Bioreactors for tissue engineering

dc.authorid0000-0002-3729-3551
dc.contributor.authorOktay, Aysel
dc.contributor.authorAhata, Büşra
dc.contributor.authorKan, Tuğçe
dc.contributor.authorSerefoğlu, Beyza Gün
dc.contributor.authorTanyeri, Yiğit
dc.contributor.authorOktay, Büşra
dc.contributor.authorÇakır, Rabia Koç
dc.date.accessioned2023-10-23T13:26:52Z
dc.date.available2023-10-23T13:26:52Z
dc.date.issued2023
dc.departmentTAÜ, Fen Fakültesi, Moleküler Biyoteknoloji Bölümüen_US
dc.description.abstractBioreactors have been widely used in various fields of biological production for many years. Their ability to provide a tightly controlled environment during the process and to allow for monitoring and intervention to the process parameters make them quite favorable to use in biological production lines. Also, bioreactors are widely employed in tissue engineering applications. Ideally, a tissue engineering bioreactor should have the capability to effectively regulate various environmental factors, such as pH, oxygen levels, temperature, nutrient transportation and waste elimination. Additionally, it should facilitate sterile operations, such as sampling and feeding, as well as automated procedures. The general approach for these applications include immobilization of suitable cells within porous, biodegradable and biocompatible scaffolds. These scaffolds serve as frameworks for tissue formation and the cell/scaffold constructs are cultured within a bioreactor, which creates a dynamic in vitro setting conducive to tissue growth. As the technology for these systems and required conditions continue to become more complex, these bioreactor designs will also evolve with time to help treat patients with diseases related to tissue damage. There are specific designs for various kinds of bioreactors (spinner flasks, rotating wall vessel bioreactors, perfusion systems, pulsatile systems, strain systems, hollow fiber systems, wave bioreactors, microfluidic bioreactors, compression and hydrostatic systems) in the market which allows better outcomes for certain applications such as cardiovascular tissue engineering, bladder tissue engineering, neural tissue engineering, cornea tissue engineering, kidney tissue engineering, musculoskeletal tissue engineering, lung tissue engineering and gastrointestinal tissue engineering. All of these different systems and their special applications for tissue engineering studies are explained in this chapter with their specific advantages and disadvantages which make them favorable with the physicochemical environment they provide. When current developments are examined and evaluated, it is seen that bioreactors will have enhanced designs that will help them better mimic the physiological pathways of cells, tissues and their interaction with the surroundings to have better solutions for whole organ, bone, and regenerative tissue engineering applications in the future.
dc.identifier.citationOktay, Aysel. Oktay, Büşra. Ahata, Büşra. Serefoğlu, Beyza Gün. Tanyeri, Yiğit. Çakır, Rabia Koç.(2023). Bioreactors for tissue engineering. Biomaterials and Tissue Engineering. (259-303). Wiesbaden: Springer Cham.
dc.identifier.doi10.1007/978-3-031-35832-6
dc.identifier.endpage303en_US
dc.identifier.isbn9783031358326
dc.identifier.startpage259en_US
dc.identifier.urihttps://link.springer.com/book/10.1007/978-3-031-35832-6#book-header
dc.identifier.urihttps://hdl.handle.net/20.500.12846/744
dc.language.isoen
dc.publisherSpringer Cham
dc.relation.ispartofBioreactors for Tissue Engineering
dc.relation.publicationcategoryKitap Bölümü - Ulusal
dc.rightsinfo:eu-repo/semantics/closedAccess
dc.subjectBioreactoren_US
dc.subjectScaffolden_US
dc.subjectTissue formationen_US
dc.subjectTissue engineeringen_US
dc.titleBioreactors for tissue engineering
dc.typeBook Part

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