Muskmelon morpho-physiology and yield: The combined effect of biostimulants and phosphorus

Authors

DOI:

https://doi.org/10.15835/nbha53414816

Keywords:

biostimulant, fruit quality, morphology, muskmelon, phosphorus, physiology, yield

Abstract

Muskmelon (Cucumis melo L.), a hydrating fruit rich in antioxidants, vitamins, and minerals, is widely grown in tropical and subtropical regions where phosphorus (P) deficiency is common. P availability influences sugar and acid contents in melons because of its role in sugar acid phosphatase enzymes. Increasing phosphorus use efficiency through the use of biostimulants, particularly phosphorus-solubilizing bacteria, represents a promising approach for sustainable muskmelon production. These biostimulants solubilize inorganic P by releasing phosphatase enzymes and organic acids. This study examined the effects of three P levels (100%, 50%, and 0% P₂O₅) and biostimulants (control, GEA 1499- a formulation containing plant base biostimulant and the microbial species Bacillus pumilus and Bacillus megaterium at 2.5 kg ha-1, and GEA 1499 at 5 kg ha-1) on muskmelon morphology, physiology, biochemistry, and yield. The combination of 100% P₂O₅ with GEA 1499 at 2.5 kg ha-1 significantly improved the leaf count, vine length, photosynthesis, stomatal conductance, transpiration, chlorophyll index, marketable yield, and total soluble solids while reducing the undesirable traits rind thickness and seed cavity dimensions, indicating improvement in fruit quality. Phosphorus enhances gas exchange via ATP and the Calvin cycle, whereas biostimulants containing microbes and plant extracts improve nutrient availability, promoting better muskmelon growth, yield, and fruit quality. A combination of plant extracts provides phytohormones that complement the microbial action and improve the overall efficiency of the biostimulant.

References

Akrami M, Arzani A (2019). Inheritance of fruit yield and quality in melon (Cucumis melo L.) grown under field salinity stress. Scientific Reports 9(1):7249. https://doi.org/10.1038/S41598-019-43616-6

Beaton JD, Tisdale SL, Nelson WL (1999). Soil fertility and fertilizers: an introduction to nutrient management.

Prentice-Hall Inc., USA. https://www.sidalc.net/search/Record/KOHA-OAI-TEST:32446/Description

Boutahiri S, Benrkia R, Tembeni B, Idowu OE, Olatunji OJ (2024). Effect of biostimulants on the chemical profile of food crops under normal and abiotic stress conditions. Current Plant Biology 40:100410. https://doi.org/10.1016/j.cpb.2024.100410

Busch FA, Ainsworth EA, Amtmann A, Cavanagh AP, Driever SM, Ferguson JN, … Papanatsiou M (2024). A guide to photosynthetic gas exchange measurements: Fundamental principles, best practice and potential pitfalls. Plant, Cell & Environment 47(9):3344-3364. https://doi.org/10.1111/PCE.14815

Dhkal M, Sharma A, Sharma SP (2022). Biostimulants an important nonchemical alternative to pesticides for management of virus disease in Muskmelon. Egyptian Journal of Biological Pest Control 32(1):61. https://doi.org/10.1186/S41938-022-00560-4

Du Jardin P (2015). Plant biostimulants: Definition, concept, main categories and regulation. Scientia Horticulturae 196:3-14. https://doi.org/10.1016/j.scienta.2015.09.021

Elhaissoufi W, Ghoulam C, Barakat A, Zeroual Y, Bargaz A (2022). Phosphate bacterial solubilization: A key rhizosphere driving force enabling higher P use efficiency and crop productivity. Journal of Advanced Research 38:13-28. https://doi.org/10.1016/J.JARE.2021.08.014

FAO (2022). World Food and Agriculture – Statistical Yearbook 2022. Rome

Fernandes Â, Polyzos N, Mandim F, Pereira C, Petrović J, Soković M, Petropoulos SA (2023). Combined effect of biostimulants and mineral fertilizers on crop performance and fruit quality of watermelon plants. Horticulturae 9(7):838. https://doi.org/10.3390/horticulturae9070838

Gedeon S, Ioannou A, Balestrini R, Fotopoulos V, Antoniou C (2022). Application of biostimulants in tomato plants (Solanum lycopersicum) to enhance plant growth and salt stress tolerance. Plants 11(22):3082. https://doi.org/10.3390/plants11223082

Gerke J (2024). Improving phosphate acquisition from soil via higher plants while approaching peak phosphorus worldwide: A critical review of current concepts and misconceptions. Plants 13(24):3478. https://doi.org/10.3390/plants13243478

Harrison EL, Arce Cubas L, Gray JE, Hepworth C (2020). The influence of stomatal morphology and distribution on photosynthetic gas exchange. The Plant Journal 101(4):768-779. https://doi.org/10.1111/TPJ.14560

Jiaying MA, Tingting C, Jie L, Weimeng FU, Baohua F, Guangyan L, Hubo L, Juncai L, Zhihai W, Longxing T, Guanfu F (2022). Functions of nitrogen, phosphorus and potassium in energy status and their influences on rice growth and development. Rice Science 29(2):166. https://doi.org/10.1016/j.rsci.2022.01.005

Kauffman GL, Kneivel DP, Watschke TL (2007). Effects of a biostimulant on the heat tolerance associated with photosynthetic capacity, membrane thermostability, and polyphenol production of perennial ryegrass. Crop Science 47(1):261-267. https://doi.org/10.2135/CROPSCI2006.03.0171

Kavanová M, Lattanzi FA, Grimoldi AA, Schnyder H (2006). Phosphorus deficiency decreases cell division and elongation in grass leaves. Plant Physiology 141(2):766-775. https://doi.org/10.1104/pp.106.079699

Kayoumu M, Iqbal A, Muhammad N, Li X, Li L, Wang X, Dong Q (2023). Phosphorus availability affects the photosynthesis and antioxidant system of contrasting low-P-tolerant cotton genotypes. Antioxidants 12(2):466. https://doi.org/10.3390/antiox12020466

Khan F, Siddique AB, Shabala S, Zhou M, Zhao C (2023). Phosphorus plays key roles in regulating plants’ physiological responses to abiotic stresses. Plants 12(15):2861. https://doi.org/10.3390/PLANTS12152861

Knowles L, Trimble MR, Knowles NR (2001). Phosphorus status affects postharvest respiration, membrane permeability and lipid chemistry of European seedless cucumber fruit (Cucumis sativus L.). Postharvest Biology and Technology 21(2):179-188. https://doi.org/10.1016/S0925-5214(00)00144-7

Lester GE, Arias LS, Gomez-Lim M (2001). Muskmelon fruit soluble acid invertase and sucrose phosphate synthase activity and polypeptide profiles during growth and maturation. Journal of the American Society for Horticultural Science 126(1):33-36. https://doi.org/10.21273/JASHS.126.1.33

Li P, Weng J, Rehman A, Niu Q (2022). Root morphological and physiological adaptations to low phosphate enhance phosphorus efficiency at melon (Cucumis melo L.) seedling stage. Horticulturae 8(7):636. https://doi.org/10.3390/horticulturae8070636

Lingle SE, Dunlap JR (1987). Sucrose metabolism in netted muskmelon fruit during development. Plant Physiology 84(2):386-389. https://doi.org/10.1104/PP.84.2.386

Manchali S, Murthy KNC, (2020). Muskmelon. In Jaiswal AK (Ed). Nutritional Composition and Antioxidant Properties of Fruits and Vegetables. Academic Press pp 533-546. https://doi.org/10.1016/b978-0-12-812780-3.00033-7

Martuscelli M, Di Mattia C, Stagnari F, Speca S, Pisante M, Mastrocola D (2016). Influence of phosphorus management on melon (Cucumis melo L.) fruit quality. Journal of the Science of Food and Agriculture 96(8):2715-2722. https://doi.org/10.1002/JSFA.7390

Masood S, Zhao XQ, Shen RF (2020). Bacillus pumilus promotes the growth and nitrogen uptake of tomato plants under nitrogen fertilization. Scientia Horticulturae 272:109581. https://doi.org/10.1016/j.scienta.2020.109581

Meiri A, Lauter DJ, Sharabani N (1995). Shoot growth and fruit development of muskmelon under saline and non-saline soil water deficit. Irrigation Science 16(1):15-21. https://doi.org/10.1007/BF00208391

Pallavolu LA, Pasala R, Kulasekaran R, Pandey BB, Virupaksham U, Perika S (2023). Analysing the SPAD dynamics of water-stressed vs. well-watered sesame (Sesamum indicum L.) accessions and establishing their relationship with seed yield. PeerJ 11:e14711. https://doi.org/10.7717/PEERJ.14711/SUPP-2

Piper CS (1966). Soil and plant analysis: A laboratory manual of methods for the examination of soils and the determination of the inorganic constituents of plants. Hans Publishers, Bombay, India.

Povero G, Mejia JF, Di Tommaso D, Piaggesi A, Warrior P (2016). A systematic approach to discover and characterize natural plant biostimulants. Frontiers in Plant Science 7:435. https://doi.org/10.3389/fpls.2016.00435

Rajasekar M, Nandhini D, Swaminathan V, Balakrishnan K (2017). A review on role of macro nutrients on production and quality of vegetables. academia. International Journal of Chemical Studies 5(3):304-309.

Rao IM, Terry N (1989). Leaf phosphate status, photosynthesis, and carbon partitioning in sugar beet: I. Changes in growth, gas exchange, and Calvin cycle enzymes. Plant Physiology 90(3):814-819. https://doi.org/10.1104/PP.90.3.814.

Raza QUA, Bashir MA, Rehim A, Ejaz R, Raza HMA, Shahzad U, Geng Y (2022). Biostimulants induce positive changes in the radish morpho-physiology and yield. Frontiers in Plant Science 13:950393. https://doi.org/10.3389/fpls.2022.950393

Sharma A, Das N, Pandey P, Shukla P (2025). Plant-microbiome responses under drought stress and their metabolite-mediated interactions towards enhanced crop resilience. Current Plant Biology 43:100513. https://doi.org/10.1016/J.CPB.2025.100513

Shu Y, Huang G, Zhang Q, Peng S, Li Y (2023). Reduction of photosynthesis under P deficiency is mainly caused by the decreased CO2 diffusional capacities in wheat (Triticum aestivum L.). Plant Physiology and Biochemistry 198:107680. https://doi.org/10.1016/j.plaphy.2023.107680

Singh S, Chhabra R, Sharma A, Bisht A (2024). Harnessing the power of zinc-solubilizing bacteria: a catalyst for a sustainable agrosystem. Bacteria 3(1):15-29. https://doi.org/10.3390/bacteria3010002

Song J, Yang H, Yu X, Chen Y, Yang C, He Y, Wang H (2025). Effects of combined application of nitrogen, phosphorus, and potassium fertilizers on seed yield, seed quality and economic returns of Elymus nutans in alpine region. BMC Plant Biology 25(1):130. https://doi.org/10.1186/s12870-025-06126-4

Wang S, Zheng S, Bian T, Wu T, Li X, Fu H, Li T (2022). Photosynthetic characteristics combined with metabolomics analysis revealed potential mechanisms of cucumber (Cucumis sativus) yield reduction induced by different phosphorus stresses. Scientia Horticulturae 302:111156. https://doi.org/10.1016/j.scienta.2022.111156

Yavarian S, Jafari P, Akbari N (2023). Bacillus megaterium RTS1 enhances resistance of Lycopersicon esculentum to salinity stress through the improvement of antioxidant defenses. Iranian Journal of Microbiology 15(5):685. https://doi.org/10.18502/ijm.v15i5.13874

Zafar S, Bilal M, Ali MF, Mahmood A, Kijsomporn J, Wong LS, Alotaibi SS (2024). Nano-biofertilizer an eco-friendly and sustainable approach for the improvement of crops under abiotic stresses. Environmental and Sustainability Indicators 24:100470. https://doi.org/10.1016/j.indic.2024.100470

Zhao Y, Mao X, Zhang M, Yang W, Di HJ, Ma L, Li B (2021). The application of Bacillus Megaterium alters soil microbial community composition, bioavailability of soil phosphorus and potassium, and cucumber growth in the plastic shed system of North China. Agriculture, Ecosystems & Environment 307:107236. https://doi.org/10.1016/j.agee.2020.107236

Zhu Q, Ozores-Hampton M, Li Y, Morgan K, Liu G, Mylavarapu RS (2017). Effect of phosphorus rates on growth, yield, and postharvest quality of tomato in a calcareous soil. HortScience 52(10):1406-1412. https://doi.org/10.21273/HORTSCI12192-17

Downloads

Published

2025-12-19

How to Cite

BALUSAMY, G., PRABHAKARAN, J., VEERASAMY, R., KANDASAMY, V., DURAISAMY, S., & LOGANATHAN, A. (2025). Muskmelon morpho-physiology and yield: The combined effect of biostimulants and phosphorus. Notulae Botanicae Horti Agrobotanici Cluj-Napoca, 53(4), 14816. https://doi.org/10.15835/nbha53414816

Issue

Section

Research Articles
CITATION
DOI: 10.15835/nbha53414816

Most read articles by the same author(s)