Εμφανίζονται 1 - 20 Αποτελέσματα από 779 για την αναζήτηση '"КАРБОНАТ"', χρόνος αναζήτησης: 0,95δλ Περιορισμός αποτελεσμάτων
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    Academic Journal

    Πηγή: Composite materials; 2025: Materials of the XIV International scientific and practical WEB-conference; 105-111
    Композиційні матеріали; 2025: Матеріали XІV Міжнародної науково-практичної WEB-конференції ; 105-111

    Περιγραφή αρχείου: application/pdf

    Σύνδεσμος πρόσβασης: https://cmmiwc.kpi.ua/article/view/327326

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    Academic Journal
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    Academic Journal

    Πηγή: Вісник Національного технічного університету України «Київський політехнічний інститут імені Ігоря Сікорського»: Серія «Хімічна інженерія, екологія та ресурсозбереження», Iss 1, Pp 84-96 (2025)

    Περιγραφή αρχείου: electronic resource

    Σύνδεσμος πρόσβασης: https://doaj.org/article/299cab1103314202b8da4051e2470d0e

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    Academic Journal
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    Academic Journal

    Πηγή: Bulletin of NTUU «Igor Sikorsky Kyiv Polytechnic Institute», Series «Chemical engineering, ecology and resource saving»; No. 1 (2025); 84-96
    Вісник НТУУ “КПІ імені Ігоря Сікорського”. Серія: Хімічна інженерія, екологія та ресурсозбереження; № 1 (2025); 84-96

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    Σύνδεσμος πρόσβασης: https://chemengine.kpi.ua/article/view/325851

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    Academic Journal

    Πηγή: Vestnik of Brest State Technical University; No. 1(136) (2025): Vestnik of Brest State Technical University; 133-137
    Вестник Брестского государственного технического университета; № 1(136) (2025): Вестник Брестского государственного технического университета; 133-137

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    Academic Journal

    Συνεισφορές: The authors express their gratitude to the staff of the tissue technology group of the Institute of Cytology of the Russian Academy of Sciences for assistance in obtaining collagen gel. The work was supported by the SPSI “Chemical processes, reagents and technologies, bioregulators and bioorganic chemistry” (task 2.1.04.7)., Авторы благодарны сотрудникам группы тканевых технологий Института цитологии РАН за содействие в получении коллагенового геля. Работа выполнена при финансовой поддержке ГПНИ «Химические процессы, реагенты и технологии, биорегуляторы и биооргхимия» (задание 2.1.04.7).

    Πηγή: Doklady of the National Academy of Sciences of Belarus; Том 69, № 3 (2025); 198-205 ; Доклады Национальной академии наук Беларуси; Том 69, № 3 (2025); 198-205 ; 2524-2431 ; 1561-8323 ; 10.29235/1561-8323-2025-69-3

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    Relation: https://doklady.belnauka.by/jour/article/view/1252/1253; The paratenon contributes to scleraxis-expressing cells during patellar tendon healing / N. A. Dyment, Ch.-F. Liu, N. Ka zemi [et al.] // PLoS ONE. – 2013. – Vol. 8, N 3. – Art. e59944. https://doi.org/10.1371/journal.pone.0059944; Структура перитенонов паравертебральных сухожилий, обработанных гиалуроновой кислотой / А. А. Гайдаш, В. К. Крутько, А. И. Кулак [и др.] // Успехи современной биологии. – 2023. – Т. 143, № 4. – С. 315–328. https://doi.org/10.31857/S0042132423040063; The skeletal attachment of tendons – tendon ‘entheses’ / M. Benjamin, T. Kumai, S. Milz [et al.] // Comparative Biochemistry and Physiology. Part A: Molecular and Integrative Physiology. – 2002. – Vol. 133, N 4. – P. 931–945. https://doi.org/10.1016/s1095-6433(02)00138-1; Mienaltowski, M. J. Tendon proper- and peritenon-derived progenitor cells have unique tenogenic properties / M. J. Mienaltowski, S. M. Adams, D. E. Birk // Stem Cell Research and Therapy. – 2014. – Vol. 5. – Art. 86. https://doi.org/10.1186/scrt475; Bone ridge patterning during musculoskeletal assembly is mediated through SCX regulation of Bmp4 at the tendon-skeleton junction / E. Blitz, S. Viukov, A. Sharir [et al.] // Developmental Cell. – 2009. – Vol. 17, N 6. – P. 861–873. https://doi.org/10.1016/j.devcel.2009.10.010; Kuttappan, S. Biomimetic composite scaffolds containing bioceramics and collagen/gelatin for bone tissue engineering – A mini review / S. Kuttappan, D. Mathew, M. B. Nair // International Journal of Biological Macromolecules. – 2016. – Vol. 93, Part B. – P. 1390–1401. https://doi.org/10.1016/j.ijbiomac.2016.06.043; Hu, C. Fabrication of intrafibrillar and extrafibrillar mineralized collagen/apatite scaffolds with a hierarchical structure / C. Hu, M. Zilm, M. Wei // Journal of Biomedical Materials Research. Part A. – 2016. – Vol. 104, N 5. – P. 1153–1161. https://doi.org/10.1002/jbm.a.35649; Development of a biomimetic collagen-hydroxyapatite scaffold for bone tissue engineering using a SBF immersion technique / A. A. Al-Munajjed, N. A. Plunkett, J. P. Cleeson [et al.] // Journal of Biomedical Materials Research. Part B: Applied Biomaterials. – 2009. – Vol. 90, N 2. – P. 584–591. https://doi.org/10.1002/jbm.b.31320; Chandrakasan, G. Preparation of intact monomeric collagen from rat tail tendon and skin and the structure of the nonhelical ends in solution / G. Chandrakasan, D. A. Torchia, K. A. Piez // Journal of Biological Chemistry. – 1976. – Vol. 251, N 19. – P. 6062–6067. https://doi.org/10.1016/s0021-9258(17)33059-4; Collagen fibril orientation in ovine and bovine leather affects strength: A small angle X-ray scattering (SAXS) study / M. M. Basil-Jones, R. L. Edmonds, S. M. Cooper, R. G. Haverkamp // Journal of Agricultural and Food Chemistry. – 2011. – Vol. 59, N 18. – P. 9972–9979. https://doi.org/10.1021/jf202579b; Early diagenetic evolution of bone phosphate: An X-ray diffractometry analysis / A. Person, H. Bocherens, J.-F. Saliège [et al.] // Journal of Archaeological Science. – 1995. – Vol. 22, N 2. – P. 211–221. https://doi.org/10.1006/jasc.1995.0023; Структура и морфогенетические свойства коллагеновых матриц, полученных из соединительнотканных оболочек паравертебральных сухожилий / А. А. Гайдаш, А. И. Кулак, В. К. Крутько [и др.] // Успехи современной биологии. – 2024. – Т. 144, № 3. – С. 265–290. https://doi.org/10.31857/S0042132424030024; Rietveld refinements and spectroscopic studies of the structure of Ca-deficient apatite / R. M. Wilson, J. C. Elliott, S. E. P. Dowker, L. M. Rodriguez-Lorenzo // Biomaterials. – 2005. – Vol. 26, N 11. – P. 1317–1327. https://doi.org/10.1016/j.biomaterials.2004.04.038; Rhee, S. H. Nucleation of hydroxyapatite crystal through chemical interaction with collagen / S. H. Rhee, J. D. Lee, J. Tanaka // Journal of the American Ceramic Society. – 2000. – Vol. 83, N 11. – P. 2890–2892. https://doi.org/10.1111/j.1151-2916.2000. tb01656.x; 3D Tortuosity and diffusion characterization in the human mineralized collagen fibril using a random walk model / F. Bini, A. Pica, A. Marinozzi, F. Marinozzi // Bioengineering. – 2023. – Vol. 10, N 5. – Art. 558. https://doi.org/10.3390/bioengineering10050558; https://doklady.belnauka.by/jour/article/view/1252

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    Academic Journal
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    Academic Journal

    Συνεισφορές: The authors express their gratitude to PhD, Head of the Tissue Technologies Group of the Institute of Cytology of the Russian Academy of Sciences, Yu. A. Nashchekina for assistance in obtaining collagen gel. The work was supported by the SPSR «Chemical processes, reagents and technologies, bioregulators and bioorganic chemistry» (task 2.1.04.7)., Авторы выражают благодарность кандидату биологических наук, руководителю группы тканевых технологий Института цитологи РАН Ю. А. На- щекиной за содействие в получении коллагенового геля. Работа выполнена при финансовой поддержке ГПНИ «Хи- мические процессы, реагенты и технологии, биорегуляторы и биооргхимия» (задание 2.1.04.7).

    Πηγή: Proceedings of the National Academy of Sciences of Belarus, Chemical Series; Том 61, № 1 (2025); 7-23 ; Известия Национальной академии наук Беларуси. Серия химических наук; Том 61, № 1 (2025); 7-23 ; 2524-2342 ; 1561-8331 ; 10.29235/1561-8331-2025-61-1

    Περιγραφή αρχείου: application/pdf

    Relation: https://vestichem.belnauka.by/jour/article/view/933/761; Sherman, S. In vitro and in vivo evaluation of carbonate apatite-collagen scaffolds with some cytokines for bone tissue engineering / S. Sherman, D. A. Maretaningtias // Journal of Indian Prosthodontic Society. – 2015. – Vol. 15, № 4. – P. 349–355. https://doi.org/10.4103/0972-4052.171821; Bone formation ability of carbonate apatite-collagen scaffolds with different carbonate contents / A. Matsuura, T. Kubo, K. Doi [et al.] // Dental Materials Journal. – 2009. – Vol. 28, № 2. – P. 234–242. https://doi.org/10.4012/dmj.28.234; Marine Collagen/Apatite Composite Scaffolds Envisaging Hard Tissue Applications / G. S. Diogo, E. López-Senra, R. Pirraco [et al.] // Marine Drugs. – 2018. – Vol. 16, № 8. – P. 269. https://doi.org/10.3390/md16080269; Kuttappan, S. Biomimetic composite scaffolds containing bioceramics and collagen / gelatin for bone tissue engineering – A mini review / S. Kuttappan, D. Mathew, M. B. Nair // International Journal of Biological Macromolecules. – 2016. – Vol. 93 (Pt. B). – P. 1390–1401. https://doi.org/10.1016/j.ijbiomac.2016.06.043; Preparation of a biomimetic composite scaffold from gelatin / collagen and bioactive glass fibers for bone tissue engineering / E. Sharifi, M. Azami, A.-M. Kajbafzadeh [et al.] // Materials Science and Engineering: C. – 2016. – Vol. 59. – P. 533–541. https://doi.org/10.1016/j.msec.2015.09.037; Toughening and functionalization of bioactive ceramic and glass bone scaffolds by biopolymer coatings and infiltration: a review of the last 5 years / A. Philippart, A. R. Boccaccini, C. Fleck [et al.] // Expert Review of Medical Devices. – 2015. – Vol. 12, № 1. – P. 93–111. https://doi.org/10.1586/17434440.2015.958075; Hu, C. Fabrication of intrafibrillar and extrafibrillar mineralized collagen / apatite scaffolds with a hierarchical structure / C. Hu, M. Zilm, M. Wei // Journal of Biomedical Materials Research Part A. – 2016. – Vol. 104, № 5. – P. 1153–1161. https://doi.org/10.1002/jbm.a.35649; Development of a biomimetic collagen-hydroxyapatite scaffold for bone tissue engineering using a SBF immersion technique / A. A. Al-Munajjed, N. A. Plunkett, J. P. Gleeson [et al.] // Journal of Biomedical Materials Research Part B: Applied Biomaterials. – 2009. – Vol. 90, № 2. – P. 584–591. https://doi.org/10.1002/jbm.b.31320; Niederberger, M. Oriented attachment and mesocrystals: non-classical crystallization mechanisms based on nanoparticle assembly / M. Niederberger, H. Cölfen // Physical Chemistry Chemical Physics. – 2006. – Vol. 8. – P. 3271–3287. https://doi.org/10.1039/b604589h; Hierarchical and non-hierarchical mineralisation of collagen / Y. Liu, Y.-K. Kim, L. Dai [et al.] // Biomaterials. – 2011. – Vol. 32. – P. 1291–1300. https://doi.org/10.1016/j.biomaterials.2010.10.018; Enhanced Intrafibrillar Mineralization of Collagen Fibrils Induced by Brushlike Polymers / L. Yu, I. J. Martin, R. M. Kasi, M. Wei // ACS Applied Materials and Interfaces. – 2018. – Vol. 10, № 34. – P. 28440–28449. https://doi.org/10.1021/acsami.8b10234; Synergistic intrafibrillar / extrafibrillar mineralization of collagen scaffolds based on a biomimetic strategy to promote the regeneration of bone defects / X. Zhang, Y. Wang, N. Manh, H. Wang [et al.] // International Journal of Nanomedicine. – 2016. – Vol. 11. – P. 2053–2067. https://doi.org/10.2147/IJN.S102844; Ma, J. Biomimetic self-assembly of apatite hybrid materials: from a single molecular template to bi-/multi-molecular templates / J. Ma, J. Wang, X. Ai, S. Zhang // Biotechnology Advances. – 2014. – Vol. 32, № 4. – P. 744–760. https://doi.org/10.1016/j. biotechadv.2013.10.014; Assessment of Trabecular Bones Microarchitectures and Crystal Structure of Hydroxyapatite in Bone Osteoporosis with Application of the Rietveld Method / J. M. D. A. Rollo, R. S. Boffa, R. Cesar [et al.] // Procedia Engineering. – 2015. – Vol. 110. – P. 8–14. https://doi.org/10.1016/j.proeng.2015.07.003; Physical and Chemical Characterization of Biomineralized Collagen with Different Microstructures / T. Du, Y. Niu, Y. Liu [et al.] // Journal of Functional Biomaterials. – 2022. – Vol. 13, № 2. – P. 57. https://doi.org/10.3390/jfb13020057; Fabrication and characterization of biomimetic collagen–apatite scaffolds with tunable structures for bone tissue engineering / Z. Xia, X. Yu, X. Jiang [et al.] // Acta Biomaterialia. – 2013. – Vol. 9, № 7. – P. 7308–7319. https://doi.org/10.1016/j.actbio.2013.03.038; Glaser, J. R. Stereology, morphometry, and mapping: the whole is greater than the sum of its parts / J. R. Glaser, E. M. Glaser // Journal of Chemical Neuroanatomy. – 2000. – Vol. 20, № 1. – P. 115–126. https://doi.org/10.1016/s0891-0618(00)00073-9; Пантелеев, В. Г. Компьютерная микроскопия / В. Г. Пантелеев, О. В. Егорова, Е. И. Клыкова. – М.: Техносфера, 2005. – 303 с.; Collagen fibril orientation in ovine and bovine leather affects strength: A small angle X-ray scattering (SAXS) study / M. M. Basil-Jones, R. L. Edmonds, S. M. Cooper, R. G. Haverkamp // Journal of Agricultural and Food Chemistry. – 2011. – Vol. 59, № 18. – P. 9972–9979. https://doi.org/10.1021/jf202579b; Sacks, M. S. A small angle light scattering device for planar connective tissue microstructural analysis / M. S. Sacks, D. B. Smith, E. D. Hiester // Annals of Biomedical Engineering. – 1997. – Vol. 25, № 4. – P. 678–689. https://doi.org/10.1007/BF02684845.; Person, A. Early Diagenetic Evolution of Bone Phosphate: An X-ray Diffractometry Analysis / A. Person, H. Bocherens, J.-F. Saliège // Journal of Archaeological Science. – 1995. – Vol. 22, № 2. – P. 211–221. https://doi.org/10.1006/jasc.1995.0023; Cheng, P. T. Pyrophosphate, phosphate ion interaction: effects on calcium pyrophosphate and calcium hydroxyapatite crystal formation in aqueous solutions / P. T. Cheng, K. Pritzker // Journal of Rheumatology. – 1983. – Vol. 10, № 5. – P. 769−777.; Barralet, J. Carbonate substitution in precipitated hydroxyapatite: an investigation into the effects of reaction temperature and bicarbonate ion concentration / J. Barralet, S. Best, W. Bonfield // Journal of Biomedical Materials Research. − 1998. − Vol. 41, № 1. − P. 79−86. https://doi.org/10.1002/(sici)1097-4636(199807)41:13.0.co;2-c; Greish, Y. E. Phase evolution during the formation of stoichiometric hydroxyapatite at 37.4 degrees C / Y. E. Greish, P. W. Brown // Journal of Biomedical Materials Research Part B: Applied Biomaterials. − 2003. − Vol. 67, № 1. − P. 632−637. https://doi.org/10.1002/jbm.b.10056; Rietveld refinements and spectroscopic studies of the structure of Ca-deficient apatite / R. M. Wilson, J. C. Elliott, S. E. P. Dowker, L. M. Rodriguez-Lorenzo // Biomaterials. − 2005. − Vol. 26, № 11. − P. 1317−1327. https://doi.org/10.1016/j.biomaterials.2004.04.038; Rhee, S. H. Nucleation of hydroxyapatite crystal through chemical interaction with collagen / S. H. Rhee, J. D. Lee, J. Tanaka // Journal of the American Ceramic Society. – 2000. – Vol. 83, № 11. – P. 2890–2892. https://doi.org/10.1111/j.1151-2916.2000.tb01656.x; Leikina, E. Type I collagen is thermally unstable at body temperature / E. Leikina, M. V. Mertts, N. V. Kuznetsova, S. Leikin // Proceedings of the National Academy of Sciences. – 2002. – Vol. 99, № 3. – P. 1314–1318. https://doi.org/10.1073/pnas.032307099; Collagen orientation and leather strength for selected mammals / K. H. Sizeland, M. M. Basil-Jones, R. L. Edmonds [et al.] // Journal of Agricultural and Food Chemistry. – 2013. – Vol. 61, № 4. – P. 887–892. https://doi.org/10.1021/jf304306729C; 3D Tortuosity and Diffusion Characterization in the Human Mineralized Collagen Fibril Using a Random Walk Model / F. Bini, A. Pica, A. Marinozzi, F. Marinozzi // Bioengineering (Basel). – 2023. – Vol. 10, № 5. – P. 558 (1–12). https://doi.org/10.3390/bioengineering10050558; TenHuisen, K. S. Variations in solution chemistry during calcium-deficient and stoichiometric hydroxyapatite formation from CaHPO4·2H2O and Ca4(PO4)2O / K. S. TenHuisen, P. W. Brown // Journal of Biomedical Materials Research. – 1997. – Vol. 36, № 2. – P. 233–241. https://doi.org/10.1002/(sici)1097-4636(199708)36:23.0.co;2-h; Fulmer, M. 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