Phylogenetic relationship and genetic differentiation of Populus caspica and Populus alba using cpDNA and ITS noncoding sequences

Hamed Yousefzadeh , Abasalt Hosseinzadeh Colagar , Effat Yousefi , Maryam Badbar , Gregor Kozlowski

Journal of Forestry Research ›› 2019, Vol. 30 ›› Issue (2) : 451 -461.

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Journal of Forestry Research ›› 2019, Vol. 30 ›› Issue (2) : 451 -461. DOI: 10.1007/s11676-018-0785-4
Original Paper

Phylogenetic relationship and genetic differentiation of Populus caspica and Populus alba using cpDNA and ITS noncoding sequences

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Abstract

Populus caspica Bornm. (section Leuce and subsection Albida), one of the most endangered endemic tree species in the Hyrcanian Forest in Iran, has numerous morphological characteristics that are closely similar to Populus alba; to clarify their taxonomic relatedness and genetic differentiation and thus inform conservation strategies, we used the noncoding regions of chloroplast DNA (cpDNA; trnL-F and trnH-psbA) and the internal transcribed spacer (ITS). Leaf samples were collected from six populations across northern Iran. cpDNA and ITS fragments were amplified by universal primers using the PCR technique and directed sequencing. The results showed that P. caspica is genetically differentiated from P. alba, and two ITS variants were detected within some P. caspica individuals. Conflicts between topologies from ITS and plastid genomes were observed. High differentiation of P. caspica from the other Populus species shown in this study confirmed the diverging taxonomic status of this endangered species. We recommend in situ conservation measures (e.g., protected areas) for at least several populations of this species, especially in the plain regions of the Hyrcanian forest.

Keywords

Endangered endemic species / DNA barcoding / Hyrcanian forest / Taxonomic status

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Hamed Yousefzadeh, Abasalt Hosseinzadeh Colagar, Effat Yousefi, Maryam Badbar, Gregor Kozlowski. Phylogenetic relationship and genetic differentiation of Populus caspica and Populus alba using cpDNA and ITS noncoding sequences. Journal of Forestry Research, 2019, 30(2): 451-461 DOI:10.1007/s11676-018-0785-4

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