Araştırma Makalesi

Growth of microalgae (chlorella vulgaris) in the presence of olive leaf extract

Cilt: 2 Sayı: 2 31 Aralık 2020
PDF İndir
TR EN

Growth of microalgae (chlorella vulgaris) in the presence of olive leaf extract

Öz

Microalgae has been used for various applications in the literature. Microalgae can produce different biologically active metabolites due to their different morphological, physiological, and genetic traits. In this study, biotransformation of olive leaf extract by microalgae under biotic conditions was investigated. The results showed that incorporating the olive leaf extract into the growth medium changed the microalgae's specific growth rate and the total phenolic content of the medium. The effect of light type (white and red light) on the specific growth rate was also investigated. The obtained data showed that light type directly changed the specific growth rate of the microalgae. With microalgae growth under both white and red light, olive leaf extract amount in the growth medium decreased while the antioxidant capacity of the medium increased. This was attributed to the production of bioactive compounds as a result of the biotransformation of polyphenols by microalgae.

Anahtar Kelimeler

Kaynakça

  1. Abdel-Karim, O. H., Gheda, S. F., Ismail, G. A., & Abo-Shady, A. M. (2019). Phytochemical screening and antioxidant activity of Chlorella vulgaris. Drug Invention Today, 11(8), 1803–1806.
  2. Altıok, E., Bayçın, D., Bayraktar, O., & Ülkü, S. (2008). Isolation of polyphenols from the extracts of olive leaves (Olea europaea L.) by adsorption on silk fibroin. Separation and Purification Technology, 62(2), 342–348.
  3. Borowitzka, M. A. (2013). High-value products from microalgae-their development and commercialisation. In Journal of Applied Phycology (Vol. 25, Issue 3, pp. 743–756). Springer.
  4. Castro, B. F. M., Fulgêncio, G. de O., Domingos, L. C., Cotta, O. A. L., Silva-Cunha, A., & Fialho, S. L. (2020). Positively charged polymeric nanoparticles improve ocular penetration of tacrolimus after topical administration. Journal of Drug Delivery Science and Technology, 60, 101912. https://doi.org/10.1016/j.jddst.2020.101912
  5. De Morais, M. G., Vaz, B. D. S., De Morais, E. G., & Costa, J. A. V. (2015). Biologically Active Metabolites Synthesized by Microalgae. BioMed Research International, 2015.
  6. Della Greca, M., Pinto, G., Pistillo, P., Pollio, A., Previtera, L., & Temussi, F. (2008). Biotransformation of ethinylestradiol by microalgae. Chemosphere, 70(11), 2047–2053.
  7. Deniz Köse, M., Bayraktar, O., Ak, B., & Atak, E. (2019). Production of Chlorella sp. in a Designed Photobioreactor.Celal Bayar University Journal of Science, 15(4), 377–383.
  8. Dilek (Yalcin), D., Udoh, U. A., Ozer (Baykal), T., Akbulut, A., Erkaya (Acikgoz), I., Yildiz, K., & Guler, D. (2012). Fourier transform infrared (FTIR) spectroscopy for identification of Chlorella vulgaris Beijerinck 1890 and Scenedesmus obliquus (Turpin) Kützing 1833. African Journal of Biotechnology, 11(16), 3817–3824.

Ayrıntılar

Birincil Dil

İngilizce

Konular

-

Bölüm

Araştırma Makalesi

Yayımlanma Tarihi

31 Aralık 2020

Gönderilme Tarihi

20 Aralık 2020

Kabul Tarihi

31 Aralık 2020

Yayımlandığı Sayı

Yıl 1970 Cilt: 2 Sayı: 2

Kaynak Göster

APA
Ören, Ş., Yıldız, Z., Köse, M. D., Potuk, K., & Bayraktar, O. (2020). Growth of microalgae (chlorella vulgaris) in the presence of olive leaf extract. Journal of Spectroscopy and Molecular Sciences, 2(2), 92-109. https://izlik.org/JA97AN67GR