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Keywords = crassulacean acid metabolism

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17 pages, 3649 KB  
Article
Untargeted RPLC-UV-Vis-HRMS/MS Profiling of Phenolic Compounds in Naturally Grown Kalanchoe delagoensis Leaves
by Giovanni Ventura, Francesco Busto, Vito Nettis, Elvira De Giglio, Cosima Damiana Calvano and Tommaso R. I. Cataldi
Compounds 2026, 6(3), 49; https://doi.org/10.3390/compounds6030049 - 20 Aug 2026
Viewed by 230
Abstract
Kalanchoe delagoensis is a Crassulacean acid metabolism (CAM) succulent plant native to Madagascar that has spread as an aggressive invader across subtropical and Mediterranean regions. Research on this species has focused almost entirely on its cardiotoxic bufadienolides, leaving its phenolic fraction largely unexplored. [...] Read more.
Kalanchoe delagoensis is a Crassulacean acid metabolism (CAM) succulent plant native to Madagascar that has spread as an aggressive invader across subtropical and Mediterranean regions. Research on this species has focused almost entirely on its cardiotoxic bufadienolides, leaving its phenolic fraction largely unexplored. Here, we profiled the phenolics of dried K. delagoensis leaves by reversed-phase liquid chromatography coupled with UV-Vis detection and electrospray ionisation high-resolution mass spectrometry (RPLC-ESI-HRMS). Two flavonoid diglycosides produced the most intense signals and were tentatively annotated by MS/MS analyses as quercetin and kaempferol deoxyhexoside-pentosides; the former shares the formula and fragmentation of quercetin 3-O-arabinopyranosyl-rhamnopyranoside (QAR), the chemical marker of the congeneric K. pinnata. The remaining MS/MS supported features form a single combinatorial family of flavonol glycosides on kaempferol, quercetin, and myricetin cores decorated with pentose, deoxyhexose, hexose, and hexuronic-acid units. Minor flavonol glycosides and mono- and digalloyl hexoses were also detected, and a malvidin-hexoside was putatively identified as a candidate contributor to the reddish leaf tint of the more sun-exposed leaves, supported by its absorption maximum at 520 nm and characteristic MS/MS spectrum. Folin-reactive compounds reached 47.0 ± 0.8 mg gallic acid equivalents per gram of dry leaf. These results extend the chemistry of K. delagoensis well beyond its bufadienolides, within the limits of a single clonal genotype and a single harvest. Full article
(This article belongs to the Special Issue Phenolic Compounds: Extraction, Chemical Profiles, and Bioactivity)
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27 pages, 8373 KB  
Review
Genomic Potential and Climate Resilience of Agave angustifolia Haworth in Raicilla Production
by Dolores Javier Sánchez-González
J. Genome Biotechnol. Genet. 2026, 1(2), 13; https://doi.org/10.3390/jgbg1020013 - 3 Aug 2026
Viewed by 409
Abstract
Agave angustifolia Haw. is one of the primary sources for the production of mezcals such as raicilla and tuxca, in western Mexico. In Jalisco, Agave angustifolia evolved from being a pre-Hispanic ritual and food resource (200–1500 CE) to becoming the primary basis for [...] Read more.
Agave angustifolia Haw. is one of the primary sources for the production of mezcals such as raicilla and tuxca, in western Mexico. In Jalisco, Agave angustifolia evolved from being a pre-Hispanic ritual and food resource (200–1500 CE) to becoming the primary basis for 16th-century vino mezcal, the precursor to all modern mezcals, including raicilla and tequila. This review synthesizes current genomic, epigenetic, and metabolic evidence to elucidate the species’ evolutionary and adaptive potential. Our analysis suggests that the domestication of A. angustifolia is characterized by a “domestication paradox,” where intensive clonal management ensures short-term productivity but creates genetic bottlenecks that limit long-term adaptive capacity. We synthesize empirical evidence to show that adaptive plasticity is driven by the integration of Crassulacean Acid Metabolism (CAM) flexibility and dynamic global DNA methylation (GDM) profiles, which, while currently correlative, suggest an environmental response mechanism. We conclude that securing the socio-economic viability of Agave spirits requires a transition from intensive monocultures to regenerative agroforestry, incorporating sexual propagation to maintain evolutionary potential. Furthermore, we outline a roadmap for Genomics-Assisted Breeding (GAB 4.0), integrating marker-assisted selection for juvenile traits to accelerate the release of resilient biotypes, and precision diagnostic tools to reduce the ecological footprint of Agave production. This framework secures the genomic integrity of traditional spirits within a circular, climate-resilient bioeconomy. Full article
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33 pages, 36453 KB  
Article
Phenotypic Diversity and Multivariate Characterization of Opuntia ficus-indica from the Inter-Andean Dry Valleys of Northern Ecuador
by Lucía Vásquez-Hernández and Galo Pabón-Garcés
Int. J. Plant Biol. 2026, 17(8), 63; https://doi.org/10.3390/ijpb17080063 - 27 Jul 2026
Viewed by 364
Abstract
Opuntia ficus-indica (L.) Mill. is a crassulacean acid metabolism (CAM) xerophyte whose intraspecific morphological diversity remains poorly documented in Andean agroecosystems. This study characterized the phenotypic diversity of 55 accessions collected along an altitudinal gradient in the dry inter-Andean valleys of northern Ecuador. [...] Read more.
Opuntia ficus-indica (L.) Mill. is a crassulacean acid metabolism (CAM) xerophyte whose intraspecific morphological diversity remains poorly documented in Andean agroecosystems. This study characterized the phenotypic diversity of 55 accessions collected along an altitudinal gradient in the dry inter-Andean valleys of northern Ecuador. Twenty morphological descriptors were used to analyse the data. Quantitative descriptors showed moderate to high variability, with reproductive and defensive characters exhibiting greater variation than vegetative descriptors. MCA revealed substantial chromatic diversity, with fruit peel and pulp color emerging as the strongest qualitative discriminators among morphotypes. Cluster analysis identified three statistically distinct groups: a small-fruited, highly spinescent morphotype restricted to the most arid sites; an intermediate and phenotypically diverse morphotype distributed across all provinces; and a large-fruited, low-spinescence morphotype with the highest seed numbers, consistent with a more advanced domestication trajectory. The primary differentiation axis reflected a trade-off between spine investment and reproductive output. Five discriminant descriptors—fruit weight, spine length, seed number, peel color, and pulp color—provide a robust baseline for germplasm characterization and support conservation, breeding, and nutraceutical valorization in Andean drylands. The findings of this research contribute to filling a critical knowledge gap regarding Andean cactus pear germplasm, providing a scientific basis for conservation, sustainable management, and future breeding and agro-industrial initiatives. Full article
(This article belongs to the Section Plant Ecology and Biodiversity)
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24 pages, 12389 KB  
Article
Physiology-Driven Irrigation Scheduling in Ananas comosus via Hybrid Machine Learning: UAV-Based Phenotyping of Water-Related Traits Coupled with FAO-56 Soil Water Balance
by Jorge Enrique Chaparro, Jose Edinson Aedo and Nelson Barrera Lombana
Plants 2026, 15(14), 2112; https://doi.org/10.3390/plants15142112 - 8 Jul 2026
Viewed by 797
Abstract
Field-based phenotyping of water-related traits for precision irrigation in tropical agroecosystems poses a persistent methodological challenge, driven by high climatic variability and the complex water-use physiology of Crassulacean Acid Metabolism (CAM) crops such as pineapple (Ananas comosus var. MD2). We developed and [...] Read more.
Field-based phenotyping of water-related traits for precision irrigation in tropical agroecosystems poses a persistent methodological challenge, driven by high climatic variability and the complex water-use physiology of Crassulacean Acid Metabolism (CAM) crops such as pineapple (Ananas comosus var. MD2). We developed and validated a Physics-Informed Machine Learning (PIML) framework that integrates high-resolution UAV multispectral imagery, IoT-based microclimatic records, and a mechanistic soil water balance based on the FAO-56 Penman–Monteith standard to predict plot-scale soil moisture depletion as a proxy of plant water status. A six-month field campaign (March–August 2022) across 25 georeferenced commercial pineapple plots in the Colombian Orinoquia piedmont yielded a spatiotemporally balanced dataset of N=150 observations. Soil-adjusted vegetation indices (OSAVI, MSAVI) outperformed standard NDVI for capturing water-related canopy traits, effectively decoupling spectral responses from substrate noise. A Gradient Boosting regressor achieved R2=0.842 and RMSE=0.0705 on a normalized target scale, corresponding to a 7.05% error over the prediction range, while the traffic-light Decision Support System (DSS) for irrigation scheduling reached 91.1% accuracy (Cohen’s Kappa =0.91). Incorporating daily soil moisture depletion as a mechanistic feature improved predictive accuracy over a spectral-only baseline (ΔR2=+0.052) and anchored predictions within a physically consistent framework based on the FAO-56 water balance, with no false negatives observed for water deficit detection in the hold-out validation set. This framework advances high-throughput, population-scale phenotyping of water-related traits in open-canopy CAM crops, establishing a transferable methodology for operational precision irrigation under tropical savanna conditions. Full article
(This article belongs to the Special Issue Machine Learning for Plant Phenotyping in Crops)
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26 pages, 2669 KB  
Article
Effects of Green Plants on the Indoor Environment: Real-Life Case Studies in Italian Schools and Office Spaces
by Simone Putzolu, Rita Baraldi, Luisa Neri, Alessandro Zaldei, Carolina Vagnoli, Beniamino Gioli, Adam Nawrocki and Cinzia De Benedictis
Atmosphere 2026, 17(6), 596; https://doi.org/10.3390/atmos17060596 - 10 Jun 2026
Viewed by 830
Abstract
Students and workers spend much of their day in school and office environments, where poor indoor air quality (IAQ) can negatively affect health and comfort. Indoor vegetation is increasingly proposed as a low-cost nature-based solution (NBS) to improve IAQ. This study evaluated the [...] Read more.
Students and workers spend much of their day in school and office environments, where poor indoor air quality (IAQ) can negatively affect health and comfort. Indoor vegetation is increasingly proposed as a low-cost nature-based solution (NBS) to improve IAQ. This study evaluated the effects of phytoremediation on IAQ and indoor microclimate in schools across different regions and educational levels, as well as in office environments, under real-world conditions. Several C3 plants (e.g., Chamaedorea, Schefflera, Ficus, Epipremnum, Yucca, and Spathiphyllum) were used, with crassulacean acid metabolism (CAM) plants (Sansevieria) included in selected settings. Temperature, relative humidity, CO2, PM2.5, and PM10 were continuously monitored using intercalibrated low-cost sensors in absence and presence of vegetation. A comparable plant configuration was implemented in offices to assess its effects on volatile organic compounds (VOC). Indoor greenery reduced particulate matter, especially PM10 (18–20%), and improved microclimatic conditions by lowering air temperature (1–2 °C) and increasing relative humidity (6–15%). However, CO2 reductions were limited and context-dependent. In the tested office environments, plant introduction was associated with reduced total VOC concentrations (25–50%). Overall, our results further support that indoor vegetation constitutes a robust, cost-effective nature-based solution (NBS) capable of complementing conventional ventilation systems in both school and office environments. Full article
(This article belongs to the Special Issue Modelling of Indoor Air Quality and Thermal Comfort)
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18 pages, 13534 KB  
Article
Genome-Wide Identification of Pineapple AcINH Genes and Functional Characterization of AcINH3 in Sucrose Metabolism and Drought Tolerance
by Yuyao Gao, Shanshan Huo, Anping Guo, Xiumei Zhang, Weisheng Sun, Wentian Xu, Hui Zhao and Qingsong Wu
Plants 2026, 15(9), 1306; https://doi.org/10.3390/plants15091306 - 24 Apr 2026
Viewed by 660
Abstract
Seasonal drought constitutes a major abiotic stress limiting the growth and yield of pineapple, a globally important Crassulacean acid metabolism (CAM) crop. The sucrose catabolism mediated by cell wall invertase (CWIN) plays a vital role in regulating plant growth and development, as well [...] Read more.
Seasonal drought constitutes a major abiotic stress limiting the growth and yield of pineapple, a globally important Crassulacean acid metabolism (CAM) crop. The sucrose catabolism mediated by cell wall invertase (CWIN) plays a vital role in regulating plant growth and development, as well as adaptive responses to abiotic stresses. Invertase inhibitors (INHs) serve as specific post-translational regulators that modulate CWIN enzymatic activity. However, the INH family has not been systematically characterized in pineapple, and its functional roles in mediating sucrose metabolism and drought resistance remain elusive. In this study, three AcINHs were identified from the pineapple genome, followed by comprehensive analyses of their gene structures, phylogenetic relationships, homology characteristics and protein structures. Structural analysis revealed that all AcINH members harbor conserved motifs 1, 2, 3, 5 and 9, whereas only AcINH3 possesses motif 7. Expression analysis showed that only AcINH3 was significantly transcriptionally induced by drought stress among all family members. Functional validation demonstrated that AcINH3 knockout markedly elevated CWIN activity in pineapple seedling leaves, facilitating hexose accumulation and promoting plant growth and development. Moreover, AcINH3-edited lines exhibited enhanced drought resistance, accompanied by increased accumulation of soluble sugars (sucrose, glucose, fructose), abscisic acid (ABA), and proline (PRO), reduced malondialdehyde (MDA) content, and enhanced peroxidase (POD) activity. Biochemical assays further verified a direct physical interaction between AcINH3 and AcCWIN1, which mediates sucrose metabolism and drought stress responses. Collectively, this study identifies a novel AcINH3–AcCWIN1 post-translational module that modulates sugar metabolism and drought tolerance in pineapple, providing critical mechanistic insights for CAM plants. Our findings highlight AcINH3 as a promising target for genome-editing breeding to enhance drought resistance in CAM crops. Full article
(This article belongs to the Section Plant Genetics, Genomics and Biotechnology)
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25 pages, 2029 KB  
Review
Wild and Domesticated Opuntia as a Model for Evaluating Abiotic Stress in the Physiology and Biochemistry of Succulent Plants
by Cecilia Beatriz Peña-Valdivia, Victor Baruch Arroyo-Peña, Rodolfo García-Nava and José Luis Salinas Morales
Horticulturae 2026, 12(4), 471; https://doi.org/10.3390/horticulturae12040471 - 10 Apr 2026
Cited by 1 | Viewed by 1629
Abstract
Plants of the genus Opuntia are cacti that grow under natural conditions, with scarce humidity, drastic changes in daytime and nighttime temperatures, and poor soils. Their fruits are a food source in certain regions of the world, and their modified stems (cladodes) have [...] Read more.
Plants of the genus Opuntia are cacti that grow under natural conditions, with scarce humidity, drastic changes in daytime and nighttime temperatures, and poor soils. Their fruits are a food source in certain regions of the world, and their modified stems (cladodes) have diverse uses, including human consumption—especially when young, tender, and succulent (“nopalitos”) —livestock feed, and raw material for various products. There are approximately 300 species and dozens of variants of this genus, identified as wild, semi-domesticated, or domesticated. The physiological and biochemical responses to abiotic stress in these species are diverse but are related to their Crassulacean acid metabolism and the level of domestication. The morphological modifications in fruits, seeds, and cladodes of the genus Opuntia during domestication appear to be the sum of numerous significant biochemical-physiological changes, but generally of small magnitude. Thus, evaluating wild, semi-domesticated, and domesticated Opuntia species allows us to understand the physiological and biochemical processes along a natural gradient (original and modified by natural and artificial selection and by the cultivation environment) and their alteration by abiotic stress of any kind. This review summarizes our main advances in considering the genus Opuntia as a model for evaluating abiotic stress in the physiology and biochemistry of succulent plants. Furthermore, it shows high relevance, especially in the context of climate change, because Opuntia species are key to food security in arid zones. Full article
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20 pages, 1453 KB  
Article
Enhancement of Cold Tolerance by Drought Stress in Pitaya (Hylocereus undatus)
by Li Wang, Xue Zhang, Zhaoqing Li, Xiaotong Fang, Enquan Wang, Yu Wang and Xuming Huang
Horticulturae 2026, 12(3), 272; https://doi.org/10.3390/horticulturae12030272 - 26 Feb 2026
Viewed by 1363
Abstract
Pitaya (Hylocereus undatus) is a typical Crassulacean Acid Metabolism (CAM) plant with strong drought tolerance but high sensitivity to low temperatures. In this study, the responses of pitaya cultivated in the karst areas of Guizhou Province in southwest China to drought [...] Read more.
Pitaya (Hylocereus undatus) is a typical Crassulacean Acid Metabolism (CAM) plant with strong drought tolerance but high sensitivity to low temperatures. In this study, the responses of pitaya cultivated in the karst areas of Guizhou Province in southwest China to drought and low temperature were examined in winter seasons. The stems of ‘Zihonglong’ pitaya were used as materials to investigate the physiological responses to cold temperatures of pitaya stems under different water conditions, so as to understand the effects of drought stress on the response to low temperatures. The results showed that the severity of chilling injury in pitaya stems was influenced by cold degree and duration and temperature variation. Under sustained low-temperature conditions, the lower the temperature and the longer the duration, the more severe the chilling injury, particularly at 4 °C and below. Drastic temperature rise after exposure to low temperature of 5 °C aggravated the damage, especially when the temperature rise exceeded 10 °C. Compared to normally irrigated plants, those subjected to drought pretreatment exhibited milder chilling injury and higher survival rates under a temperature shift from 5 to 20 °C. The drought-treated pitaya stems had significantly lower membrane leakage and malondialdehyde (MDA) and reactive oxygen species (ROS) contents compared with the well-watered control under different temperature increases starting from 5 °C. Drought significantly reduced soluble sugars and soluble proteins but increased proline under a temperature shift from 5 to 20 °C. It significantly enhanced the activities of catalase (CAT) and ascorbate peroxidase (APX) under temperature shifts from 5 to 10 or 20 °C, but had no significant effect on peroxidase (POD) and superoxide dismutase (SOD). Drought also significantly increased ascorbic acid (ASA) content but significantly reduced glutathione (GSH). It is concluded that a drastic post-cold temperature rise causes more severe damage than the cold temperature itself. Drought pretreatment increases the chilling tolerance of pitaya stems. This effect involves an enhanced ASA-GSH cycle, which strengthens ROS scavenging and prevents membrane damage. Full article
(This article belongs to the Special Issue Response of Tropical Crops to Biotic and Abiotic Stresses)
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20 pages, 1282 KB  
Article
Acclimation of Young Plants of Opuntia spp. to the Heightened Night Temperature
by Claudia Reyes Buendía, Cecilia Beatriz Peña-Valdivia, Daniel Padilla-Chacón, Amalio Santacruz Varela and Monserrat Vázquez Sánchez
Horticulturae 2026, 12(2), 167; https://doi.org/10.3390/horticulturae12020167 - 30 Jan 2026
Cited by 1 | Viewed by 792
Abstract
Increases in global temperatures, due to the climate change, are generating stress in most plant species. We hypothesize that young plants of Opuntia spp. adjust their Crassulacean acid metabolism (CAM) to the increase in nighttime temperature, allowing them to continue growing. The study [...] Read more.
Increases in global temperatures, due to the climate change, are generating stress in most plant species. We hypothesize that young plants of Opuntia spp. adjust their Crassulacean acid metabolism (CAM) to the increase in nighttime temperature, allowing them to continue growing. The study was carried out in a greenhouse and laboratory of the Colegio de Postgraduados, Montecillo, Mexico. Three-month-old greenhouse-grown plants remained in a control environment with an average day/night temperature of 19.1/12.3 °C or were maintained in a chamber with increased nighttime temperatures averaging 19.1/18.9 °C day/night for 70 days. The experimental design was completely randomized with two treatments (control and high nighttime temperatures). After 70 days of high nighttime temperatures (HNT), at dawn (end of CAM phase I), plants had a 45% decrease in glucose (2.9 to 1.5 mg/100 mg dry tissue; dt) concentration and doubled and tripled fructose (0.43 to 0.95 mg/100 mg dt) and sucrose (0.47 to 0.09 mg/100 mg dt) concentrations. Glucose consumption may be related to the plant’s metabolic energy expenditure to overcome stress. The significant increase in fructose and sucrose is explainable by their function as signaling molecules among others. In contrast, photosynthetic efficiency, i.e., increased compared to the control, but the difference of acidity (end of phase I less phase III), the concentration of starch (1 mg/100 mg dt), free amino acids and soluble protein (1.2 mg/100 mg dt), wet and dry matter, stem height (60 cm) and width of the stem at dawn were not significantly affected. The adjustments in C and N metabolism and the non-significant effect on growth promoted by 70 HNT days may be related to adjustments in enzyme activities without changes in protein concentration. Young Opuntia spp. plants adjust their metabolism in response to increased nighttime temperatures, allowing them to maintain growth similar to that of the control. The results confirm the great potential of using the Opuntia genus in agriculture and genetic improvement in the face of the challenges posed by climatic change. Full article
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20 pages, 3086 KB  
Article
Rhythmic Mechanisms Governing CAM Photosynthesis in Kalanchoe fedtschenkoi: High-Resolution Temporal Transcriptomics
by Rongbin Hu, Sara Jawdy, Avinash Sreedasyam, Anna Lipzen, Mei Wang, Vivian Ng, Christopher Daum, Keykhosrow Keymanesh, Degao Liu, Alex Hu, Asher Pasha, Nicholas J. Provart, Anne M. Borland, Timothy J. Tschaplinski, Gerald A. Tuskan, Jeremy Schmutz and Xiaohan Yang
Int. J. Mol. Sci. 2026, 27(3), 1342; https://doi.org/10.3390/ijms27031342 - 29 Jan 2026
Viewed by 969
Abstract
Crassulacean acid metabolism (CAM) is a specialized photosynthetic pathway that enhances water-use efficiency by temporally separating nocturnal CO2 uptake from daytime decarboxylation and carbon fixation. To uncover the regulatory mechanisms coordinating these temporal dynamics, we generated high-resolution, 48 h time-course transcriptomes for [...] Read more.
Crassulacean acid metabolism (CAM) is a specialized photosynthetic pathway that enhances water-use efficiency by temporally separating nocturnal CO2 uptake from daytime decarboxylation and carbon fixation. To uncover the regulatory mechanisms coordinating these temporal dynamics, we generated high-resolution, 48 h time-course transcriptomes for the CAM model Kalanchoe fedtschenkoi under both 12 h/12 h light/dark (LD) cycles and continuous light (LL). A rhythmicity analysis revealed that diel light cues are the dominant driver of transcript oscillations: 16,810 genes (54.3% of annotated genes) exhibited rhythmic expression only under LD, whereas just 399 genes (1.3%) remained rhythmic under LL. A smaller set of 3009 genes (9.7%) oscillated in both conditions, indicating that the intrinsic circadian clock sustains rhythmicity for a limited subset of the transcriptome. A gene co-expression network analysis revealed extensive integration between circadian clock components, core CAM pathway enzymes, and stomatal regulators, defining regulatory modules that coordinate metabolic and physiological timing. Notably, key hub genes associated with post-translational and post-transcriptional regulation, including the E3 ubiquitin ligase HUB2 and several pentatricopeptide repeat (PPR) proteins, act as central nodes in CAM-associated networks. This discovery implicates epigenetic and organellar regulation as previously unrecognized critical tiers of control in CAM. Together, our results support a regulatory model in which CAM rhythmicity is governed by both external light/dark cues and the endogenous circadian clock through multi-level control spanning transcriptional and protein-level regulation. To support community exploration, we also provide an interactive eFP (electronic Fluorescent Pictograph) browser for visualizing time-resolved gene expression profiles. Full article
(This article belongs to the Special Issue Advancements and Trends in Plant Genomics)
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24 pages, 5642 KB  
Article
Nitrogen Fertilisation Modulates Photosynthetic Performance and Antioxidant Defence Mechanisms in Intercropped Cactus Under Semi-Arid Conditions
by Lady Daiane Costa de Sousa Martins, Alexandre Maniçoba da Rosa Ferraz Jardim, Wagner Martins dos Santos, José Edson Florentino de Morais, Luciana Sandra Bastos de Souza, Lara Rosa de Lima e Silva, Pedro Paulo Santos de Souza, Agda Raiany Mota dos Santos, Wilma Roberta dos Santos, Cleber Pereira Alves, Elania Freire da Silva, Hugo Rafael Bentzen Santos, Carlos André Alves de Souza, José Francisco da Cruz Neto, Adriano Nascimento Simões, Sérgio Luiz Ferreira-Silva, Jiaoyue Wang, Xuguang Tang, João L. M. P. de Lima and Thieres George Freire da Silva
Plants 2025, 14(24), 3841; https://doi.org/10.3390/plants14243841 - 17 Dec 2025
Cited by 1 | Viewed by 1484
Abstract
Agriculture in semi-arid regions faces challenges, such as water scarcity and low soil fertility, making the forage cactus a highly important crop due to its crassulacean acid metabolism (CAM) pathway. The productivity of the forage cactus, however, depends on proper water and nutrient [...] Read more.
Agriculture in semi-arid regions faces challenges, such as water scarcity and low soil fertility, making the forage cactus a highly important crop due to its crassulacean acid metabolism (CAM) pathway. The productivity of the forage cactus, however, depends on proper water and nutrient management, especially nitrogen. Despite its importance, there is little research into the effects of nitrogen fertilisation on productive, photochemical, physiological and biochemical parameters, or on intercropping systems. Increasing doses of nitrogen are assumed to enhance CAM pathway, improving productivity, gas exchange, photochemical efficiency and antioxidant accumulation, in addition to mitigating the effects of oxidative stress under adverse conditions. The experiment was conducted in Serra Talhada, Pernambuco, Brazil, in a randomised block design with four replications. Changes in the biometric, productive, photochemical, physiological and biochemical parameters were evaluated in forage cactus intercropped with sorghum (Sorghum bicolor) or pigeon pea (Cajanus cajan) subjected to different doses of nitrogen (0, 75, 150, 300 and 450 kg ha−1). The results showed that nitrogen fertilisation promoted a higher photosynthetic rate and greater stomatal conductance, increased transpiration, and higher levels of pigment and soluble proteins, in addition to reducing lipid peroxidation. Our findings revealed that the cactus—pigeon pea intercropping system has better photosynthetic, enzymatic and productive performance at a dose of 150 kg N ha−1, whereas the cactus—sorghum intercropping system required 450 kg N ha−1 to achieve similar results. Overall, proper nitrogen management in intercropping systems can optimise the physiological performance and productivity of the forage cactus in semi-arid environments. Full article
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16 pages, 2273 KB  
Article
Can Environmental Conditions Alter the Physiological and Photochemical Plasticity of Cacti (Opuntia and Nopalea) in Semiarid Environments?
by Lady Daiane Costa de Sousa Martins, Alexandre Maniçoba da Rosa Ferraz Jardim, Luciana Sandra Bastos de Souza, Lara Rosa de Lima e Silva, Wagner Martins dos Santos, Márcia Bruna Marim de Moura, Wilma Roberta dos Santos, Adriano Nascimento Simões, Sérgio Luiz Ferreira-Silva, Hugo Rafael Bentzen Santos, João L. M. P. de Lima and Thieres George Freire da Silva
Environments 2025, 12(11), 418; https://doi.org/10.3390/environments12110418 - 4 Nov 2025
Cited by 2 | Viewed by 1685
Abstract
Cacti of the genera Opuntia and Nopalea exhibit morphophysiological and biochemical characteristics that favor their adaptation to semiarid environments, such as crassulacean acid metabolism (CAM) and cladode succulence. These strategies reduce water loss and allow the maintenance of photosynthesis under stress conditions. In [...] Read more.
Cacti of the genera Opuntia and Nopalea exhibit morphophysiological and biochemical characteristics that favor their adaptation to semiarid environments, such as crassulacean acid metabolism (CAM) and cladode succulence. These strategies reduce water loss and allow the maintenance of photosynthesis under stress conditions. In this study, we evaluated the seasonal variation in the physiological and photochemical responses of forage cactus clones grown in semiarid environments, considering the rainy, dry, and transition seasons. The net photosynthetic rate (Pn) and chlorophyll fluorescence parameters varied significantly as a function of water availability and microclimatic conditions. We found higher CO2 assimilation rates during the rainy season, while the dry season resulted in a strong impairment of photosynthetic activity, with reductions of 65% in stomatal conductance, 37% in transpiration, 20% in maximum quantum efficiency of photosystem II, and 19% in the electron transport rate. Furthermore, during these periods, we observed an increase in initial fluorescence and non-photochemical dissipation, demonstrating the activation of photoprotective mechanisms against excess light energy. During the transition seasons, the cacti exhibited rapid adjustments in gas exchange and energy dissipation, indicating the adaptive plasticity of CAM pathway. The MIU (Nopalea cochenillifera (L.) Salm-Dyck), OEM (Opuntia stricta (Haw.) Haw.), and IPA (Nopalea cochenillifera (L.) Salm-Dyck) clones demonstrated greater resilience, maintaining greater stability in Pn, instantaneous water use efficiency, and photochemical parameters during the drought. In contrast, the OEA (Opuntia undulata Griffiths) clone showed high sensitivity to water and heat stress, with marked reductions in physiological and photochemical performance. In summary, the photosynthetic efficiency and chlorophyll fluorescence of CAM plants result from the interaction between water availability, air temperature, radiation, and genotypic traits. This study provides a new scientific basis for exploring the effects of environmental conditions on the carbon and biochemical metabolism of cacti grown in a semiarid environment. Full article
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22 pages, 3296 KB  
Article
Overexpression of the CAM-Derived NAC Transcription Factor KfNAC83 Enhances Photosynthesis, Water-Deficit Tolerance, and Yield in Arabidopsis
by Kumudu N. Rathnayake, Beate Wone, Madhavi A. Ariyarathne, Won C. Yim and Bernard W. M. Wone
Curr. Issues Mol. Biol. 2025, 47(9), 736; https://doi.org/10.3390/cimb47090736 - 10 Sep 2025
Cited by 1 | Viewed by 1222
Abstract
Drought stress is a major constraint on plant photosynthesis, growth, and yield, particularly in the context of increasingly frequent and severe extreme weather events driven by global climate change. Enhancing photosynthetic efficiency and abiotic stress tolerance is therefore essential for sustaining crop productivity. [...] Read more.
Drought stress is a major constraint on plant photosynthesis, growth, and yield, particularly in the context of increasingly frequent and severe extreme weather events driven by global climate change. Enhancing photosynthetic efficiency and abiotic stress tolerance is therefore essential for sustaining crop productivity. In this study, we functionally characterized Kalanchoë fedtschenkoi NAC83 (KfNAC83), a transcription factor derived from a heat-tolerant obligate crassulacean acid metabolism (CAM) species, by constitutively overexpressing it in the C3 model plant Arabidopsis thaliana. Transgenic Arabidopsis lines overexpressing KfNAC83 exhibited significantly enhanced tolerance to water-deficit and NaCl stress, along with improved photosynthetic performance, biomass accumulation, and overall productivity. Transcriptomic analysis revealed that KfNAC83 overexpression increased key components of the jasmonate (JA) signaling pathway in both roots and shoots, suggesting a mechanistic link between KfNAC83 activity and enhanced abiotic stress responses. Additionally, the transgenic lines displayed increased nighttime decarboxylation activity, indicative of partial CAM-like metabolic traits. These findings demonstrate that KfNAC83 functions as a positive regulator of abiotic stress tolerance and growth, likely through modulation of jasmonate-mediated signaling and photosynthetic metabolism. This work highlights the potential of CAM-derived transcription factors for bioengineering abiotic stress-resilient crops in the face of climate change. Full article
(This article belongs to the Special Issue Molecular Mechanisms in Plant Stress Tolerance)
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17 pages, 314 KB  
Review
Inorganic Carbon Acquisition and Photosynthetic Metabolism in Marine Photoautotrophs: A Summary
by Sven Beer and John Beardall
Plants 2025, 14(6), 904; https://doi.org/10.3390/plants14060904 - 13 Mar 2025
Cited by 10 | Viewed by 3259
Abstract
The diffusive availability of CO2 for photosynthesis is orders of magnitude lower in water than in air. This, and the low affinity of ribulose-1,5-bisphosphate carboxylase/oxygenase (Rubisco) for CO2, implies that most marine photoautotrophs (cyanobacteria, microalgae, macroalgae and marine angiosperms or [...] Read more.
The diffusive availability of CO2 for photosynthesis is orders of magnitude lower in water than in air. This, and the low affinity of ribulose-1,5-bisphosphate carboxylase/oxygenase (Rubisco) for CO2, implies that most marine photoautotrophs (cyanobacteria, microalgae, macroalgae and marine angiosperms or seagrasses) would be severely restricted were they to rely only on dissolved CO2 for their photosynthetic performance. On the other hand, the ~120 times higher concentration of bicarbonate (HCO3) makes this inorganic carbon (Ci) form more available for utilisation by marine photosynthesisers. The most common way in marine macrophytes to utilise HCO3 is to convert it to CO2 within acidic micro-zones of diffusion boundary layers (DBLs), including the cell walls, as catalysed by an outwardly acting carbonic anhydrase (CA). This would then generate an intra-chloroplastic (or for cyanobacteria intra-carboxysomal) CO2-concentrating mechanism (CCM). Some algae (e.g., the common macroalgae Ulva spp.) and most cyanobacteria and microalgae feature direct HCO3 uptake as the most efficient CCM, while others (e.g., some red algae growing under low-light conditions) may rely on CO2 diffusion only. We will in this contribution summarise our current understanding of photosynthetic carbon assimilation of submerged marine photoautotrophs, and in particular how their ‘biophysical’ CCMs differ from the ‘biochemical’ CCMs of terrestrial C4 and Crassulacean Acid Metabolism (CAM) plants (for which there is very limited evidence in cyanobacteria, algae and seagrasses). Full article
(This article belongs to the Special Issue Photosynthesis and Carbon Metabolism in Higher Plants and Algae)
22 pages, 3173 KB  
Article
The Nitrogen Preference of Cactus Pear (Opuntia ficus-indica): A Sand Culture Snapshot
by Nicholas A. Niechayev, Paula N. Pereira and John C. Cushman
Plants 2024, 13(24), 3489; https://doi.org/10.3390/plants13243489 - 13 Dec 2024
Cited by 1 | Viewed by 2421
Abstract
Cactus pear (Opuntia-ficus indica (L.) Mill.) is an important agricultural crassulacean acid metabolism (CAM) species used as a source of food, forage, fodder, and secondary products and as a biofuel feedstock. However, the preferred source of nitrogen for this species, whether it [...] Read more.
Cactus pear (Opuntia-ficus indica (L.) Mill.) is an important agricultural crassulacean acid metabolism (CAM) species used as a source of food, forage, fodder, and secondary products and as a biofuel feedstock. However, the preferred source of nitrogen for this species, whether it be nitrate (NO3), ammonium (NH4+), or a combination of both, is not well understood. To investigate the nitrate and ammonium preference of cactus pear, we grew cladodes in sand culture with deionized water as a control or with a cross-factorial set of nutrient solutions of 0.0, 2.5, 5.0, and 10.0 mmol of nitrate and/or ammonium for one month. We then assessed a set of physiological parameters including cladode growth, relative water content, chlorophyll, tissue acidity, soluble sugars, starch, nitrate, ammonium, glyoxylic acid, nitrate reductase activity, and nitrogen and carbon content. We found significant differences in all measured parameters except for cladode length, relative water content, and carbon content. Cladodes provided with only deionized water produced no new cladodes and showed decreased soluble sugar content, increased starch content, and increased tissue acidity. We also determined the relative steady-state transcript abundance of genes that encode enzymes involved in N metabolism and CAM. Compared with control cladodes, nutrient-supplied cladodes generally showed increased or variable steady-state mRNA expression of selected CAM-related genes and nitrogen-metabolism-related genes. Our results suggest that O. ficus-indica prefers fertilizers containing either equal concentrations nitrate and ammonium or more nitrate than ammonium. Full article
(This article belongs to the Topic Plants Nutrients, 2nd Volume)
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