1. Introduction
Plums are among the major fruit crops in Poland, where they occupy over 9000 ha, with an annual production of approximately 100,000 tonnes [
1]. Orchards are dominated by cultivars of European plum (
Prunus domestica L.), one of the principal fruit species grown in Central Europe. Plum fruits are used both for fresh consumption and processing. Under Central European climatic conditions, plum production is strongly influenced by weather conditions during flowering, fruit set and fruit ripening, and fluctuations in temperature and precipitation may substantially affect yield level and yield stability [
2,
3].
In Poland, many
Prunus domestica cultivars perform well under conventional and integrated production systems [
4,
5]. However, organic plum production remains relatively limited in scale. In 2024, the area of organic plum orchards in Poland amounted to slightly less than 500 ha, with an estimated fruit production of 1033 tonnes [
6]. This indicates that organic production accounts for only a small fraction of the total plum-growing area and total plum fruit production in the country. Although the area and production of organic plums increased steadily until 2022, a slowdown and even a decline have been observed in recent years. These changes may be attributed to the numerous biological, agronomic and economic challenges associated with fruit production under organic management systems [
7,
8,
9,
10]. Weed management may also represent an additional challenge in young organic plum orchards; however, previous studies indicate that different in-row orchard floor management systems may have a limited effect on plum tree growth, yield and fruit quality [
11].
Organic plum production is also limited in other European countries. Available data indicate that Romania, Bulgaria and Spain are among the largest producers of organic plums in the European Union, however, organic production still represents less than 5% of total plum production in these countries. Previous studies on organic plum production conducted in Romania [
12,
13], Bulgaria [
14], Norway [
15,
16] and Italy [
17,
18,
19] focused mainly on pest and disease management, fruit quality and orchard management practices. Only a limited number of studies have evaluated the suitability of European plum cultivars for organic orchard production systems [
20].
A major limitation of organic plum production is the limited availability of effective plant protection methods [
14]. Consequently, diseases and pests may significantly reduce tree productivity and fruit quality in organic orchards [
15]. Plum cultivation is further constrained by the widespread occurrence of plum pox virus (PPV) [
21], and the brown rot of stone fruit trees (
Monilinia spp.) [
2,
8], as well as by pests damaging fruitlets and fruits, such as plum sawflies (
Hoplocampa minuta,
Hoplocampa flava), the plum fruit moth (
Grapholita funebrana), aphids and mites [
7,
16].
Sharka disease, caused by plum pox virus (PPV), has posed a major challenge to plum cultivation in Poland since the second half of the twentieth century. The spread of PPV has strongly affected plum production and has made cultivar selection one of the most important preventive strategies. In organic orchards, where the control of aphid vectors is particularly difficult, the use of resistant or tolerant cultivars is especially important. Several European plum cultivars characterised by tolerance to PPV, good fruit quality and diverse ripening periods have performed well in conventional and integrated production systems [
4,
5]. However, their performance under organic orchard conditions, where pest and disease pressure may be higher and plant protection options are limited, requires separate evaluation.
Winter hardiness is another important trait determining the suitability of plum cultivars for organic orchards in Central Europe. European plum cultivars are generally well adapted to Polish climatic conditions and, during deep dormancy, may tolerate temperatures as low as −30 °C [
4]. However, winter hardiness alone does not determine cultivar suitability, because tree condition, disease pressure, flowering time and fruit susceptibility to pests and pathogens may also strongly influence the reliability of production under organic management.
Consumer preferences in the European Union have increasingly shifted towards healthier and more sustainable food products. Consequently, organically produced food has gained growing importance, and plum cultivation under organic management has attracted increasing attention [
22,
23]. Although fruits produced under organic systems may be more infested with pests and diseases than those from conventional systems [
24,
25,
26,
27], several studies indicate that organic cultivation may improve the health-promoting value of fruit, particularly with regard to polyphenol and vitamin C content [
28]. Nevertheless, the quantity and quality of bioactive compounds in plum fruits strongly depend on genotype [
29,
30].
Under the limited plant protection possibilities in organic orchards, cultivar selection becomes particularly important. Cultivars intended for organic production should, in addition to early fruiting and high yield, also be resistant or tolerant to plum pox virus (PPV), and have low susceptibility to fungal diseases and pest infestation. For many years, the cultivar ‘Węgierka Zwykła’ (‘Common Prune’ type) was widely grown in conventional plum orchards in Poland due to its high productivity, relatively regular fruiting and very good fruit flavour [
31]. However, its high susceptibility to PPV makes it unsuitable for organic orchards, where the control of aphids, which are vectors of this virus, is challenging. Currently, several cultivars can be recommended for organically managed orchards, including ‘Jojo’, which is resistant to PPV [
10]. The cultivar ‘Herman’, which shows tolerance to this virus, can also be successfully cultivated under organic conditions [
8].
Available studies concerning organic plum production are still limited and usually involve short-term observations, individual cultivars or selected aspects of fruit quality and productivity. Long-term comparative evaluations of multiple European plum cultivars under organic orchard conditions in Central Europe remain scarce.
Therefore, a long-term experiment was conducted in an organically managed orchard. The aim of this study was to compare the tree growth, yield, health status and fruit quality of ten Prunus domestica cultivars grown under organic production conditions. In addition, the influence of weather conditions on tree health, flowering, yield, ripening time and fruit quality was evaluated.
2. Materials and Methods
The study was conducted between 2016 and 2024 in the Experimental Ecological Orchard (EEO) in Nowy Dwór-Parcela (central Poland; altitude 159 m above sea level; latitude 51°52′13″ N; longitude 20°14′49″ E), which belongs to the National Institute of Horticultural Research in Skierniewice.
The trees were planted on sandy loam podzolic soil with a loamy subsoil, classified as class IVb of the rye–potato agricultural complex soil category. Before planting, soil samples were collected from multiple points in a randomised manner in the 0–20 cm soil layer and pooled into composite samples. Chemical soil analyses were performed at the Chemical Analysis Laboratory of the National Institute of Horticultural Research in Skierniewice.
The following parameters were analysed: soil pH, macroelement content (P, K and Mg), and organic matter content. The soil pH was 6.7, which is considered suitable for plum cultivation. The macroelement content (P—12.5; K—29.9; and Mg—10.3 mg·100 g−1 DW soil) corresponded to a high soil fertility class, while the organic matter content was 2.2%.
Ten cultivars of Prunus domestica characterised by tolerance to plum pox virus (PPV) were selected for the field experiment. The cultivars ‘Kalipso’, ‘Katinka’, ‘Silvia’, ‘Cacanska Lepotica’, ‘Cacanska Najbolja’, ‘Jubileum’, ‘Vision’, ‘Tophit’, ‘Tophit Plus’, and ‘Presenta’, grafted on ‘Wangenheim Prune’ seedlings, were planted at a spacing of 4.5 × 2.5 m in four replications in a randomised block design with three trees per plot. The evaluated cultivars were grown in the presence of other flowering plum cultivars located within the Experimental Ecological Orchard, which ensured appropriate pollination conditions. In addition, mason bees (Osmia rufa) were introduced into the orchard annually to support pollination during the flowering period.
The trees were irrigated using a drip irrigation system. Irrigation lines were suspended under the tree crowns, which were trained in a spindle form. During the first two years after planting, the soil in the orchard was maintained as mechanical fallow. In the third year, naturally occurring grass was introduced in the inter-rows, while mechanical fallow was maintained in the tree rows. Depending on weather conditions, the grass was mown 6–7 times during each growing season.
The trees were fertilised in spring with cow manure at a rate of 30 t·ha−1.
Preparations permitted for use in organic plum production were applied to protect trees and fruit against diseases and pests. Disease control included 2–3 treatments with plant protection products based on copper oxychloride (WG or SC formulation) applied annually at a rate of 1.5–3 kg or L·ha−1.
Pest control included a single treatment with Treol 770 EC (paraffin oil, 770 g L−1), applied at a concentration of 1.5% against the red spider mite (Panonychus ulmi) and the brown scale (Parthenolecanium corni). Aphids were controlled using one or several treatments, depending on infestation intensity, using a mixture of potassium horticultural soap with extracts of tansy, horsetail or garlic (concentration 2%) and ethanol (concentration 1%). In years with high pest pressure, preparations containing azadirachtin were additionally applied.
2.1. Measurements, Observations and Analyses
2.1.1. Health Condition of the Trees
Winter hardiness was assessed annually in spring according to a 9-point scale developed by COBORU in Słupia Wielka [
32], where 1 indicated severely damaged or dead trees and 9 indicated the absence of visible frost injury symptoms.
Tree susceptibility to plum pox virus (PPV) was assessed twice per year, in late June and mid-September. The condition of infected trees was evaluated visually using a 0–3 scale describing symptoms on leaves: 0—trees without symptoms, 1—symptoms present in one part of the crown, 2—symptoms present on several scaffold branches, and 3—symptoms present throughout the tree [
33].
Tree susceptibility to colonisation by aphids was assessed annually in June. All cultivars were subjected to the same aphid control measures throughout the study period. Twelve trees per cultivar were evaluated. The occurrence of aphid colonies on shoot apices was assessed using a five-point scale adapted for the purposes of this study, based on ordinal scales commonly used in studies of aphid infestation in fruit trees. Aphids such as
Brachycaudus helichrysi and
Hyalopterus pruni are among the most common species colonising plum trees [
34]. The scale described the percentage of colonised shoot apices as follows: 0—no occurrence; 1—1–20% of shoot apices colonised; 2—21–40%; 3—41–60%; 4—61–80%; and 5—81–100%.
2.1.2. Tree Growth, Flowering, Yielding, and Cumulative Yield Efficiency
Tree growth vigour was expressed as trunk diameter, measured annually in autumn after the completion of vegetative growth. Measurements were taken at a permanently marked point 10 cm above the graft union.
Based on these measurements, trunk cross-sectional area (TCSA) was calculated, which is widely regarded as a reliable indicator of tree vigour [
35].
Phenological observations were carried out annually by recording the beginning, full bloom and end of flowering according to the methodology described by Tzonev and Yamaguchi [
36].
Damage to flower buds and flowers caused by spring frosts was assessed after frost events by determining the percentage of damaged buds or flowers on a selected branch of one tree in each replication, according to the methodology developed for plum by COBORU in Słupia Wielka [
32].
The occurrence of plum sawflies (
Hoplocampa flava and
Hoplocampa minuta) was monitored using white sticky traps installed prior to flowering. The number of captured adults was monitored every 2–3 days. The percentage of damaged fruitlets for each cultivar was assessed after flowering (April–May) on a selected branch of one tree in each replication [
7].
To determine yield (kg), fruits were harvested annually from each tree separately after the trees had entered the bearing period and were then weighed.
Cumulative yield efficiency (kg·cm
−2) was calculated at the end of the experiment by dividing the cumulative yield obtained in 2018–2024 by the trunk cross-sectional area measured in the final year of the experiment [
37].
2.1.3. Fruit Quality
Fruits for laboratory analyses were harvested at commercial maturity. The harvest date was determined based on the skin and flesh colour typical for each cultivar. Fruits were collected from different parts of the canopy.
Fruit quality was evaluated based on four parameters.
Fruit weight (g) was determined from a 2 kg fruit sample collected randomly from three trees in each replication. In years with low yield, the entire harvest was used as the sample.
Total soluble solids content (°Brix) was measured using an ATAGO PR-101 refractometer (ATAGO Co., Ltd., Tokyo, Japan). Twenty-five fruits were randomly selected from the previously weighed sample for each cultivar.
Damage caused by plum fruit moth (Grapholita funebrana) was assessed using 200 fruits per cultivar (4 replications × 50 fruits). Results are presented as the percentage of damaged fruits.
Infection by brown rot was assessed on 200 fruits per cultivar (4 replications × 50 fruits). Results are presented as the percentage of infected fruits.
2.2. Weather Conditions
Weather data for 2016–2024 were collected using an iMetos 1 automatic meteorological station (Pessl Instruments, Weiz, Austria) located in the Experimental Ecological Orchard in Nowy Dwór-Parcela at a height of 2 m above ground level.
Table 1 presents the mean, minimum and maximum temperatures for the period April–October, as weather conditions during these months significantly influenced flowering, fruit set and fruit quality.
Table 2 presents mean, minimum and maximum annual temperatures, while
Table 3 presents monthly and annual precipitation totals.
Late spring frosts occurred in April and, in some years, also in May, shortly before or during the plum flowering period. They damaged some of the flower buds and flowers in 2019–2022.
Temperatures during fruit development and ripening (June–October) varied among the study years and influenced fruit ripening times, fruit quality, and the occurrence of pests and diseases.
Average annual air temperatures showed high variability between years. Most winters were relatively mild. In 2021 and 2022, temperatures dropped below −22 °C, but these frost events were short-term and did not cause frost damage to trees, shoots or buds.
Annual precipitation varied considerably between years and months. The highest annual precipitation was recorded in 2023, whereas 2018 and 2019 were relatively dry years. The highest rainfall occurred during the summer months (June–August).
2.3. Statistical Analysis
Data were subjected to statistical analysis using analysis of variance (ANOVA). Percentage data were transformed using the Bliss transformation (arcsine square root transformation) prior to statistical analysis in order to stabilise variance and improve normality. The experimental factor was cultivar, while observations were repeated across the study years. Cultivar was treated as a fixed factor, whereas years were treated as repeated observations in the statistical model. The experimental design consisted of four field replications, with three trees per plot.
Mean values were calculated based on four field replications. Mean values presented in the tables represent averages calculated across all study years. Percentage data were checked for normality and homogeneity of variance before analysis.
When significant differences were detected, mean values were separated using Tukey’s honestly significant difference (HSD) test.
Differences between means were considered significant at p ≤ 0.05. The results are presented as mean values ± standard error (SE).
All statistical analyses were performed using Statistica 13.3 software (TIBCO Software Inc., Palo Alto, CA, USA).
4. Summary and Conclusions
The results of the present study demonstrated that organic production of European plum is possible under Central European conditions; however, effective pest and disease management remains a major challenge. Aphids, plum sawflies, plum fruit moth, and fungal diseases caused significant limitations to fruit production and quality in organically managed orchards.
Considerable cultivar-dependent differences were observed in susceptibility to pests and diseases. Early-ripening cultivars such as ‘Katinka’, ‘Kalipso’, and ‘Cacanska Lepotica’ were generally less susceptible to infestation by the plum fruit moth and infection by Monilinia spp., which resulted in higher fruit quality and lower production losses. In contrast, medium- and late-ripening cultivars remained exposed to pest and pathogen pressure for a longer period and were therefore more severely affected.
The obtained results indicate that fruit ripening time is one of the key factors influencing cultivar suitability for organic plum production. Early-ripening cultivars probably escape the periods with the highest pest activity and favourable conditions for fungal disease development. Among the evaluated cultivars, ‘Katinka’ and ‘Kalipso’ showed the highest suitability for organic cultivation systems.
Biological and preventive methods currently available for organic orchards were not sufficiently effective during years characterised by high pest pressure and favourable conditions for disease development. Therefore, regular orchard inspections, sanitary and agrotechnical measures, and careful cultivar selection remain essential components of organic plum production.
Further research should focus on the evaluation of additional plum cultivars, particularly cultivars tolerant or resistant to plum pox virus (PPV) and less susceptible to fungal diseases, especially Monilinia spp. It is also necessary to develop and improve biological and environmentally safe methods for pest and disease control in organic orchards.