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Keywords = cinchona alkaloids

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15 pages, 2550 KB  
Article
Dihydroquinine Enhances Radiosensitivity in Cervical Cancer Cells Accompanied by Radiation-Induced Cellular Responses
by Ausanai Prapan, Pimvaree Aissara, Peerawit Soonthornchookiat, Chanyatip Suwannasing, Jirapas Jongjitwimol, Chatrawut Pattaweerakul, Yu Xiong, Saranya Chaiwaree and Hans Bäumler
Cells 2026, 15(16), 1484; https://doi.org/10.3390/cells15161484 - 18 Aug 2026
Viewed by 400
Abstract
Radiosensitizers are being investigated to improve the therapeutic efficacy of radiotherapy by enhancing tumor cell sensitivity while minimizing damage to normal tissues. Dihydroquinine (DHQ), a naturally occurring Cinchona alkaloid with diverse biological activities, has not previously been evaluated for radiosensitizing potential. In this [...] Read more.
Radiosensitizers are being investigated to improve the therapeutic efficacy of radiotherapy by enhancing tumor cell sensitivity while minimizing damage to normal tissues. Dihydroquinine (DHQ), a naturally occurring Cinchona alkaloid with diverse biological activities, has not previously been evaluated for radiosensitizing potential. In this study, human cervical cancer (HeLa) cells were pretreated with an IC20 concentration of DHQ and exposed to 6 MV X-ray irradiation. Clonogenic survival was assessed after irradiation at 2, 4, and 6 Gy, while intracellular ROS, γ-H2AX immunofluorescence, and apoptosis were evaluated following DHQ pretreatment and 2 Gy irradiation. DHQ pretreatment reduced clonogenic survival, yielding sensitizer enhancement ratio values of 1.37 and 1.55 at surviving fractions of 0.20 and 0.37, respectively, indicating modest-to-moderate enhancement of radiosensitivity. DHQ was also associated with increased ROS production, elevated γ-H2AX positivity, and enhanced apoptosis compared with irradiation alone. These findings suggest that DHQ enhances the radiation response in HeLa cells and is associated with increased radiation-induced cellular responses. Although the radiosensitizing effect was modest, the consistent findings across multiple biological endpoints support further investigation of DHQ as a potential adjunct to radiotherapy. Further studies are warranted to validate these findings in more clinically relevant preclinical models. Full article
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19 pages, 3414 KB  
Article
Optimization of Subcritical Water Extraction Process for Polyphenols from Cinchona calisaya and Their Activity Analysis
by Guangxin Li, Yujie Zhou, Dong Xie, Jingwen Zhang, Zhengshan Hu, Yuanping He, Lihua Zou, Ping Zhao, Yingjun Zhang, Xiaoqin Yang and Sengkew Wee
Molecules 2026, 31(4), 635; https://doi.org/10.3390/molecules31040635 - 12 Feb 2026
Viewed by 695
Abstract
This study expands research on Cinchona calisaya, which has traditionally focused on alkaloids, to address the insufficient comprehensive utilization of its resources. It is the first to explore the feasibility of extracting phenolic compounds from Cinchona calisaya using subcritical water extraction (SCWE) [...] Read more.
This study expands research on Cinchona calisaya, which has traditionally focused on alkaloids, to address the insufficient comprehensive utilization of its resources. It is the first to explore the feasibility of extracting phenolic compounds from Cinchona calisaya using subcritical water extraction (SCWE) technology. Combining single-factor experiments with Box–Behnken design-response surface methodology (BBD-RSM), the study optimized three key process parameters, namely extraction temperature, extraction time, and liquid-to-solid ratio, with total phenolic content (TPC) as the response variable. Optimal extraction conditions were 165 °C, 20 min, and a liquid-to-solid ratio of 70:1 mL/g. Under these conditions, the TPC values were 98.41 ± 1.06 mg/g for bark and 37.96 ± 1.18 mg/g for heartwood, significantly higher than those obtained by traditional hot water extraction (THWE). Ultra-high performance liquid chromatography-Q-orbitrap high-resolution mass spectrometry (UHPLC-Q-Orbitrap HRMS) identified 1198 and 1156 metabolites in the bark and heartwood, respectively, with a higher content of phenolic compounds in the heartwood. The extracts showed strong inhibitory activity against Staphylococcus aureus, weak inhibitory activity against Escherichia coli at high concentrations, and no inhibitory effect on Candida albicans. This study provides a theoretical basis and technical support for the comprehensive utilization of Cinchona calisaya resources and the green development of natural antioxidants and antimicrobial agents. Full article
(This article belongs to the Special Issue Biological Evaluation of Plant Extracts)
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29 pages, 2479 KB  
Article
Synthesis, Antibacterial Properties and Molecular Docking Studies of Nitrogen Substituted 9-(((4X-But-2-ynyloxy)methyl)-1,2,3-triazolyl)–Cinchona Alkaloid Conjugates
by Gulim K. Mukusheva, Nurizat N. Toigambekova, Victor A. Savelyev, Andrey I. Khlebnikov, Liubov G. Burova, Sofiia D. Afanaseva, Oralgazy A. Nurkenov, Anarkul S. Kishkentayeva, Aikerim S. Olzhabayeva, Yurii V. Gatilov, Roza B. Seidakhmetova, Alexander N. Evstropov and Elvira E. Shults
Molecules 2025, 30(22), 4352; https://doi.org/10.3390/molecules30224352 - 10 Nov 2025
Cited by 1 | Viewed by 1244
Abstract
The year 2024 marked the 80th anniversary of Woodward’s total synthesis of quinine. Quinine is a natural alkaloid from the bark of the cinchona tree that has been used for years as an antimalarial drug. The antibacterial effect of quinine salts has also [...] Read more.
The year 2024 marked the 80th anniversary of Woodward’s total synthesis of quinine. Quinine is a natural alkaloid from the bark of the cinchona tree that has been used for years as an antimalarial drug. The antibacterial effect of quinine salts has also been regarded. With this in mind, a series of original 9-deoxycinchone alkaloid derivatives bearing a dialkylamino- or heterocyclic moiety at the 4 position of the 9-(((4-X-but-2-ynyloxy)methyl)-1,2,3-triazolyl)-substituent was synthesized. The copper-catalyzed three-component A3-coupling reaction of 9-(((4-prop-2-ynyloxy)methyl)-1,2,3-triazolyl)- substituted cinchona alkaloid derivatives with secondary amines and formaldehyde was the main route of synthesis. The present study attempted to examine the antibacterial properties of 9-substituted 9-desoxyquinine-derived compounds and their antibacterial activity against pathogenic bacterial strains, e.g., Staphylococcus aureus, Bacillus subtillis, Bacillus cereus, and Escherichia coli. The difference in the antibacterial activity profile of diastereoisomeric 9-(((4-X-but-2-ynyloxy)methyl)-1,2,3-triazolyl)-substituted derivatives of cinchona alkaloids indicated the importance of the nature of nitrogen substituents in the molecules. In a concentration-dependent pattern, (9R)- and (9S)- (((4-asocan-1yl)-but-2-ynyl-oxy)methyl)-1,2,3-triazolyl)-substituted compounds demonstrated considerable biofilm-inhibitory efficacy against the S. aureus bacterial strain. A detailed study of the molecular interactions with the targeted protein MurB was performed using docking simulations, and the obtained results are quite promising. Full article
(This article belongs to the Special Issue Bioactive Natural Products and Derivatives)
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13 pages, 1100 KB  
Article
Easy ROMP of Quinine Derivatives Toward Novel Chiral Polymers That Discriminate Mandelic Acid Enantiomers
by Mariusz Majchrzak, Karol Kacprzak, Marta Piętka, Jerzy Garbarek and Katarzyna Taras-Goślińska
Polymers 2025, 17(12), 1661; https://doi.org/10.3390/polym17121661 - 15 Jun 2025
Viewed by 1718
Abstract
A novel and general approach to the practical ROMP polymerization of cinchona alkaloid derivatives providing novel hybrid materials having quinine attached on a poly(norbornene-5,6-dicarboxyimide) matrix is presented. The concept involves an easy modification of quinine (in general, any cinchona alkaloid) toward clickable 9-azide [...] Read more.
A novel and general approach to the practical ROMP polymerization of cinchona alkaloid derivatives providing novel hybrid materials having quinine attached on a poly(norbornene-5,6-dicarboxyimide) matrix is presented. The concept involves an easy modification of quinine (in general, any cinchona alkaloid) toward clickable 9-azide that reacts with N-propargyl-cis-5-norbornene-exo-2,3-dicarboxylic imide in Cu(I)-catalyzed Huisgen cycloaddition (click chemistry). The resulting monomers undergo a controllable ROMP reaction that leads to novel polymers of a desired length and solubility. This sequence allows for the facile preparation of a regularly decorated polymeric material having one quinine moiety per single mer of the polymer chain inaccessible using typical immobilization methods. A poly(norbornene-5,6-dicarboxyimide) type of polymeric matrix was selected due to the high reactivity of the exo-norbornene motif in Ru(II)-catalyzed ROMP and its chemical and thermal stability as well as convenient, scalable access from inexpensive cis-5-norbornene-exo-2,3-dicarboxylic anhydride (‘one-pot’ Diels–Alder reaction of dicyclopentadiene and maleic anhydride). An appropriate combination of a Grubbs catalyst, Ru(II) (G1, G2), and ROMP conditions allowed for the efficient synthesis of well-defined soluble polymers with mass parameters in the range Mn = 2.24 × 104 – 2.26 × 104 g/mol and Mw = 2.90 × 104–3.05 × 104 g/mol with good polydispersity, ĐM = 1.32–1.35, and excellent thermal stability (up to 309°C Td10). Spectroscopic studies (NMR and electronic circular dichroism (ECD)) of these products revealed a linear structure with the slight advantage of a trans-configuration of an olefinic double bond. The resulting short-chain polymer discriminates mandelic acid enantiomers with a preference for the (R)-stereoisomer in spectrofluorimetric assays. This concept seems to be rather general with respect to other molecules dedicated to incorporation into the poly(norbornene-5,6-dicarboxyimide) chain. Full article
(This article belongs to the Section Polymer Chemistry)
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41 pages, 13502 KB  
Review
Recent Advances in the Enantioselective Organocatalytic [4+2] Cycloadditions
by Tomasz Bauer
Molecules 2025, 30(9), 1978; https://doi.org/10.3390/molecules30091978 - 29 Apr 2025
Cited by 4 | Viewed by 2774
Abstract
This review covers the recent advances in asymmetric organocatalytic Diels–Alder reactions published since the beginning of 2015. It describes recent approaches to enantioselective [4+2] cycloadditions based on the application of various types of chiral organocatalysts. Full article
(This article belongs to the Special Issue Organocatalysis: Past, Present, and Future Perspectives)
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18 pages, 4984 KB  
Article
High-Performance Liquid Chromatographic Separation of Stereoisomers of ß-Methyl-Substituted Unusual Amino Acids Utilizing Ion Exchangers Based on Cinchona Alkaloids
by Gábor Németi, Róbert Berkecz, Dániel Ozsvár, Zsolt Szakonyi, Wolfgang Lindner, Aleksandra Misicka, Dagmara Tymecka, Géza Tóth, Antal Péter and István Ilisz
Int. J. Mol. Sci. 2025, 26(9), 4004; https://doi.org/10.3390/ijms26094004 - 23 Apr 2025
Cited by 2 | Viewed by 2139
Abstract
Novel peptides based on common amino acid building blocks may serve as possible drug candidates; however, their flexible structures may require stabilization via the incorporation of conformational constraints. The insertion of unusual amino acids is a feasible option that may provide improved pharmacokinetic [...] Read more.
Novel peptides based on common amino acid building blocks may serve as possible drug candidates; however, their flexible structures may require stabilization via the incorporation of conformational constraints. The insertion of unusual amino acids is a feasible option that may provide improved pharmacokinetic and pharmacodynamic properties of such peptide-type drugs. The stereochemical purity of these kinds of building blocks must be verified by an efficient separation technique, such as high-performance liquid chromatography. Here, we present and discuss the results of the stereoselective separation mechanism of ß-methylated phenylalanine (ß-MePhe), tyrosine (ß-MeTyr), 1,2,3,4-tetrahydroisoquinoline-3-carboxylic acid (ß-MeTic), and cyclohexylalanine (ß-MeCha) together with non-methylated Phe, Tyr, Tic, and Cha applying Cinchona alkaloid-based chiral stationary phases (CSPs). The studied zwitterionic CSPs acting as ion exchangers provided optimal performance in the polar ionic mode when methanol or a mixture of methanol and acetonitrile was utilized as the mobile phase together with organic acid and base additives. It was found that the basicity of small amines applied as mobile phase additives did not directly influence the chromatographic ion exchange concept. However, the size of the amines and their concentration led to a reduced retention time following the principles of ion exchange chromatography. On the basis of a systematic study of the effects of the eluent composition on the chromatographic behavior, important structure–retention and enantioselectivity relationships could be revealed. Through a temperature study, it has become evident that the composition of the eluent and the structure of analytes markedly affect the thermodynamic properties. Full article
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13 pages, 1333 KB  
Article
Electrochemical Behavior of Some Cinchona Alkaloids Using Screen-Printed Electrodes
by Tonino Caruso and Laura Palombi
Sensors 2025, 25(7), 2216; https://doi.org/10.3390/s25072216 - 1 Apr 2025
Cited by 1 | Viewed by 1542
Abstract
An effective deposition of a cinchonine layer on a platinum metal surface can be easily achieved through the cathodic reduction of a cinchonine hydrochloride methanolic solution at a controlled potential of −220 mV vs. the silver standard electrode (SSE). A coated screen-printed platinum [...] Read more.
An effective deposition of a cinchonine layer on a platinum metal surface can be easily achieved through the cathodic reduction of a cinchonine hydrochloride methanolic solution at a controlled potential of −220 mV vs. the silver standard electrode (SSE). A coated screen-printed platinum electrode has proven to be suitable for cinchonine determination in water, urine, and serum at µg L−1 concentration levels using differential pulse voltammetry in a phosphate buffer solution (pH 7.0). The limits of detection (LOD) and quantitation (LOQ) were 0.6 µg L−1 and 1.8 µg L−1, respectively. Full article
(This article belongs to the Special Issue Chemical Sensors for Toxic Chemical Detection: 2nd Edition)
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17 pages, 2459 KB  
Article
Optimization of Two Methods for the Rapid and Effective Extraction of Quinine from Cinchona officinalis
by Gianella Ochoa, Leonardo Armijos, Jorge G. Figueroa, Ximena Jaramillo-Fierro and Natalí Solano-Cueva
Plants 2025, 14(3), 364; https://doi.org/10.3390/plants14030364 - 25 Jan 2025
Cited by 4 | Viewed by 8235
Abstract
This study successfully optimized two advanced extraction methods, microwave-assisted extraction (MAE) and ultrasound-assisted extraction (UAE), for the efficient and rapid recovery of quinine from Cinchona officinalis. Among the evaluated parts of the plant, the bark consistently yielded the highest quinine concentration, highlighting [...] Read more.
This study successfully optimized two advanced extraction methods, microwave-assisted extraction (MAE) and ultrasound-assisted extraction (UAE), for the efficient and rapid recovery of quinine from Cinchona officinalis. Among the evaluated parts of the plant, the bark consistently yielded the highest quinine concentration, highlighting its significance as the primary source for alkaloid extraction. The optimized conditions for MAE (65% ethanol, 130 °C, 34 min) achieved a maximum yield of 3.93 ± 0.11 mg/g, while UAE (61% ethanol, 25 °C, 15 min) provided a faster but slightly lower yield of 2.81 ± 0.04 mg/g. These findings confirm the superiority of MAE and UAE over conventional methods like Soxhlet extraction in terms of time efficiency and sustainability. The quantification of quinine using high-performance liquid chromatography (HPLC) coupled with advanced detection methods further validated the reliability and reproducibility of the results. While this study focused on optimizing extraction and quantification parameters, it sets the groundwork for future research into the sustainable utilization and potential valorization of C. officinalis byproducts. These findings not only provide a standardized protocol for extracting quinine but also contribute to the broader application of green chemistry principles in pharmaceutical production. Full article
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12 pages, 4114 KB  
Article
Intermolecular Interactions in Molecular Ferroelectric Zinc Complexes of Cinchonine
by Marko Očić and Lidija Androš Dubraja
Crystals 2024, 14(11), 978; https://doi.org/10.3390/cryst14110978 - 13 Nov 2024
Cited by 1 | Viewed by 1656
Abstract
The use of chiral organic ligands as linkers and metal ion nodes with specific coordination geometry is an effective strategy for creating homochiral structures with potential ferroelectric properties. Natural Cinchona alkaloids, e.g., quinine and cinchonine, as compounds with a polar quinuclidine fragment and [...] Read more.
The use of chiral organic ligands as linkers and metal ion nodes with specific coordination geometry is an effective strategy for creating homochiral structures with potential ferroelectric properties. Natural Cinchona alkaloids, e.g., quinine and cinchonine, as compounds with a polar quinuclidine fragment and aromatic quinoline ring, are suitable candidates for the construction of molecular ferroelectrics. In this work, the compounds [CnZnCl3]·MeOH and [CnZnBr3]·MeOH, which crystallize in the ferroelectric polar space group P21, were prepared by reacting the cinchoninium cation (Cn) with zinc(II) chloride or zinc(II) bromide. The structure of [CnZnBr3]·MeOH was determined from single-crystal X-ray diffraction analysis and was isostructural with the previously reported chloride analog [CnZnCl3]·MeOH. The compounds were characterized by infrared spectroscopy, and their thermal stability was determined by thermogravimetric analysis and temperature-modulated powder X-ray diffraction experiments. The intermolecular interactions of the different cinchoninium halogenometalate complexes were evaluated and compared. Full article
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13 pages, 2378 KB  
Article
Synthesis and Reactivity of Fluorinated Dithiocarboxylates to Prepare Thioamides—Effective Access to a 4-Styrenylthioamide-Cinchona Alkaloid Monomer
by Aimar Gonzalo-Barquero, Bénédicte Lepoittevin, Jacques Rouden and Jérôme Baudoux
Molecules 2023, 28(21), 7333; https://doi.org/10.3390/molecules28217333 - 30 Oct 2023
Cited by 2 | Viewed by 2709
Abstract
A simple and rapid access to fluorinated dithioesters was developed by a one-pot sequence corresponding to a Grignard reaction—Mitsunobu type substitution. These activated dithioesters have shown excellent reactivity in an aminolysis reaction from simple or more complex primary amines such as cinchona alkaloids. [...] Read more.
A simple and rapid access to fluorinated dithioesters was developed by a one-pot sequence corresponding to a Grignard reaction—Mitsunobu type substitution. These activated dithioesters have shown excellent reactivity in an aminolysis reaction from simple or more complex primary amines such as cinchona alkaloids. A stoichiometric amount of amine was sufficient to prepare various thioamides, including a 4-styrenylthioamide cinchonidine monomer, under environmentally friendly conditions, at room temperature, and in a very short time. Full article
(This article belongs to the Special Issue Synthetic Transformations of Amides and Esters in Organic Synthesis)
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32 pages, 18259 KB  
Review
Catalytic Efficiency of Primary α-Amino Amides as Multifunctional Organocatalysts in Recent Asymmetric Organic Transformations
by Ummareddy Venkata Subba Reddy, Bheemreddy Anusha, Zubeda Begum, Chigusa Seki, Yuko Okuyama, Michio Tokiwa, Suguru Tokiwa, Mitsuhiro Takeshita and Hiroto Nakano
Catalysts 2022, 12(12), 1674; https://doi.org/10.3390/catal12121674 - 19 Dec 2022
Cited by 6 | Viewed by 4658
Abstract
Chiral primary α-amino amides, consisting of an adjacent enamine bonding site (Bronsted base site), a hydrogen bonding site (Bronsted acid site), and flexible bulky substituent groups to modify the steric factor, are proving to be extremely valuable bifunctional organocatalysts for a wide range [...] Read more.
Chiral primary α-amino amides, consisting of an adjacent enamine bonding site (Bronsted base site), a hydrogen bonding site (Bronsted acid site), and flexible bulky substituent groups to modify the steric factor, are proving to be extremely valuable bifunctional organocatalysts for a wide range of asymmetric organic transformations. Primary α-amino amides are less expensive alternatives to other primary amino organocatalysts, such as chiral diamines and cinchona-alkaloid-derived primary amines, as they are easy to synthesize, air-stable, and allow for the incorporation of a variety of functional groups. In recent years, we have demonstrated the catalytic use of simple primary α-amino amides and their derivatives as organocatalysts for the aldol reaction, Strecker reaction, Michael tandem reaction, allylation of aldehydes, reduction of N-Aryl mines, opening of epoxides, hydrosilylation, asymmetric hydrogen transfer, and N-specific nitrosobenzene reaction with aldehydes. Full article
(This article belongs to the Special Issue Advances in Asymmetric Organocatalytic Reactions)
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21 pages, 1273 KB  
Article
Synthesis, Biological Evaluation and Machine Learning Prediction Model for Fluorinated Cinchona Alkaloid-Based Derivatives as Cholinesterase Inhibitors
by Alma Ramić, Ana Matošević, Barbara Debanić, Ana Mikelić, Ines Primožič, Anita Bosak and Tomica Hrenar
Pharmaceuticals 2022, 15(10), 1214; https://doi.org/10.3390/ph15101214 - 30 Sep 2022
Cited by 7 | Viewed by 3441
Abstract
A series of 46 Cinchona alkaloid derivatives that differ in positions of fluorine atom(s) in the molecule were synthesized and tested as human acetylcholinesterase (AChE) and butyrylcholinesterase (BChE) inhibitors. All tested compounds reversibly inhibited AChE and BChE in the nanomolar to micromolar range; [...] Read more.
A series of 46 Cinchona alkaloid derivatives that differ in positions of fluorine atom(s) in the molecule were synthesized and tested as human acetylcholinesterase (AChE) and butyrylcholinesterase (BChE) inhibitors. All tested compounds reversibly inhibited AChE and BChE in the nanomolar to micromolar range; for AChE, the determined enzyme-inhibitor dissociation constants (Ki) ranged from 3.9–80 µM, and 0.075–19 µM for BChE. The most potent AChE inhibitor was N-(para-fluorobenzyl)cinchoninium bromide, while N-(meta-fluorobenzyl)cinchonidinium bromide was the most potent BChE inhibitor with Ki constant in the nanomolar range. Generally, compounds were non-selective or BChE selective cholinesterase inhibitors, where N-(meta-fluorobenzyl)cinchonidinium bromide was the most selective showing 533 times higher preference for BChE. In silico study revealed that twenty-six compounds should be able to cross the blood-brain barrier by passive transport. An extensive machine learning procedure was utilized for the creation of multivariate linear regression models of AChE and BChE inhibition. The best possible models with predicted R2 (CD-derivatives) of 0.9932 and R2(CN-derivatives) of 0.9879 were calculated and cross-validated. From these data, a smart guided search for new potential leads can be performed. These results pointed out that quaternary Cinchona alkaloids are the promising structural base for further development as selective BChE inhibitors which can be used in the central nervous system. Full article
(This article belongs to the Special Issue Advances in Acetylcholinesterase and Butyrylcholinesterase Inhibitors)
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20 pages, 3083 KB  
Article
Cinchona officinalis Phytochemicals-Loaded Iron Oxide Nanoparticles Induce Cytotoxicity and Stimulate Apoptosis in MCF-7 Human Breast Cancer Cells
by Laila Naif Al-Harbi, Ghedier M. Al-Shammari, Pandurangan Subash-Babu, Mohammed A. Mohammed, Roaa Ahmed Alkreadees and Abu ElGasim Ahmed Yagoub
Nanomaterials 2022, 12(19), 3393; https://doi.org/10.3390/nano12193393 - 28 Sep 2022
Cited by 23 | Viewed by 4395
Abstract
The present study aimed to synthesize iron oxide nanoparticles loaded with quinine and alkaloids-rich Cinchona officinalis (Peruvian bark) stem bark extract, and further evaluate their cytotoxic effect and apoptosis mechanisms in MCF-7 breast cancer cells. Nanoparticles were prepared by biological reduction of iron [...] Read more.
The present study aimed to synthesize iron oxide nanoparticles loaded with quinine and alkaloids-rich Cinchona officinalis (Peruvian bark) stem bark extract, and further evaluate their cytotoxic effect and apoptosis mechanisms in MCF-7 breast cancer cells. Nanoparticles were prepared by biological reduction of iron oxide with Cinchona officinalis extract, using the green synthesis method. The nanoparticles were characterized by XRD, FT-IR, and UV-vis spectroscopy and transmission electron microscopy (TEM). In vitro cytotoxicity analyses of Cinchona officinalis extract, ferrous oxide, and Cinchona officinalis extract-loaded iron oxide nanoparticles (CO-NPs) were carried out using the MTT test for 24 h and 48 h. We found that CO-NPs reduced the MCF-7 cell viability with IC50 values of 16.2 and 9 µg/mL in 24 h and 48 h, respectively. In addition, CO-NPs were tested with normal hMSCs to determine their toxicity, and we did not find noticeable cytotoxicity. Confocal fluorescent microscopy revealed that CO-NPs efficiently increased the nuclear condensation and chromatin damage in propidium iodide staining; meanwhile, there was decreased mitochondrial membrane potential in CO-NPs-treated MCF-7 cells. In addition, AO-EB staining confirmed the late apoptotic and apoptotic morphology of cancer cells. Further gene expression analysis confirmed that the upregulation of tumor suppressors, Cdkn1A, Prb, and p53 was significantly increased, and inflammatory traits such as TNF-α and Nf-κb were increased in cancer cells treated with CO-NPs. Apoptotic stimulators such as Bax and caspase-3 expression were highly significantly increased, while mdm-2 and Bcl-2 were significantly decreased. Overall, the enhanced cytotoxic potential of the Cinchona officianlis stem bark extract loaded CO-NPs versus free Cinchona officianlis extract might be due to the functional stabilization of bioactive compounds, such as alkaloids, quinine, flavonoids, phenolics, etc., into the iron oxide, providing bioavailability and internalization of cinchona metabolites intracellularly. Full article
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11 pages, 1817 KB  
Article
Poly(L-lactide) Epimerization and Chain Scission in the Presence of Organic Bases
by Julie Meimoun, Audrey Favrelle-Huret, Julien De Winter and Philippe Zinck
Macromol 2022, 2(2), 236-246; https://doi.org/10.3390/macromol2020016 - 15 Jun 2022
Cited by 9 | Viewed by 5060
Abstract
Organocatalysis for polymer chemistry has become a subject of significant interest in the last two decades. In this contribution, we have studied the evolution of the microstructure of poly(L-lactide) in solution in toluene at 105 °C in the presence of various organocatalysts. Weak [...] Read more.
Organocatalysis for polymer chemistry has become a subject of significant interest in the last two decades. In this contribution, we have studied the evolution of the microstructure of poly(L-lactide) in solution in toluene at 105 °C in the presence of various organocatalysts. Weak bases such as triethylamine and DMAP (4-dimethylaminopyridine) lead to a low extent of epimerization and a chain scission reaction. The DBU (1,8-diazabicyclo[5.4.0]undec-7-ene) amidine induces in turn important extents of both epimerization (up to 37% D-stereoisomer formation) and chain scission. This has been tentatively attributed to a nucleophilic mechanism. Cinchona alkaloids lead to only a modest amount of epimerization. Phosphazene bases are in turn rather active, especially for high catalytic loadings (>1 mol %). The chain scission observed in this case is proposed to occur via a base-catalyzed hydrolysis mechanism. Finally, it is shown that combining an organic base with an acid can lead to a synergistic effect regarding notably the chain scission reaction. Full article
(This article belongs to the Collection Advances in Biodegradable Polymers)
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13 pages, 3878 KB  
Perspective
Horizons in Asymmetric Organocatalysis: En Route to the Sustainability and New Applications
by Sandra Ardevines, Eugenia Marqués-López and Raquel P. Herrera
Catalysts 2022, 12(1), 101; https://doi.org/10.3390/catal12010101 - 16 Jan 2022
Cited by 21 | Viewed by 6750
Abstract
Nowadays, the development of new enantioselective processes is highly relevant in chemistry due to the relevance of chiral compounds in biomedicine (mainly drugs) and in other fields, such as agrochemistry, animal feed, and flavorings. Among them, organocatalytic methods have become an efficient and [...] Read more.
Nowadays, the development of new enantioselective processes is highly relevant in chemistry due to the relevance of chiral compounds in biomedicine (mainly drugs) and in other fields, such as agrochemistry, animal feed, and flavorings. Among them, organocatalytic methods have become an efficient and sustainable alternative since List and MacMillan pioneering contributions were published in 2000. These works established the term asymmetric organocatalysis to label this area of research, which has grown exponentially over the last two decades. Since then, the scientific community has attended to the discovery of a plethora of organic reactions and transformations carried out with excellent results in terms of both reactivity and enantioselectivity. Looking back to earlier times, we can find in the literature a few examples where small organic molecules and some natural products could act as effective catalysts. However, with the birth of this type of catalysis, new chemical architectures based on amines, thioureas, squaramides, cinchona alkaloids, quaternary ammonium salts, carbenes, guanidines and phosphoric acids, among many others, have been developed. These organocatalysts have provided a broad range of activation modes that allow privileged interactions between catalysts and substrates for the preparation of compounds with high added value in an enantioselective way. Here, we briefly cover the history of this chemistry, from our point of view, including our beginnings, how the field has evolved during these years of research, and the road ahead. Full article
(This article belongs to the Special Issue Organocatalysis: Advances, Opportunity, and Challenges)
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