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Статті в журналах з теми "Natural bioink"
Willson, Kelsey, Anthony Atala, and James J. Yoo. "Bioprinting Au Natural: The Biologics of Bioinks." Biomolecules 11, no. 11 (October 28, 2021): 1593. http://dx.doi.org/10.3390/biom11111593.
Повний текст джерелаZhe, Man, Xinyu Wu, Peiyun Yu, Jiawei Xu, Ming Liu, Guang Yang, Zhou Xiang, Fei Xing, and Ulrike Ritz. "Recent Advances in Decellularized Extracellular Matrix-Based Bioinks for 3D Bioprinting in Tissue Engineering." Materials 16, no. 8 (April 18, 2023): 3197. http://dx.doi.org/10.3390/ma16083197.
Повний текст джерелаGoklany, Sheba. "Conductive Nanomaterials used in Bioinks for 3D Bioprinting." Nano LIFE 11, no. 02 (June 2021): 2130005. http://dx.doi.org/10.1142/s1793984421300053.
Повний текст джерелаDelkash, Yasaman, Maxence Gouin, Tanguy Rimbeault, Fatemeh Mohabatpour, Petros Papagerakis, Sean Maw, and Xiongbiao Chen. "Bioprinting and In Vitro Characterization of an Eggwhite-Based Cell-Laden Patch for Endothelialized Tissue Engineering Applications." Journal of Functional Biomaterials 12, no. 3 (August 11, 2021): 45. http://dx.doi.org/10.3390/jfb12030045.
Повний текст джерелаZhang, Chun-Yang, Chao-Ping Fu, Xiong-Ya Li, Xiao-Chang Lu, Long-Ge Hu, Ranjith Kumar Kankala, Shi-Bin Wang, and Ai-Zheng Chen. "Three-Dimensional Bioprinting of Decellularized Extracellular Matrix-Based Bioinks for Tissue Engineering." Molecules 27, no. 11 (May 26, 2022): 3442. http://dx.doi.org/10.3390/molecules27113442.
Повний текст джерелаChen, Yan, Yingge Zhou, and Chi Wang. "Investigation of Collagen-Incorporated Sodium Alginate Bioprinting Hydrogel for Tissue Engineering." Journal of Composites Science 6, no. 8 (August 4, 2022): 227. http://dx.doi.org/10.3390/jcs6080227.
Повний текст джерелаTolmacheva, Nelli, Amitava Bhattacharyya, and Insup Noh. "Calcium Phosphate Biomaterials for 3D Bioprinting in Bone Tissue Engineering." Biomimetics 9, no. 2 (February 6, 2024): 95. http://dx.doi.org/10.3390/biomimetics9020095.
Повний текст джерелаSanz-Fraile, Héctor, Carolina Herranz-Diez, Anna Ulldemolins, Bryan Falcones, Isaac Almendros, Núria Gavara, Raimon Sunyer, Ramon Farré, and Jorge Otero. "Characterization of Bioinks Prepared via Gelifying Extracellular Matrix from Decellularized Porcine Myocardia." Gels 9, no. 9 (September 13, 2023): 745. http://dx.doi.org/10.3390/gels9090745.
Повний текст джерелаLee, Juo, Sungmin Lee, Jae Woon Lim, Iksong Byun, Kyoung-Je Jang, Jin-Woo Kim, Jong Hoon Chung, Jungsil Kim, and Hoon Seonwoo. "Development of Plum Seed-Derived Carboxymethylcellulose Bioink for 3D Bioprinting." Polymers 15, no. 23 (November 21, 2023): 4473. http://dx.doi.org/10.3390/polym15234473.
Повний текст джерелаGao, Qiqi, Byoung-Soo Kim, and Ge Gao. "Advanced Strategies for 3D Bioprinting of Tissue and Organ Analogs Using Alginate Hydrogel Bioinks." Marine Drugs 19, no. 12 (December 15, 2021): 708. http://dx.doi.org/10.3390/md19120708.
Повний текст джерелаДисертації з теми "Natural bioink"
Abou, Nassif Lea. "Développement de bioencres naturelles enrichies par les composants de la gelée de Wharton pour la bioimpression 3D." Electronic Thesis or Diss., Reims, 2024. http://www.theses.fr/2024REIMS041.
Повний текст джерела3D bioprinting is a promising technology for regenerative medicine, enabling the creation of biomimetic structures using specific bioinks. This thesis focuses on the development of bioactive bioinks, enriched with components from Wharton's Jelly (WJ) matrix. The WJ hydrogel, not being printable on its own, was combined with natural polymers such as alginate and gelatin to create a thermosensitive bioink. The printing parameters, especially temperature and pressure, were optimized to ensure better precision.Printed constructs from the alginate/type B gelatin formulation with or without WJ hydrogel, crosslinked with calcium chloride and transglutaminase (TG), provided an appropriate support for cells. However, the presence of WJ did not stimulate the recruitment or proliferation of mesenchymal stem cells (MSCs) or fibroblasts. Due to the potential immunogenicity of alginate and its negative impact on the behavior of printed cells, it was removed. The newest formulation was based on type A gelatin, more sensitive to TG activity. The printed fibroblasts in type A gelatin showed good viability after 21 days, but the addition of WJ hydrogel did not support cell viability after bioprinting. However, the addition of conditioned medium from WJ-derived MSCs enhanced the bioactivity of type A gelatine bioink
Rhönnstad, Sofie. "Biotinylation and high affinity avidin capture as a strategy for LC-MS based metabolomics." Thesis, Linköping University, Department of Physics, Chemistry and Biology, 2010. http://urn.kb.se/resolve?urn=urn:nbn:se:liu:diva-56771.
Повний текст джерелаMetabolites, small endogenous molecules existing in every living cell, tissue or organism, play a vital role for maintaining life. The collective group of all metabolites, the metabolome, is a consequence of the biochemistry and biochemical pathways that a cell or tissue uses to promote survival. Analysis of the metabolome can be done to reveal changes of specific metabolites which can be a manifestation, a reason or a consequence of for example a disease. The physical chemical diversity amongst these components is tremendous and it poses a large analytical challenge to measure and quantify all of them. Targeting sub groups of the metabolome such as specific functional classes has shown potential for increasing metabolite coverage. Group selective labeling with biotin-tags followed by high affinity avidin capture is a well established purification strategy for protein purification.
The purpose with this project is to explore if it is possible to transfer the avidin biotin approach to metabolomics and use this method for small molecules purification. Specifically, this investigation aims to see if it is achievable to make a biotinylation of specific functional groups, to increase the sensitivity through reduction of sample complexity in liquid chromatography mass spectrometry metabolomics analyses after high affinity avidin capture. By purifying the analyte of interest and thereby reducing the sample complexity there will be a reduction in ion suppression. The aim is to increase the analytical sensitivity through a reduction in ion suppression during liquid chromatography mass spectrometry analysis.
Delimitations have been done to only investigate the possibility to obtain a biotinylation of primary amines and amides. As model compounds phenylalanine, spermidine, histamine and nicotinamide have been selected.
The result from this study indicates that it is possible to increase metabolite coverage through biotin labeling followed by high affinity avidin capture. It is a gain in analytical sensitivity of selected model compounds when comparing biotinylation strategy with a control nonbiotinylation approach in a complex sample. A broader study of additional model compounds and a method development of this strategy are necessary to optimize a potential future method.
Šáchová, Irena. "Bionika v architektuře (strom jako inspirační zdroj)." Doctoral thesis, Vysoké učení technické v Brně. Fakulta architektury, 2012. http://www.nusl.cz/ntk/nusl-233238.
Повний текст джерелаMarcinonytė, Sigita. "Bioniškos architektūros ypatumai: konstrukcijos, ornamentika, ryšys su aplinka." Master's thesis, Lithuanian Academic Libraries Network (LABT), 2009. http://vddb.library.lt/obj/LT-eLABa-0001:E.02~2009~D_20090713_142527-19734.
Повний текст джерелаThe final post-graduate work focuses on three different aspects of bionic architecture –i.e. construction, ornamentation and smooth connection with environment. These guidelines are based on definition of bionic architecture. It says that bionic building is the one projected whether under natural decorative motifs or natural structures. However, harmonic composition of the building and the surrounding landscape using different expressions also creates an organic look. Thus the whole work is based on the analysis of the basic features of the bionic buildings. Those distinctive and common features are analyzed and compared together to find the essential ones that reflect the bionic connection. The main cause is to seek and to prove through the research of similarities and differences, that all these edifices, built in different manner, has the same root – bionic architecture.
Čábelková, Nahorniaková Marcela. "Organická soudobá architektura a bydlení." Doctoral thesis, Vysoké učení technické v Brně. Fakulta architektury, 2012. http://www.nusl.cz/ntk/nusl-233242.
Повний текст джерелаPereira, Rúben Filipe Brás. "Bioprinting of cell-responsive bioinks for skin tissue engineering." Doctoral thesis, 2018. https://hdl.handle.net/10216/118037.
Повний текст джерелаPereira, Rúben Filipe Brás. "Bioprinting of cell-responsive bioinks for skin tissue engineering." Tese, 2018. https://hdl.handle.net/10216/118037.
Повний текст джерелаCautela, Maria Margarida de Almeida. "Dispositivos biossensoriais baseados na associação de biomoléculas a superfícies de ouro." Master's thesis, 2017. http://hdl.handle.net/1822/45514.
Повний текст джерелаAs superfícies de ouro têm propriedades optoelectrónicas e físico-químicas únicas, o que as torna excelentes superfícies para o desenvolvimento de plataformas de bioreconhecimento (biossensores). O ouro pode ser funcionalizado com diferentes tipos de moléculas que, por sua vez, promovem o reconhecimento de bioentidades de interesse, resultando na alteração das propriedades físico-químicas da superfície e na geração de sinais detetáveis. Este trabalho teve como objetivo a exploração de interações da superfície de ouro com moléculas funcionais que, mais tarde, promovem a imobilização de proteínas, p.ex. avidinas, como passo crucial no desenvolvimento de dispositivos biossensoriais baseados nas interações biotina-avidina. Os sistemas biotina-avidina foram escolhidos devido à sua afinidade, alta especificidade e, por fim, estabilidade. Para este fim, foram fabricados diferentes materiais de ouro para estudar interações biomoleculares: i) filmes de ouro depositados em lâminas de vidro de forma a tornar possível a organização de proteínas em monocamadas auto-montadas (self-assembled monolayers – SAMs), e ii) as nanopartículas em forma de esferas e nanovaras (nanorods) que foram utilizados como estruturas avançadas para diagnóstico. Estas superfícies foram funcionalizadas com compostos contendo tiol numa extremidade e o éster hidroxisuccinimida ou a própria biotina na outra extremidade. Alternativamente, as moléculas de funcionalização continham uma cadeia de ligação de polietilenoglicol (PEG) inerte adequado para aplicações dentro do corpo humano, uma vez que diminui a ligação não específica de bioentidades. Tanto a avidina comercial como as suas análogas recombinantes (Switchavidin e ChiAVD) foram imobilizadas com sucesso nas superfícies de ouro pré-funcionalizadas. De forma resumida, esta dissertação representa a base de estudos futuros para a investigação da deteção de biomoléculas de interesse via alterações nas superfícies. Estas alterações podem ser detetadas através de métodos óticos e/ou elétricos, tais como espetroscopia de absorção/reflexão e/ou ressonância de plasmão de superfície.
Gold surfaces have unique optoelectronic and physico-chemical properties that make them excellent surfaces for the development of biorecognition platforms (biosensors). Gold can be functionalized with different kind of molecules that in turn promote recognition of bioentities of interest, resulting in alteration of the surface physico-chemical properties and in the generation of detectable signals. This work aimed to explore the gold surface interactions with functional molecules that further allow immobilization of proteins, e.g. avidins, as crucial steps in the development of biosensor devices based on biotin-avidin interactions. The biotin-avidin systems were chosen because of their affinity, high specificity and ultimately stability. To this end, different gold materials were fabricated to study the biomolecule interactions: i) gold films were prepared on glass slides to elucidate the organization of proteins in self-assembled monolayers, and ii) nanoparticles of spherical shape and in the form of nanorods were used as advanced nanostructures for diagnostic purposes. These surfaces were functionalized with thiol-bearing hydroxysuccinimide ester or biotin itself. Alternatively, the functionalization molecules contained an inert polyethylene glycol (PEG) linker chain, suitable for in- body applications, as it decreases non-specific attachment of bioentities. Both commercial avidin and charge neutralized recombinant mutants (reversible switchavidin and thermostable chimeric avidin) were successfully immobilized on the pre-functionalized gold. This thesis represents the basis for future studies that will investigate the detection of biomolecules of interest via alterations on gold surfaces. The interactions are detectable via optical and/or electrical methods, such as absorption/reflection and/or surface plasmon resonance.
Kim, Eun Jin. "New Strategies in the Localization of Natural Product Biosynthetic Pathways and Achieving Heterologous Expression." 2009. http://hdl.handle.net/1969.1/ETD-TAMU-2009-12-7427.
Повний текст джерелаPaul, Subhadeep. "Studies on BODIPY Appended Ruthenium(II) Complexes for Bioimaging and Photodynamic Therapy Applications." Thesis, 2022. https://etd.iisc.ac.in/handle/2005/5894.
Повний текст джерелаКниги з теми "Natural bioink"
Colombo, Barbara. Bionic design: Lo sviluppo del prodotto industriale attraverso lo studio della natura. Roma: Aracne, 2009.
Знайти повний текст джерелаKreuzer, Franz. Nobelpreis für den Lieben Gott: Chancen und Grenzen der Bionik, Wunder und Rätsel der Evolution, offene und versperrte Tore der Erkenntnis. Wien: Kremayr & Scheriau/Orac, 2004.
Знайти повний текст джерелаArkhitekturnai︠a︡ bionika: Problemi teorii i praktiki. MOSKVA: Kartolitografii︠a︡, 1986.
Знайти повний текст джерелаBenyus, Janine M. Biomimicry: Innovation Inspired by Nature. Harper Perennial, 2002.
Знайти повний текст джерелаBiomimicry: Innovation Inspired by Nature. Perennial (HarperCollins), 1998.
Знайти повний текст джерелаBion Experiments: On the Origin of LIfe. Wilhelm Reich Infant Trust, 2023.
Знайти повний текст джерелаThe Bion Experiments: On the Origin of LIfe. Wilhelm Reich Infant Trust, 2023.
Знайти повний текст джерелаЧастини книг з теми "Natural bioink"
Nachtigall, Werner. "Was bedeutet Bionik?" In Vorbild Natur, 1–6. Berlin, Heidelberg: Springer Berlin Heidelberg, 1997. http://dx.doi.org/10.1007/978-3-642-60866-7_1.
Повний текст джерелаNachtigall, Werner. "Technische Biologie und Bionik." In Technik und Natur, 99–112. Berlin, Heidelberg: Springer Berlin Heidelberg, 1994. http://dx.doi.org/10.1007/978-3-662-01104-1_4.
Повний текст джерелаScheele, Irmtraut. "Bionik — Entstehen einer Wissenschaft." In Technik und Natur, 193–204. Berlin, Heidelberg: Springer Berlin Heidelberg, 1994. http://dx.doi.org/10.1007/978-3-662-01104-1_8.
Повний текст джерелаHoppe, Nils. "The Regulation of Biobanking in Germany." In GDPR and Biobanking, 277–90. Cham: Springer International Publishing, 2021. http://dx.doi.org/10.1007/978-3-030-49388-2_15.
Повний текст джерелаMohonea, Ana. "Bionic Criteria for Sustainable Labelling of Buildings." In Architecture Inspired by Nature, 171–80. Cham: Springer Nature Switzerland, 2023. http://dx.doi.org/10.1007/978-3-031-33144-2_15.
Повний текст джерелаDușoiu, Elena-Codina. "Categories of Natural Principles and Their Adaptation to Bionic Design." In Architecture Inspired by Nature, 69–78. Cham: Springer Nature Switzerland, 2023. http://dx.doi.org/10.1007/978-3-031-33144-2_4.
Повний текст джерелаCouceiro, Mauro Costa. "Bionic Approaches and the Cyborg Culture: Human’s Phenotypic and Cognitive Extensions." In Architecture Inspired by Nature, 103–9. Cham: Springer Nature Switzerland, 2023. http://dx.doi.org/10.1007/978-3-031-33144-2_7.
Повний текст джерелаYang, Changsheng, Junxiong Wang, Hong Liang, and Herbert Peremans. "Compressed Sensing of Complex Reflections Using Range-Azimuth Dictionary in a Bionic Sonar System." In Advances in Natural Computation, Fuzzy Systems and Knowledge Discovery, 244–51. Cham: Springer International Publishing, 2019. http://dx.doi.org/10.1007/978-3-030-32456-8_26.
Повний текст джерелаDușoiu, Elena-Codina. "The Bionic Paradigm of Light in Architecture and Design: From Animal Vision to Architectural Conception." In Architecture Inspired by Nature, 79–90. Cham: Springer Nature Switzerland, 2023. http://dx.doi.org/10.1007/978-3-031-33144-2_5.
Повний текст джерелаArruda, Amilton José Vieira. "Didactic/Methodological Proposal: Use of the Natural Classification as an Element of Bionic Studies." In Biomimetics, Biodesign and Bionics, 1–19. Cham: Springer Nature Switzerland, 2024. http://dx.doi.org/10.1007/978-3-031-51311-4_1.
Повний текст джерелаТези доповідей конференцій з теми "Natural bioink"
Wei, Zhenghao, Lin Kehua, and Jianlin Feng. "A Bionic Natural Language Parser Equivalent to a Pushdown Automaton." In 2024 International Joint Conference on Neural Networks (IJCNN), 1–8. IEEE, 2024. http://dx.doi.org/10.1109/ijcnn60899.2024.10651539.
Повний текст джерелаKuhnert, Ewa. "NATURE A CONSTANT INSPIRATION FOR HUMAN BEINGS � AESTHETIC CHANGES IN ARCHITECTURE OVER THE CENTURIES." In SGEM International Multidisciplinary Scientific GeoConference 24, 403–8. STEF92 Technology, 2024. https://doi.org/10.5593/sgem2024/6.1/s27.58.
Повний текст джерелаHutchinson, William, and Matthew Warren. "The Nature of Data: Illusions of Reality." In 2001 Informing Science Conference. Informing Science Institute, 2001. http://dx.doi.org/10.28945/2405.
Повний текст джерелаLv, Jin, Xiao-jun Yang, and Chen Guo. "Comprehensive Bionic Neuron Unified Model." In 2009 International Conference on Computational Intelligence and Natural Computing (CINC). IEEE, 2009. http://dx.doi.org/10.1109/cinc.2009.8.
Повний текст джерелаZhang, Xiaojun, Minglu Zhang, Jianguang Sun, and Xiaohui Li. "Design of a Modular Bionic Olfaction System for Robot." In 2008 Fourth International Conference on Natural Computation. IEEE, 2008. http://dx.doi.org/10.1109/icnc.2008.229.
Повний текст джерелаWang, Lei, Yuwen Zhou, and Weiwei Zhao. "Comparative Study on Bionic Optimization Algorithms for Sewer Optimal Design." In 2009 Fifth International Conference on Natural Computation. IEEE, 2009. http://dx.doi.org/10.1109/icnc.2009.89.
Повний текст джерелаBensmaia, Sliman. "Biological and bionic hands: Natural neural coding and artificial perception." In 2015 IEEE World Haptics Conference (WHC). IEEE, 2015. http://dx.doi.org/10.1109/whc.2015.7177674.
Повний текст джерелаGang, Cheng, Ge Shi-rong, and Jiang Shi-lei. "Error Analysis and Kinematic Calibration of 3-RPS Symmetrical Parallel Bionic Leg." In 2009 Fifth International Conference on Natural Computation. IEEE, 2009. http://dx.doi.org/10.1109/icnc.2009.590.
Повний текст джерелаChiu, Wan-ting, and Shu-Chuan Tseng. "The Influence of Bionic Creatures and Natural Condition on Design Inspirtation." In 2015 IIAI 4th International Congress on Advanced Applied Informatics (IIAI-AAI). IEEE, 2015. http://dx.doi.org/10.1109/iiai-aai.2015.218.
Повний текст джерелаChansoria, Parth, and Rohan Shirwaiker. "Ultrasonically-Induced Patterning of Viable Cells in Viscous Bioinks During 3D Biofabrication." In ASME 2019 14th International Manufacturing Science and Engineering Conference. American Society of Mechanical Engineers, 2019. http://dx.doi.org/10.1115/msec2019-2816.
Повний текст джерелаЗвіти організацій з теми "Natural bioink"
Spiegel, Yitzhak, Michael McClure, Itzhak Kahane, and B. M. Zuckerman. Characterization of the Phytophagous Nematode Surface Coat to Provide New Strategies for Biocontrol. United States Department of Agriculture, November 1995. http://dx.doi.org/10.32747/1995.7613015.bard.
Повний текст джерелаKapulnik, Yoram, and Donald A. Phillips. Isoflavonoid Regulation of Root Bacteria. United States Department of Agriculture, January 1996. http://dx.doi.org/10.32747/1996.7570561.bard.
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