32 ACTA BOT. CROAT. 81 (1), 2022 Acta Bot. Croat. 81 (1), 32–41, 2022 CODEN: ABCRA 25 DOI: 10.37427/botcro-2021-029 ISSN 0365-0588 eISSN 1847-8476 Syntaxonomical and ecological diversity of the class Polygono-Poetea annuae in Bulgaria Kiril Vassilev1*, Momchil Nazarov1, Constantin Mardari2, Borislav Grigorov3, Stoyan Georgiev4, Beloslava Genova5, Nikolay Velev1 1 Bulgarian Academy of Sciences, Institute of Biodiversity and Ecosystem Research, Department of Plant and Fungal Diversity and Resources, 23 G. Bonchev str., 1113, Sofia, Bulgaria 2 Alexandru Ioan Cuza University, Anastasie Fătu Botanical Garden, 7-9 Dumbrava Roşie, 700487 Iaşi, Romania 3 Sofia University “St. Kliment Ohridski”, Faculty of Geology and Geography, bul. “Tsar Osvoboditel” 15, 1504, Sofia, Bulgaria 4 Institute of Field Crops, 2 Grigori Dimitrov str., 6200, Chirpan, Bulgaria 5 University of Plovdiv Agricultural Acedemy, “Paisii Hilendarski”, Faculty of Biology, 24 Tzar Asen str., 4000, Plovdiv, Bulgaria Abstract – Class Polygono-Poetea annuae Rivas-Mart. 1975 includes therophyte-rich vegetation on trampled habitats. The study presents the first analysis of the syntaxonomy of this class and its ecology in Bulgaria. One hundred seventy- five relevés from this class were collected and stored in the Balkan Vegetation Database during 2017–2020. Numerical classification (hierarchical divisive) and ordination were performed by JUICE and CANOCO software packages. Diagnostic species were determined by calculating the Phi-coefficient. Four associations, Sclerochloo durae-Polygonetum arenastri, Polygonetum arenastri, Lolio-Polygonetum arenastri and Poëtum annuae, were recognized. Their floristic composition has been shaped mainly by climatic and soil conditions. Sclerochloo durae-Polygonetum arenastri association has been found at lower altitudes, occurring in fully lighted habitats with high radiation, whereas Poëtum annuae has been found at higher altitudes in wetter and cooler areas. On the other hand, stands of Polygonetum arenastri have been found on nutrient-rich soils, whereas communities of Lolio-Polygonetum arenastri were distributed in warmer and nu- trient-poor areas. The Polygono-Poetea annuae class is still poorly studied in Bulgaria and much more information from all regions of the country needs to be collected and analyzed. Key words: Braun-Blanquet approach, Polygono arenastri-Poetalia annuae, Saginion procumbentis, trampled vegetation Introduction The class Polygono-Poetea annuae Rivas-Mart. 1975 in- cludes disturbed vegetation of trampled habitats, formed mostly by annual plants with a ruderal or stress-tolerant life strategy (Láníková 2009). This vegetation is typical of an- thropogenically influenced surfaces (roads, parks, parking lots, agricultural roads, playgrounds, etc.). Conditions are unfavorable and include mechanical pressure, leading to vegetation disruption. Soils are weakly aerated and highly compacted and sites have been sealed which leads to there being limited space for plants to grow. Drainage is also poor and plants that adapt and form these phytocoenoses are R and RS strategists (Grime 2001). The syntaxonomical diversity of this vegetation has not been studied in Bulgaria due to a lack of rare plants, as well as plants with high conservation importance. Anthropo- genic pressure in the last 60-80 years led to an increase in the size of areas with communities of the Polygono-Poetea annuae class. The class has been studied in different Euro- pean countries: the Czech Republic (Láníková 2009), Slovakia (Jarolímek et al. 1997, Redneková and Mičieta 2017), Romania (Coldea 2012, Sanda et al. 2008), Slovenia (Čarni 2005), Austria (Mucina 1993), Albania (Dring et al. 2002), Slovenia (Šilc 2009, Šilc and Košir 2006), Croatia (Škvorc et al. 2017), North Macedonia (Čarni et al. 2002), etc. Accord- * Corresponding author e-mail: kiril5914@abv.bg TRAMPLED VEGETATION IN BULGARIA – SYNTAXONOMY AND ECOLOGY ACTA BOT. CROAT. 81 (1), 2022 33 ing to Mucina et al. (2016) the class includes one order (Polygono arenastri-Poetalia annuae Tx. in Géhu et al. 1972 corr. Rivas-Mart. et al. 1991) and three alliances (Polygono- Coronopodion Sissingh 1969, Polycarpion tetraphylli Rivas- Mart. 1975 and Saginion procumbentis Tx. et Ohba in Géhu et al. 1972). Synanthropic vegetation in Bulgaria (incl. classes of Stellarietea mediae s.l., Artemisietea vulgaris, Epilobietea angustifolii, Galio-Urticetea, Bidentetea tripartitae and Oryzetea sativae) has also been poorly studied. Data con- cerning this vegetation were presented in the publications of Kolev (1976), Mucina and Kolbek (1989), Dimitrov (2004), Dimitrov et al. (2005), Tzonev (2009), and Gussev et al. (2020). The syntaxonomical diversity includes 6 classes, 11 orders, 16 alliances, 33 associations, five plant communities (cf. Tzonev et al. 2009), and the prevailing number of syntaxa was described only from a single relevé. Moreover, some vegetation plots e.g. published by Kolev (1976) had a size of only 1 m2, which is not recommended from the current perspective (see Chytrý and Otýpková 2003) and might not include the complete floristic composition since they are characterized by lower species richness than exhibited by recent data. The aim of this study is to investigate the distribution, ecology and syntaxonomical diversity of the class of Polygono- Poetea annuae in Bulgaria. Materials and methods Study area The Polygono-Poetea annuae class Rivas-Mart. et al. 1975 is found within areas diverse from the point of view of physical geography, e.g. lowlands, valleys, hills, plateaus, low and high mountains in Bulgaria. The most prominent lowland and valley features include the large areas of the Danube Valley and the Thracian Valley as well as the small- er ones of Sofia, Burgas and Kostenets-Dolna Banya Valleys. They fall mainly within the hypsometric zone between 0 m and 500-600 m a.s.l. The hilly and plateau relief includes the features of the Dobrudzha, Frangensko, Shumensko and Ludogorsko Plateaus, as well as the Haskovski and Chirpan Highlands, ranging from 300 m to 600 m a.s.l. Low moun- tainous territories include the areas of the Forebalkan, the mountains of Mala Planina, Chepan, Viskyar, Lyulin and Ihtimanska Sredna Gora that fall mainly within the hypso- metric zone between 600 m and 1200-1300 m a.s.l. The highest mountains in the research area are the Balkan Range, Vitosha and Rila being three of the four highest mountains in the country. The climate is temperate with large territories in the zone with transitional climates and areas with sub-Medi- terranean features along the Black Sea coast. The water re- sources include some of the largest rivers in the country: the Iskar, Maritsa, Yantra and Ogosta along with their tributar- ies, accompanied by some shorter but still important river arteries, such as the Rositsa and Nishava. Soil types are diverse as well, including Chernozems, Cambisols, Vertisols, Luvisols, Fluvisols and Leptosols. Field sampling and data analysis In Bulgaria 175 vegetation plots (relevés) presenting trampled vegetation, were sampled during the 2017-2020 period following the Braun-Blanquet approach (Westhoff and van der Maarel 1973). The plot size was 10-25 m2, as recommended for synanthropic communities (Chytrý and Otýpková 2003). All relevés were stored in the Balkan Veg- etation Database (Vassilev et al. 2020, currently including 18406 relevés) and analyzed with JUICE 7.0 (Tichý 2002) software. Altitude, slope inclination and location were deter- mined by a Garmin eTrex Vista device and the aspect of the slope with a compass for each relevé. Soil depth was esti- mated in three degrees: (1) shallow (<10 cm depth), (2) mod- erately deep (10-20 cm) and (3) deep (>20 cm). Classification of relevés was carried out with JUICE 7.0 software (Tichý 2002). Modified TWINSPAN (Roleček et al. 2009) was applied for clustering the total number of sam- pled relevés and for the analysis of associations’ heterogene- ity. The diagnostic species were identified according to the Phi-coefficient (Chytrý et al. 2002). Only statistically sig- nificant values of Phi-coefficients, evaluated with Fisher‘s exact test (P < 0.05), have been given in the synoptic table. All clusters have been standardized to equal sizes. The threshold value for a species that is considered as diagnostic was set at a Phi-coefficient ≥ 0.3 (multiplied by 100). Species with Phi-coefficient ≥ 0.5 have been considered highly di- agnostic. The species in the synoptic table have been or- dered according to a decrease in the fidelity value. The di- agnostic role of the species has also been considered according to available literature sources. The text presents diagnostic species that are the result of current analysis, whereas the tables also include those given as diagnostic in the literature. Two values have been presented for each spe- cies in the synoptic table: “Fidelity” – expressed by the Phi- coefficient and “Frequency” expressed as a percentage. Spe- cies with coverage above 50% in at least 20% of the relevés in any cluster have been considered as dominant, whereas constant species were those having at least 50% presence in a cluster. Differences in the ecological preferences of the four plant associations have been assessed using the Mann- Whitney and Kruskal-Wallis tests. Detrended correspondence analysis (DCA) has been used as an indirect ordination technique using the CANOCO 4.5 software package (ter Braak and Šmilauer 2002) to reveal the major environmental gradients shaping the floristic composition. Square root transformation and downweight- ing of rare species have been applied. The habitat’s ecologi- cal conditions has been assessed using the “Ellenberg Indi- cator Values” (Ellenberg et al. 1992) passively projected onto the ordination space. The significance of correlation of mean EIVs with scores of samples along ordination axes has been calculated using the modified permutation test VASSILEV K., NAZAROV M., MARDARI C., GRIGOROV B., GEORGIEV S., GENOVA B., VELEV N. 34 ACTA BOT. CROAT. 81 (1), 2022 elaborated by Zelený (Zelený and Schaffers 2012) and imple- mented in the stand-alone application MoPeT (available at: https://davidzeleny.net/wiki/doku.php/eiv:software). The nomenclature of vascular plants is following Delipavlov and Cheshmedzhiev (2003) and has subsequently been standardized according to the Euro+Med PlantBase (2006-2020). The floristic elements have been interpreted according to Assyov and Petrova (2012). The species’ life forms have been determined according to the classification of Raunkiær (1934). The nomenclature of the high rank syn- taxa has been harmonized with Mucina et al. (2016). All species determined to genus level have been deleted. In ad- dition, bryophytes and lichens have been removed from the species composition because they still are not determined for all relevés. We have also merged the following species into aggregates: Achillea millefolium agg. (Achillea millefolium, A. distans, A. collina, A. setacea), Cerastium fontanum agg. ( Cerastium fontanum, C. fontanum subsp. vulgare), Junipe- rus communis agg. (Juniperus communis, J. communis sub- sp. nana), Tragopogon pratensis agg. (Tragopogon pratensis, T. pratensis subsp. orientalis), Trifolium repens agg. (Trifo- lium repens, T. repens var. orbelicum), Verbascum longifolium agg. (Verbascum longifolium, V. longifolium subsp. pannosum), Vicia villosa agg. (V. villosa, V. villosa subsp. varia) and Polygonum aviculare agg. (Polygonum aviculare, P. rurivagum). Results The 175 relevés have been classified into 4 associations, as a result of the analyses conducted and all of them have been defined floristically and ecologically (Tables 1, 2, Figs. 2, 3). The proposed syntaxonomical scheme is as follows: Polygono-Poetea annuae Rivas-Mart. 1975 Polygono arenastri-Poetalia annuae Tx. in Géhu et al. 1972 corr. Rivas-Mart. et al. 1991 Polygono-Coronopodion Sissingh 1969 Sclerochloo durae-Polygonetum arenastri Soó ex Bodrogközy 1966 corr. Borhidi 2003 Polygonetum arenastri Gams 1927 corr. Lanikova in Chytry 2009 Lolio-Polygonetum arenastri Br.-Bl. 1930 em. Lohmeyer 1975 Saginion procumbentis Tx. et Ohba in Géhu et al. 1972 Poëtum annuae Gams 1927 Sclerochloo durae-Polygonetum arenastri Soó ex Bodrog- közy 1966 corr. Borhidi 2003 (Tab. 1, On-line Suppl. Tab. 1) Diagnostic species: Sclerochloa dura Constant species: Polygonum aviculare agg. (94%), Lolium perenne (70%) Dominant species: Polygonum aviculare agg. (40%), Sclerochloa dura (32%) Distribution and ecology: This association is widely distributed in Bulgaria (Fig. 1) and has been identified be- tween 100 and 570 m a.s.l., in the Sofia lowland (Sofia city, Elin Pelin, Gorna Malina, Kostinbrod, Bozhurishte munic- ipalities), the Thracian plain (Chirpan, Brezovo, Sadovo, Bratya Daskalovi, Rakovski municipalities), Mt Sredna Fig. 1. Map of the study area. Sampled locations of the vegetation indicated in relation to association level. TRAMPLED VEGETATION IN BULGARIA – SYNTAXONOMY AND ECOLOGY ACTA BOT. CROAT. 81 (1), 2022 35 Ta b. 1 . S ho rt en ed sy no pt ic ta bl e of th e cl as s P ol yg on o- Po et ea a nn ua e i n Bu lg ar ia . L ig ht g re y sh ad e – di ag no st ic sp ec ie s w ith P hi > 3 0; D ar k gr ey sh ad e – di ag no st ic sp ec ie s w ith P hi > 5 0. L ife fo rm s a b- br ev ia tio ns : B – B ia nn ua l, H – h em ic ry pt op hy te , T – T he ro ph yt e, T- B – Th er op hy te -B ia nn ua l. Fl or isr ic el em en ts ab br ev ia tio ns : A dv – A dv en tiv e, Eu r- A s – E ur o- A sia tic , E ur -B al – E ur o- Ba lk an ic , E ur -S ib – Eu ro -S ib er ia n, E ur -M ed – E ur o- M ed ite rr an ea n, K os – C os m op ol iti an ; S Po nt – S ou th P on tic . Li fe fo rm s Fl or ist ic el em en ts N um be r o f r el ev és Sc ler oc hl oo -P ol yg on et um Po ly go ne tu m a re na str i Po ët um a nn ua e Lo lio -P ol yg on et um 47 46 34 48 Ph i % fr iq ue nc y Ph i % fr iq ue nc y Ph i % fr iq ue nc y Ph i % fr iq ue nc y D ia gn os tic sp ec ie s o f S cl er oc hl oo -P ol yg on et um a re na st ri H Eu r- A s Sc ler oc hl oa d ur a1 66 .1 83 - -- 9 - -- 9 - -- 21 H Eu r- A s Lo liu m p er en ne 2 - -- 70 - -- 72 - -- 91 25 .9 10 0 B Eu r- Si b Cy no do n da ct yl on - -- 45 - -- 28 - -- 44 - -- 38 H Eu r- M ed Le pi di um d ra ba 18 .4 11 - -- 0 - -- 0 - -- 6 D ia gn os tic sp ec ie s o f P ol yg on et um a re na st ri T Ko s Po ly go nu m a vi cu la re a gg .3 - -- 94 19 .7 10 0 - -- 79 - -- 85 D ia gn os tic sp ec ie s o f P oë tu m a nn ua e H Ko s O ch lo po a an nu a3 - -- 34 - -- 15 53 .5 85 - -- 25 H Eu r- Si b Tr ifo liu m re pe ns a gg .4 - -- 6 - -- 7 61 .8 71 - -- 15 B Bo re al Pl an ta go m aj or 3 - -- 2 - -- 4 55 .4 53 - -- 8 D ia gn os tic sp ec ie s o f L ol io -P ol yg on et um T Eu r- Si b Ca ps ell a bu rs a- pa sto ris 5 49 .6 89 - -- 35 - -- 41 - -- 21 D ia gn os tic sp ec ie s o f a ll. S ag io n pr oc um be nt is T- B Eu r- A s H er ni ar ia gl ab ra - -- 0 - -- 0 21 .2 6 - -- 0 T- B su bB or ea l Sp er gu la ria ru br a - -- 0 - -- 0 40 .3 21 - -- 0 D ia gn os tic sp ec ie s o f a ll. P ol yg on o- Co ro no po di on H Ko s Ve rb en a offi cin al is - -- 2 - -- 4 27 .5 21 - -- 4 T Eu r- M ed D es cu ra in ia so ph ia - -- 2 - -- 2 - -- 0 - -- 0 T su bB or ea l Er od iu m ci cu ta riu m - -- 2 - -- 2 - -- 9 - -- 10 T- B Eu r- M ed G er an iu m p us ill um - -- 0 - -- 0 - -- 0 - -- 2 D ia gn os tic sp ec ie s o f o rd . P ol yg on o ar en as tr i-P ot al ia a nn ua e & cl . P ol yg on o- Po et ea a nn ua e T- B Eu r- A s Le pi di um ru de ra le - -- 2 - -- 0 - -- 0 - -- 0 O th er sp ec ie s w ith P hi > 30 T A dv Ch en op od iu m a lb um - -- 4 54 .2 50 - -- 9 - -- 0 T Eu r- A s Fa llo pi a co nv ol vu lu s  - -- 4 30 .6 17 - -- 0 - -- 0 H Eu r- Si b Al op ec ur us m yo su ro id es 45 .9 43 - -- 4 - -- 3 - -- 8 H Eu r- A s An isa nt ha st er ili s 30 .1 26 - -- 0 - -- 6 - -- 8 T- B Eu r- A s To ril is ja po ni ca - -- 0 - -- 0 30 .2 12 - -- 0 T Eu r- M ed Br om us h or de ac eu s - -- 2 - -- 0 33 .1 24 - -- 6 H Eu r- Ba l Ag ro sti s c ap ill ar is - -- 0 - -- 0 33 .8 15 - -- 0 T Eu r- M ed D ac ty lis gl om er at a - -- 4 - -- 9 36 .7 41 - -- 15 T su bB or ea l Vu lp ia m yu ro s - -- 0 - -- 2 40 .3 24 - -- 0 H SP on t Po te nt ill a ar ge nt ea - -- 0 - -- 0 43 .3 35 - -- 10 H Eu r- A s Ac hi lle a m ill efo liu m a gg . - -- 4 - -- 11 48 .6 65 - -- 29 T Ko s Co nv ol vu lu s a rv en sis - -- 36 - -- 52 - -- 50 30 .6 81 1 Sp ec ie s d ia gn os tic al so fo r P ol yg on et um a re na str i, or d. P ol yg on o ar en as tr i-P ot al ia a nn ua e & cl . P ol yg on o- Po et ea a nn ua e; 2 Sp ec ie s d ia gn os tic al so fo r P ol yg on et um a re na str i, Lo lio -P ol yg on et um , a ll. S ag io n pr oc um be nt is, or d. P ol yg on o ar en as tr i-P ot al ia a nn ua e & cl . P ol yg on o- Po et ea a nn ua e; 3 Sp ec ie s d ia gn os tic al so fo r L ol io -P ol yg on et um , a lli an ce S ag io n pr oc um be nt is, o rd . P ol yg on o ar en as tr i-P ot al ia a nn ua e & cl . P ol yg on o- Po et ea a nu ue ; 4 Sp ec ie s d ia gn os tic al so fo r P oë tu m a nn ua e, or d. P ol yg on o ar en as tr i-P ot al ia a nn ua e & cl . P ol yg on o- Po et ea a nn ua e; 5 Sp ec ie s d ia gn os tic al so fo r o rd . P ol yg on o ar en as tr i-P ot al ia a nn ua e & cl . P ol yg on o- Po et ea a nn ua . VASSILEV K., NAZAROV M., MARDARI C., GRIGOROV B., GEORGIEV S., GENOVA B., VELEV N. 36 ACTA BOT. CROAT. 81 (1), 2022 Gora (Ihtiman municipality), the valley of the Struma river (Strumyani municipality), the Danube plain (Silistra municipality) and the northern Black Sea coast (Aksakovo municipality). These communities developed in the spring- early summer period. This association is distributed in the warmer regions of Central Europe (Láníková 2009). It is also widespread in Romania (Coldea 2012, Sanda et al. 2008), North Macedonia (Čarni et al. 2002). We identified this association in the lower parts of the country, characterized by extensive sunlight exposure, along agricultural roads, park alleys, near buildings, park- ing lots and other anthropogenically influenced areas and intensively trampled sites and some abandoned agricultur- al lands. However, it was of rare occurrence. Terrains were flat or with a slope of up to 5°. Soil depth was diverse – from shallow to moderately deep. Intensive solar radiation dur- ing the summer months leads to prolonged droughts. Areas with gley soils periodically hold water, especially in periods with heavy precipitation. This association was typical for areas with high anthropogenic pressurеs. Synmorphology: The communities of the association had low species richness (the species number varied from four to 29, with an average of 10 species). They had a pre- dominantly semi-open horizontal structure with a coverage of 50 to 100% (84% on average). A 95-100% coverage was typical of the less trampled sites. The dominant species was Polygonum aviculare agg., while Sclerochloa dura was sub- dominant. Lolium perenne also occurred as a subdominant in some vegetation plots. Ruderal species, such as Aegilops cylindrica, Anisantha sterilis, Matricaria chamomilla, Cichorium intybus, Hordeum murinum, Lactuca serriola, etc. were frequent in the species composition. When anthro- pogenic pressure was low or missing, Lolium perenne and Ochlopoa annua increased their coverage. In those cases, the cover of Polygonum aviculare agg. was also larger. Moss- es were either absent or had a coverage as low as 2-3%. In the f loristic composition, therophytes prevailed (51.5%), followed by hemicryptophytes (26.3%), therophyte- biannuals (11.1%) and biannuals (10%). Euro-Asiatic (26.3%), Euro-Mediterranean (16.2%), Euro-Siberian (10%), Cosmopolitan (10%) and sub-Mediterranean (8.1%) floristic elements prevailed in the species composition. Syntaxonomical notes: The variability of the floristic composition of Sclerochloo durae-Polygonetum arenastri is quite high (e.g. Sanda et al. 2008) and presents 12 subasso- ciations in Romania. According to Coldea (2012), there are two subassociations: typicum and chamomilletosum Morariu 1943. In this article, the small number of relevés did not allow us to make an overall evaluation of the community diversity at subassociation level. The communities of the as- sociation Sclerochloo durae-Polygonetum arenastri fre- quently formed mosaics in disturbed habitats with the Polygonetum arenasti association and more rarely with the Lolio-Polygonetum arenastri association. Polygonetum arenastri Gams 1927 corr. Lanikova in Chytry 2009 (Tab. 1, On-line Suppl. Tab. 1) Diagnostic species: missing from the current analysis Constant species: Polygonum aviculare agg. (100%), Lolium perenne (72%), Convolvulus arvensis (52%) Dominant species: Polygonum aviculare agg. (80%) Distribution and ecology: This vegetation type ap- peared mainly in anthropogenic areas characterized by the highest anthropogenic pressure rates in terms of time and intensity, within the Polygono-Poetea annuae class in the studied area. We found this association in the following ter- ritories (Fig. 1): Sofia Valley (the municipalities of Sofia, Bozhurishte, Elin Pelin, Gorna Malina, Slivnitsa and Dragoman), Western Sredna Gora Mountain (Ihtiman Fig. 2. Classification dendrogram of the analyzed data set with cluster interpretation. According to Modified TWINSPAN classification, four well-distinguished associations of Polygono-Poetea annuae class are identified. Associations established indicated on the X-axis. Cluster similarity expressed on the Y-axis. TRAMPLED VEGETATION IN BULGARIA – SYNTAXONOMY AND ECOLOGY ACTA BOT. CROAT. 81 (1), 2022 37 Municipality), Thracian Valley (the municipalities of Chirpan, Bratya Daskalovi, Sadovo and Maritsa), Danube Valley (Krivodol Municipality), Central Forebalkan ( Gabrovo Municipality) and the northern Black Sea coast (Kavarna Municipality). This association occupied territories near roads, path- ways, parks, alleys and parking lots. Terrains were flat to slightly inclined (3-5⁰). Soils were shallow to moderately deep, frequently clayey. The vegetation was disturbed in some of the plots due to anthropogenic pressure, leading to the formation of tracks. Bedrock types differed. Synmorphology: The species composition of the asso- ciation was poor. The number of species varied from four to 27 (the average count was 10). The dominating species was Polygonum aviculare agg. with a cover from 20-25% to 75-85%. Due to intensive trampling and mechanical distur- bances, the tufts of Polygonum aviculare were rooted out which had led to differences in the cover. Other common species were Lolium perenne, Cynodon dactylon, Cichorium intybus, and Convolvulus arvensis. In the life form spectrum, the therophytes prevailed (50.4%), followed by hemicryptophytes (32.5%), therophyte- biannuals (7.7%) and biannuals (6.8%). Euro-Asiatic (20.5%), Euro-Mediterranean and Cosmopolitian (12%), sub- Mediterranean (9.4%), European (7.7%) and Euro-Siberian, Boreal and subBoreal (6%) floristic elements prevailed in the species composition. The species composition included the diagnostic species of the classes Sisymbrietea (e.g. Amaranthus hybridus, Convolvulus arvensis, Xanthium strumarium, etc.), Papaveretea rhoeadis (e.g. Matricaria chamomilla, Anagallis arvenis, Cirsium arvense, Apera spica-venti, Stellaria media, etc.) and Artemisietea vulgaris (e.g. Centaurea solstitialis, Daucus carota, Cichorium intybus, Elytrigia repens, etc.). Syntaxonomical notes: The communities within Polygonetum arenastri are ecologically and floristically close to those of Lolio-Polygonetum arenastri. Subdominants in the association of Lolio-Polygonetum arenastri are Polygonum aviculare agg. and Lolium perenne. Moreover, the anthro- pogenic pressure within its communities was weaker, which led to the presence of more favorable conditions for the de- velopment of Lolium perenne. Coldea (2012) classifies the association Polygonetum arenasti Gams 1927 as a syn. of Matricario-Polygonetum arenatsri T. Műller in Oberd. 1971. For the Matricario-Polygonetum arenastri association, the edificators were Matricaria discoidea and Polygonum arenastrum [Polygonum arenastrum included in the P. aviculare agg, cf. Láníková (2009)]. Matricaria discoidea was absent in stands in Bulgaria. The current study adopts the conception of Láníková (2009), who considers the associa- tion Matricario-Polygonetum arenastri T. Müller in Oberd. 1971 as synonymous to the association Polygonetum arenastri Gams 1927 corr. Láníková in Chytrý 2009. According to Láníková (2009), the association includes three variants: with Chenopodium album, Lepidium ruderale and Matricaria discoidea. The latter three not yet identified in Bulgaria. Lolio-Polygonetum arenastri Br.-Bl. 1930 em. Lohmeyer 1975 (Tab. 1, On-line Suppl. Tab. 1) Diagnostic species: missing from the current analysis Constant species: Lolium perenne (100%), Polygonum aviculare agg. (85%), Cichorium intybis (77%), Plantago lanceolata (65%) Dominant species: Lolium perenne (77%) Distribution and ecology: We found this association in valleys and semi-mountainous areas in the country (Fig. 1) – Mt Western Balkan. (Godech Municipality), Mt Sredna Gora (the municipalities of Elin Pelin, Gorna Malina and Kostenets), Sofia Valley (the municipalities of Sofia, Bozhurishte, Slivnitsa, Kostinbrod and Elin Pelin), Thracian Valley (the municipalities of Chirpan, Sadovo and Bratya Daskalovi) and the Southern Black Sea coast (Burgas Municipality). The association’s communities were common on tram- pled sites, but this disturbance was of a lower intensity. They occupied fields and urbanized areas, sometimes together with the association Lolio perennis-Cynosuretum cristati Tüxen 1937. Terrains were flat to gently sloped (up to 5⁰). Soils were averagely deep, characterized by prolonged droughts during the summer. Bedrock types were diverse. Synmorphology: The communities of this association had a slightly higher number of species than Polygonetum arenastri and Sclerochloo durae-Polygonetum arenastri. The average species number was 12. The narrow contact of this as- sociation with the neighboring phytocoenoses of Stellarietea mediae, Molinio-Arrhenatheretea and Artemisietea vulgaris classes had led to presence of some species typical for these classes. The dominant species was Lolium perenne and subdom- inant was Polygonum aviculare agg. The species composi- tion included taxa resistant to trampling, such as Convolvulus arvensis, Plantago lanceolata, Cynodon dactylon and Cichorium intybus. The total cover varied between 65 and 100% (with an average of 90%). Therophytes prevailed (50%), followed by hemicrypto- phytes (27.7%), therophyte-biannuals (12.3%) and biannuals (9.2%). Euro-Asiatic (20.6%), Euro-Mediterranean and sub- Mediterranean (12.2%), Cosmopolitian (10.7%), Euro- Siberian and Boreal (5.3%) floristic elements dominated in the species composition. Syntaxonomical notes: The association has been well- studied syntaxonomically in Romania (Coldea 2012), Austria (Mucina 1993) and Poland (Salachna 2020). Some authors classify these communities in the class Plantaginetea majoris R. Tx. et Preising in R. Tx. 1950 (Chifu and Irimia 2014, Sanda et al. 2008), while others as- sign them to the class Molinio-Arrhenatheretea (Pott 1995) through order Plantaginetalia majoris R. Tx. et Preising in R. Tx. 1950 (Chifu and Irimia 2014). Although there are some similarities with other secondary grasslands domi- VASSILEV K., NAZAROV M., MARDARI C., GRIGOROV B., GEORGIEV S., GENOVA B., VELEV N. 38 ACTA BOT. CROAT. 81 (1), 2022 nated by Lolium perenne and classified in class Molinio- Arrhenatheretea, there are significant differences in the floris- tic composition (richer in Gramineae and Fabaceae species). Rivas-Martinez (1975) classifies all therophyte vegetation on nutrient-rich soils in the Polygono-Poetea annuae class, an opinion widely accepted today (Mucina et al. 2016). The pronounced ruderal and synanthropic character, the floris- tic composition rich in therophyte dwarf herb species as well as the distribution areas were strong arguments for classification of the investigated communities in the class Polygono-Poetea annuae Rivas-Martinez 1975. Poëtum annuae Gams 1927 (Tab. 1, On-line Suppl. Tab. 1) Diagnostic species: Ochlopoa annua, Trifolium repens agg., Plantago major Constant species: Lolium perenne (91%), Polygonum aviculare agg. (79%), Cichorium intybus (68%), Plantago lanceolata (65%) Dominant species: Polygonum aviculare agg. (44%), Lolium perenne (29%) Distribution and ecology: We found this association in mesophilous and meso-xerophilous habitats mostly in semi- mountainous areas and rarely in lowlands (Fig. 1). The lo- calities were in the Western Balkan Range (Godech, Svoge and Dragoman municipalities), Central Balkan Range (the area of the Central Balkan National Park), Central Forebalkan (Gabrovo and Sevlievo municipalities), Western Sredna Gora Mountain (Ihtiman, Kostenets, Dolna Banya, Samokov, Elin Pelin and Gorna Malina municipalities), Thracian Valley (Rakovski municipality) and in the Sofia Valley ( Sofia-town municipality). Terrains were flat with slopes of up to 8-10°. Soils were moderately deep, mostly gleyic. The association was typical for trampled forest pathways, the shorelines of different water bodies and anthropogenic features, such as parking lots, playgrounds, parks, etc. Trampling was a very common feature for this association. Synmorphology: Moderately rich in species commu- nity, which had semi-open to closed horizontal structure with a total coverage of 70-100%. Species of a higher cover- age and abundance were Ochlopoa annua, Lolium perenne, Trifolium repens, Plantago major. Annual plants such as Ochlopoa annua, Polygonum aviculare, Matricaria chamo- milla, Vulpia myurus, etc., often participated in the species composition. The cover of Lolium perenne, Trifolium repens and Plantago major extends during the summer, when they reach their optimum. Trifolium repens and Plantago major are hemicryptophytes that form rosettes and become the dominant species during the summer in some of the vegeta- tion plots. Poëtum annuae was characterized by the richest species composition (average number of 16 species in a plot), compared to the other three associations. Some mesic spe- cies, such as Dactylis glomerata, Achillea millefolium agg., Plantago major, Trifolium repens and Agrostis capillaris were also typical for this association. The therophytes (41.4%) prevailed, following by hemicryptophytes (40.7%), biannuals (7.6%) and therophyte- biannuals (6.2%). Euro-Asiatic (20%), Euro-Mediterranean (15%), Cosmopolitian (11%), Euro-Siberian (10%) and sub- Mediterranean (9%) floristic elements dominated in the spe- cies composition. Syntaxonomical notes: This association is common for different parts of Europe – the Czech Republic (Láníková 2009), Slovakia (Kovář and Lepš 1986, Jarolímek et al. 1997, Redneková and Mičieta 2017), Slovenia (Čarni 2005), Romania (Coldea 2012). Jarolímek et al. (1997) discuss two subassociations – Poëtum annuae typicum Felföldy 1942 and Poëtum annuae matricarietosum discoideae Jarolímek et al. 1997. The communities of Poa annua in Bulgaria were floristically and ecologically closer to those of the typical subassociation. Lolio-Plantaginetum Beger 1930 poetosum annuae Krippelová 1972 is also well known in syntaxonomical lit- erature (Jarolímek et al. 1997). Mucina (1993) classifies the phytocoenoses of Poa annua as a plant community type in Austria. Both syntaxa have similar species composition and ecology to Poëtum annuae. Vegetation – environment relationships The studied associations were distinguished well in the ordination space (Fig. 3, Tab. 2). Eigenvalues obtained: 1st axis – 0.408; 2nd axis – 0.214. Gradient length along 1st axis – 3.13; 2nd axis – 2.38. Correlation of Ellenberg Indicator values (EIV) with axes: Light (1st axis: -0.1592 n.s.; 2nd axis: 0.1100 n.s.); Temperature (1st axis: 0.2462 n.s.; 2nd axis: 0.3425*); Continentality (1st axis: -0.5321*; 2nd axis: 0.0931 Tab. 2. Ecological preferences (EIV) of the four associations classified in the Polygono-Poetea class in Bulgaria (means and standard devia- tion). Significant differences (α = 0.05) among groups (clusters) according to Mann-Whitney post-hoc test highlighted with different font. The p-values are derived from the non-parametric Kruskal-Wallis test. Sclerochloo- Polygonetum Polygonetum arenastri Poëtum annuae Lolio-Polygonetum P-value Light 7.58 ± 0.28a 7.34 ± 0.26b 7.40 ± 0.27b 7.46 ± 0.28ab < 0.01 Temperature 6.34 ± 0.18a 6.14 ± 0.28b 6.15 ± 0.23b 6.22 ± 0.15b < 0.001 Continentality 4.90 ± 0.96a 4.28 ± 0.78b 4.05 ± 0.42b 4.24 ± 0.52b < 0.001 Moisture 4.32 ± 0.19a 4.37 ± 0.32a 4.31 ± 0.37a 4.26 ± 0.26a n.s. Reaction 7.25 ± 1.12a 6.96 ± 1.16b 6.62 ± 0.66c 7.05 ± 0.44b < 0.001 Nutrients 5.55 ± 0.39a 5.87 ± 0.55b 5.12 ± 0.81a 5.37 ± 0.56a < 0.001 TRAMPLED VEGETATION IN BULGARIA – SYNTAXONOMY AND ECOLOGY ACTA BOT. CROAT. 81 (1), 2022 39 n.s.); Moisture (1st axis: -0.1021 n.s.; 2nd axis: -0.2868 n.s.); Reaction (1st axis: -0.1244 n.s.; 2nd axis: 0.3069*); Nutrients (1st axis: -0.2114546 n.s.; 2nd axis: -0.2735 n.s.). P-values de- rived from the Zelený’s modified permutation test (* < 0.05, n.s. – non-significant). The first axis related to the continentality and micro- habitat temperature conditions. Sclerochloo durae-Polygonetum arenastri occupied lower altitudes, occurring in fully light- ed habitats with high solar radiation. In contrast, the com- munities of Poëtum annuae occupied higher altitudes, in wetter, cooler and shady areas. The variability expressed by the second axis represented the temperature and nutrient conditions. The stands of Polygonetum arenastri occupied nutrient-rich soils, whereas communities of Lolio-Polygonetum arenastri preferred warmer and nutrient poor areas. Polygonetum arenastri formed stands close to arable fields, parks and generally in areas periodically fertilized over the past 20 years. In addition, they grow on gleyic soils, which hold water, especially in periods with heavy precipitation within the studied stands. Generally, this leads to increased humidity. On the other hand, in the communities of Lolio- Polygonetum arenastri anthropogenic pressure and soil types were quite diversе. Discussion This is the first syntaxonomical study in Bulgaria focus- ing on the class Polygono-Poetea annuae, despite its wide distribution in the country. The four associations represent different types of trampled vegetation depending on the an- thropogenic pressure and local ecological conditions such as moisture and nutrients. This pressure decreases from the Polygonetum arenastri towards the Sclerochloo durae- Polygonetum arenastri and Lolio-Polygonetum arenastri as- sociations and it is the weakest within Poëtum annuae. Ac- cording to Čarni and Mucina (1998), the major factors enhancing the variability of trampled vegetation include lo- cal floristic pools (mass effect) and the enrichment of tram- pled habitats by encroaching alien plant species. These associations in Bulgaria are ecologically and flo- ristically similar to their stands in other parts of Central and Southeastern Europe (Mucina 1993, Jarolímek et al. 1997, Čarni 2005, Šilc and Košir 2006, Láníková 2009, Coldea 2012, Redneková and Mičieta 2017). The mesic Sclerochloo-Polygonetum arenastri association occurs in North Macedonia (Čarni et al. 2002) while Poëtum annuae is found in North Macedonia and Slovenia as well (Čarni et al. 2002, Šilc and Košir 2006). Dring et al. (2002) reports the plant community type Poa annua-Plantago major for Albania. The established low species richness of trampled vegetation in Bulgaria (average species number ranges be- tween 10 and 16) supports the results of Šilc et al. (2012) and Láníková (2009). Trampling and vertical pressure on soil substrate decrease soil aeration, limit the plants’ access to soil, water and nutrients and may prevent the germination of many plant seeds (Čarni and Mucina 1998). Generally, the species composition consists of widespread species re- sistant to trampling such as Polygonum aviculare agg., Plantago major, Cynodon dactylon, Sclerochloa dura, Ochlopoa annua, Lolium perenne. The same tendency was observed by Čarni and Mucina (1998) and Láníková (2009). Some of these species are also widespread in and character- istic for other habitats and vegetation types, e.g. Cynodon dactylon is characteristic for dry grasslands of Festuco- Brometea and Helianthemetea guttati classes, but Lolium perenne is common for the mesic grasslands of the Molinio- Arrhenatheretea class. So far, our study has revealed the syntaxonomical diver- sity of trampled vegetation in a limited area of Bulgaria (mainly in the central and western parts of the country), where the climate is temperate. On the other hand, available and analyzed data from regions with sub-Mediterranean climate are still limited. The syntaxonomical and ecological diversities of the four associations established in Bulgaria have not yet been studied in detail, including the level below association. For example, Láníková (2009) comments on three variants of the Polygonetum arenastri association while Sanda et al. (2008) present 12 subassociations for the Sclerochloo durae-Polygonetum arenastri association. There are some other associations, belonging to the Polygono-Poetea annuae class that we expect to find in South Bulgaria: Poo annuae-Coronopodetum squamati Gutte 1966, Eragrostio minoris-Polygonetum arenastri Oberdorfer 1954 corr. Mucina in Mucina et al. 1993, Sagino procumbentis-Bryetum argentei Diemont et al. 1940, Rumici acetosellae-Spergularietum rubrae Hülbusch 1973, Herniarietum glabrae (Hohenester 1960) Hejný et Jehlík 1975 and Lolio perennis-Matricarietum discoideae Tüxen 1937. Potential territories with sub-Mediterranean climate are the Thracian plain, the Black Sea coastline, the valleys of the Mesta and Struma rivers, the Eastern Rhodope Fig. 3. Ordination diagram of the analyzed data set along the first two axes. Variables (EIV) passively projected onto the ordination space. Vegetation units expressed by figures of different shapes: circles – Sclerochloo durae-Polygonetum arenastri, squares – Polygonetum arenastri, diamonds – Lolio-Polygonetum arenastri, rectangles – Poëtum annuae. VASSILEV K., NAZAROV M., MARDARI C., GRIGOROV B., GEORGIEV S., GENOVA B., VELEV N. 40 ACTA BOT. CROAT. 81 (1), 2022 Mountains and the Eastern Balkan Range. Some of the ex- pected phytocoenoses may exist in the urban areas but have actually not yet been sampled. We suggest there should be further regional and local studies of the vegetation of this class. We expect the back- ground will come as data from regional and national data- bases (the Balkan Vegetation Database, the Romanian Grassland Database, etc.), as well as information from the European Vegetation Archive (Chytrý et al. 2016). Conclusion This is the first study focusing on the syntaxonomy and ecology of trampled vegetation in Bulgaria. In all, one class (Polygono-Poetea annuae), one order (Polygono arenastri- Poetalia annuae), two alliances (Polygono-Coronopodion, Saginion procumbentis) and four associations (Sclerochloo durae-Polygonetum arenastri, Polygonetum arenastri, Lolio- Polygonetum arenastri and Poëtum annuae) have been pub- lished for the first time for Bulgaria. The species richness and floristic composition of the associations established come as a result of the environmental conditions and the intensity of anthropogenic pressure. The communities of Poëtum annuae have the highest species richness. Sclerochloo durae-Polygonetum arenastri occupied lower altitudes, warmer and drier areas, while Poëtum annuae occurred in wetter and cooler areas mainly in semi-mountainous re- gions. The stands of Polygonetum arenastri occupied nutri- ent-rich soils, while the communities of Lolio-Polygonetum arenastri preferred warmer and nutrient-poor areas. The intensity of anthropogenic pressure has a peak in the com- munities of Polygonetum arenastri and decreases within the stands of the Lolio-Polygonetum arenastri and Poëtum annuae. 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