Preliminary Study on the Determination of Heat Resistant Fungi in Agricultural Soils
Öz
Heat
resistant fungi are capable of surviving temperature at short heat
applications. These organisms continue to growing and metabolic activities.
Therefore, they cause spoilage of food products and effect on health because of
mycotoxin production. This study focused on determination of density and
biodiversity of heat resistant fungi in agricultural soil samples. For this
aim, two different soil samples were collected from agricultural lands at June
2018. Isolation process was performed by using main soil dilution method after
heat treatment at 75°C for 30 minutes of diluted soil samples. After incubation
at 25°C for 7-14 days, all colonies were purified. All of the isolates were
diagnosed by using conventional methods according to the macromorphological and
micromorphological properties. We determined 11 species belong to Alternaria, Aspergillus, Cladosporium,
Epicoccum, Humicola, Penicillium and
Taloromyces genera. As a result of
this study, we showed that agricultural soil areas have a potential for heat
resistance fungi biodiversity and exhibited that we should concentrate on this
subject with investigation of different areas and sources.
Anahtar Kelimeler
Kaynakça
- Ali, A.M., Moghazy, S., Shaban, G., El- Sababty Z. (2009). Heat-Resistant Fungi Isolated from Soil in Minia Governorate, Egypt, Assiut Univ. J. of Botany 38(2) 93-106Barnett HL, Hunter BB, Illustrated Genera of Imperfect Fungi (1999), 4. Edition. 218 pp. APS Press, The American Phytopathological Society. St. Paul, Minnesota, USA,
- Benkerroum, N. (2016). Mycotoxins in dairy products: a review. International dairy journal, 62, 63-75.
- Bouhoudan, A., Chidi, F., Tantaoui-Elarak, A., & Khaddor, M. (2018). The effect of carbon source concentration on toxigenesis and lipase activity of Penicillium aurantiogriseum. Agriculture & Forestry/Poljoprivreda i Sumarstvo, 64(3).
- Braga, R. M., Padilla, G., & Araújo, W. L. (2018). The biotechnological potential of Epicoccum spp.: diversity of secondary metabolites. Critical reviews in microbiology, 44(6), 759-778.
- Chadha, B. S., Kaur, B., Basotra, N., Tsang, A., & Pandey, A. (2019). Thermostable xylanases from thermophilic fungi and bacteria: Current perspective. Bioresource technology.
- Chandrashekar, M. A., Soumya, P., and Raju, N. S. (2014). Fungal diversity of rhizosphere soils in different agricultural fields of Nanjangud Taluk of Mysore District, Karnataka, India. Int. J. Curr. Microbiol. App. Sci, 3(5) 559-566.
- Chen, A. J., Sun, B. D., Houbraken, J., Frisvad, J. C., Yilmaz, N., Zhou, Y. G., & Samson, R. A. (2016). New Talaromyces species from indoor environments in China. Studies in mycology, 84, 119-144.
- Demirci, A.Ş. and Arici, M. (2006). Margarinde Yüksek Sıcaklığa Dayanıklı Küflerin Belirlenmesi ve Tanımlanması. Türkiye 9. Gıda Kongresi; 24-26. Tekirdağ.
Ayrıntılar
Birincil Dil
İngilizce
Konular
-
Bölüm
Konferans Bildirisi
Yayımlanma Tarihi
26 Aralık 2019
Gönderilme Tarihi
11 Ekim 2019
Kabul Tarihi
8 Aralık 2019
Yayımlandığı Sayı
Yıl 2019 Cilt: 10 Sayı: 3
