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1

Zhao, Meng, Jing Xu, Shuyan Song, and Hongjie Zhang. "Core/yolk-shell nanoreactors for tandem catalysis." Chinese Journal of Catalysis 50 (July 2023): 83–108. http://dx.doi.org/10.1016/s1872-2067(23)64463-8.

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2

Yin, Yufan, and Xiaojing Zhang. "Misalignment Assembly Effect on the Impact Mechanical Response of Tandem Nomex Honeycomb-Core Sandwich Structures." Materials 17, no. 16 (2024): 4024. http://dx.doi.org/10.3390/ma17164024.

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To optimize the assembly methods of honeycomb structures and enhance their design flexibility, this study investigated the impact mechanical responses of tandem honeycomb-core sandwich structures with varying misalignment assembly lengths. Impact tests were conducted across different energy levels on single-layer and tandem honeycomb-core sandwiches to observe their impact processes and failure behaviors. Our findings indicate that tandem honeycomb cores significantly enhance the impact resistance compared with single-layer configurations, even though a misaligned assembly can deteriorate this
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3

Fan, Jinbo, Penghui Li, Weiqi Guo, Xiuguo Zhao, Chen Su, and Xinxi Xu. "Experimental Investigation on the Low-Velocity Impact Response of Tandem Nomex Honeycomb Sandwich Panels." Polymers 15, no. 2 (2023): 456. http://dx.doi.org/10.3390/polym15020456.

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Sandwich panels are often subjected to unpredictable impacts and crashes in applications. The core type and impactor shape affect their impact response. This paper investigates the responses of five tandem Nomex honeycomb sandwich panels with different core-types under low-velocity-impact conditions with flat and hemispherical impactors. From the force response and impact displacement, gradient-tandem and foam-filled structures can improve the impact resistance of sandwich panels. Compared with the single-layer sandwich panel, the first peak of contact force of the foam-gradient-filled tandem
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4

Eggersdorfer, M. L., W. Zheng, S. Nawar, et al. "Tandem emulsification for high-throughput production of double emulsions." Lab on a Chip 17, no. 5 (2017): 936–42. http://dx.doi.org/10.1039/c6lc01553k.

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5

Wu, Peng, Michael Åxman Petersen, Rico Petersen, et al. "Tandem Mannich/Diels–Alder reactions for the synthesis of indole compound libraries." RSC Advances 6, no. 52 (2016): 46654–57. http://dx.doi.org/10.1039/c6ra08786h.

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6

Haussen, Diogo C., Seena Dehkharghani, Mikayel Grigoryan, Meredith Bowen, Leticia C. Rebello, and Raul G. Nogueira. "Automated CT Perfusion for Ischemic Core Volume Prediction in Tandem Anterior Circulation Occlusions." Interventional Neurology 5, no. 1-2 (2016): 81–88. http://dx.doi.org/10.1159/000445763.

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Background/Aim: CT perfusion (CTP) predicts ischemic core volumes in acute ischemic stroke (AIS); however, assumptions made within the pharmacokinetic model may engender errors by the presence of tracer delay or dispersion. We aimed to evaluate the impact of hemodynamic disturbance due to extracranial anterior circulation occlusions upon the accuracy of ischemic core volume estimation with an automated perfusion analysis tool (RAPID) among AIS patients with large-vessel occlusions. Methods: A prospectively collected, interventional database was retrospectively reviewed for all cases of endovas
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7

Bu, He Nan, Zhu Wen Yan, Wen Peng, Shu Zong Chen, and Dian Hua Zhang. "1450mm Five-Stand Tandem Cold Mill Process Control System." Applied Mechanics and Materials 602-605 (August 2014): 1248–51. http://dx.doi.org/10.4028/www.scientific.net/amm.602-605.1248.

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The process control system for tandem cold mill is the core of the production line control system. Its operating status influences the stable production of strip directly. In this paper a tandem cold rolling process control system of cold-rolled sheet plant was taken as an object, the structural framework of control system was designed, the composition and function was introduced.
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8

Wooley, K., C. Cheng, and E. Khoshdel. "One-Pot Tandem Synthesis of a Core-Shell Brush Copolymer." Synfacts 2007, no. 7 (2007): 0702. http://dx.doi.org/10.1055/s-2007-968653.

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9

Narkeviciute, Ieva, Pongkarn Chakthranont, Adriaan J. M. Mackus, et al. "Tandem Core–Shell Si–Ta3N5 Photoanodes for Photoelectrochemical Water Splitting." Nano Letters 16, no. 12 (2016): 7565–72. http://dx.doi.org/10.1021/acs.nanolett.6b03408.

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10

Zuliani, Alessio, Camilla Maria Cova, Roberta Manno, Victor Sebastian, Antonio A. Romero, and Rafael Luque. "Continuous flow synthesis of menthol via tandem cyclisation–hydrogenation of citronellal catalysed by scrap catalytic converters." Green Chemistry 22, no. 2 (2020): 379–87. http://dx.doi.org/10.1039/c9gc03299a.

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11

Cai, Yun, Rajeevan Kozhummal, Christian Kübel, et al. "Spatial separation of photogenerated electron–hole pairs in solution-grown ZnO tandem n–p core–shell nanowire arrays toward highly sensitive photoelectrochemical detection of hydrogen peroxide." Journal of Materials Chemistry A 5, no. 27 (2017): 14397–405. http://dx.doi.org/10.1039/c7ta01620d.

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12

Opatz, Sabrina, Harald Polzer, Tobias Herold, et al. "Exome sequencing identifies recurring FLT3 N676K mutations in core-binding factor leukemia." Blood 122, no. 10 (2013): 1761–69. http://dx.doi.org/10.1182/blood-2013-01-476473.

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13

Ingham, L. D., and F. C. Davis. "Cloning and characterization of a core histone gene tandem repeat in Urechis caupo." Molecular and Cellular Biology 8, no. 10 (1988): 4425–32. http://dx.doi.org/10.1128/mcb.8.10.4425-4432.1988.

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A Urechis caupo histone gene tandem repeat has been isolated from a 5.0-kilobase EcoRI genomic library in lambda gtWES.lambda B. Genomic reconstruction experiments indicate that the cloned sequence is repeated approximately 100 times per haploid genome. Unique restriction fragments from the cloned sequence hybridize with individual core histone genes from a histone gene tandem repeat of the sea urchin, Strongylocentrotus purpuratus. No hybridization is detected when restriction digests are probed with a sea urchin H1 histone gene. Hybrid selection and in vitro translation of embryo mRNAs demon
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14

Ingham, L. D., and F. C. Davis. "Cloning and characterization of a core histone gene tandem repeat in Urechis caupo." Molecular and Cellular Biology 8, no. 10 (1988): 4425–32. http://dx.doi.org/10.1128/mcb.8.10.4425.

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A Urechis caupo histone gene tandem repeat has been isolated from a 5.0-kilobase EcoRI genomic library in lambda gtWES.lambda B. Genomic reconstruction experiments indicate that the cloned sequence is repeated approximately 100 times per haploid genome. Unique restriction fragments from the cloned sequence hybridize with individual core histone genes from a histone gene tandem repeat of the sea urchin, Strongylocentrotus purpuratus. No hybridization is detected when restriction digests are probed with a sea urchin H1 histone gene. Hybrid selection and in vitro translation of embryo mRNAs demon
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15

Chen, Dong, Wen-Dan Xu, Hao-Miao Liu, et al. "Enantioselective total synthesis of (+)-Lingzhiol via tandem semipinacol rearrangement/Friedel–Crafts type cyclization." Chemical Communications 52, no. 55 (2016): 8561–64. http://dx.doi.org/10.1039/c6cc03764j.

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Enantioselective total synthesis of (+)-Lingzhiol has been achieved. Tandem semipinacol rearrangement/lactone formation/Friedel–Crafts cyclization/elimination reaction was developed to construct the four-ring core skeleton.
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16

Craig, Robert A., Jennifer L. Roizen, Russell C. Smith, Amanda C. Jones, Scott C. Virgil, and Brian M. Stoltz. "Correction: Enantioselective, convergent synthesis of the ineleganolide core by a tandem annulation cascade." Chemical Science 10, no. 4 (2019): 1254–55. http://dx.doi.org/10.1039/c8sc90236d.

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17

Lv, Zhanjun, Jianjun Cheng, Ying Xie, Xiangyang Jing, Yuan Zhang та Xiufang Wang. "Finding of IFNγ gene enhancers and their core sequences". Genome 56, № 3 (2013): 147–54. http://dx.doi.org/10.1139/gen-2012-0178.

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DNA segmentation methods were used to study which fragments of the human IFNγ gene possess enhancer activity. The human IFNγ gene was divided into 240-bp fragments, which were inserted between the GFP gene and the Alu tandem sequence to determine whether the inserted sequences eliminate the inhibition induced by the Alu tandem sequence. We found that five different 240-bp fragments (FUIFN3F3R, IFN4F4R, IFN6F6R, IFN21F21R, and IFN22F22R) and two 60-bp core sequences (IFN6-2F2R and IFN21-3-4F3-4R) derived from the IFNγ gene contain enhancers that can activate the GFP reporter gene. These enhance
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18

Condakes, Matthew L., Rachel Z. Rosen, Stephen J. Harwood, and Thomas J. Maimone. "A copper-catalyzed double coupling enables a 3-step synthesis of the quassinoid core architecture." Chemical Science 10, no. 3 (2019): 768–72. http://dx.doi.org/10.1039/c8sc03835j.

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A cross coupling/S<sub>N</sub>2′ tandem reaction is described to construct the polycyclic core architecture of the quassinoids, a fascinating class of degraded triterpenes with potent anticancer activity.
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19

Li, Chuang, Kenli Li, Tao Chen, Yunping Zhu, and Qiang He. "SW-Tandem: a highly efficient tool for large-scale peptide identification with parallel spectrum dot product on Sunway TaihuLight." Bioinformatics 35, no. 19 (2019): 3861–63. http://dx.doi.org/10.1093/bioinformatics/btz147.

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Abstract Summary Tandem mass spectrometry based database searching is a widely acknowledged and adopted method that identifies peptide sequence in shotgun proteomics. However, database searching is extremely computationally expensive, which can take days even weeks to process a large spectra dataset. To address this critical issue, this paper presents SW-Tandem, a new tool for large-scale peptide sequencing. SW-Tandem parallelizes the spectrum dot product scoring algorithm and leverages the advantages of Sunway TaihuLight, the No. 1 supercomputer in the world in 2017. Sunway TaihuLight is powe
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20

Gioria, Esteban, Liseth Duarte-Correa, Najmeh Bashiri, Walid Hetaba, Reinhard Schomaecker, and Arne Thomas. "Rational design of tandem catalysts using a core–shell structure approach." Nanoscale Advances 3, no. 12 (2021): 3454–59. http://dx.doi.org/10.1039/d1na00310k.

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An effective route to create spatially controlled ensembles of metallic nanoparticles spaced by a mesoporous shell is presented. This route enables the rational design of multimetallic catalysts and the study of coupled catalytic reactions.
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21

Davis, Francis C., John C. Shelton, and Lynwood D. Ingham. "Nucleotide sequence of the Urechis caupo core histone gene tandem repeat." DNA Sequence 2, no. 4 (1992): 247–56. http://dx.doi.org/10.3109/10425179209020810.

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22

Deng, Jeremiah D., and Martin K. Purvis. "Multi-core application performance optimization using a constrained tandem queueing model." Journal of Network and Computer Applications 34, no. 6 (2011): 1990–96. http://dx.doi.org/10.1016/j.jnca.2011.07.004.

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23

Ji, Yu, Feng Lu, Yufu Tang, Wen Qian, Quli Fan, and Wei Huang. "Tandem energy upconversion in a conjugated polymer-sensitized core/shell nanocrystal." Inorganic Chemistry Communications 111 (January 2020): 107640. http://dx.doi.org/10.1016/j.inoche.2019.107640.

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24

Ohadi, M., S. Mohammadparast, and H. Darvish. "Evolutionary trend of exceptionally long human core promoter short tandem repeats." Gene 507, no. 1 (2012): 61–67. http://dx.doi.org/10.1016/j.gene.2012.07.001.

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25

Fershtat, Leonid L., Alexander A. Larin, Margarita A. Epishina, et al. "Design of hybrid heterocyclic systems with a furoxanylpyridine core via tandem hetero-Diels–Alder/retro-Diels–Alder reactions of (1,2,4-triazin-3-yl)furoxans." RSC Advances 6, no. 37 (2016): 31526–39. http://dx.doi.org/10.1039/c6ra05110c.

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Synthetic strategy for the synthesis of hybrid heterocyclic systems with the furoxanylpyridine core based on the tandem hetero-Diels–Alder/retro-Diels–Alder reactions of (1,2,4-triazin-3-yl)furoxans with enamine and norbornadiene has been developed.
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26

Huang, Ji-Rong, Liu Qin, Yu-Qin Zhu, Qiang Song, and Lin Dong. "Multi-site cyclization via initial C–H activation using a rhodium(iii) catalyst: rapid assembly of frameworks containing indoles and indolines." Chemical Communications 51, no. 14 (2015): 2844–47. http://dx.doi.org/10.1039/c4cc07125e.

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Tandem multi-site cyclization triggered by Rh(iii)-catalyzed C–H activation has been achieved for highly efficient synthesis of spirocycle indolin-3-one (C2-cyclization), benzo[a]carbazole (C3-cyclization) and an unusual indoxyl core (N1-cyclization).
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27

Kazaks, Andris, I.-Na Lu, Sophie Farinelle, et al. "Production and purification of chimeric HBc virus-like particles carrying influenza virus LAH domain as vaccine candidates." BMC Biotechnology 17, no. 1 (2017): 79. https://doi.org/10.1186/s12896-017-0396-8.

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<strong>Background: </strong>The lack of a universal influenza vaccine is a global health problem. Interest is now focused on structurally conserved protein domains capable of eliciting protection against a broad range of influenza virus strains. The long alpha helix (LAH) is an attractive vaccine component since it is one of the most conserved influenza hemagglutinin (HA) stalk regions. For an improved immune response, the LAH domain from H3N2 strain has been incorporated into virus-like particles (VLPs) derived from hepatitis B virus core protein (HBc) using recently developed tandem core te
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28

Kizil, Murat, Balaram Patro, Owen Callaghan, John A. Murphy, Michael B. Hursthouse, and Dai Hibbs. "Tandem Radical Cyclizations on Iodoaryl Azides: Synthesis of the Core Tetracycle ofAspidospermaAlkaloids." Journal of Organic Chemistry 64, no. 21 (1999): 7856–62. http://dx.doi.org/10.1021/jo990891x.

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29

Qi, Mei-Hong, Ming-Liang Gao, Lin Liu, and Zheng-Bo Han. "Robust Bifunctional Core–Shell MOF@POP Catalyst for One-Pot Tandem Reaction." Inorganic Chemistry 57, no. 23 (2018): 14467–70. http://dx.doi.org/10.1021/acs.inorgchem.8b02303.

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30

Craig, II, Robert A., Jennifer L. Roizen, Russell C. Smith, Amanda C. Jones, Scott C. Virgil, and Brian M. Stoltz. "Enantioselective, convergent synthesis of the ineleganolide core by a tandem annulation cascade." Chemical Science 8, no. 1 (2017): 507–14. http://dx.doi.org/10.1039/c6sc03347d.

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31

Budowle, Bruce, and Ranajit Chakraborty. "Population variation at the CODIS core short tandem repeat loci in Europeans." Legal Medicine 3, no. 1 (2001): 29–33. http://dx.doi.org/10.1016/s1344-6223(01)00008-6.

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32

Helliwell, Madeleine, David Fengas, Christopher K. Knight, et al. "Bifurcate, tandem ATRC reactions: towards 2-oxabicyclo[4.3.0]nonane core of eunicellins." Tetrahedron Letters 46, no. 42 (2005): 7129–34. http://dx.doi.org/10.1016/j.tetlet.2005.08.104.

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33

Oh, Kyungsoo. "A Rapid Synthesis of the Biotin Core through a Tandem Michael Reaction." Organic Letters 9, no. 16 (2007): 2973–75. http://dx.doi.org/10.1021/ol0710663.

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34

Ohadi, Mina, Elaheh Valipour, Saeed Ghadimi-Haddadan, et al. "Core promoter short tandem repeats as evolutionary switch codes for primate speciation." American Journal of Primatology 77, no. 1 (2014): 34–43. http://dx.doi.org/10.1002/ajp.22308.

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35

Kennedy, Aaron D., Erik N. Rasmussen, and Jerry M. Straka. "Visual Observation of the 6 June 2005 Descending Reflectivity Core." E-Journal of Severe Storms Meteorology 2, no. 6 (2021): 1–12. http://dx.doi.org/10.55599/ejssm.v2i6.11.

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A visual observation of a descending reflectivity core (DRC) is presented in tandem with radar data from the Frederick, OK WSR-88D for a supercell storm that occurred on 6 June 2005. The DRC appeared as a dense column of precipitation to the right of the main core, west-southwest of the wall cloud. Through the use of stereo photogrammetric techniques, it is shown that these rain elements corresponded with a local maximum of reflectivity within the supercell echo appendage.
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36

Gong, Xinxing, Hongguang Xia, and Jie Wu. "A palladium-catalyzed tandem reaction of 2-alkynylbenzenesulfonamides with 2-(2-bromoarylidene)cyclobutanones." Organic Chemistry Frontiers 3, no. 6 (2016): 697–700. http://dx.doi.org/10.1039/c6qo00091f.

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The core of benzo[f][1,2]thiazonin-5(4H)-one 3,3-dioxide is efficiently assembled through a palladium-catalyzed tandem reaction of 2-alkynylbenzenesulfonamides with 2-(2-bromobenzylidene)cyclobutanones via double carbometallation. A range of polycycles with a nine-membered sultam ring are generated in moderate to good yields.
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37

Zhao, Jinfeng, Ming Li, and Lin Zhou. "Design on the Polymer Temperature Control System for Tandem Mixer." Applied Mechanics and Materials 475-476 (December 2013): 639–42. http://dx.doi.org/10.4028/www.scientific.net/amm.475-476.639.

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s: Polymer mixing is the key process of rubber products manufacturing, and mixer is the core equipment in polymer mixing process. By analysis of the effective factors on mixer mixing temperature, this paper study realization method of temperature control system. A polymer temperature control system using tandem mixing technology is designed to improve the mixing efficiency and the quality.
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38

Boutemy, Laurence S., Stuart R. F. King, Joe Win, et al. "Structures of Phytophthora RXLR Effector Proteins." Journal of Biological Chemistry 286, no. 41 (2011): 35834–42. http://dx.doi.org/10.1074/jbc.m111.262303.

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Phytopathogens deliver effector proteins inside host plant cells to promote infection. These proteins can also be sensed by the plant immune system, leading to restriction of pathogen growth. Effector genes can display signatures of positive selection and rapid evolution, presumably a consequence of their co-evolutionary arms race with plants. The molecular mechanisms underlying how effectors evolve to gain new virulence functions and/or evade the plant immune system are poorly understood. Here, we report the crystal structures of the effector domains from two oomycete RXLR proteins, Phytophth
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39

Pauly, Jan, Harald Gröger, and Anant V. Patel. "Developing Multicompartment Biopolymer Hydrogel Beads for Tandem Chemoenzymatic One-Pot Process." Catalysts 9, no. 6 (2019): 547. http://dx.doi.org/10.3390/catal9060547.

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Chemoenzymatic processes have been gaining interest to implement sustainable reaction steps or even create new synthetic routes. In this study, we combined Grubbs’ second-generation catalyst with pig liver esterase and conducted a chemoenzymatic one-pot process in a tandem mode. To address sustainability, we encapsulated the catalysts in biopolymer hydrogel beads and conducted the reaction cascade in an aqueous medium. Unfortunately, conducting the process in tandem led to increased side product formation. We then created core-shell beads with catalysts located in different compartments, which
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40

Horak, Yuriy I., Roman Z. Lytvyn, Andrii R. Vakhula, Yuriy V. Homza, Nazariy T. Pokhodylo, and Mykola D. Obushak. "New tandem Ugi/intramolecular Diels–Alder reaction based on vinylfuran and 1,3-butadienylfuran derivatives." Beilstein Journal of Organic Chemistry 21 (February 26, 2025): 444–50. https://doi.org/10.3762/bjoc.21.31.

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A new tandem sequence involving the Ugi reaction and Diels–Alder [4 + 2] cycloaddition based on vinylfuran and 1,3-butadienylfuran derivatives was designed and studied. It was found that in the case of 3-(furan-2-yl)acrylaldehyde, a one-pot Ugi reaction and intramolecular Diels–Alder vinylarene (IMDAV) reaction leads to the formation of the insufficiently studied furo[2,3-f]isoindole derivatives. Ugi adducts formed from (E)-3-(furan-2-yl)acrylaldehyde, maleic acid monoanilide, isonitrile, and an amine spontaneously underwent the IMDAV reaction with a high level of stereoselectivity, leading to
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41

Brossart, Peter, Kathrin S. Heinrich, Gernot Stuhler, et al. "Identification of HLA-A2–Restricted T-Cell Epitopes Derived From the MUC1 Tumor Antigen for Broadly Applicable Vaccine Therapies." Blood 93, no. 12 (1999): 4309–17. http://dx.doi.org/10.1182/blood.v93.12.4309.

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Abstract The tumor-associated antigen MUC1 is overexpressed on various hematological and epithelial malignancies and is therefore a suitable candidate for broadly applicable vaccine therapies. It was demonstrated that major histocompatibility complex (MHC)-unrestricted cytotoxic T cells can recognize epitopes of the MUC1 protein core localized in the tandem repeat domain. There is increasing evidence now that MHC-restricted T cells can also be induced after immunization with the MUC1 protein or segments of the core tandem repeat. Using a computer analysis of the MUC1 amino acid sequence, we id
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42

Brossart, Peter, Kathrin S. Heinrich, Gernot Stuhler, et al. "Identification of HLA-A2–Restricted T-Cell Epitopes Derived From the MUC1 Tumor Antigen for Broadly Applicable Vaccine Therapies." Blood 93, no. 12 (1999): 4309–17. http://dx.doi.org/10.1182/blood.v93.12.4309.412k19_4309_4317.

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The tumor-associated antigen MUC1 is overexpressed on various hematological and epithelial malignancies and is therefore a suitable candidate for broadly applicable vaccine therapies. It was demonstrated that major histocompatibility complex (MHC)-unrestricted cytotoxic T cells can recognize epitopes of the MUC1 protein core localized in the tandem repeat domain. There is increasing evidence now that MHC-restricted T cells can also be induced after immunization with the MUC1 protein or segments of the core tandem repeat. Using a computer analysis of the MUC1 amino acid sequence, we identified
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43

Shaner, Matthew R., Katherine T. Fountaine, Shane Ardo, Rob H. Coridan, Harry A. Atwater, and Nathan S. Lewis. "Photoelectrochemistry of core–shell tandem junction n–p+-Si/n-WO3microwire array photoelectrodes." Energy Environ. Sci. 7, no. 2 (2014): 779–90. http://dx.doi.org/10.1039/c3ee43048k.

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44

Fan, Xing, Guo-Sheng Li, Xueming Dong, Jing Jiang, Xian-Yong Wei, and Hilkka I. Kenttämaa. "Tandem mass spectrometric evaluation of core structures of aromatic compounds after catalytic deoxygenation." Fuel Processing Technology 176 (July 2018): 119–23. http://dx.doi.org/10.1016/j.fuproc.2018.03.031.

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45

Wei, Wenjing, Shuping Wu, Xiaojuan Shen, Maiyong Zhu, and Songjun Li. "Nanoreactor with Core–Shell Architectures Used as Spatiotemporal Compartments for “Undisturbed” Tandem Catalysis." Journal of Inorganic and Organometallic Polymers and Materials 29, no. 4 (2019): 1235–42. http://dx.doi.org/10.1007/s10904-019-01087-2.

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46

Ács, András, Oliver Ozohanics, Károly Vékey, László Drahos, and Lilla Turiák. "Distinguishing Core and Antenna Fucosylated Glycopeptides Based on Low-Energy Tandem Mass Spectra." Analytical Chemistry 90, no. 21 (2018): 12776–82. http://dx.doi.org/10.1021/acs.analchem.8b03140.

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47

Bushehri, A., M. R. Mashhoudi Barez, S. K. Mansouri, A. Biglarian, and M. Ohadi. "Genome-wide identification of human- and primate-specific core promoter short tandem repeats." Gene 587, no. 1 (2016): 83–90. http://dx.doi.org/10.1016/j.gene.2016.04.041.

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48

Baskaran, Sundarababu, Edgar Nagy, and Manfred Braun. "A Tandem Claisen-Decarboxylation-Aldol Reaction – Facile Access to The Fredericamycin A Core." Liebigs Annalen 1997, no. 2 (1997): 311–12. http://dx.doi.org/10.1002/jlac.199719970206.

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49

Ma, Qian, Tingjun Fu, Le Yin, and Zhong Li. "Constructing macroscopic core@shell catalyst to boost tandem catalysis of methanol to aromatic." Chemical Engineering Journal 462 (April 2023): 142252. http://dx.doi.org/10.1016/j.cej.2023.142252.

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TSUKUDA, T., H. YASUMATSU, T. SUGAI, A. TERASAKI, T. NAGATA, and T. KONDOW. "DISSOCIATIVE SCATTERING OF SIZE-SELECTED $({\rm{C}}_6 {\rm{F}}_6)_n^-$ (n=1–5) FROM A SILICON SURFACE." Surface Review and Letters 03, no. 01 (1996): 875–79. http://dx.doi.org/10.1142/s0218625x96001571.

Full text
Abstract:
Scattering processes of a size-selected beam of [Formula: see text](n=1–5) from a silicon surface were investigated using a Tandem time-of-flight (TOF) mass spectrometer. Anionic fragments, F − and [Formula: see text], are produced in the collision of [Formula: see text] at a collision energy in the range of 0–150 eV. The result leads us to conclude that the anionic core of [Formula: see text] is electronically excited upon the surface collision and subsequently dissociates into the fragments. The solvent molecules influence dissociation dynamics of the electronically excited anionic core in l
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