Towards biobanking technologies for natural and bioengineered multicellular placental constructs

dc.contributor.authorPogozhykh, Olena
dc.contributor.authorProkopyuk, Volodymyr
dc.contributor.authorProkopyuk, Olga
dc.contributor.authorKuleshova, Larisa
dc.contributor.authorGoltsev, Anatoliy
dc.contributor.authorFigueiredo, Constanca
dc.contributor.authorPogozhykh, Denys
dc.date.accessioned2022-12-05T13:22:40Z
dc.date.available2022-12-05T13:22:40Z
dc.date.issued2018-12
dc.descriptionPogozhykh O, Prokopyuk V, Prokopyuk O, Kuleshova L, Goltsev A, Figueiredo C, Pogozhykh D. Towards biobanking technologies for natural and bioengineered multicellular placental constructs. Biomaterials. 2018 Dec;185:39-50. doi: 10.1016/j.biomaterials.2018.08.060. Epub 2018 Sep 7. PMID: 30218835.uk_UA
dc.description.abstractClinical application of a large variety of biomaterials is limited by the imperfections in storage technology. Perspective approaches utilizing low-temperature storage are especially challenging for multicellular structures, such as tissues, organs, and bioengineered constructs. Placenta, as a temporary organ, is a widely available unique biological material, being among the most promising sources of various cells and tissues for clinical and experimental use in regenerative medicine and tissue engineering. The aim of this study was to analyse the mechanisms of cryoinjuries in different placental tissues and bioengineered constructs as well as to support the viability after low temperature storage, which would contribute to development of efficient biobanking technologies. This study shows that specificity of cryodamage depends on the structure of the studied object, intercellular bonds, as well as interaction of its components with cryoprotective agents. Remarkably, it was possible to efficiently isolate cells after thawing from all of the studied tissues. While the outcome was lower in comparison to the native non-frozen samples, the phenotype and expression levels of pluripotency genes remained unaffected. Further progress in eliminating of recrystallization processes during thawing would significantly improve biobanking technologies for multicellular constructs and tissues.uk_UA
dc.identifier.citationPogozhykh O, Prokopyuk V, Prokopyuk O, Kuleshova L, Goltsev A, Figueiredo C, Pogozhykh D. Towards biobanking technologies for natural and bioengineered multicellular placental constructs. Biomaterials. 2018 Dec;185:39-50. doi: 10.1016/j.biomaterials.2018.08.060uk_UA
dc.identifier.issn0142-9612
dc.identifier.urihttps://doi.org/10.1016/j.biomaterials.2018.08.060
dc.identifier.urihttp://cryo.net.ua/xmlui/handle/123456789/813
dc.language.isoenuk_UA
dc.publisherBiomaterials. 2018 Dec;185:39-50.uk_UA
dc.subjectplacental tissuesuk_UA
dc.subjectamniotic membraneuk_UA
dc.subjectalginate microspheresuk_UA
dc.subjectbioengineered constructsuk_UA
dc.subjectmultipotent stromal cellsuk_UA
dc.subjectbiobankinguk_UA
dc.titleTowards biobanking technologies for natural and bioengineered multicellular placental constructsuk_UA
dc.typeArticleuk_UA

Файли

Контейнер файлів

Зараз показуємо 1 - 1 з 1
Вантажиться...
Ескіз
Назва:
Pogozhykh_article1_2018.pdf
Розмір:
5,3 MB
Формат:
Adobe Portable Document Format
Опис:

Ліцензійна угода

Зараз показуємо 1 - 1 з 1
Вантажиться...
Ескіз
Назва:
license.txt
Розмір:
1,69 KB
Формат:
Item-specific license agreed upon to submission
Опис:

Колекції