Vol. 75 (2) 2023
ARTICLES
Banded Karyotype Features of the Bitlis Chromosome Race (2n=54) of Nannospalax xanthodon (Nordmann, 1840) (Rodentia: Spalacidae) in Türkiye
Atilla Arslan1*, Serdar Gözütok2, Kubilay Toyran3 & Tarkan Yorulmaz4
More info
*1Department of Biology, Faculty of Sciences, Selçuk University, 42031 Selçuklu, Konya, Türkiye; E-mail: aarslan@selcuk.edu.tr
2Department of Wildlife and Ecology, Faculty of Agriculture and Natural Sciences, Abant İzzet Baysal University, Bolu, Türkiye; E-mail: serdargozutok@ibu.edu.tr
3Eldivan Vocational School of Health Services, Çankırı Karatekin University, Çankırı, Türkiye; E-mail: kubilaytoyran@hotmail.com
4Hunting and Wildlife Program, Department of Forestry, Food and Agriculture Vocational School, Çankırı Karatekin University, Çankırı, Türkiye; E-mail: tarkan.yorulmaz@gmail.com
Abstract
Nannospalax xanthodon has five chromosome races of 2n=54 in Türkiye. Until now, only C-banding and Ag-NOR staining analyses of Kırıkkale specimens of Yozgat chromosome race have been performed. In this study, we presented the karyotype characteristics of the Bitlis chromosome race with C-banding and Ag-NOR staining analyses. The numbers of bi-armed chromosomes in set of this race were found to be nine pairs and the numbers of acrocentric chromosomes were 16 pairs. This result is compatible with data on the previously studied Tatvan specimen. However, the Y chromosome of our specimens is different from that of the Tatvan specimen of this race. The Y chromosome is medium-sized subtelocentric (NFa=70). The dark centromeric C-bands were observed in all bi-armed and some acrocentric autosomes. The X chromosome had a centromeric band, while the Y chromosome was stained C-negative. The active NORs were determined in the telomeric regions of the short arms of two autosomes. The distribution pattern of the centromeric positive C-bands was generally similar between the Bitlis and Yozgat races. However, there were no C-heterochromatic short arms in the Bitlis race. The number and position of active NORs in both races were different.
Key words
mole-rat, Ag-NOR staining, C-band, Anatolia
How to Cite
Arslan A., Gözütok S., Toyran K. & Yorulmaz T. 2023. Banded Karyotype Features of the Bitlis Chromosome Race (2n=54) of Nannospalax xanthodon (Nordmann, 1840) (Rodentia: Spalacidae) in Türkiye. Acta zoologica bulgarica 75 (2) 163-167.
References
- Arslan A. & Zima J. 2013. The banded karyotype of the 2n = 58 chromosomal race of mole rat from Erzincan, Turkey. Folia Zoologica 62: 19-2
- Arslan A. & Zima J. 2015. Chromosome banding pattern retrieves an independent origin of 2n = 50 chromosome populations of Nannospalax xanthodon from Turkey. Mammalian Biology 80: 440–445.
- Arslan A. & Zima J. 2017. Heterochromatin distribution and localization of NORs in the 2n = 48 cytotypes of Nannospalax xanthodon and N. ehrenbergi. Turkish Journal of Zoology 41: 390–396.
- Arslan A. 2013. A new live trap to catch blind mole rats (Spalax sp.). Folia Zoologica 62: 130–132.
- Arslan A., Akan Ş. & Zıma J. 2011a. Variation in C-heterochromatin and NOR distribution among chromosomal races of mole rats (Spalacidae) from Central Anatolia, Turkey. Mammalian Biology 76: 28–35.
- Arslan A., Arısoy A. & Zima J. 2014a. Comparison of the chromosome banding pattern in the 2n = 56 cytotypes of Nannospalax leucodon and N. xanthodon from Turkey. The Scientific World Journal, article ID 121690.
- Arslan A., Kryštufek B., Matur F. & Zıma J. 2016. Review of chromosome races in blind mole rats (Spalax and Nannospalax). Folia Zoologica 65: 249–301.
- Arslan A., Toyran K., Gözütok S. & Yorulmaz T. 2011b. C-and NOR stained karyotypes of mole rat, Nannospalax xanthodon (2n= 54) from Kırıkkale, Turkey. Turkish Journal of Biology 35: 655–661.
- Arslan A., Zima J., Yorulmaz T. & Arslan E. 2014b. A new cytotype (2n = 46) of Nannospalax xanthodon from Turkey. Zoology in the Middle East 60: 283–287.
- Aybakır K.C., Arslan A. & Zima J. 2021. A new chromosomal race and a hybrid form of Nannospalax xanthodon (Satunin, 1898) (Rodentia: Spalacidae) from Karaman, Turkey. Acta Zoologica Bulgarica 73: 495–502.
- Coşkun Y., 2004. A new species of mole rat, Nannospalax munzuri sp.n., and karyotype of Nannospalax tuncelicus (Coşkun, 1996) (Rodentia: Spalacidae) in eastern Anatolia. Zoology in the Middle East 33: 153-162.
- Coşkun Y., Kaya A. & Yürümez G. 2009. Chromosomal forms of the mole rat, Nannospalax nehringi (Satunin, 1898), from the Van Lake basin in eastern Turkey. Zoology in the Middle East 48: 17–24.
- Coşkun Y., Ulutürk S. & Kaya A. 2010. Karyotypes of Nannospalax (Palmer 1903) populations (Rodentia: Spalacidae) from central-eastern Anatolia, Turkey. Hystrix, the Italian Journal of Mammalogy 21: 89–96.
- Ford C. & Hamerton J. 1956. A colchicine, hypotonic citrate, squash sequence for mammalian chromosomes. Stain Technology 31: 247–251.
- Howell W. M. & Black D. A. 1980. Controlled silver-staining of nucleolus organizer regions with a protective colloidal developer: a 1-step method. Experientia 36: 1014–1015.
- Ivanitskaya E., Belyayev A. & Nevo E. 2005. Heterochromatin differentiation shows the pathways of karyotypic evolution in Israeli mole rats (Spalax, Spalacidae, Rodentia). Cytogenetics Genome Research 111: 159–165.
- Ivanıtskaya E., Coşkun Y. & Nevo E. 1997. Banded karyotypes of mole rats (Spalax, Spalacidae, Rodentia) from Turkey: a comparative analysis. Journal of Zoological Systematics and Evolutionary Research 35: 171–177.
- Ivanıtskaya E., Sözen M., Rashkovetsky L., Matur F. & Nevo E. 2008. Discrimination of 2n= 60 Spalax leucodon cytotypes (Spalacidae, Rodentia) in Turkey by means of classical and molecular cytogenetic techniques. Cytogenetic and Genome Research 122: 139–149.
- Nevo E., Fılıppuccı M. G., Redı C., Sımson S., Heth G. & Beıles A. 1995. Karyotype and genetic evolution in speciation of subterranean mole rats of the genus Spalax in Turkey. Biological Journal of the Linnean Society 54: 203–229.
- Nevo E., Filippucci M.G., Redi C., Korol A. & Beiles A. 1994. Chromosomal speciation and adaptive radiation of mole rats in Asia Minor correlated with increased ecological stress. Proceedings of the National Academy of Sciences U.S.A. 91: 8160–8164.
- Nevo E., Ivanitskaya E., Filippucci M.G. & Beiles A. 2000. Speciation and adaptive radiation of subterranean mole rats, Spalax ehrenbergi superspecies, in Jordan. Biological Journal of the Linnean Society 69: 263–281.
- Savić I. & Soldatović B. 1979. Distribution range and evolution of chromosomal forms in the Spalacidae of the Balkan Peninsula and bordering regions. Journal of Biogeography 6: 363–374.
- Sözen M. 2004. A karyological study on subterranean mole rats of the Spalax leucodon Nordmann, 1840 superspecies in Turkey. Mammalian Biology 69: 420–429.
- Sözen M., Matur F., Çolak E., Özkurt Ş. & Karataş A. 2006. Some karyological records and a new chromosomal form for Spalax (Mammalia: Rodentia) in Turkey. Folia Zoologica 55: 247–256.
- Sözen M., Çolak F., Sevındık M., & Matur F. 2015. Two new cytotypes and additional karyological records for blind mole rats, Nannospalax xanthodon and N. ehrenbergi (Mammalia, Rodentia) in Turkey. Folia Zoologica 64: 167–172.
- Sumner A. 1972. A simple technique for demonstrating centromeric heterochromatin. Experimental Cell Research 75: 304-306.


