Caryologia. International Journal of Cytology, Cytosystematics and Cytogenetics 78(2): 29-43, 2025 Firenze University Press https://riviste.fupress.net/index.php/caryologiaCaryologia International Journal of Cytology, Cytosystematics and Cytogenetics ISSN 0008-7114 (print) | ISSN 2165-5391 (online) | DOI: 10.36253/caryologia-3356 Citation: Dolatyari, A. (2025). Karyological data of five autumn-flowering Crocus L. species from Iran. Caryologia 78(2): 29-43. doi: 10.36253/caryologia-3356 Received: March 1, 2025 Accepted: September 30, 2025 Published: December 20, 2025 © 2025 Author(s). This is an open access, peer-reviewed article pub- lished by Firenze University Press (https://www.fupress.com) and distrib- uted, except where otherwise noted, under the terms of the CC BY 4.0 License for content and CC0 1.0 Uni- versal for metadata. Data Availability Statement: All rel- evant data are within the paper and its Supporting Information files. Competing Interests: The Author(s) declare(s) no conflict of interest. ORCID AD: 0009-0001-8395-3442 Karyological data of five autumn-flowering Crocus L. species from Iran Alireza Dolatyari Plant Bank, Iranian Biological Resource Centre (IBRC), Iranian Academic Centre for Education, Culture & Research (ACECR), Tehran, Iran alirezadolatyari@yahoo.com, alireza.dolatyari@acecr.ir Abstract. Corms and herbarium vouchers of 23 accessions belonging to five autumn- flowering Crocus species were gathered from nine Iranian provinces. For the materi- als under investigation, chromosome numbers, karyotype formulas and idiograms were documented. Chromosome number of 2n = 12 is reported for the first time in C. archibaldiorum and in the studied accessions of C. speciosus aggregate. Also, 2n = 24 were found in C. caspius, 2n = 8 and 10 in C. damascenus, and 2n = 14 and 16 in C. haussknechtii. In the latter two species, variation in chromosome number was correlat- ed with karyotypic differences. Notably, C. archibaldiorum (2n = 12) had a longer total haploid of chromosome length than C. caspius (2n = 24). On a distribution map, pos- sible correlations between karyological data and geography were indicated. To quantify variation in karyotypes, three inter- and intra-asymmetric karyotypic parameters were estimated. Also, statistical analyses were performed on five karyotypic characters to infer karyological relationships. The members of section Crocus (only C. haussknechtii) and section Nudiscapus occupied distinct positions. Furthermore, at the species level, all accessions of the same species tended to group together. The remarkable karyotypic variation among the studied accessions of C. damascenus and C. haussknechtii sup- ported the previous assumption that these taxa still include undescribed species. It is underlined that changes in chromosome number and structure have played an impor- tant role in the evolution of the genus Crocus. Keywords: chromosome number, crocuses, cytotaxonomy, idiogram, Iridaceae, karyo- type. INTRODUCTION The genus Crocus L. (Iridaceae) currently comprises more than 260 spe- cies (Rukšāns 2017a, 2023; Advay and Rukšāns 2024; Dolatyari et al. 2024), naturally distributed in the region extending approximately between 10°W to 80°E and 30°N to 50°N. The Balkan Peninsula and Asia Minor are the main centers of diversity where more than half of the recognized species occur. The majority of species occur within the Mediterranean and Irano-Turani- an floristic regions, both of which are characterized by cool to cold winters, autumn-winter-spring precipitation, and warm summers with very little rain- fall (Saxena 2010). Crocuses are well adapted to such conditions by compact https://riviste.fupress.net/index.php/caryologia https://doi.org/10.36253/caryologia-3356 https://doi.org/10.36253/caryologia-3356 https://www.fupress.com https://creativecommons.org/licenses/by/4.0/legalcode https://creativecommons.org/publicdomain/zero/1.0/legalcode https://orcid.org/0009-0001-8395-3442 mailto:alirezadolatyari@yahoo.com mailto:alireza.dolatyari@acecr.ir 30 Alireza Dolatyari underground corms. They flower either in spring, then they develop leaves together with flowers, or in autumn, then leaves often remain dormant till spring. In the “Flora Iranica”, Wendelbo and Mathew (1975) recognized only eight Crocus species for Iran. They excluded C. sativus L. probably because it is a crop plant. However, in more recent years, 15 additional taxa have been newly described from Iran (Rukšāns 2014a, b, 2015, 2017a, b; Kerndorff et al. 2017; Dolatyari and Rukšāns 2022; Rukšāns 2022, 2023). In a recent revision, Dola- tyari et al. (2024) summarized all available taxonomic knowledge for the Iranian Crocus species. Most recent- ly, Advay and Rukšāns (2024) added the new species C. avromanicus Advay & Rukšāns from West Iran. Hence, a total of 25 species are currently known to occur in Iran, 19 of which are endemics, an exceptionally high percent- age. Except C. michelsonii B. Fedtsch., which is found in Kopet Dag Mountains, all other species occur along the Zagros and Alborz Mountain ranges. All four Iranian species of Crocus section Crocus, and four out of 21 spe- cies of Crocus sect. Nudiscapus B. Mathew f lower in autumn (Advay and Rukšāns 2024; Dolatyari et al. 2024). Karyological data may provide valuable insights into phylogenetic relations and help characterize taxonomic entities. Although earlier chromosome counts by many researchers showed various numbers, these data were based largely on material from cultivated or unspeci- fied origins (Mather 1932; Pathak 1940; Darlington and Wylie 1955; Karasawa I956; Bolkhovskikh et al. 1969). However, Brighton et al. (1973) listed chromosome num- bers for 88 Crocus species cultivated at Kew Garden, originating from known localities across the entire dis- tribution range of the genus. Additionally, karyological data have been published for several taxonomically com- plex aggregates (Brighton 1976, 1977a, b, 1980; Brighton et al. 1983; Goldblatt and Takei 1997) and for material collected from distinct countries (Baldini 1990; Candan et al. 2009; Schneider et al. 2012; Karamplianis et al. 2013). The large number of earlier reported chromosome counts shows that the genus is an example of extreme karyological variation with 2n = 6, 8, 10, 11, 12, 14, 16, 18, 20, 22, 23, 24, 26, 27, 28, 30, 34, 44, 48, 64 chromo- some numbers. Also, remarkable intraspecific variation in karyotypic features has been documented, accompa- nied by the presence of up to 11 B chromosomes in some species (Mather 1932; Feinbrun 1957, 1958; Brighton et al. 1973; Brighton 1977a, b; Brighton et al. 1983). This huge karyological diversity highlights the role of dys- ploidy and polyploidy in the infrageneric evolution of the genus (Harpke et al. 2013; Raca et al. 2023). In the literature, chromosome counts have been reported for seven Iranian Crocus species and members of the C. biflorus Mill. and C. speciosus M. Bieb. aggregates (see Table 3; detailed taxonomic information in Dolatyari et al. 2024), representing chromosome numbers of 2n = 8, 10, 12, 14, 16, 20, 22 and 24 . Only a single B chromosome has been reported in a population of C. damascenus Herb. by Ghaffari and Djavadi (2007). Having in mind that 16 species have been described only during the last decade, it is not surprising that around 70% of Iranian Crocus spe- cies remain karyologically unknown. In the frame of a larger karyological research pro- ject on Iranian crocuses, here karyotypic variation in 20 accessions of C. archibaldiorum (Rukšāns) Rukšāns, C. caspius Fisch. & C. A. Mey. ex Hohen., C. damascenus, and C. haussknechtii (Boiss. & Reut. ex Maw) Boiss., as well as three accessions of C. speciosus aggregate shall be presented employing appropriate statistical analysis to test the significance of karyotypic relationships among these autumn-flowering taxa. MATERIAL AND METHOD Corms and herbarium vouchers were collected from populations in natural habitats. The corms were planted in a trial field, and the vouchers were deposited in the Iranian biological resource center herbarium (IBRC). Table 1 presents the collecting localities and herbarium sheet numbers, and Figure 1 illustrates photos of all taxa studied. A complete list of Iranian Crocus species, along with previously reported chromosome numbers is pro- vided in Table 3. Randomly selected corms were planted in a moistened mixture of coarse and fine perlite (1:1 ratio) and kept in a refrigerator. Root tips measuring 2–3 cm in length were pretreated in 0.029% aqueous solution of 8-hydroxiquino- line for 3 h and fixed in Carnoy’s I solution (3: 1 v/v 95% ethanol: glacial acetic acid) for 24 h at room temperature. Then root tips were hydrolyzed in 1n HCl for 14 min at 60°C and stained with 2% aceto-orcein for 3 h. The com- monly applied squash technique was carried out to pre- pare slides. An Olympus BX51 light microscope equipped with a DP25 digital camera was used to take photos of as many good metaphase spreads as possible. The Lengths of long (L) and short arms (S) of all chromosomes of at least five mitotic metaphase plates per accession were measured using IdeoKar software (http://agri.uok.ac.ir/ideokar/index.html). The total haploid length of chromosomes (THL), an approximate equivalent for genome size (Peruzzi et al. 2009), was assessed for all accessions. Mean centromeric asym- metry (MCA), coefficient of variation of chromosome length (CVCL), and coefficient of variation of centromeric http://agri.uok.ac.ir/ideokar/index.html 31Karyological data of five autumn-flowering Crocus L. species from Iran index (CVCI) were estimated to quantify the inter- and intra-chromosomal asymmetries and heterogeneity in centromere positions, respectively (Peruzzi and Alti- nordu 2014). The chromosome terminology of Levan et al. (1964) was applied. All additional details including methods of statistical analysis (Principal Coordinate Analysis, PCoA, and Discriminant Analysis, DA), and the software employed, follow the procedures described in Peruzzi and Altinordu (2014). ArcMap 10.7.1 software was used to draw the distribution map. RESULTS AND DISCUSSION Mitotic spreads and idiograms for 23 accessions (125 individuals) belonging to four species and one aggregate are shown in Figs. 2 & 3, and in Figs. 4-7, respectively. Chromosome numbers, karyotype formulas, together with the calculated karyotypic parameters are given in Table 2. A distribution map (Fig. 8) indicates possible correla- tions between karyological data and geography. The result of PCoA analysis based on five karyotypic parameters is presented in Fig. 9. The idiograms underline that the basic chromosome number for each accession equals half of the total somatic number. In C. damascenus and C. hausskne- chtii several chromosome numbers and karyotypes were detected, while unique karyotypes were found in C. archibaldiorum, C. caspius, and the C. speciosus group. Section Crocus, C. haussknechtii This section is represented by C. gilanicus B.Mathew, C. hakkariensis (B.Mathew) Rukšāns, C. haussknechtii and Table 1. Characterization of the studied taxa and accessions of the genus Crocus (in alphabetical order), Her. No. = number of herbarium voucher. Species IBRC No. Locality Her. No. C. archibaldiorum P1015055 Guilan: Asalem to Khalkhal, 1 km after Larzaneh road station. 37° 36’ 1.7” N; 48° 43’ 2.3” E, 2020m. 3490 P1015056 Guilan: Asalem to Khalkhal, 2 km after Charasu village to Almas pass. 37° 35’ 53.8” N; 48° 48’ 2.2” E, 1080m. 3489 C. caspius P1015044 Mazandaran: Qaem Shahr to Sari, Arteh, railway signalling station. 36° 29’ 42.5” N; 52° 55’ 26.8” E, 20m. 3497 P1015045 Mazandaran: Sari to Semnan, Pahnehkolah, around cemetery. 36° 27’ 38.4” N; 53° 5’ 19.3” E, 140m. 3495 P1015049 Mazandaran: Tonekabon, Sehezar to Alamut, Tuskakuti village, Emamzadeh Seyed Yahya. 36° 41’ 14.2” N; 50° 50’ 48.8” E, 400m. 3492 P1015058 Guilan: Sangar to Lahijan, ca. 100 m after Siahkal entrance. 37° 10’ 19.1” N; 49° 52’ 26.3” E, 30m. 3488 P1015059 Guilan: 2 km a Saravan to Sangar, Balamahaleh Shahrestan. 37° 06’ 39.1” N; 49° 40’ 10” E, 55m. 3501 C. damascenus P1015062 Markazi: ca. 30 km before Golpayegan a Khomein. 33° 37’ 50.5” N; 50° 11’ 19.6” E, 1855m. 3639 P1015063 Esfahan: 6 km before Khonsar a Golpayegan. 33° 20’ 7.4” N; 50° 20’ 25” E, 2030m. 3709 P1015064 Esfahan: Khonsar-Boein-Miandasht road, just 1 km after the pass. 33° 13’ 10.2” N; 50° 15’ 29.7” E, 2820m. 3640 P1015065 Esfahan: 25 km a Aligoudarz to Damaneh. 33° 15’ 36.5” N; 49° 56’ 10.9” E, 2405m. 3641 P1015089 W Azerbaijan: N of Urumieh. 38° 00’ 53.8” N; 44° 56’ 37.6” E, 1875m. 3710 P1015091 W Azerbaijan: 15 km before Oshnavieh, a soil road towards West. 37° 10’ 47.3” N; 45° 04’ 17.3” E, 2170m. 3712 P1015102 W Azerbaijan: W of Oshnaviyeh. 36° 57’ 21.1” N; 45° 00’ 30.7” E, 1775m. 3711 P1015119 Kurdestan: around Marivan dam. 35° 35’ 51.1” N; 46° 18’ 50.5” E, 1420m. 3713 P1015128 Kurdestan: Marivan to Tizh Tizh. 35° 31’ 29.6” N; 46° 23’ 1.3” E, 1570m. 3638 P1015138 Kermanshah: between Songhor and Sahneh. 34° 38’ 39.8” N; 47° 35’ 21.7” E, 1980m. 3714 C. haussknechtii P1015067 Lorestan: 42 km before Khorramabad a Doroud. 33° 31’ 18” N; 48° 45’ 37” E, 1835m. 3716 P1015131 Kurdestan: Sanandaj, Salavat Abad pass. 35° 16’ 30.2” N; 47° 08’ 25.5” E, 2010m. 3718 P1015136 Kurdestan: Dehgolan to Ghorveh, on the road to Songhor. 34° 04’ 48” N; 47° 33’ 36” E, 2190m. 3715 C. speciosus s.l. (= C. archibaldiorum) P1015060 Guilan: Rostamabad, hills NE Shamam village, between jungle trees. 36° 55’ 48.1” N; 49° 28’ 36.3” E, 880m. 3499 C. speciosus s.l. P1015042 Tehran: 3 km a Gaduk pass to Veresk. 35° 51’ 16” N; 52° 56’ 49.2” E, 2065m. 3498 P1015070 Guilan: Totekabon to Jirandeh. 36° 48’ 33.3” N; 49° 38’ 8.6” E, 1010m. 3719 32 Alireza Dolatyari C. sativus in Iran. Here, three accessions of C. haussknech- tii were studied. Chromosome numbers of 2n = 14 in two accessions (P1015131, P1015136) from Kurdistan province, and 2n = 16 in P1015067 from Lorestan province were recorded. These results confirm intraspecific variation in chromosome numbers and also significant differences in karyotype formulas among accessions with different chro- mosome numbers (Brighton et al. 1973; Brighton 1977a; Sanei et al. 2007). The karyotype of 2n = 16 consists of ten subtelocentric plus six submetacentric chromosomes, whereas in 2n = 14 karyotypes, solely metacentric and submetacentric chromosomes occur. The MCA and CVCI parameters also confirm that the karyotype in P1015067 is more asymmetric than in the other two investigated accessions. The coefficient of variation of chromosome length (CVCL), giving a measure of interchromosomal asymmetry (Peruzzi and Altinordu 2014), showed the highest amounts for the three studied accessions of this species among the examined taxa (Table 2). Brighton (1977a) presented a karyotype in two col- lections (as C. pallasii subsp. haussknechtii) from Iran (Kazerun and Firouzabad) with 2n = 16 chromosomes, to which the karyotypes of my samples from Lorestan province completely coincide. Brighton et al. (1973) also reported 2n = 14 chromosomes for a collection from Zagros Mts., but without presenting its karyotype. How- ever, Mathew et al. (1979) presented the karyotype for an accession of this species with 2n = 14 from Sanandaj Figure 1. Photos of the studied taxa. a) C. archibaldiorum; b) C. caspius; c, d) C. damascenus; e, f ) C. haussknechtii; g, h, i) C. speciosus s.l. (P1015042), j, k, l) C. speciosus s.l. (= C. archibaldiorum, P1015060), m) C. speciosus s.l. (P1015070). Photos: a-e and m by Jānis Rukšāns, the rest by the author. 33Karyological data of five autumn-flowering Crocus L. species from Iran (Kurdistan), which corresponds to the karyotype of accession P1015136. Sanei et al. (2007) stated that their karyotype of 2n = 12 (from Kermanshah province) was very similar to the 2n = 14 cytotype of Mathew et al. (1979) when the smallest pair was missing. Totally, three cytotypes (2n = 12, 14 and 16) have been reported for C. haussknechtii from Iran so far. The reported karyotypic differences among the stud- ied cytotypes are much greater than that could have been simply overlooked earlier. Maybe, in the past such substantial variation was considered as commonly pre- sent (Feinbrun 1957; Brighton 1976; Rudall et al. 1984). However, reflecting the currently accepted species con- cept in the genus, such a peculiar chromosome polymor- phism, especially at the infraspecific level, is anomalous. Detailed molecular and morphological analyses seem essential prior to making any taxonomic decisions. Section Nudiscapus Twenty-one species of this section are distributed in Iran. Among them, only C. damascenus is widely dis- tributed, the others are either steno-endemics or sub- endemic elements. In the present study, detailed karyo- typic data are provided for 15 accessions of C. caspius and C. damascenus, and also five accessions of Crocus speciosus aggregate (the series Speciosi). Crocus caspius All five investigated accessions from Mazandaran and Guilan provinces (Table 1) showed 2n = 24, confirming earlier chromosome counts (Brighton et al. 1973; Mathew and Brighton 1977; Heywood 1983). The estimated karyo- typic parameters (Table 2) showed little variation among Table 2. Karyological data of the investigated accessions. No. inv. cor. = number of investigated corms; Fig. refer. = figure reference; SAT chr. no. = number of satellited chromosomes; THL = total haploid length of chromosomes; MCA = mean centromeric asymmetry; CVCL = coefficient of variation of chromosome length; CVCI = coefficient of variation of centromeric index. Species IBRC No. No. inv. cor. Fig. refer. 2n Karyotype formula SAT. Chr. No. THL MCA CVCL CVCI Section Crocus C. haussknechtii P1015067 4 3e 16 6sm+10st, 6sm+8st+2stsat 0, 2 48.19 41.73 39.109 25.29 P1015131 4 3f 14 2msat+6m+6sm 1, 2 47.39 22.78 44.59 15.81 P1015136 4 3g 14 2m+12sm, 1m_1msat+12sm 0, 1 42.71 30.32 43.91 16.72 Section Nudiscapus Mathew C. archibaldiorum P1015055 8 2a 12 12m, 9m+3msat, 10m+2msat 0, 2, 3 75.45 18.2 14.84 4.74 P1015056 6 2b 12 10m+2msat 1, 2 70.29 20.18 11.75 3.25 C. caspius P1015044 9 2c 24 18m+6sm, 16m+2msat+6sm 0, 2 62.19 22.02 13.65 8.14 P1015045 7 2d 24 18m+6sm, 17m+1msat+6sm 0, 1 65.43 19.34 12.46 7.11 P1015049 8 2e 24 18m+6sm,18m+5sm+1smsat, 18m+4sm+2smsat 0, 1, 2 60.74 20.89 11.24 9.46 P1015058 6 2f 24 16m+8sm, 0, 1, 2 75.13 22.63 12.08 8.53 P1015059 5 2g 24 16m+8sm, 14m+9sm+1smsat 0, 1 63.71 22.61 14.73 8.33 C. damascenus P1015062 6 2h 8 8st 0 28.68 62.97 20.42 16.81 P1015063 4 2i 8 8st 0 32.64 66.13 18.22 12.65 P1015064 2 2j 8 8st, 7st+1stsat 0, 1 46.59 68.47 18.12 19.63 P1015065 4 2k 8 8st, 7st+1stsat 0,1 38.18 65.96 17.13 18.45 P1015089 5 2l 10 2m+2smsat+ 6st 2 41.25 47.67 21.78 40.81 P1015091 6 2m 10 1m+2sm+1smsat+6st, 2sm+2smsat+ 6st 1, 2 36.42 52.08 10.35 22.68 P1015102 7 2n, o 10 2sm+ 8st, 1sm+1smsat+8st, 2sm+7st+1stsat 0, 1, 2 42.81 54.43 11.74 35.9 P1015119 4 2p 8 8st 0 27.52 59.59 17.39 12.66 P1015128 3 3a, b 8 8st, 7st+1stsat, 6st+2stsat, 5st+3stsat 0, 1, 2, 3 35.21 66.53 17.1 20.81 1 3c 1m+7st, 1m+6st+ 1stsat 0, 1 33.54 56.84 23.49 47.18 P1015138 5 3d 8 7st+1stsat, 6st+2stsat, 5st+3stsat 1, 2, 3 28.5 62.98 16.14 18.48 C. speciosus s.l. (= C. archibaldiorum) P1015060 5 3j 12 12m, 11m+1msat, 10m+2msat 0, 1, 2 71.87 16.97 13.16 3.9 C. speciosus s.l. P1015042 5 3h, i 12 12m, 11m+1msat, 10m+2msat, 9m+3msat 0, 1, 2, 3 42.95 21.94 12.1 5.28 P1015070 7 3k 12 12m, 11m+1msat 0, 1 51.28 20.53 13.93 4.46 34 Alireza Dolatyari Table 3. Crocus species currently occurring in Iran, and previous chromosome counts for them (in alphabetical order). Section Species n 2n Origin Reference(s) Nudiscapus Crocus almehensis C.D.Brickell &B.Mathew 20 Bojnurd Brighton et al. 1973 Crocus archibaldiorum (Rukšāns) Rukšān Crocus azerbaijanicus Dolatyari & Ruksans Crocus caspius Fisch. & C.A.Mey. ex Hohen. 24 Sari Brighton et al. 1973 Rasht 24 Guilan Mathew and Brighton 1977 12 24 Rasht, Mt. Sefid rud, Amol Heywood CA 1983 Crocus chiaicus Dolatyari & Ruksans Crocus chionophilus Dolatyari & Ruksans Crocus damascenus Herb. 8, 10, 12 Damaneh, Urumieh, Khoi Brighton et al. 1973 8 Golpayegan Ebrahimzadeh et al. 1998 4 8, 8+1B Arak, Sefid-khani Ghaffari and Djavadi 2007 8 Golpayegan Sanei et al. 2006 8, 10, 12 Damaneh, Salmas, Khoi Brighton 1977b Crocus dolatyarii Rukšāns Crocus Crocus gilanicus B.Mathew 24 W of Rustamabad Mathew and Brighton 1976 Siah Bisheh Ebrahimzadeh et al. 1998 Nudiscapus Crocus gunae Rukšāns Crocus Crocus hakkariensis (B.Mathew) Rukšān Crocus haussknechtii (Boiss. & Reut. ex Maw) Boiss. 12 Islam Abad-e Qarb Sanei et al. 2007 14 Zagros Mts. Brighton et al. 1973 16 Kazerun, Firouzabad Brighton 1977a Nudiscapus Crocus inghamii Rukšāns Crocus iranicus Ruksans Crocus kurdistanicus (Maroofi & Assadi) Ruksans Crocus marandicus Dolatyari & Ruksans Crocus michelsonii B. Fedtsch. 20 W of Bojnurd, NW of Ghochan, N of Ghochan Brighton et al. 1973 Crocus pseudoiranicus Dolatyari & Ruksans Crocus reinhardii Ruksans Crocus sanandajensis Kernd. & Pasche Crocus Crocus sativus L. 24 Cultivated plant origin from Iran Agayev 2002, Ebrahimzadeh et al. 1998, Estilai 1976, Estilai and Aghamohammadi 1977, Ghaffari 1986, Ghaffari and Bagheri 2009 Nudiscapus Crocus zagrosensis Kernd. & Pasche Crocus zanjanensis Kernd. & Pasche Crocus zubovii Ruksans Crocus biflorus aggregate, C. aerius Herb. 22 Urumieh, Sanandaj, Brighton et al. 1973 Crocus biflorus aggregate, C. adamii J. Gay 20 Bojnurd Brighton et al. 1973 Crocus speciosus M.Bieb. aggregate 12 Golestan forest Ebrahimzadeh et al. 1998 S Aliabad, S Sangdeh, E Chalus, Ardabil, between Astara and Ardabil Brighton et al. 1983 35Karyological data of five autumn-flowering Crocus L. species from Iran the studied accessions, reflected in their close positions occupied in the PCoA analysis (Fig. 9). Although 2n = 24 is the largest chromosome number among the examined taxa, the estimated total haploid length (THL) for most studied accessions of C. caspius (except for P1015058) was shorter than that was measured in C. archibaldiorum (2n Figure 2. Mitotic metaphase plates of the investigated accessions. C. archibaldiorum: a) P1015055, b) P1015056; C. caspius: c) P1015044, d) P1015045, e) P1015049, f ) P1015058, g) P1015059; C. damascenus: h) P1015062, i) P1015063, j) P1015064, k) P1015065, l) P1015089, m) P1015091, n, o) P1015102, p) P1015119. All scale bars = 2 µm. 36 Alireza Dolatyari = 12). Schneider et al. (2012) found larger chromosomes in taxa with lower chromosome numbers, and concluded that the numerical diploidization events were caused by chromosome fusions. Crocus damascenus Wendelbo and Mathew (1975) recognized this spe- cies as C. cancellatus Herb. subsp. damascenus (Herb.) B.Mathew. Phylogenetic studies strongly ruled out the subspecies concept of Mathew (1982) in crocuses and this subspecies, like many others, was raised to species level (Harpke et al. 2013; Rukšāns 2014a, b, 2015; Har- pke et al. 2016). Among 10 accessions analyzed from five Iranian provinces, three accessions from province W Azerbai- jan had 2n = 10 chromosomes, while the other seven accessions showed 2n = 8 (Table 2). Identical counts were earlier published for collections from W Azerbai- jan (Brighton et al. 1973, 2n = 10), Markazi and Esfa- han provinces (Brighton et al. 1973; Ebrahimzadeh et al. 1998; Sanei et al. 2007; Ghaffari and Djavadi 2007, 2n = 8). Also, a chromosome number of 2n = 12 was counted in plants from Khoi (W Azerbaijan province) by Brighton et al. (1973) and Brighton (1977b). In addi- tion, Ghaffari and Djavadi (2007) reported one B chro- mosome in C. damascenus from an Arak population, but no B chromosome was seen in the examined mate- rials here. Figure 3. Mitotic metaphase plates of the investigated accessions. C. damascenus: a, b, c) P1015128, d) P1015138; C. haussknechtii: e) P1015067, f ) P1015131, g) P1015136; C. speciosus s.l.: h, i) P1015042, j) P1015060, k) P1015070. All scale bars = 2 µm. 37Karyological data of five autumn-flowering Crocus L. species from Iran 1 2 Figure 4. Idiograms of the investigated accessions of the genus Crocus. 1 Figure 5. Idiograms of the investigated accessions of the genus Crocus. 38 Alireza Dolatyari Brighton (1977b) reported 2n = 8, 10, 12, 14 and 16 chromosomes in 90 investigated collections of C. cancel- latus aggregate. Altogether, she found 1-9 B chromosomes in the 2n = 10 and 2n = 16 cytotypes, and three distinct karyotypes having 2n = 8, 10 and 12 chromosomes. Four of her collections were from Iran: one from Damaneh (Esfahan province, 2n = 8, karyotype 1: only acrocentric or subtelocentric chromosomes), two from Salmas and Urumieh (2n = 10, karyotypes 1 and 3: like type 1 but one acrocentric chromosome was replaced by one meta- 1 2 Figure 6. Idiograms of the investigated accessions of the genus Crocus. 1 2 3 4 5 6 7 8 9 10 11 12 Figure 7. Idiograms of the investigated accessions of the genus Crocus. 39Karyological data of five autumn-flowering Crocus L. species from Iran centric chromosome), and one collection from Khoi (2n = 12, karyotype 2: consisted of 1-3 pairs of submetacentric or metacentric chromosomes besides a varied number of acrocentric ones). I did not find 2n = 12, probably because I did not study samples from Khoi. In accordance to her results, karyotypes in my examined collections with 2n = 8 were constant and consisted of only eight subtelocen- tric chromosomes (karyotype 1, Figs. 5 & 6). However, in one individual each of accessions P1015128 (2n = 8) and P1015091 (2n = 10), karyotype 3 was found that was reported by Brighton (1977b) only in 2n = 10 cytotypes and not in 2n = 8 ones from Iran. However, Feinbrun (1957, 1958) reported karyotype 2 for 2n = 8 cytotypes of C. damascenus samples from Lebanon, Jordan and Syria. West Azerbaijan accessions (2n = 10) possessed one or two pairs of metacentric and/or submetacentric chro- mosomes (karyotype 2) observed by Brighton (1977b) in plants from Iran having 2n = 12 chromosomes. The ten examined accessions showed substantial intraspecific polymorphism in chromosome number and structure. However, the estimated total haploid length (THL) did not vary remarkably among these collections. Like previous researchers (Brighton 1977b; Brighton et al. 1983; Harpke et al. 2015), I attribute these karyologi- cal alterations to Robertsonian translocation events hav- ing occurred frequently during the generic evolution. It seems also possible that, in this species with variable karyotypes, the karyological diversity could have been Figure 8. Distribution map of the studied accessions of Crocus species. C. archibaldiorum (blue pentagons), C. caspius (green dots), C. damascenus (2n = 8 red squares, 2n = 10 purple squares), C. haussknechtii (2n = 14 blue asterisks, 2n = 16 yellow asterisk), C. speciosus s.l. = C. archibaldiorum (2n = 12, blue triangle), C. speciosus s.l. (2n = 12, red triangles). 40 Alireza Dolatyari caused by infraspecific hybridization events in the con- tact zone of various phytogeographical regions (Brighton 1977b; Harpke et al. 2015). Keeping in mind all available data, I hesitate con- sidering the occurrence of three different chromosome numbers (2n = 8, 10 and 12) and three distinct karyo- types as characteristic of the widely distributed C. dama- scenus (Rukšāns 2017a). In my opinion, the currently accepted concept of this species needs substantial re- evaluation. Crocus speciosus aggregate Crocus speciosus aggregate is one of the most com- plicated taxonomic groups within the genus. Its mem- bers are distributed from Greece, Turkey and Crimea (Ukraine) to the southern coast of the Caspian Sea in N Iran. Mathew (1982) accepted three subspecies within C. speciosus, and subsumed under the typical subspe- cies karyologically very dissimilar samples with 2n = 8, 10, 12, 14, and 18 chromosomes (Brighton et al. 1983). Until now, C. archibaldiorum, C. zubovii Rukšāns and C. hyrcanus Rukšāns & Zubov have been split from the Iranian members of C. speciosus (Rukšāns 2014a, 2017a, Rukšāns and Zubov 2025). For now, I apply the name C. speciosus s.l. for any other materials from this aggregate not belonging to these three species. Two accessions of C. archibaldiorum were karyologi- cally investigated and showed 2n = 12 metacentric chro- mosomes. These are the first chromosome counts for this species. In three collections of the C. speciosus aggregate from N Iran (Tables 1 and 2), 2n = 12 metacentric chro- mosomes were counted, and the karyological data for accession P1015060 were identical to those of C. archiba- ldiorum. Since this accession occupied a position close to accessions of the latter species in PCoA analysis (Fig. 9), I re-examined it morphologically and concluded that it was another population of C. archibaldiorum (confirmed by J. Rukšāns, personal communication). Also the sepa- rate position of two other accessions of the C. specio- sus group may be considered as a good support for the assumption of Dolatyari et al. (2024) that possibly sev- eral undescribed species from this group occur in Iran. Brighton et al. (1983) studied five collections of C. speciosus subsp. speciosus from N Iran and reported 2n = 12 with the karyotype formula of 6m + 6sm for them, to which mine virtually correspond. Ebrahimzadeh et al. (1998) also reported the same number and karyo- type for this subspecies from Golestan province. Among the studied accessions, the largest total haploid length of chromosome set (THL) was measured in accession P1015055 of C. archibaldiorum. Figure 9. PCoA analysis of the investigated accessions based on five quantitative karyological parameters. Four first letters of species name plus three last numbers of IBRC codes were used to mark each accession, section names in red letters. 41Karyological data of five autumn-flowering Crocus L. species from Iran Statistical analysis To correctly highlight karyological relations among the studied taxa, I analysed five karyological parameters (2n, THL, MCA, CVCL, CVCI) of all investigated acces- sions using the principal coordinates (PCoA) method (Fig. 9). The cumulative variance explained by the first two axes was 81.07. Wherever I was going to test pre- vious groupings, discriminate analysis (DA) was per- formed (Peruzzi and Altinordu 2014). Remarkably, DA correctly attributed the studied accessions to their two corresponding sections. This clustering pattern at the sectional level was in accordance with the findings of recent palynological studies on Iranian Crocus spe- cies, which similarly revealed clear distinctions between sections based on pollen morphology (Dolatyari and Dehghani 2025). This congruence between karyological and palynological data supports the reliability of both approaches in resolving taxonomic relationships within the genus. The most important characterizing karyologi- cal features were 2n, CVCL and THL. However, it must be noted that the heterogeneity of the investigated sam- ples could have influenced the statistical results. In other words, another result seems possible if more samples of the sect. Crocus were analysed. At the species level, all accessions of the same spe- cies occupied close and distinct positions. The isolated position of C. haussknechtii (sect. Crocus) far from the other four species (sect. Nudiscapus) was particularly striking. Crocus caspius (2n = 24) was positioned more closely to C. archibaldiorum and C. speciosus aggre- gate (both 2n = 12). These three taxa are distributed in northern Iran (Fig. 8). At the infra-specific level, close and isolated posi- tions of the five studied accessions of C. caspius mirrored its constant and distinct karyotypes. On the other hand, in C. damascenus, the isolated position of accession P1015089 (North of Urumieh) needs special attention. This accession greatly differed from the other two 2n = 10 accessions in CVCL and CVCI parameters, and hav- ing one pair of long metacentric chromosomes that are absent in the other accessions. These results shows that this accession may represent a distinct taxon demanding a future detailed taxonomic investigation. CONCLUDING REMARKS The findings of this paper are in line with previous findings and confirm extreme karyological variation in crocuses. The extremely wide range of reported chromo- some numbers (2n = 6 to 64) makes it difficult to infer ploidy levels directly from somatic chromosome com- plements. However, substantial changes in chromosome number and structure imply the pivotal role of karyolog- ical events, particularly dysploidy and polyploidy, in the genus evolution (Goldblatt and Takei 1997; Harpke et al. 2013; Raca et al. 2023). The number and type of satellited chromosomes in the genus seem to be good karyological markers, but it remains unclear whether they are taxon-specific, since comprehensive publications, like those available for Alli- um (Dolatyari et al. 2018), are still missing to determine the taxonomic importance of such variation in crocuses. This issue is intended to be addressed in detail in the next publication. Currently, the subspecies concept is no longer accepted in the genus Crocus, and all former infraspe- cific entities are recognized as distinct species. This attitude helped to resolve many long-standing karyo- logically characterized complexes. Additionally, accurate review of available chromosomal data suggests that most Crocus species possess constant karyotypes, with little intra-populational heterozygosity. In cases where differ- ent cytotypes are observed within one species, e.g. in C. damascenus and C. haussknechtii, it should be regarded as a strong signal for a future taxonomic revision. ACKNOWLEDGMENT I am very grateful to Dr. R.M. Fritsch for his care- ful review of the manuscript. His wise observations have significantly raised the manuscript’s coherence and clar- ity. I also want to acknowledge Dr. Doerte Harpke for her insightful scientific recommendations. Additionally, I thank Dr. Mehdi Dehghani for his crucial help with the final language check. FUNDING INTERESTS Funding for the project no. P-1401-01 of Iranian bio- logical resource center is gratefully acknowledged. REFERENCES Advay M, Rukšāns J. 2024. 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