Chemistry – A European Journal. The author of the article were Hernandez-Ruiz, Raquel; Rubio-Presa, Ruben; Suarez-Pantiga, Samuel; Pedrosa, Maria R.; Fernandez-Rodriguez, Manuel A.; Tapia, M. Jose; Sanz, Roberto. The article conveys some information:

A catalytic domino reduction-imine formation-intramol. cyclization-oxidation for the general synthesis of a wide variety of biol. relevant N-polyheterocycles, such as quinoxaline- and quinoline-fused derivatives, and phenanthridines, is reported. A simple, easily available, and environmentally friendly dioxomolybdenum(VI) complex has proven to be a highly efficient and versatile catalyst for transforming a broad range of starting nitroarenes involving several redox processes. Not only is this a sustainable, step-economical as well as air- and moisture-tolerant method, but also it is worth highlighting that the waste byproduct generated in the first step of the sequence is recycled and incorporated in the final target mol., improving the overall synthetic efficiency. Moreover, selected indoloquinoxalines have been photophys. characterized in cyclohexane and toluene with exceptional fluorescence quantum yields above 0.7 for the alkyl derivatives The experimental process involved the reaction of 2,5-Dimethoxytetrahydrofuran(cas: 696-59-3Name: 2,5-Dimethoxytetrahydrofuran)

2,5-Dimethoxytetrahydrofuran(cas: 696-59-3) is a member of ether. When aromatic ethers are exposed to halogen in the presence or absence of a catalyst, they undergo halogenation, such as bromination.Name: 2,5-Dimethoxytetrahydrofuran

Referemce:
Tetrahydrofuran – Wikipedia,
Tetrahydrofuran | (CH2)3CH2O – PubChem

Roy, Sarabindu’s team published research in Organic Process Research & Development in 2022 | CAS: 696-59-3

2,5-Dimethoxytetrahydrofuran(cas: 696-59-3) is a member of ether. When aromatic ethers are exposed to halogen in the presence or absence of a catalyst, they undergo halogenation, such as bromination.Formula: C6H12O3

Formula: C6H12O3In 2022 ,《Facile and Scalable Methodology for the Pyrrolo[2,1-f][1,2,4]triazine of Remdesivir》 appeared in Organic Process Research & Development. The author of the article were Roy, Sarabindu; Yadaw, Ajay; Roy, Subho; Sirasani, Gopal; Gangu, Aravind; Brown, Jack D.; Armstrong, Joseph D. III; Stringham, Rodger W.; Gupton, B. Frank; Senanayake, Chris H.; Snead, David R.. The article conveys some information:

Pyrrolo[2,1-f][1,2,4]triazine (I) is an important regulatory starting material in the production of the antiviral drug remdesivir. Compound I was produced through a newly developed synthetic methodol. utilizing simple building blocks such as pyrrole, chloramine, and formamidine acetate by examining the mechanistic pathway for the process optimization exercise. Triazine I was obtained in 55% overall yield in a two-vessel-operated process. This work describes the safety of the process, impurity profiles and control, and efforts toward the scale-up of triazine for the preparation of kilogram quantity. In the experimental materials used by the author, we found 2,5-Dimethoxytetrahydrofuran(cas: 696-59-3Formula: C6H12O3)

2,5-Dimethoxytetrahydrofuran(cas: 696-59-3) is a member of ether. When aromatic ethers are exposed to halogen in the presence or absence of a catalyst, they undergo halogenation, such as bromination.Formula: C6H12O3

Referemce:
Tetrahydrofuran – Wikipedia,
Tetrahydrofuran | (CH2)3CH2O – PubChem

El-Sayed, Hassan A.’s team published research in Journal of Heterocyclic Chemistry in 2019 | CAS: 696-59-3

2,5-Dimethoxytetrahydrofuran(cas: 696-59-3) is a member of ether. When aromatic ethers are exposed to halogen in the presence or absence of a catalyst, they undergo halogenation, such as bromination.SDS of cas: 696-59-3

SDS of cas: 696-59-3In 2019 ,《Direct Synthesis of Multi-functional Pyrimidine, Pyrazine, and Pyridine Scaffolds via Inter-molecular and Intramolecular Annulations of 3-Amino-thieno[2,3-b]pyridine-2-carboxylate》 was published in Journal of Heterocyclic Chemistry. The article was written by El-Sayed, Hassan A.; Said, Said A.. The article contains the following contents:

A direct and facile synthesis of a new series of tricyclic and tetracyclic pyrimidine, pyrazine, and pyridine derivatives fused to thieno[2,3-b]pyridine was performed from Et carboxylate I as a synthon. The antibacterial results illustrated no significant results for the investigated compounds except compound II, which has moderate activity against Gram-pos. bacteria. The experimental process involved the reaction of 2,5-Dimethoxytetrahydrofuran(cas: 696-59-3SDS of cas: 696-59-3)

2,5-Dimethoxytetrahydrofuran(cas: 696-59-3) is a member of ether. When aromatic ethers are exposed to halogen in the presence or absence of a catalyst, they undergo halogenation, such as bromination.SDS of cas: 696-59-3

Referemce:
Tetrahydrofuran – Wikipedia,
Tetrahydrofuran | (CH2)3CH2O – PubChem

Li, Zijian’s team published research in Journal of the American Chemical Society in 2021 | CAS: 19444-84-9

3-Hydroxydihydrofuran-2(3H)-one(cas: 19444-84-9) may be employed as starting reagent in the synthesis of series of seco-pseudonucleoside synthons via aminolysis. It may be employed as starting reagent in the synthesis of enantiomerically pure orthogonally protected δ-azaproline, via Mitsunobu reaction.Product Details of 19444-84-9

Product Details of 19444-84-9On March 10, 2021, Li, Zijian; Sun, Wenxuan; Wang, Xianxu; Li, Luyang; Zhang, Yong; Li, Chao published an article in Journal of the American Chemical Society. The article was 《Electrochemically Enabled, Nickel-Catalyzed Dehydroxylative Cross-Coupling of Alcohols with Aryl Halides》. The article mentions the following:

As alcs. are ubiquitous throughout chem. science, this functional group represents a highly attractive starting material for forging new C-C bonds. Here, it is demonstrated that the combination of anodic preparation of alkoxy triphenylphosphonium ion and nickel catalyzed cathodic reductive cross-coupling provides an efficient method to construct C(sp2)-C(sp3) bonds, in which free alcs. and aryl bromides e.g., bromobenzene-both readily available chems. can be directly used as coupling partners yielding arene derivative e.g., I. This nickel catalyzed paired electrolysis reaction features a broad substrate scope bearing a wide gamut of functionalities, which was illustrated by the late-stage arylation of several structurally complex natural products and pharmaceuticals. In addition to this study using 3-Hydroxydihydrofuran-2(3H)-one, there are many other studies that have used 3-Hydroxydihydrofuran-2(3H)-one(cas: 19444-84-9Product Details of 19444-84-9) was used in this study.

3-Hydroxydihydrofuran-2(3H)-one(cas: 19444-84-9) may be employed as starting reagent in the synthesis of series of seco-pseudonucleoside synthons via aminolysis. It may be employed as starting reagent in the synthesis of enantiomerically pure orthogonally protected δ-azaproline, via Mitsunobu reaction.Product Details of 19444-84-9

Referemce:
Tetrahydrofuran – Wikipedia,
Tetrahydrofuran | (CH2)3CH2O – PubChem

Li, Guangchen’s team published research in Angewandte Chemie, International Edition in 2022 | CAS: 696-59-3

2,5-Dimethoxytetrahydrofuran(cas: 696-59-3) is a member of ether. Friedel Crafts reaction, for example, adds an alkyl or acyl group to aromatic ethers when they react with an alkyl or acyl halide in the presence of a Lewis acid as a catalyst.Related Products of 696-59-3

In 2022,Li, Guangchen; Xing, Yangyang; Zhao, Hui; Zhang, Jin; Hong, Xin; Szostak, Michal published an article in Angewandte Chemie, International Edition. The title of the article was 《Chemoselective Transamidation of Thioamides by Transition-Metal-Free N-C(S) Transacylation》.Related Products of 696-59-3 The author mentioned the following in the article:

The first general, mild and highly chemoselective method for transamidation of thio-amides by NC(S) transacylation using non-nucleophilic anilines was reported. The method was broadly compatible with N-Ar tertiary thioamides and N-thioacyl-azoles as selective N-thioacyl transfer reagents. DFT studies that provided insight into the chemoselectivity of this new transamidation method and provided guidelines for the development of future transamidation methods of the thioamide bond.2,5-Dimethoxytetrahydrofuran(cas: 696-59-3Related Products of 696-59-3) was used in this study.

2,5-Dimethoxytetrahydrofuran(cas: 696-59-3) is a member of ether. Friedel Crafts reaction, for example, adds an alkyl or acyl group to aromatic ethers when they react with an alkyl or acyl halide in the presence of a Lewis acid as a catalyst.Related Products of 696-59-3

Referemce:
Tetrahydrofuran – Wikipedia,
Tetrahydrofuran | (CH2)3CH2O – PubChem

Panda, Biswajit’s team published research in Journal of the Indian Chemical Society in 2020 | CAS: 696-59-3

2,5-Dimethoxytetrahydrofuran(cas: 696-59-3) is a member of ether. When aromatic ethers are exposed to halogen in the presence or absence of a catalyst, they undergo halogenation, such as bromination.Category: tetrahydrofurans

Category: tetrahydrofuransIn 2020 ,《Towards the template synthesis of conjugated pyrrole based oligo-heteroaryls》 was published in Journal of the Indian Chemical Society. The article was written by Panda, Biswajit. The article contains the following contents:

Synthesis of polymers and Oligomers with various interesting phys. properties is a rewarding task for the chemist. oligoheteroaryls are a significant class of organic compounds due to their wide applicability in various fields. Here, in this article, the synthetic studies directed for the preparation of conjugated pyrrole based oligo-heteroaryls was reported. The successful synthesis of double stranded polymeric ladderphane using ring opening metathesis polymerizations (ROMP) and palladium catalyzed Suzuki coupling were the key feature of this work. Hydrolysis of the double stranded polymer was unsuccessful due to its insoluble nature. The effort to increase the solubility of the double stranded polymers by the incorporation of long-chain aliphatic counterpart is underway in our laboratory In the part of experimental materials, we found many familiar compounds, such as 2,5-Dimethoxytetrahydrofuran(cas: 696-59-3Category: tetrahydrofurans)

2,5-Dimethoxytetrahydrofuran(cas: 696-59-3) is a member of ether. When aromatic ethers are exposed to halogen in the presence or absence of a catalyst, they undergo halogenation, such as bromination.Category: tetrahydrofurans

Referemce:
Tetrahydrofuran – Wikipedia,
Tetrahydrofuran | (CH2)3CH2O – PubChem

Wurzler, Gleicielle Tozzi’s team published research in Fuel Processing Technology in 2022 | CAS: 19444-84-9

3-Hydroxydihydrofuran-2(3H)-one(cas: 19444-84-9) may be employed as starting reagent in the synthesis of series of seco-pseudonucleoside synthons via aminolysis. It may be employed as starting reagent in the synthesis of enantiomerically pure orthogonally protected δ-azaproline, via Mitsunobu reaction.Quality Control of 3-Hydroxydihydrofuran-2(3H)-one

Quality Control of 3-Hydroxydihydrofuran-2(3H)-oneOn June 1, 2022, Wurzler, Gleicielle Tozzi; da Silva, Victor Teixeira; de Almeida Azevedo, Debora; Ana da Silva, Ayla Sant’; Noronha, Fabio Bellot published an article in Fuel Processing Technology. The article was 《Integrating bio-oil and carbohydrate valorization on the fractionation of sugarcane bagasse via Organosolv process using Mo2C-based catalysts》. The article mentions the following:

This work studied the fractionation of sugarcane bagasse via Organosolv treatment using isopropanol/water in the presence of Raney-Ni and molybdenum carbide catalysts (Bulk Mo2C and Mo2C supported on activated carbon (AC) or Al2O3). The degree of delignification, the bio-oil and solid residue composition depended on the type of catalyst. A partial extraction of hemicellulose occurred followed by depolymerization, resulting in a product distribution that depended on the catalyst. Raney-Ni catalyst promoted the formation of diols and triols, while xylose, furfural, and furan were mainly produced by Mo2C based-catalysts. The Organosolv treatment without catalyst and in the presence of bulk Mo2C produced a bio-oil containing mainly 2,3-dihydrobenzofuran. Mo2C/AC and Mo2C/Al2O3 are promising catalysts for the fractionation of sugarcane bagasse that produced a bio-oil with higher yield to substituted methoxyphenols and a solid residue more easily hydrolyzed by cellulases, producing higher yield to glucose than Raney-Ni catalyst. In the experiment, the researchers used 3-Hydroxydihydrofuran-2(3H)-one(cas: 19444-84-9Quality Control of 3-Hydroxydihydrofuran-2(3H)-one)

3-Hydroxydihydrofuran-2(3H)-one(cas: 19444-84-9) may be employed as starting reagent in the synthesis of series of seco-pseudonucleoside synthons via aminolysis. It may be employed as starting reagent in the synthesis of enantiomerically pure orthogonally protected δ-azaproline, via Mitsunobu reaction.Quality Control of 3-Hydroxydihydrofuran-2(3H)-one

Referemce:
Tetrahydrofuran – Wikipedia,
Tetrahydrofuran | (CH2)3CH2O – PubChem

Ma, Kai-Qing’s team published research in Journal of Asian Natural Products Research in 2020 | CAS: 696-59-3

2,5-Dimethoxytetrahydrofuran(cas: 696-59-3) is a member of ether. Friedel Crafts reaction, for example, adds an alkyl or acyl group to aromatic ethers when they react with an alkyl or acyl halide in the presence of a Lewis acid as a catalyst.Application of 696-59-3

《Formal enantioselective total synthesis of bisdehydroneostemoninine》 was published in Journal of Asian Natural Products Research in 2020. These research results belong to Ma, Kai-Qing; Ren, Hu-Bin; Chao, Jian-Bin; Qin, Xue-Mei. Application of 696-59-3 The article mentions the following:

A formal enantioselective total synthesis of bisdehydroneostemoninine I employing L-glutamic acid as the chiral pool is described. The key features of the synthesis include regioselective and enantioselective opening of the chiral epoxide, (2R)-2-[3-[[(1,1-dimethylethyl)dimethylsilyl]oxy]propyl]oxirane with dimethylsulfonium methylide and tandem Friedel-Crafts cyclization followed by lactonization to form a 5-7-5 tricyclic core of the target stemona alkaloids I. The synthetic route provides opportunities to explore the biol. behavior of enantiopure compound I.2,5-Dimethoxytetrahydrofuran(cas: 696-59-3Application of 696-59-3) was used in this study.

2,5-Dimethoxytetrahydrofuran(cas: 696-59-3) is a member of ether. Friedel Crafts reaction, for example, adds an alkyl or acyl group to aromatic ethers when they react with an alkyl or acyl halide in the presence of a Lewis acid as a catalyst.Application of 696-59-3

Referemce:
Tetrahydrofuran – Wikipedia,
Tetrahydrofuran | (CH2)3CH2O – PubChem