Data-Driven Optimization of Moss Growth Under Variable Light Conditions: A Computational Framework for Ecological Restoration
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Abstract
This study presents a data-driven computational framework for optimizing moss cultivation under variable light environments to support ecological restoration and intelligent environmental management applications. Three moss species (Didymodon tectorum, Abietinella abietina, and Racomitrium canescens) were cultivated under five light spectra (red, blue, green, yellow, and white) and three photoperiod regimes (8 h, 16 h, and 24 h). A standardized experimental dataset comprising 45 treatment combinations was established to evaluate growth characteristics, photosynthetic pigment accumulation, and antioxidant defense responses. Results demonstrated that red light under a 24 h photoperiod produced the highest biomass performance, with Didymodon tectorum achieving a height of 5.45 mm and coverage of 85%. Blue light significantly enhanced photosynthetic activity, yielding a maximum chlorophyll A content of 0.228 mg g−1 FW and promoting proline accumulation associated with stress tolerance. Green light under an 8 h photoperiod generated the strongest antioxidant response, with superoxide dismutase activity reaching 28.817 U·mg−1. Based on the experimental dataset, a computational decision framework and light optimization algorithm were developed to identify optimal spectral–temporal combinations for growth enhancement and stress-resistance management. The proposed framework is compatible with LED-based spectral regulation systems, optical sensing networks, wireless environmental monitoring platforms, and intelligent ecological restoration infrastructures. By integrating biological response modeling with data-driven decision strategies, this work provides an engineering-oriented methodology for adaptive light control and smart cultivation systems in ecological restoration and sustainable environmental applications.
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References
N. Marat, “The Ecological and Functional Significance of Mosses: A Comprehensive Overview,” Journal of Geosciences and Environmental Studies, vol. 1, no. 3, pp. 8, 2024, doi: 10.53697/ijgaes.v1i3.3247.
C. Cheng, Y. Li, M. Long, M. Gao, Y. Zhang, J. Lin, et al., “Moss biocrusts buffer the negative effects of karst rocky desertification on soil properties and soil microbial richness,” Plant and Soil, vol. 475, no. 1, pp. 153-168, 2022, doi: 10.1007/s11104-020-04602-4.
B. Xiao, K. Hu, T. Ren, and B. Li, “Moss-dominated biological soil crusts significantly influence soil moisture and temperature regimes in semiarid ecosystems,” Geoderma, vol. 263, pp. 35-46, 2016, doi: 10.1016/j.geoderma.2015.09.012.
R. René van der Wal, I. S. K. Pearce, and R. W. Brooker, “Mosses and the struggle for light in a nitrogen-polluted world,” Oecologia, vol. 142, no. 2, pp. 159-168, 2005, doi: 10.1007/s00442-004-1706-0.
P. Julinova and D. Beckovsky, “Perspectives of moss species in urban ecosystems and vertical living-architecture: A review,” Advances in Engineering Materials, Structures and Systems: Innovations, Mechanics and Applications, pp. 2370-2375, 2019, doi: 10.1201/9780429426506-408.
S. M. Thielen, C. Gall, M. Ebner, M. Nebel, T. Scholten, and S. Seitz, “Water’s path from moss to soil: A multi-methodological study on water absorption and evaporation of soil-moss combinations,” Journal of Hydrology and Hydromechanics, vol. 69, no. 4, pp. 421-435, 2021, doi: 10.2478/johh-2021-0021.
J. Vieira, P. Matos, T. Mexia, P. Silva, N. Lopes, C. Freitas, et al., “Green spaces are not all the same for the provision of air purification and climate regulation services: The case of urban parks,” Environmental Research, vol. 160, pp. 306-313, 2018, doi: 10.1016/j.envres.2017.10.006.
C. Bu, S. Wu, F. Han, Y. Yang, and J. Meng, “The combined effects of moss-dominated biocrusts and vegetation on erosion and soil moisture and implications for disturbance on the Loess Plateau, China,” PloS One, vol. 10, no. 5, Art. no. e0127394, 2015, doi: 10.1371/journal.pone.0127394.
M. Xie, X. Wang, Q. Zeng, J. Shen, and B. Huang, “Growth physiology and chlorophyll fluorescence analysis of two moss species under different LED Light qualities,” Plant Physiology and Biochemistry, vol. 212, no. 0, pp. 10, 2024, doi: 10.1016/j.plaphy.2024.108777.
S. Liu, S. Fang, C. Liu, L. Zhao, B. Cong, and Z. Zhang, “Transcriptomics integrated with metabolomics reveal the effects of ultraviolet-B radiation on flavonoid biosynthesis in Antarctic moss,” Frontiers in Plant Science, vol. 12, Art. no. 788377, 2021, doi: 10.3389/fpls.2021.788377.
P. Pashkovskiy, L. Khalilova, M. Vereshchagin, A. Voronkov, T. Ivanova, A. A. Kosobryukhov, et al., “Impact of varying light spectral compositions on photosynthesis, morphology, chloroplast ultrastructure, and expression of light-responsive genes in Marchantia polymorpha,” Plant Physiology and Biochemistry, pp. 203, 2023, doi: 10.1016/j.plaphy.2023.108044.
U. Bhatt, S. Sharma, H. M. Kalaji, R. J. Strasser, C. Chomontowski, and V. Soni, “Sunlight-induced repair of photosystem II in moss Semibarbula orientalis under submergence stress,” Functional Plant Biology, vol. 50, no. 10, pp. 777-791, 2023, doi: 10.1071/FP23073.
A. V. Perera-Castro, M. J. Waterman, J. D. Turnbull, M. B. Ashcroft, E. McKinley, J. R. Watling, et al., “It is hot in the sun: Antarctic mosses have high temperature optima for photosynthesis despite cold climate,” Frontiers in Plant Science, vol. 11, pp. 1178, 2020, doi: 10.3389/fpls.2020.01178.
D. Lazár, A. Stirbet, L. O. Björn, and G. Govindjee, “Light quality, oxygenic photosynthesis and more,” Photosynthetica, vol. 60, no. 1, pp. 25, 2022, doi: 10.32615/ps.2021.055.
V. A. Sánchez-Camargo, C. Suárez-Espinoza, S. Romero-Rodríguez, S. M. Garza-Aguilar, M. Stam, E. García-Ramírez, et al., “Maize E2F transcription factors,” Expression, association to promoters of S-phase genes and interaction with the RBR1 protein in chromatin during seed germination. Plant Science, pp. 296, 2020, doi: 10.1016/j.plantsci.2020.110491.
D. Q. Xu, W. Gao, and J. Ruan, “Effects of light quality on plant growth and development,” Plant Physiology Journal, vol. 51, no. 8, pp. 1217-1234, 2015, doi: 10.13592/j.cnki.ppj.2015.1002.
C. Kami, S. Lorrain, P. Hornitschek, and C. Fankhauser, “Light-regulated plant growth and development,” Current Topics in Developmental Biology, vol. 91, pp. 29-66, 2010, doi: 10.1016/S0070-2153(10)91002-8.
A. Raza, H. Salehi, M. A. Rahman, Z. Zahid, M. Madadkar Haghjou, S. Najafi-Kakavand, et al., “Plant hormones and neurotransmitter interactions mediate antioxidant defenses under induced oxidative stress in plants,” Frontiers in Plant Science, pp. 13, 2022, doi: 10.3389/fpls.2022.961872.
S. Li, S. Liu, Q. Zhang, M. Cui, M. Zhao, N. Li, et al., “The interaction of ABA and ROS in plant growth and stress resistances,” Frontiers in Plant Science, pp. 13, 2022, doi: 10.3389/fpls.2022.1050132.
Y. Zhang, J. Zhang, J. Yin, et al., “Plant regeneration via organogenesis in Jerusalem artichokes and comparative analysis of endogenous hormones and antioxidant enzymes in typical and atypical shoots,” Plants, vol. 12, no. 22, pp. 3789, 2023, doi: 10.3390/plants12223789.
C. Zhou, X. Gu, J. Li, X. Su, S. Chen, J. Tang, et al., “Physiological Characteristics and Transcriptomic Responses of Pinus yunnanensis Lateral Branching to Different Shading Environments,” Plants, vol. 13, no. 12, pp. 1588, 2024, doi: 10.3390/plants13121588.
R. Anwar, A. K. Mattoo, and A. K. Handa, “Polyamines: A universal molecular nexus for growth, survival, and specialized metabolism,” Tokyo, Japan: Springer; 2015. Polyamine interactions with plant hormones: Crosstalk at several levels. p. 267-302, doi: 10.1007/978-4-431-55212-3_22.
S. Sharma, S. K. Sanyal, K. Sushmita, M. Chauhan, A. Sharma, G. Anirudhan, et al., “Modulation of phototropin signalosome with artificial illumination holds great potential in the development of climate-smart crops,” Current Genomics, vol. 22, no. 3, pp. 181-213, 2021, doi: 10.2174/1389202922666210412104817.
W. M. Semida, M. S. Ammar, and A. Nevein, “Effects of shade level and microenvironment on vegetative growth, physiological and biochemical characteristics of transplanted cucumber (Cucumis sativus),” Archives of Agriculture and Environmental Science, vol. 2, no. 4, pp. 361-368, 2017, doi: 10.26832/24566632.2017.020421.
P. P. Pashkovskiy, T. N. Soshinkova, D. V. Korolkova, A. V. Kartashov, I. E. Zlobin, V. Y. Lyubimov, et al., “The effect of light quality on the pro- /antioxidant balance, activity of photosystem II, and expression of light-dependent genes in Eutrema salsugineum callus cells,” Photosynthesis Research, vol. 136, pp. 199-214, 2018, doi: 10.1007/s11120-017-0459-7.
J. Gago, M. Nadal, M. J. Clemente-Moreno, C. M. Figueroa, D. B. Medeiros, N. Cubo-Ribas, et al., “Nutrient availability regulates Deschampsia antarctica photosynthetic and stress tolerance performance in Antarctica,” Journal of Experimental Botany, vol. 74, no. 8, pp. 2620-2637, 2023, doi: 10.1093/jxb/erad043.
F. Ameen, S. Mumtaz, B. Ali, I. Hussain, A. Hafeez, A. Gul, et al., “The impact of Cu-polluted and organic soil on the fibrous plant; insights into plant growth promotion, antioxidant defences system, and oxidative stress,” Functional Plant Biology, vol. 50, no. 8, pp. 623-632, 2023, doi: 10.1071/FP23027.