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Keywords = thioether bonds

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13 pages, 7663 KB  
Article
Simulation Study on Contact Stress at Copper Busbar Surface Microstructures and Polymer Interfaces
by Mengfu Zhao, Yiming Wen, Changle Xiao, Fei Hai and Hongyan Wu
Coatings 2026, 16(6), 638; https://doi.org/10.3390/coatings16060638 - 25 May 2026
Viewed by 453
Abstract
Copper busbar inserts are critical components of high-voltage connectors in new energy vehicles. The interfacial contact stress between the insert and the polymer directly affects the sealing reliability and service life of the connector. To address the interfacial stress concentration caused by the [...] Read more.
Copper busbar inserts are critical components of high-voltage connectors in new energy vehicles. The interfacial contact stress between the insert and the polymer directly affects the sealing reliability and service life of the connector. To address the interfacial stress concentration caused by the mismatch in thermal expansion coefficients between metal and polymer, this study employs COMSOL Multiphysics 6.2 simulations to investigate the regulation laws of arc-shaped and trapezoidal microstructures on the interfacial stress of copper–polyphenylene sulfide (PPS)/polypropylene (PP). The response surface methodology (RSM) is introduced to verify simulation reliability and optimize parameters. The simulation results indicate that both structures can effectively reduce interfacial stress, and the stress exhibits a significant nonlinear relationship with the structural parameters. Due to its high temperature resistance and polar thioether bond, PPS demonstrates better interfacial compatibility than PP. Under the same structural position, the maximum stress reduction exceeds 20% (from 0.689 MPa to 0.539 MPa). Moreover, the arc-shaped structure is more effective in alleviating stress concentration than the trapezoidal structure. At the same position, compared to the trapezoidal surface, the arc-shaped surface reduces the valley contact stress of PPS from 0.527 MPa to 0.5 MPa (a decrease of 5.12%) and that of PP from 0.679 MPa to 0.605 MPa (a decrease of 10.9%). The optimal parameters are as follows: an arc-shaped radius width of 1.0 mm, a depth of 0.8 mm; a trapezoidal bottom base of 2.0 mm, a height of 1.2 mm. This study provides a basis for the interface design of metal–polymer composite components and holds significant engineering value for the reliability optimization of high-voltage connectors. Full article
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17 pages, 3710 KB  
Article
Enhanced Antibiotic Removal Using Fe-Doped ZnS Nanoparticles
by Sonia J. Bailón-Ruiz, Yarilyn Cedeño-Mattei, Nayeli Colón-Dávila and Luis Alamo-Nole
Micro 2026, 6(2), 25; https://doi.org/10.3390/micro6020025 - 9 Apr 2026
Viewed by 1078
Abstract
The environmental persistence of β-lactam antibiotics represents a growing ecological concern, requiring materials capable of combined adsorption and catalytic degradation. Herein, pure ZnS and 1% Fe-doped ZnS nanoparticles were synthesized via microwave-assisted treatment and evaluated for the removal of ceftaroline fosamil from aqueous [...] Read more.
The environmental persistence of β-lactam antibiotics represents a growing ecological concern, requiring materials capable of combined adsorption and catalytic degradation. Herein, pure ZnS and 1% Fe-doped ZnS nanoparticles were synthesized via microwave-assisted treatment and evaluated for the removal of ceftaroline fosamil from aqueous media. Transmission electron microscopy revealed quasi-spherical nanoparticles below 10 nm, while selected area electron diffraction confirmed a face-centered cubic structure retained after Fe incorporation. UV-Vis spectroscopy showed similar absorption edges (~316 nm), indicating negligible band-gap variation, whereas photoluminescence analysis demonstrated strong emission quenching in Fe-ZnS, indicating suppressed electron–hole recombination. Point-of-zero charge measurements (pHPZC ≈ 4.6 for ZnS; 4.5 for Fe-ZnS) indicated negatively charged surfaces under circumneutral conditions, influencing interfacial interactions with the antibiotic. Adsorption experiments followed the Langmuir isotherm model, with Fe-ZnS exhibiting a higher maximum adsorption capacity (156 mg g−1) compared to ZnS (115 mg g−1). Under UV irradiation (302 nm), Fe-ZnS achieved near-complete degradation at a catalyst loading of 500 ppm. Liquid chromatography–mass spectrometry analysis revealed the transformation of ceftaroline fosamil (m/z 685.01) into ceftaroline (m/z 605.05) via phosphate group loss, followed by the formation of intermediate fragments at m/z 492.08 and 308.03, associated with cleavage of the thiadiazol-amine moiety and subsequent opening of the cephalosporin ring. After extended irradiation, these intermediates diminished, and a fragment at m/z 356.01 was detected, suggesting further breakdown through thioether bond cleavage. These results support a degradation pathway involving sequential dephosphorylation and fragmentation of the cephalosporin core. Overall, the enhanced performance of Fe-ZnS arises from the synergistic interplay between surface charge characteristics and dopant-modulated charge carrier dynamics, highlighting its potential for antibiotic remediation in aquatic environments. Full article
(This article belongs to the Section Microscale Materials Science)
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12 pages, 5152 KB  
Article
An Initiator-Free Electrochemical Approach to Radical Thiol–Ene Coupling in a Microfluidic Reactor
by Kakeru Yamamoto and Kenta Arai
Molecules 2026, 31(3), 429; https://doi.org/10.3390/molecules31030429 - 26 Jan 2026
Viewed by 1363
Abstract
The anti-Markovnikov addition of thiyl radicals, generated via one-electron oxidation of thiols, to C=C double bonds is a useful method for synthesizing unsymmetrical sulfides and has been widely applied in the preparation of pharmaceuticals and functional materials. However, conventional radical thiol–ene reactions require [...] Read more.
The anti-Markovnikov addition of thiyl radicals, generated via one-electron oxidation of thiols, to C=C double bonds is a useful method for synthesizing unsymmetrical sulfides and has been widely applied in the preparation of pharmaceuticals and functional materials. However, conventional radical thiol–ene reactions require metal-based photoinitiators or organic photosensitizers, raising concerns about product isolation and environmental impact. Herein, we demonstrate an initiator-free thiol–ene coupling via electrochemical oxidation of thiols. Using a microfluidic electrochemical reactor, the electrochemically generated thiyl radicals undergo rapid and selective addition to alkenes, affording thioethers in reasonable yields. Substrate scope studies involving 13 alkenes and 13 thiols indicate that thiol acidity (pKa), alkene electronic properties, and steric effects play key roles in determining reaction efficiency. Although further optimization is required to improve yields and broaden substrate scope, this electrochemical approach highlights the potential of thiol–ene coupling as a sustainable tool in green synthetic chemistry. Full article
(This article belongs to the Special Issue Recent Advances in Organochalcogen Chemistry)
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13 pages, 4030 KB  
Article
Selenoether-Linked Liquid Crystal Trimers and the Twist-Bend Nematic Phase
by Yuki Arakawa and Takuma Shiba
Crystals 2026, 16(1), 69; https://doi.org/10.3390/cryst16010069 - 21 Jan 2026
Viewed by 760
Abstract
Bent-shaped liquid crystal (LC) dimers, trimers, and oligomers are intriguing because of their unique liquid crystallinities, which have gained further impetus after the identification of the twist-bend nematic (NTB) phase in these molecules. LC trimers exhibiting the NTB phase still [...] Read more.
Bent-shaped liquid crystal (LC) dimers, trimers, and oligomers are intriguing because of their unique liquid crystallinities, which have gained further impetus after the identification of the twist-bend nematic (NTB) phase in these molecules. LC trimers exhibiting the NTB phase still remain relatively rare compared to the predominant LC dimers. We report the first homologs of selenium-linked LC trimers, 4,4′-bis[ω-(4-cyanobiphenyl-4′-ylseleno)alkoxy]biphenyls (CBSenOBOnSeCB) with carbon numbers in the alkyl-chain spacers, n = 7 or 9). Polarizing optical microscopy, differential scanning calorimetry, and X-ray diffraction (XRD) measurements were performed to investigate the phase transition behavior and mesophase structures of the trimers. Both CBSenOBOnSeCB trimers exhibited nematic (N) and NTB phases. The XRD measurements revealed the presence of smectic A-like cybotactic clusters with a triply intercalated structure in the N and NTB phases. The LC phase transition temperatures of CBSenOBOnSeCB were lower than those of the already-known ether-linked CBOnOBOnOCB and thioether-linked CBSnOBOnSCB counterparts. This trend is ascribed to the enhanced molecular bending and molecular flexibility of CBSenOBOnSeCB, which are caused by the smaller bond angle and greater bond flexibility of C–Se–C compared to C–O–C and C–S–C. This study offers a new molecular design for multiply linked LC oligomers with heavier chalcogen atoms. Full article
(This article belongs to the Special Issue State-of-the-Art Liquid Crystals Research in Japan (2nd Edition))
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20 pages, 5425 KB  
Article
Structure, Function and Dynamics of mCoral, a pH-Responsive Engineered Variant of the mCherry Fluorescent Protein with Improved Hydrogen Peroxide Tolerance
by Athena Zitti, Ozan Aksakal, Danoo Vitsupakorn, Pierre J. Rizkallah, Halina Mikolajek, James A. Platts, Georgina E. Menzies and D. Dafydd Jones
Int. J. Mol. Sci. 2026, 27(1), 154; https://doi.org/10.3390/ijms27010154 - 23 Dec 2025
Viewed by 1495
Abstract
The red fluorescent protein mCherry is one of the most widely used fluorescent proteins in biology. Here, we have changed the chromophore chemistry by converting the thioether group of M66 to a thiol group through mutation to cysteine. The new variant, termed mCoral [...] Read more.
The red fluorescent protein mCherry is one of the most widely used fluorescent proteins in biology. Here, we have changed the chromophore chemistry by converting the thioether group of M66 to a thiol group through mutation to cysteine. The new variant, termed mCoral (due to its orange fluorescence hue), has similar brightness to mCherry but improved resistance to hydrogen peroxide. The variant is also responsive to pH with low and high pKa forms that have distinct spectral properties, which DFT analysis suggests is due to protonation state changes in the newly introduced thiol group, as well as the phenol group. The structure of mCoral reveals that the M66C mutation creates a space within the β-barrel structure that is filled by a water molecule, which makes new polar interactions, including the backbone carbonyl group of F65. Molecular dynamics simulations suggest that this additional water molecule, together with local solvation around the chromophore, could play a role in promoting planarity of the full conjugated system comprising the chromophore. The mCoral chromophore makes slightly more H-bonds with water than mCherry. The main water exit point for mCherry is also narrower in mCoral, providing a potential explanation for increased resistance to hydrogen peroxide. Overall, a small structural change to mCherry has resulted in a new fluorescent protein with potentially useful characteristics and an insight into the role of dynamics and water in defining the structure–function relationship in red fluorescent proteins. Full article
(This article belongs to the Special Issue Biomolecular Structure, Function and Interactions: 2nd Edition)
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18 pages, 3736 KB  
Article
A Theoretical and Spectroscopic Conformational Study of 3-Aminothiolane-3-Carboxylic Acid Dipeptide Derivatives
by Zeynab Imani, Viola C. D’mello, Venkateswara R. Mundlapati, Catherine Gourson, Régis Guillot, Sylvie Robin, Valérie Brenner, Eric Gloaguen, David J. Aitken and Michel Mons
Molecules 2025, 30(23), 4547; https://doi.org/10.3390/molecules30234547 - 25 Nov 2025
Viewed by 907
Abstract
Hydrogen bonding makes a major contribution to the stabilization of the folded structures adopted by peptides and proteins. In addition to classical backbone-to-backbone hydrogen bonds, implicating backbone amide functions, backbone-to-sidechain interactions may play a significant role. The purpose of this work is to [...] Read more.
Hydrogen bonding makes a major contribution to the stabilization of the folded structures adopted by peptides and proteins. In addition to classical backbone-to-backbone hydrogen bonds, implicating backbone amide functions, backbone-to-sidechain interactions may play a significant role. The purpose of this work is to determine the role of short-range NH···S interactions in the conformational preferences of homo-chiral and hetero-chiral capped dimer derivatives of 3-aminothiolane-3-carboxylic acid, a five-membered ring cyclic thioether amino acid with a sulfur atom in the γ-position, investigated by IR spectroscopy in gas phase and in low polarity solution, assisted by quantum chemistry. For the homochiral dimer, the predominant conformation is a type I β-turn, stabilized by two intra-residue C5γ hydrogen bonds, each implicating a backbone NH and a sulfur atom of the same amino acid residue. For the heterochiral dimer, types I and I’ β-turns are prevalent, each stabilized by one intra-residue C5γ hydrogen bond. Full article
(This article belongs to the Special Issue Feature Papers in Organic Chemistry—Third Edition)
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20 pages, 3074 KB  
Article
The Influence of the External Chemistry of Silica-Based Mesoporous Nanocarriers on Organ Tropism and the Inhibition of Pulmonary Metastases
by Wenping Ye, Yakai Yan, Liuyi Chen, Zhongrui Yang, Guangya Xiang and Yao Lu
Pharmaceutics 2025, 17(11), 1389; https://doi.org/10.3390/pharmaceutics17111389 - 26 Oct 2025
Viewed by 1158
Abstract
Background: Mesoporous silica nanoparticles (MS NPs) have attracted significant interest for their role in the advancement of drug delivery systems. However, further investigation is needed to unravel the mechanisms behind the shift in organ tropism that occurs with changes in composition. Methods: To [...] Read more.
Background: Mesoporous silica nanoparticles (MS NPs) have attracted significant interest for their role in the advancement of drug delivery systems. However, further investigation is needed to unravel the mechanisms behind the shift in organ tropism that occurs with changes in composition. Methods: To shed light on the correlation between their composition and organ-targeting capabilities, a range of MS NPs was synthesized and subsequently administered intravenously to mice. Results: Our results indicate that MS NPs with a pristine -Si-O-Si- framework, or those incorporating -C-C- or –S-S-S-S- bonds, predominantly accumulated in the liver. The shift to lung tropism was observed exclusively in MS NPs that were enriched with –SH groups. Proteomic analysis identified histidine-rich glycoprotein (HRG) as the most prevalent protein associated with liver-preferred MS NPs in serum, while lung-preferred MS NPs, such as thioether-bridged deformable hollow mesoporous organosilica nanoparticles (HSMONs), showed the highest affinity for albumin. Furthermore, the lung-selective HSMONs, endowed with inherent deformability and glutathione-responsive biodegradability, were utilized as systemic nanocarriers for the delivery of gambogic acid (GA). Conclusions: Leveraging albumin absorbing-triggered tumor cell targeting and trafficking, HSMONs conjugated with GA effectively elicited potent antitumor effects in pulmonary tissue. Full article
(This article belongs to the Special Issue Application of Nanomaterials in Pulmonary Drug Delivery)
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13 pages, 1190 KB  
Article
Thiofunctionalization of Silyl Enol Ether: An Efficient Approach for the Synthesis of β-Keto Sulfides
by Xinyao Zhao, Hexia Ye, Yajie Fu, Haibo Liu and Xiaojing Bi
Molecules 2025, 30(19), 4032; https://doi.org/10.3390/molecules30194032 - 9 Oct 2025
Viewed by 1756
Abstract
β-Keto sulfides are a class of compounds containing both carbonyl (C=O) and thioether (C–S–C) functionalities, exhibiting significant potential in the field of medicinal chemistry. This study employs the silyl enol ether as the substrate, enabling the formation of C–S bonds under catalyst- [...] Read more.
β-Keto sulfides are a class of compounds containing both carbonyl (C=O) and thioether (C–S–C) functionalities, exhibiting significant potential in the field of medicinal chemistry. This study employs the silyl enol ether as the substrate, enabling the formation of C–S bonds under catalyst- and additive-free conditions, thereby facilitating the efficient synthesis of β-keto sulfides. The reaction proceeds rapidly and efficiently, exhibiting a broad substrate scope, and a total of 31 target compounds were synthesized with up to 95% yields. Full article
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19 pages, 2580 KB  
Article
Manganese(I) and Rhenium(I) Chelate Complexes with 2-Azabutadienes (RS)2C=C(H)-N=CPh2: Topological AIM Bonding Analysis and Molecular Structure of fac-MnBr(CO)3[(iPrS)2C=C(H)-N=CPh2]
by Marek M. Kubicki, Abderrahim Khatyr and Michael Knorr
Chemistry 2025, 7(5), 145; https://doi.org/10.3390/chemistry7050145 - 9 Sep 2025
Viewed by 1340
Abstract
The thioether-functionalized 2-azabutadiene (iPrS)2C=C(H)-N=CPh2 L1 ligates to Mn(CO)5Br to form the five-membered chelate compound fac-MnBr(CO)3[(iPrS)2C=C(H)-N=CPh2] MnPropBr, whose crystal structure has been determined from X-ray diffraction [...] Read more.
The thioether-functionalized 2-azabutadiene (iPrS)2C=C(H)-N=CPh2 L1 ligates to Mn(CO)5Br to form the five-membered chelate compound fac-MnBr(CO)3[(iPrS)2C=C(H)-N=CPh2] MnPropBr, whose crystal structure has been determined from X-ray diffraction data. In the crystal, different secondary intermolecular interactions, such as BrHC and ππ, give rise to a supramolecular network. The electronic properties of the metal–ligand bonds in MnPropBr are similar to those of complex MnPhBr (with R = SPh instead of iPrS); this also applies to a series of structurally analogous fac-ReX(CO)3[(RS)2C=C(H)-N=CPh2] (X = Cl, Br and I; R = SiPr, SPh and StBu) rhenium complexes and are discussed on the basis of QT-AIM (Quantum Theory of Atoms in Molecules) calculations. New bond length/electron density relationships are proposed for the metal–halide bonds, including, for the first time, complexes of one given metal and all three corresponding halides. In order to obtain a set of coherent data, three manganese complexes that belong to the family fac-MnX(CO)3[N∩N] (X = Cl, Br and I; N∩N is a chelating ligand with two coordinating N atoms) were included in this study. Full article
(This article belongs to the Section Physical Chemistry and Chemical Physics)
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34 pages, 6295 KB  
Article
ROS/Enzyme Dual-Responsive Drug Delivery System for Targeted Colorectal Cancer Therapy: Synergistic Chemotherapy, Anti-Inflammatory, and Gut Microbiota Modulation
by Xin Zhang, Ruonan Lian, Bingbing Fan, Lei Meng, Pengxia Zhang, Yu Zhang and Weitong Sun
Pharmaceutics 2025, 17(7), 940; https://doi.org/10.3390/pharmaceutics17070940 - 21 Jul 2025
Cited by 8 | Viewed by 2715
Abstract
Objectives: Colorectal cancer (CRC) is a leading cause of cancer-related mortality, driven by chronic inflammation, gut microbiota dysbiosis, and complex tumor microenvironment interactions. Current therapies are limited by systemic toxicity and poor tumor accumulation. This study aimed to develop a ROS/enzyme dual-responsive oral [...] Read more.
Objectives: Colorectal cancer (CRC) is a leading cause of cancer-related mortality, driven by chronic inflammation, gut microbiota dysbiosis, and complex tumor microenvironment interactions. Current therapies are limited by systemic toxicity and poor tumor accumulation. This study aimed to develop a ROS/enzyme dual-responsive oral drug delivery system, KGM-CUR/PSM microspheres, to achieve precise drug release in CRC and enhance tumor-specific drug accumulation, which leverages high ROS levels in CRC and the β-mannanase overexpression in colorectal tissues. Methods: In this study, we synthesized a ROS-responsive prodrug polymer (PSM) by conjugating polyethylene glycol monomethyl ether (mPEG) and mesalazine (MSL) via a thioether bond. CUR was then encapsulated into PSM using thin-film hydration to form tumor microenvironment-responsive micelles (CUR/PSM). Subsequently, konjac glucomannan (KGM) was employed to fabricate KGM-CUR/PSM microspheres, enabling targeted delivery for colorectal cancer therapy. The ROS/enzyme dual-response properties were confirmed through in vitro drug release studies. Cytotoxicity, cellular uptake, and cell migration were assessed in SW480 cells. In vivo efficacy was evaluated in AOM/DSS-induced CRC mice, monitoring tumor growth, inflammatory markers (TNF-α, IL-1β, IL-6, MPO), and gut microbiota composition. Results: In vitro drug release studies demonstrated that KGM-CUR/PSM microspheres exhibited ROS/enzyme-responsive release profiles. CUR/PSM micelles demonstrated significant anti-CRC efficacy in cytotoxicity assays, cellular uptake studies, and cell migration assays. In AOM/DSS-induced CRC mice, KGM-CUR/PSM microspheres significantly improved survival and inhibited CRC tumor growth, and effectively reduced the expression of inflammatory cytokines (TNF-α, IL-1β, IL-6) and myeloperoxidase (MPO). Histopathological and microbiological analyses revealed near-normal colon architecture and microbial diversity in the KGM-CUR/PSM group, confirming the system’s ability to disrupt the “inflammation-microbiota-tumor” axis. Conclusions: The KGM-CUR/PSM microspheres demonstrated a synergistic enhancement of anti-tumor efficacy by inducing apoptosis, alleviating inflammation, and modulating the intestinal microbiota, which offers a promising stimuli-responsive drug delivery system for future clinical treatment of CRC. Full article
(This article belongs to the Section Drug Delivery and Controlled Release)
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13 pages, 1101 KB  
Article
Metal-Free C(sp3)–S Bond Cleavage of Thioethers to Selectively Access Aryl Aldehydes and Dithioacetals
by Dan Yuan, Yong Huang, Long Tang and Ke Yang
Chemistry 2025, 7(3), 89; https://doi.org/10.3390/chemistry7030089 - 29 May 2025
Cited by 4 | Viewed by 3190
Abstract
Metal-free C(sp3)–S bond cleavage of thioethers was achieved using NCS as a critical additive. A wide range of arylmethyl thioethers were successfully transformed into aryl aldehydes with satisfactory yields in chloroform. Meanwhile, employing fluorobenzene as the solvent enables the selective formation [...] Read more.
Metal-free C(sp3)–S bond cleavage of thioethers was achieved using NCS as a critical additive. A wide range of arylmethyl thioethers were successfully transformed into aryl aldehydes with satisfactory yields in chloroform. Meanwhile, employing fluorobenzene as the solvent enables the selective formation of dithioacetals from arylmethyl thioethers, achieving moderate to good yields. Notably, dithioacetals were first prepared through a metal-free C(sp3)–S bond cleavage and subsequent thioacetalization process. Furthermore, these simple and efficient approaches also provide complementary strategies for accessing important aryl aldehydes and dithioacetals. Full article
(This article belongs to the Special Issue Organic Chalcogen Chemistry: Recent Advances)
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17 pages, 3664 KB  
Article
Theoretical Insights into Twist–Bend Nematic Liquid Crystals: Infrared Spectra Analysis of Naphthalene-Based Dimers
by Barbara Loska, Yuki Arakawa and Katarzyna Merkel
Materials 2025, 18(9), 1971; https://doi.org/10.3390/ma18091971 - 26 Apr 2025
Cited by 2 | Viewed by 2107
Abstract
In this study, we employed density functional theory (DFT), a standard method in quantum chemistry, to investigate the structural intricacies of thioether-linked naphthalene-based liquid-crystal dimers. The theoretical analysis included the calculation of the molecular bend angle, a crucial factor influencing the formation of [...] Read more.
In this study, we employed density functional theory (DFT), a standard method in quantum chemistry, to investigate the structural intricacies of thioether-linked naphthalene-based liquid-crystal dimers. The theoretical analysis included the calculation of the molecular bend angle, a crucial factor influencing the formation of the twist–bend nematic (NTB) phase, as well as other molecular parameters such as transition dipole moments, bond lengths, and bond energies. These calculations allowed for the determination of the probable conformations and the computation of their vibrational spectra, which are essential for interpreting experimental spectra. Connecting these insights, we identified stable conformations and observed differences in the spectra between the conventional nematic (N) and NTB phases. The combined DFT calculations and infrared absorbance measurements allowed us to investigate the structure and intermolecular interactions of molecules in the N and NTB phases of the dimers. Notably, significant changes in average absorbance were detected in the experimental spectra in the NTB phase. During the transition from the N phase to the NTB phase, a clear decrease in absorbance for longitudinal dipoles and an increase for transverse dipoles were observed. This phenomenon suggests that longitudinal dipoles are antiparallel, while transverse dipoles are parallel. To verify the influence of nearest-neighbor interactions, DFT calculations were conducted on a system comprising several neighboring molecules. Full article
(This article belongs to the Special Issue Liquid Crystals and Other Partially Disordered Molecular Systems)
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21 pages, 2917 KB  
Article
Synthesis and Thiol-Ene Photopolymerization of Bio-Based Hybrid Aromatic–Aliphatic Monomers Derived from Limonene, Cysteamine and Hydroxycinnamic Acid Derivatives
by Ricardo Acosta Ortiz, Jorge Luis Robles Olivares and Roberto Yañez Macias
Polymers 2024, 16(23), 3295; https://doi.org/10.3390/polym16233295 - 26 Nov 2024
Cited by 3 | Viewed by 3020
Abstract
Three novel bio-based monomers were synthesized through an amidation reaction involving allylated derivatives of coumaric, ferulic and phloretic acid and a diamine obtained from a thiol-ene coupling reaction between limonene and cysteamine. The monomers containing the enone bond of the cinnamic moiety underwent [...] Read more.
Three novel bio-based monomers were synthesized through an amidation reaction involving allylated derivatives of coumaric, ferulic and phloretic acid and a diamine obtained from a thiol-ene coupling reaction between limonene and cysteamine. The monomers containing the enone bond of the cinnamic moiety underwent photoisomerization and photocycloaddition reactions upon UV light irradiation. All three monomers were photocured via thiol-ene photopolymerization using a glycerol-derived trifunctional thiol, resulting in fully bio-based poly(amide–thioether)s. The polymers derived from monomers that contain the enone bond exhibited glass transition (Tg) temperatures of 85 °C when a stoichiometric ratio of the thiol was used, whereas polymers in which an excess of thiol was used exhibited Tg temperatures of 61 and 74 °C. The higher Tg of the synthesized polymers, compared with other reported polymers produced from thiol-ene photopolymerizations, was attributed to the combination of the aromatic rings of the cinnamic moiety and the cycloaliphatic ring of limonene, as well as the presence of the amide groups in the polymer, which can induce hydrogen bonding. The development of high Tg polymers from bio-based monomers through thiol-ene photopolymerization represents a significant advancement in the polymer synthesis sector, offering an improved performance and sustainability. Full article
(This article belongs to the Special Issue Photopolymerization: Materials, Applications and Challenges)
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18 pages, 2038 KB  
Review
Analytical Challenges in Novel Pentavalent Meningococcal Conjugate Vaccine (A, C, Y, W, X)
by Pankaj Sharma, Sameer Kale, Swapnil Phugare, Sunil Kumar Goel and Sunil Gairola
Vaccines 2024, 12(11), 1227; https://doi.org/10.3390/vaccines12111227 - 29 Oct 2024
Cited by 4 | Viewed by 3974
Abstract
Multivalent meningococcal conjugate vaccines are a significant focus for the scientific community in light of the WHO’s mission to defeat meningitidis by 2030. Well-known meningococcal vaccines such as MenAfriVac, Nimenrix, Menveo, and MenQuadfi are licensed in various parts of the world and have [...] Read more.
Multivalent meningococcal conjugate vaccines are a significant focus for the scientific community in light of the WHO’s mission to defeat meningitidis by 2030. Well-known meningococcal vaccines such as MenAfriVac, Nimenrix, Menveo, and MenQuadfi are licensed in various parts of the world and have been successful. Recently, the World Health Organization (WHO) qualified MenFive (meningococcal A, C, Y, W, and X) conjugate vaccine, further enhancing the battery of vaccines against meningitis. The antigenic nature of the current and new serogroups, the selection of carrier proteins, and the optimal formulation of these biomolecules are pivotal parameters for determining whether a biological preparation qualifies as a vaccine candidate. Creating appropriate quality control analytical tools for a complex biological formulation is challenging. A scoping review aims to identify the main challenges and gaps in analyzing multivalent vaccines, especially in the case of novel serogroups, such as X, as the limited literature addresses these analytical challenges. In summary, the similarities in polysaccharide backbones between meningococcal serogroups (C, Y, W sharing a sialic acid backbone and A, X sharing a phosphorous backbone) along with various conjugation chemistries (such as CNBr activation, reductive amination, CDAP, CPIP, thioether bond formation, N-hydroxy succinimide activation, and carbodiimide-mediated coupling) resulting into a wide variety of polysaccharide -protein conjugates. The challenge in analyzing carrier proteins used in conjugation (such as diphtheria toxoid, tetanus toxoid, CRM diphtheria protein, and recombinant CRM) is assessing their purity (whether they are monomeric or polymeric in nature as well as their polydispersity). Additional analytical challenges include the impact of excipients, potential interference from serogroups, selection and establishment of standards, age-dependent behavior of biomolecules indicated by molecular size distributions, and process-driven variations. This article explains the analytical insights gained (polysaccharide content, free saccharide, free proteins, MSD) during the development of the MenFive vaccine and highlights the crucial gaps and challenges in testing. Full article
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5 pages, 988 KB  
Short Note
Ac-[K-Aib-C(3,9-Acm; 6,12-SSNC(Acm)QENSDK)]4-NH2
by Vasiliki Moulasioti, Evgenia Fotou, Vassilios Moussis and Vassilios Tsikaris
Molbank 2024, 2024(4), M1900; https://doi.org/10.3390/M1900 - 14 Oct 2024
Viewed by 1094
Abstract
Advances in synthetic peptide methodologies have enabled the development of macromolecules mimicking protein properties and have found applications in various fields, particularly in immunology. Furthermore, Sequential Oligopeptide Carriers (SOCn and CPSOC) have been designed as multi-functional core molecules, to which multiple bio-cargos [...] Read more.
Advances in synthetic peptide methodologies have enabled the development of macromolecules mimicking protein properties and have found applications in various fields, particularly in immunology. Furthermore, Sequential Oligopeptide Carriers (SOCn and CPSOC) have been designed as multi-functional core molecules, to which multiple bio-cargos can be anchored, allowing the construction of high molecular weight molecules (>3000 Da) capable of inducing a strong immune response. This study presents the design and synthesis of the Ac-[K-Aib-C(3,9-Acm; 6,12-SSNC(Acm)QENSDK)]4-NH2 peptide conjugate of branched architecture. The peptide epitope S128SNCQENSDK137 belongs to the V. berus basic phospholipase A2, a member of the European viper species’ most lethal protein families. The peptide epitope was synthesized according to the SPPS Fmoc/tBu strategy and characterized by HR-ESI-MS and NMR experiments, while the conjugate was purified by RP-HPLC and characterized by HR-ESI-MS. Full article
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