• Sonuç bulunamadı

43

44

hidrojelinin, MKH’leri nörojenik olarak farklılaşmaya nasıl teşfik edilebileceği gösterilmiştir.

45 KAYNAKLAR

Akhtar, F., M., 2016. ‘’ Methods of synthesis of hydrogels.’’ Saudi Pharmaceutical Journal. 554-559.

Alakpa, V., E., Jayawarna, V., Lampel, A., Burgess, V., K., West, C., C., Bakker, J., C., S., Roy, S., Javid, N., Fleming, S., Lamprou, A., D., Yang, J., Miller, A., Urquhart, J., A., Frederix, M., J., W., P., Hunt, T., N., Peault, B., Ulijin, V., R., Dalby, J., M., 2016. ‘’ Tunable Supramolecular Hydrogels for Selection of Lineage-Guiding Metabolites in Stem Cell Cultures.’’ Chem. 298-319.

Allison, D., D., Grande-Allen, K., J., 2006. ‘’ Review. Hyaluronan: a powerful tissue engineering tool.’’ Tissue Eng. 2131-40.

Alison, M., R., Poulsom, R., Forbes, S., Wright, N., A., 2002. ‘’An introduction tos tem cells.’’ J pathol. 419-423.

Augello, A., Kurth, B., T., De, B., C., 2010. ‘’Mesenchymal stem cells: a perspective from in vitro cultures to in vivo migration and niches.’’ Eur Cell Mater. 121-133.

Bai, Y., Luo, Q., Liu, J., 2016. ‘’ Protein Self-Assembly via Supramolecular Strategies.’’

Chem Soc Rev. 2756-2767.

Beck, B., Blanpain, C., 2012. ‘’Mechanisms regulating epidermal stem cells.’’ EMBO J.

2067-2075.

Buchberger, A., Simmons, R., C., Fahmi, E., N., Freeman, R., Stephanopoulos, N., 2020.

‘’ Hierarchical Assembly of Nucleic Acid/Coiled-Coil Peptide Nanostructures.’’

J Am Chem Soc. 1406-1416.

Capito, M., R., Azevedo, S., H., Velichko, S., Y., Mata, A., Stupp, I., S., 2008. ‘’ Self-Assembly of Large and Small Molecules into Hierarchically Ordered Sacs and Membranes.’’ Science. 1812-1816.

Cell, J., 2009. ‘’ Mesenchymal stem cell-based therapy: a new paradigm in regenerative medicine.’’ Mol. Med. 11-12.

Chakroun, W., R., Wang, F., Lin, R., Wang, Y., Su, H., Pompa, D., Cui, H., 2019. ‘’ Fine-tuning the linear release rate of paclitaxel-bearing supramolecular filament hydrogels through molecular engineering,’’ ACS Nano. 7780-7790.

Chilkoti, A., Dreher, M.R., Meyer, D.E., Raucher, D., 2002. ‘’ Targeted drug delivery by thermally responsive polymers.’’ Adv. Drug Deliv. Rev. 613-630.

Ching-Ying, Y., Peter, B., Matthew, T., 1996. ‘’ Self-Assembling Amphiphiles for Construction of Protein Molecular Architecture.’’ Journal of the American Chemical Society. 12515-12520.

Chivers, A., R., P., Kelly, A., J., Hill, S., J., M., Smith, K., D., 2020. ‘’First-Generation Shaped Gel Reactors Based on Photo-Patterned Hybrid Hydrogels.’’ React Chem Eng. 1112-1117.

Chuysinuan, P., Thanyacharoen, T., Thongchai, K., 2020. ‘’ Preparation of chitosan/hydrolyzed collagen/hyaluronic acid based hydrogel composite with

46

caffeic acid addition.’’ International Journal of Biological Macromolecules.

1937–1943.

Cross, R., E., Sproules, S., Schweins, R., Draper, R., E., Adams, J., D., 2018. ‘’Controlled Tuning of the Properties in Optoelectronic Self-Sorted Gels.’’ J Am Chem Soc.

8667-8670.

Dasgupta, A., Das, D., 2019. ‘’ Designer Peptide Amphiphiles: Self-Assembly to Applications.’’ Langmuir. 10704-10724.

Derkus, B., Emregul, C., K., Emregul, E., 2015 ‘’ Evaluation of protein immobilization capacity on various carbon nanotube embedded hydrogel biomaterials.’’

Materials Science and Engineering. 132-140

Dong, Y., Cui, M., Qu, J., Wang, X., vd, 2020 ‘’ Conformable hyaluronic acid hydrogel delivers adipose-derived stem cells and promotes regeneration of burn injury.’’

Acta Biomaterialia, 16:12

Fraser, J., Laurent, T. and Laurent, U., 1997. ‘’ Hyaluronan: its nature, distribution, functions and turnover.’’ Journal of Internal Medicine, 242(1), pp.27-33.

Friedenstein, A., J., Chailakhjan, K., R., Lalykina, K., S., 1970. ‘’The development of fibroblast colonies in monolayer cultures of guinea-pig bone marrow and spleen cells.’’ Cell Tissue Kinet. 393-403.

Gamez-Llorens, M., Salesa, B., Aroca-Serrano, A., 2020. ‘’ Physical and biological properties of alginate/carbon nanofibers hydrogel films.’’ International Journal of Biological Macromolecules. 499-507.

Gardner, L., R., 2002. ‘’Stem cells: potency and public perception.’’ J Anat. 277-282.

Gao, Y., Liu, Q., Kong, W., Wang, J., 2020. ‘’ Activated hyaluronic acid/collagen composite hydrogel with tunable physical properties and improved biological properties.’’ International Journal of Biological Macromolecules. 2186-2196.

George, M., Boncheva, M., Boncheva, W., 2002. ‘’ Beyond molecules: Selfassembly of mesoscopic and macroscopic components.’’ Proceedings of the National Academy of Science of the United States of America. 4769-4774.

George, M., Grzybowski, B., Grzybowski, W., 2002. ‘’ . Self-assembly at all scales.’’

Science. 2418-2421.

Ghosh, K., Ren, X., D., Shu, X., Z., 2006.’’ Fibronectin functional domains coupled to hyaluronan stimulate adult human dermal fibroblast responses critical for wound healing.’’ Tissue Eng. 601-13.

Guler, M., O., Hsu, L., Soukasene, S., Harrington, D., A., Hulvat, J., F., Stupp, S., I., 2006. ‘’Presentation of RGDS epitopes on self-assembled nanofibers of branched peptide amphiphiles.’’ Biomacromolecules. 1855-63.

Hartgerink, J., D., Beniash, E., Stupp, S., I., 2002. ‘’ "Peptide-amphiphile nanofibers: A versatile scaffold for the preparation of self-assembling materials.’’ Proceedings of the National Academy of Sciences. 5133-5138.

Hendricks, M., P., Sato, K., Palmer, L., C., Stupp, S., I., 2017. "Supramolecular Assembly of Peptide Amphiphiles." Accounts of Chemical Research. 2440-2448.

47

Highley, C., Prestwich, G., Burdick, J., 2016 ‘’ Recent advances in hyaluronic acid hydrogels for biomedical applications.’’ Current Opinion in Biotechnology, 40;35-40

Hoffman, S., A., 2001. ‘’ Hydrogels for biomedical applications.’’ Advanced Drug Delivery Reviews. 3–12.

Hudalla, A., G., Modica, A., J., Tian, F., Y., Rudra, S., J., Chong, S., A., Sun, T., Mrksich, M., Collier, H., J., 2013. ‘’A Self-Adjuvanting Supramolecular Vaccine Carrying a Folded Protein Antigen.’’ Adv Healthc Mater. 1114-1119.

Irwansyah., Sihombing, R., Suwarso, P., W., 2012. ‘’ Self-Assembly and Hydrogelation of Peptide Amphiphiles.’’ Makara Journal of Science. 51-57.

Jia, X., Kiick, L., K., 2009. ‘’ Hybrid Multicomponent Hydrogels for Tissue Engineering.’’ Macromol Biosci. 140-156.

Kelkar, D. A., Chattopadhyay, A., 2007. ‘’The gramicidin ion channel: A model membrane protein.’’ Biochim. Biophys. Acta. 2011−2025.

Koetting, C., M., Peters, T., J., Steichen, D., S., Peppas, A., N., 2015. ‘’ Stimulus-responsive hydrogels: Theory, modern advances, and applications.’’ Mater. Sci.

Eng. 1-49.

Kolios, G., Moodley, Y., 2013. ‘’ Introduction to Stem Cells and Regenerative Medicine.’’ Respiration. 3-10.

Krieg, E., Bastings, C., M., M., Rybtchinski, B., 2016. ‘’ Supramolecular polymers in aqueous media.’’ Chemical Reviews. 2414-2477.

Kuhn, W., 1949. ‘Reversible elongation and contraction when the ionization of a network of polyvalent thread molecule ions changes.’’ Experientia. 318–319.

Lastra, L., M., 2020. ‘’ Colloids and Surfaces.’’ Biointerfaces. 196.

Lehn, M., J., 1990. ‘’ Perspectives in Supramolecular Chemistry-From Molecular Recognition towards Molecular Information Processing and Self- Organization.’’ Angewandte Chemie International Edition in English. 1304-1319.

Lehn, M., J., 2002. ‘’ Toward complex matter: Supramolecular chemistry and self-organization.’’ Proc. Natl. Acad. Sci. 4763-4768.

Lehn, M., J., 2009. ‘’ Towards complex matter: Supramolecular chemistry and self-organization.’’ European Review. 263-280.

Lehn, M., J., 2012. ‘’ Bridge from supramolecular chemistry to adaptive chemistry.’’

Constitutional dynamic chemistry. 1-32.

Li, L., Sun, R., Zheng, R., 2021. ‘’ Tunable morphology and functionality of multicomponent self-assembly.’’ Materials and Design. 197.

Li, W., Wang, D., Shi, X., Li, J., Ma, Y., Wang, Y., Li, T., Zhang, J., Zhao, R., Yu, Z., Yin, F., Li, Z., 2018. ‘’ A siRNA-Induced Peptide Co-Assembly System as a Peptide-Based siRNA Nanocarrier for Cancer Therapy.’’ Mater. Horiz. 745-752.

Li, Z., Cui, Z., 2013 ‘’ Three-dimensional perfused cell culture.’’ Biotechnology Advances, JBA-06749

48

Liyanage, W., Vats, K., Rajbhandary, A., Benoit, W., S., D., Nilsson, L., B., 2015.

‘’Dipeptide Hydrogels as ExtracellularMatrix-Mimetic Scaffolds for Cell Culture Applications.’’ Chem Commun. 11260-22263.

Maeda, T., Otsuka, H., Takahara, A., 2009. ‘’ Dynamic covalent polymers: Reorganizable polymers with dynamic covalent bonds.’’ Prog. Polym. Sci. 581-604.

Majo, F., Rochat, A., Nicolas, M., Jaoude, G., A., Barrandon, Y., 2008. ‘’Oligopotent stem cells are distributed throughout the mammalian ocular surface.’’ Nature.

250-254.

Makam, P., Gazit, E., 2018. ‘’ Minimalistic Peptide Supramolecular Co-Assembly:

Expanding the Conformational Space for Nanotechnology.’’ Chem Soc Rev.

3406-3420.

Mayer, K., Palmer, W., J., 1934. ‘’ The Polysaccharide of the Vitreous Humor.’’ Received for publication. 629-634.

Mehrotra, D., Dwived, R., Nandana, D., Singh, K., R., 2020. ‘’ From injectable to 3D printed hydrogels in maxillofacial tissue engineering.’’ Journal of Oral Biology and Craniofacial Research. 680-689.

Moquin, A., Hanna, R., Liang, T., Erguven, H., Gran, R., E., Arndtsen, A., B., Maysinger, D., Kakkar, A., 2019. ‘’ PEG-Conjugated Pyrrole-Based Polymers: One-Pot Multicomponent Synthesis and Self-Assembly into Soft Nanoparticles for Drug Delivery.’’ Chem Commun. 9829-9832.

Nagy-Smith, K., Beltramo, J., P., Moore, E., Tycko, R., Furst, M., E., Schneider, P., J., 2017. ‘’ Molecular, Local, and Network-Level Basis for the Enhanced Stiffness of Hydrogel Networks Formed from Coassembled Racemic Peptides.’’ ACS Cent Sci. 586-597.

Ni, R., Chau, Y., 2014. ‘’ Structural Mimics of Viruses Through Peptide/DNA Co-Assembly.’’ J Am Chem Soc. 17902-17905.

Niklason, E., L., 2018. ‘’Understanding the extracellular matrix to enhance stem cellbased tissue regeneration.’’ Cell Stem. 302–305.

Okesola, O., B., Wu, Y., Derkus, B., vd, 2019 ‘’ Supramolecular Self-Assembly To Control Structural and Biological Properties of Multicomponent Hydrogels.’’

Chem. Mater. 7883−7897

Ören, H., 2019. ‘’ Kök Hücreler.’’ DEU Tıp Dergisi. 271-280.

Parodi, A., Khaled, M., S., Yazdi, K., I., 2015. ‘’ Smart Hydrogels.’’ Encyclopedia of Nanotechnology.’’ 1-2.

Patel, N., A., Barlett, E., C., Ichim, E., T., 2001. ‘’ Stem Cell and Gene Therapy for Cardiovascular Disease.’’ Elsevier Inc. All rights reserved. 139.

Raeburn, J., Adams, J., D., 2015. ‘’ Multicomponent Low Molecular Weight Gelators.’’

Chem Commun. 5170-5180.

49

Ramazani, A., Aghahosseini, H., 2020. ‘’ The biological properties of hydrogels based on natural polymers.’’ Hydrogels Based on Natural Polymers. 247-269.

Rao, V., N., 2020. ‘’ Biomaterials for Organ and Tissue Regeneration / Hyaluronic acid–

based hydrogels for tissue engineering.’’ New Technologies and Future Prospects. 551-565.

Ratajczak, Z., M., Zuba-Surma, E., Kucia, M., Poniewierska, A., Suszynska, M., Ratajczak, J., 2012. ‘’Pluripotent and multipotent stem cells in adult tissues.’’

Adv Med Sci. 1-17.

Richer, A., 2006. ‘’Hydrogel-based.’’ Techniques and Applications. 141–171.

Rodrigues de Almeida, N., Han, Y., Perez, J., Kirkpatrick, S., Wang, Y., Sheridan, M. C., 2019. ‘’Design, Synthesis, and Nanostructure- Dependent Antibacterial Activity of Cationic Peptide Amphiphiles.’’ ACS Appl. Mater. Interfaces. 2790-2801.

Smith, A., G., 2001. ‘’ Embryo-derived stem cells- of mice and men.’’ Annu Rev Cell Dev Biol. 435-462.

Stephanopoulos, N., J., Ortony, H., Stupp, I., S., 2013. ‘’ Self-assembly for the synthesis of functional biomaterials.’’ Acta Materialia. 912-930.

Tan, H., Gong, Y., Lao, L., Mao, Z., Gao, C., 2007. ‘’ Gelatin/chitosan/hyaluronan ternary complex scaffold containing basic fibroblast growth factor for cartilage tissue engineering’’ J. Mater. Sci. Mater. 1961–1968.

Tan, S., H., S., 2020. ‘’ Mesenchymal stem cell exosomes in bone regenerative strategies—a systematic review of preclinical studies.’’ Materials Today Bio.

100067.

Thomas, A., Matthaei, F., J., Baneyx, F., 2018. ‘’ A Self-Assembling Two-Dimensional Protein Array Is a Versatile Platform for the Assembly of Multicomponent Nanostructures.’’ Biotechnol J. 13.

Toole, B., P., 2001. ‘’ Hyaluronan in morphogenesis,’’ Semin Cell Dev Biol. 79–87.

Toole, B., P., 2004. ‘’Hyaluronan: from extracellular glue to pericellular cue.’’ Nat Rev Cancer, 528–39.

Truex, L., N., Nowick, S., J., 2016. ‘’Coassembly of Peptides Derived from β-Sheet Regions of β-Amyloid.’’ J Am Chem Soc. 13891-13900.

Wang, C., Wang, Z., Zhang, X., 2012. ‘’Amphiphilic Building Blocks for Self-Assembly:

From Amphiphiles to Supra-Amphiphiles.’’ Acc Chem Res. 608-618.

Wang, Y., Cai, Q., L., Nugraha, B., Gao, Y., Leo, L., H., 2014. ‘’ Current Hydrogel Solutions for Repairing and Regeneration of Complex Tissues.’’ 2481-2482.

Wang, Y., 2018. ‘’ Programmable hydrogels.’’ Biomaterials .663-680.

Wang, Y., Lovrak, M., Liu, Q., Maity, C., Sage, A., A., V., Eelkema, R., Esch, H., J., 2019. ‘’ Hierarchically Compartmentalized Supramolecular Gels through Multilevel Self-Sorting.’’ J Am Chem Soc. 2847-2851.

Webber, M., J., Tongers, J., Newcomb, C., J., Marquardt, K., T., Bauersachs, J., Losordo, D., W., 2011. ‘’Supramolecular nanostructures that mimic VEGF as a strategy for ischemic tissue repair.’’ Proc Natl Acad Sci. 13-438-43.

Benzer Belgeler