1. Introduction
Karst regions possess fragile ecosystems characterised by severe surface water seepage and shallow soil layers [
1]. Although some karst areas receive ample precipitation, frequent droughts occur due to unique geological conditions and the impact of global warming [
2], rendering water a critical factor limiting plant growth and ecosystem stability [
3]. As a primary economic medicinal forest tree species in karst regions,
Sophora japonica cv.jinhuai holds significant importance for local agroforestry economies and ecological restoration. In recent years, monoculture planting schemes centred on
Sophora japonica cv.jinhuai have, to some extent, stimulated regional economic development. However, they have also led to issues such as species uniformity, simplified landscape structure, and degraded ecosystem functions. Particularly during the hot summer months, severe soil exposure and erosion beneath the canopy occur [
4], undermining the sustainable land use of karst regions.
Agroforestry systems, as an efficient and sustainable land-use approach, achieve synergistic ecological and economic benefits by establishing multi-species communities, enhancing soil and water conservation capabilities, and increasing carbon storage capacity [
5,
6]. Promoting agroforestry models integrating timber and medicinal plants in karst regions helps optimise land-use structures, mitigate rock desertification trends, and enhance ecosystem resilience [
7]. However, resource competition may arise between different plant components within agroforestry systems, particularly under water- and nutrient-limited conditions [
8]. Interspecies water relationships thus become pivotal in determining system stability and species coexistence. According to contemporary coexistence theory [
9], species exhibit niche and fitness differences: the former promotes coexistence, while the latter may lead to competitive exclusion. Therefore, when constructing composite systems, scientifically assessing the matching degree of water-use strategies and fitness between species is crucial for optimising model configuration and enhancing system sustainability [
10].
Vegetation water-use efficiency (WUE) serves as a key indicator for assessing the efficiency with which plants convert water into biomass [
11], typically evaluated indirectly through measurements of leaf stable carbon isotopes (δ
13C) [
12,
13]. Currently, research on interspecific WUE variations within agroforestry systems and their implications for ecosystem stability remains limited in karst regions. Existing research has primarily focused on assessing plant water-use efficiency within single-species or simple composite systems. For instance, Huang et al. [
14] and Tao et al. [
15] revealed species-level water adaptation traits by analysing δ
13C values in specific plant leaves. However, these studies did not examine the coordination of water-use strategies among different species within composite cropping systems or their impact on system stability at the systemic level. Therefore, this study introduces the theory of fitness divergence, focusing on system-level adaptive matching among species within composite systems. It aims to uncover the intrinsic link between species coexistence mechanisms and system stability, providing a novel theoretical perspective for optimising forest-medicinal plant composite cropping systems in karst regions. Consequently, this study employs
Sophora japonica cv.jinhuai as the primary tree species, integrated with understory medicinal plants, including
Ardisia gigantifolia, Melicope pteleifolia, Camellia limonia, Belamcanda chinensis, Isatidis radix, and
Pilea basicordata. Multiple forest-medicinal plant co-cultivation models were established. By measuring the δ
13C values of plant leaves, the water-use efficiency of different species and co-cultivation models was analysed. The rationality and sustainability of various models were evaluated from the perspective of fitness differences, providing a scientific basis for the optimisation of forest-medicinal plant co-cultivation models and ecological functions in karst regions.
2. Materials and Methods
2.1. Research Area Overview
The study area is situated in Lingxiao Village, Liuxu Town, Jinchengjiang District, Hechi City, Guangxi Zhuang Autonomous Region, at 107.9451799° E longitude and 24.663469° N latitude. It lies within the transitional zone between the hilly terrain and karst topography of northwestern Guangxi, with a topography sloping from west to east. The region exhibits a subtropical monsoon climate with moderate sunlight exposure. Characterised by warm, humid conditions where rainfall coincides with the hot season, it experiences neither severe cold nor extreme heat, rendering it suitable for subtropical crop cultivation. Addressing issues such as limited diversity and low utilisation rates of medicinal plants under forest canopies in karst areas, we have identified species suitable for understory cultivation. These include Sophora japonica cv. jinhuai (tree), Melicope pteleifolia (shrub), Camellia limonia (shrub), Ardisia gigantifolia (shrub), Isatidis radix (herb), Belamcanda chinensis (herb), and Pilea basicordata (herb). We established suitable mixed-cultivation models and conducted experimental plantings. The selected mixed-cultivation models were: Sophora japonica cv. jinhuai—Ardisia gigantifolia, Sophora japonica cv. jinhuai—Melicope pteleifolia, Sophora japonica cv.jinhuai—Camellia limonia, Sophora japonica cv.jinhuai—Belamcanda chinensis+Isatidis radix, and Sophora japonica cv.jinhuai—Camellia limonia—Pilea basicordata. Each planting system featured three 5 m × 5 m replicate plots. Both the mixed cropping systems and the pure stand of Sophora japonica cv. Jinhuai were established on the same gently sloping terrain to ensure comparable topography, soil conditions, and moisture regimes, thereby facilitating comparative analysis.
2.2. Sample Collection and Analysis
In April 2024, three specimens each of Sophora japonica and intercropped medicinal plants with similar stem diameters and growth rates were selected from the plot. Healthy, sun-exposed leaves free from pests and diseases were collected from the canopy. Leaves from each plant were individually placed in sealed bags, labelled, and transported to the laboratory. Surface impurities were removed using pure water, after which the leaves were dried in a 60 °C oven. The δ13C values of the leaves were determined by the Institute of Botany, Chinese Academy of Sciences, using a stable isotope mass spectrometer (Delta V Advantage).
2.3. Data Processing
The determination of δ
13C values in plant leaves is based on PDB standards, calculated according to the formula:
In the equation, δ13C denotes the carbon isotope value of plant leaves; represents the 13C/12C ratio of the plant leaves under analysis; denotes the 13C/12C ratio of the standard material PDB.
The method for calculating the stable carbon isotope ratio (Δ
13C) in plant leaves is as follows [
14]:
In the equation, and denote the carbon isotope values of plant leaves and atmospheric carbon dioxide (CO2), respectively.
The concentration (Ca) and carbon isotope value (
) of CO
2 are calculated according to formula [
14]:
In the formula, t denotes the sampling year (2025).
Estimation of long-term water-use efficiency (WUE) in plants employs a carbon isotope resolution-based model, whose core lies in deriving the calculation formula for chloroplast carbon dioxide concentration (C
c) [
15]:
In the equation, denotes CO2 concentration (μmol/mol); b(29‰) represents carboxylation by Rubisco enzyme; ∆13C indicates the stable carbon isotope resolution of plant leaves; [(12 ± 4)‰] signifies the fractionation coefficient during photorespiration; denotes the CO2 compensation point in the absence of dark respiration; denotes atmospheric CO2 partial pressure; a(4.4‰) represents CO2 flux through stomata; (0.79 ± 0.07) indicates the ratio of stomatal to mesophyll conductance for CO2; (1.8‰) denotes diffusion across mesophyll cells.
The formula for calculating
is given by [
15]:
In the equation, (4.332 Pa) denotes the CO2 compensation point at 25 °C; represents atmospheric pressure, calculated based on the sampling point’s altitude (278 m) and ambient temperature (22 °C) during sampling; P0 (101,325 Pa) denotes atmospheric pressure at sea level; (37,830 J/mol) represents the activation energy; R (8.314 J/mol) is the gas constant; and T (22 °C) is the temperature at the time of sample collection.
2.4. WUE Calculation and Model Assumptions
Calculating long-term water-use efficiency (WUE) based on leaf Δ
13C has a solid theoretical foundation. This study employs the isotope-based modelling package “isocalcR” for computations. It is important to emphasise that the resulting WUE values represent relative comparative metrics derived from model parameters and assumptions, rather than direct physiological measurements of instantaneous or absolute water-use efficiency in plants [
16]. Certain model parameters (e.g., the ratio of stomatal conductance to mesophyll conductance
) employed typical ranges applicable to
δ13C-labelled plants. Although potential physiological differences exist between life forms (trees, shrubs, and herbaceous plants) in leaf anatomy, stomatal behaviour, and mesophyll conductance—potentially leading to differing actual
values—existing research indicates that the correlation between long-term plant WUE and
δ13C is broadly applicable across different functional groups over extended time scales [
17]. Therefore, employing a unified parameter set for model estimation effectively reflects relative WUE differences across species and cropping systems, a practice widely adopted in comparative ecology studies [
18]. The WUE values obtained through this method in this study are primarily used for interspecific and inter-system comparative analyses to assess adaptive differences to karst arid environments.
2.5. Data Analysis Methods
Data statistical analysis and plotting were performed using Excel 2016, SPSS 27 [
19], R software, and Origin respectively. Data are presented as mean ± standard error (SE). Plant water-use efficiency (WUE) was calculated based on leaf Δ
13C values. This was performed using the ‘mesophyll’ function within the ‘isocalcR’ package in R software [
20]. Long-term water-use efficiency (WUE) of plants was calculated based on leaf δ
13C values, sampling year, sampling site elevation, and average growing season temperature. Levene’s test was applied to all data to ensure compliance with assumptions of normality and homogeneity of variance. For datasets meeting parametric testing criteria, one-way analysis of variance (ANOVA) was employed to compare differences between species and patterns, followed by post hoc multiple comparisons. The interaction effects of species and pattern on δ
13C and WUE were analysed using two-way ANOVA.
4. Discussion
Plant water-use efficiency serves as a crucial physiological indicator reflecting a plant’s adaptability to arid environments [
21]. This study determined the δ
13C values of leaves from seven forest-medicinal plant composite systems to estimate their long-term water-use efficiency, thereby revealing the adaptability and stability of different species-based composite patterns within karst arid habitats. The WUE values calculated using the δ
13C model in this study serve as relative metrics for interspecific and inter-model comparisons. Their numerical values are influenced by the assumption of model-unified parameters and do not constitute absolute measurements of physiological WUE in plants. Differences in leaf structure and physiological processes among plants of varying life forms may introduce certain computational biases. However, this does not alter the core comparative conclusion that ‘species such as
Sophora japonica cv. jinhuai and
Pilea basicordata exhibit higher drought adaptability, whereas
Ardisia gigantifolia demonstrates weaker adaptability’.
The water-use efficiency (WUE) of
Sophora japonica cv.jinhuai,
Camellia limonia, and
Pilea basicordata in this study was significantly higher than that of
Ardisia gigantifolia,
Melicope pteleifolia,
Belamcanda chinensis, and
Isatidis radix.
Ardisia gigantifolia exhibited significantly lower δ
13C values and WUE compared to other species, which correlates with the species’ native population distribution and the mixed planting pattern. As a tree species,
Sophora japonica cv.jinhuai possesses a tall canopy structure with substantial water transport resistance. To counteract water limitations, it enhances WUE by reducing stomatal conductance and minimising transpiration losses [
22]. Although
Camellia limonia is a shrub, its leaf structure may possess a strong water retention capacity, exhibiting high water-use efficiency. As a herbaceous plant,
Pilea basicordata’s elevated WUE may relate to its native distribution in karst limestone regions, where such plants typically develop robust drought adaptation mechanisms [
23]—such as extensive root systems or high tissue water-holding capacity—to withstand seasonal aridity. In contrast,
Ardisia gigantifolia exhibited significantly lower δ
13C values and WUE than other species, indicating weaker drought adaptation. This likely stems from its native distribution in moist, shaded habitats, where its leaf structure and other mechanisms prove less efficient under arid conditions, resulting in suboptimal water use.
Melicope pteleifolia, Belamcanda chinensis, and
Isatidis radix exhibited intermediate WUE values, suggesting moderate drought tolerance. However, these species may remain at a disadvantage within water-competitive mixed systems, particularly under intensified drought conditions.
Regarding the stability of the mixed planting patterns, all composite configurations examined in this study (e.g.,
Sophora japonica cv.jinhuai—
Ardisia gigantifolia,
Sophora japonica cv.jinhuai—
Melicope pteleifolia) demonstrated significantly higher water-use efficiency (WUE) for
Sophora japonica cv.jinhuai compared to understory plants. This indicates pronounced disparities within these patterns. According to contemporary species coexistence theory, greater differences in fitness make stable coexistence between species increasingly difficult [
24]. As a canopy tree species,
Sophora japonica cv.jinhuai holds an advantage in water competition, potentially limiting the growth of understory plants such as
Ardisia gigantifolia and
Melicope pteleifolia under drought conditions, thereby affecting the long-term stability of the system. However, within the
Sophora japonica cv.jinhuai—
Camellia limonia—
Pilea basicordata pattern, although WUE differences persist between
Sophora japonica cv.jinhuai and
Camellia limonia, the WUE disparity between
Sophora japonica cv.jinhuai and
Pilea basicordata is insignificant. This indicates a high degree of suitability and compatibility between the two species in water-use efficiency, with the overall WUE of this pattern being the highest. Among the patterns studied, it demonstrates excellent ecological coordination. Water competition among species within this pattern is relatively low, facilitating complementary water use within the system. It represents an ideal agroforestry configuration for karst regions.
The cultivation of medicinal plants under forest canopies did not significantly impair
Sophora japonica cv.jinhuai’s own water-use efficiency (WUE), indicating its robust competitive advantage in resource acquisition. However, variations in
Sophora japonica cv.jinhuai’s WUE across different intercropping systems (e.g., the lowest WUE observed in the
Sophora japonica cv.jinhuai—
Ardisia gigantifolia system) suggests that understory plant species and their arrangement may indirectly influence canopy tree species’ water-use strategies through microenvironmental regulation [
25]. For instance,
Ardisia gigantifolia’s low WUE may reflect its weaker competition for soil moisture, failing to establish effective ecological niche complementarity.
In karst regions characterised by environmental fragility and scarce water resources, establishing a rational agroforestry model for medicinal plants requires consideration not only of species’ economic value but also of their water niche differentiation and fitness matching. This study demonstrates that the Sophora japonica cv.jinhuai—Camellia limonia—Polygonum cuspidatum hybrid combination constitutes a composite model with high water-use efficiency, low interspecific competition, and strong stability, presenting considerable potential for wider adoption. Future optimisation of such systems may further integrate ecological niche characteristics such as species-specific water source preferences and root distribution patterns to develop more resilient polyculture models. Conduct long-term positioning observations to assess ecological and economic sustainability. Simultaneously, to precisely quantify absolute WUE values, optimise isotope model parameters—such as calibrating the ratio for different plant life forms—based on their anatomical and physiological characteristics to minimise computational errors arising from interspecific variations.
This study also has certain limitations. Although the δ13C-based isotope model provides an effective means for assessing long-term water-use efficiency in plants, the results rely on physiological parameter assumptions and may not fully reflect the actual water acquisition and competitive dynamics of species within complex systems. Future research should integrate systematic observations of direct physiological and ecological indicators—such as root architecture, water source depth, and soil water potential fluctuations—to validate the isotope-based inferences from this study. This approach will further elucidate complementary mechanisms and competitive relationships in water use among species, providing a more robust theoretical foundation for optimising forest-medicinal plant composite models in karst regions.
5. Conclusions
This study analysed leaf composition and water-use efficiency (WUE) differences among species and mixed planting patterns in Sophora japonica cv.jinhuai under various forest-medicinal plant co-cultivation systems. Results indicate: (1) In this study, Sophora japonica cv. jinhuai, Camellia limonia, and Pilea basicordata exhibited relatively high water-use efficiency (WUE), demonstrating good adaptability to karst arid habitats. Furthermore, these species possess significant medicinal value, making them the most optimal and suitable for promotion and cultivation in karst regions. Conversely, Ardisia gigantifolia showed relatively low WUE and weaker drought tolerance under the study conditions. (2) Interplanting Ardisia gigantifolia, Belamcanda chinensis, Isatidis radix, Melicope pteleifolia, Camellia limonia, or Pilea basicordata under Sophora japonica cv.jinhuai did not significantly affect Sophora japonica cv.jinhuai’s WUE. However, in the five composite patterns—Sophora japonica cv.jinhuai—Ardisia gigantifolia, Sophora japonica cv.jinhuai—Melicope pteleifolia, Sophora japonica cv.jinhuai—Camellia limonia, Sophora japonica cv.jinhuai—Belamcanda chinensis+Isatidis radix, and Sophora japonica cv.jinhuai—Camellia limonia—Pilea basicaordata—Sophora japonica cv.jinhuai’s WUE was significantly higher than that of the understory-planted Ardisia gigantifolia, Melicope pteleifolia, Camellia limonia, Isatidis radix, Belamcanda chinensis, and Pilea basicordata. Without appropriate human intervention, the growth of Ardisia gigantifolia, Melicope pteleifolia, Camellia limonia, Isatidis radix, Belamcanda chinensis, and Pilea basicordata may be compromised, potentially destabilising the composite planting pattern. (3) The Sophora japonica cv.jinhuai—Camellia limonia—Pilea basicordata model exhibited the highest WUE among the intensive mixed cropping systems. Moreover, the WUE difference between Sophora japonica cv. jinhuai and Pilea basicordata was not significant, indicating good water-use compatibility between the species. Under the conditions of this study, they demonstrated higher system stability and could serve as one of the reference configurations for optimising agroforestry-medicinal plant composite planting patterns in karst regions. This study provides a preliminary comparative analysis of agroforestry-medicinal plant systems in specific karst regions from a WUE perspective. While the results carry certain geographical and contextual limitations, they offer scientific reference for evaluating the configuration and functionality of local vegetation composite cropping systems. Future research should integrate comprehensive studies on water sources, root distribution, nutrient utilisation, and long-term ecological benefits across different species to more fully evaluate the rationality and sustainability of composite planting models, thereby providing a more robust foundation for regional ecological agriculture practices.