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Research Articles

Vol. 12 No. sp3 (2025): Advances in Plant Health Improvement for Sustainable Agriculture

Isolation and multidimensional characterization of Colletotrichum gloeosporioides (Penz. & Sacc.) associated with anthracnose in groundnut (Arachis hypogaea L.)

DOI
https://doi.org/10.14719/pst.8647
Submitted
3 April 2025
Published
05-09-2025

Abstract

Groundnut (Arachis hypogaea L.) is most popularly called as the ‘King of oil seeds’ and it is a highly valued leguminous crop in India and worldwide. Groundnut productivity is declining due to multiple biotic and abiotic stresses that hinder effective cultivation and cause substantial yield losses. Anthracnose, a destructive fungal disease incited by Colletotrichum species, has become a significant threat to groundnut cultivation in key growing regions of Tamil Nadu. The disease manifests initially as small, water soaked and yellowish spots along the leaf margins, which progressively expand and develop into well defined, circular brown lesions with a distinct yellow halo. As the infection advances, extensive foliar damage occurs, ultimately leading to substantial yield losses. The disease, exacerbated by warm, dry conditions and airborne spores during the rainy season. This study investigated the morphological and growth characteristics of ten Colletotrichum gloeosporioides isolates collected from different locations. The isolates exhibited distinct variations in mycelial growth, colony pigmentation, zonation patterns and sporulation capacity. Notably, isolate Cg1 exhibited the highest mycelial growth. Morphologically, the isolates displayed diverse features, including a fluffy white appearance, cottony mycelium and variations in sporulation. Additionally, differences in conidial size and shape were noted. The pathogen exhibited optimal growth under a 12 hrs light and 12 hrs dark cycle, at a temperature range of 25-30 °C and a pH of 5.0. This study emphasizes the pivotal influence of morphological and physiological parameters influencing the development and growth of Colletotrichum gloeosporioides isolates.

References

  1. 1. Dharvesh MH, Umadevi M, Kalaiyarasi R, Vanitha K, Rajeswari R. Genetic variability and association studies in F2 populations of Groundnut (Arachis hypogaea L.). Plant Science Today. 2024;11(sp4):5241. https://doi.org/10.23910/pst.7224
  2. 2. Bansal RK, Gondaliya VK, Shaikh AS. A review of the status of the groundnut production and export of India. Indian Journal of Economics and Development. 2017;13(2):369. https://doi.org/10.23910/1.2021.2192b
  3. 3. Li Y, Song X, He K, Yu J, Xu M, Guo Z, et al. First report of Colletotrichum gloeosporioides causing anthracnose on peanut in Chongqing, China. Plant Disease. 2024;108(2):533. https://doi.org/10.1094/PDIS-10-23-2345-RE
  4. 4. Pandey AK, Kumar A, Mbeyagala EK, Barbetti MJ, Basandrai A, Basandrai D, et al. Anthracnose resistance in legumes for cropping system diversification. Critical Reviews in Plant Sciences. 2023;42(4):177–216. https://doi.org/10.1080/07352689.2023.1234567
  5. 5. Li Z, Dos Santos RF, Gao L, Chang P, Wang X. Current status and future prospects of grapevine anthracnose caused by Elsinoë ampelina: an important disease in humid grape growing regions. Molecular Plant Pathology. 2021;22(8):899–910. https://doi.org/10.1111/mpp.13045
  6. 6. Golovin SE. Anthracnose of stone fruits caused by species of the genus Colletotrichum. Fruit Growing and Berry Growing of Russia. 2023;74:87–97. https://doi.org/10.31676/2073-4948-2023-74-87-97
  7. 7. Duhoon SS. JNC 6—A high yielding composite variety of niger identified. Journal of Oilseeds Research. 2002;19(1):112.
  8. 8. Kinkel LL, Andrews JH. Disinfestation of living leaves by hydrogen peroxide. Transactions of the British Mycological Society. 1988;91(3):523–8. https://doi.org/10.1016/S0007-1536(88)80123-9
  9. 9. Kim B, Cho K, Lee Y. Anthracnose of Rumex crispus caused by Colletotrichum gloeosporioides. Korean Journal of Plant Pathology. 1998;14(4):358–60.
  10. 10. Rajeendran A, Nulit R, Yien C, Ibrahim M, Kalhori N. Isolation and molecular identification of Colletotrichum gloeosporioides from infected peanut seeds. International Journal of Plant and Soil Science. 2017;19(2):1–8.
  11. https://doi.org/10.9734/IJPSS/2017/35838
  12. 11. Zhang FM, He W, Wu CY, Sun K, Zhang W, Dai CC. Phomopsis liquidambaris inoculation induces resistance in peanut to leaf spot and root rot. BioControl. 2020;65(4):475–88. https://doi.org/10.1007/s10526-020-10068-1
  13. 12. Gong J, Sun D, Bian N, Wang R, Wang X, Wang X. First report of Colletotrichum fructicola causing anthracnose on peanut (Arachis hypogaea) in China. Plant Disease. 2023;107(9):2879. https://doi.org/10.1094/PDIS-01-23-0215-PDN
  14. 13. Wang T, Ren D, Guo H, Chen X, Zhu P, Nie H, et al. CgSCD1 is essential for melanin biosynthesis and pathogenicity of Colletotrichum gloeosporioides. Pathogens. 2020;9(2):141. https://doi.org/10.3390/pathogens9020141
  15. 14. Allen GC, Flores Vergara MA, Krasynanski S, Kumar S, Thompson WF. A modified protocol for rapid DNA isolation from plant tissues using cetyltrimethylammonium bromide. Nature Protocols. 2006;1(5):2320–5. https://doi.org/10.1038/nprot.2006.384
  16. 15. Waller PJ, Faedo M. The prospects for biological control of the free living stages of nematode parasites of livestock. International Journal for Parasitology. 1996;26(8):915–25. https://doi.org/10.1016/0020-7519(96)00060-6
  17. 16. Khanzada MA, Ansari A, Rajput MA, Maitlo S, Rajput AQ, Ujjan AA. Effect of different abiotic factors on the growth and sporulation of Colletotrichum gloeosporioides causing anthracnose of mango. Plant Protection. 2018;2(1):23–30.
  18. 17. Leharwan M, Gupta M. Stem gall of coriander: a review. Agricultural Reviews. 2019;40:1885. https://doi.org/10.18805/ag.R-1885
  19. 18. Gomez KA, Gomez AA. Statistical Procedures for Agricultural Research. John Wiley & Sons; 1984. p. 698.
  20. 19. Rex B, Sheela J, Theradimani M, Ebenezar EG, Vanniarajan C, Swaminathan V. Survey, isolation and morphological variation of different isolates of anthurium anthracnose disease incited by Colletotrichum gloeosporioides. Journal of Pharmacognosy and Phytochemistry. 2019;8(5):355–7.
  21. 20. Qureshi I. Integrating few shot learning and multimodal image enhancement in GNut: a novel approach to groundnut leaf disease detection. Computers. 2024;13(12):306. https://doi.org/10.3390/computers131200306
  22. 21. Subash L, Arulselvi G, Kavitha K. Analysis of plant disease in power plant areas using deep learning techniques. Annals of the Romanian Society for Cell Biology. 2021;19667–79.
  23. 22. Hassan O, Jeon JY, Chang T, Shin JS, Oh NK, Lee YS. Molecular and morphological characterization of Colletotrichum species in the Colletotrichum gloeosporioides complex associated with persimmon anthracnose in South Korea. Plant Disease. 2018;102(5):1015–24. https://doi.org/10.1094/PDIS-10-17-1606-RE
  24. 23. Agrios GN. Plant Pathology. 6th edition. Elsevier Academic Press; 2024. p. 394–96. https://doi.org/10.1016/C2019-0-04179-9
  25. 24. Arauz LF. Mango anthracnose: economic impact and current options for integrated management. Plant Disease. 2000;84(6):600–11. https://doi.org/10.1094/PDIS.2000.84.6.600
  26. 25. Parida S, Das S, Mahalik G. Impact of sooty mold disease on behavioral aspects of mango plants: a case study in CUTM campus, Bhubaneswar. Journal of the Operational Research Society. 2019;21:116–8.
  27. 26. Wicaksono D, Kafiya M. Morphologically diversity of Colletotrichum sp. conidia associated with anthracnose on chili. In: Proceedings of 1st International Conference on Agriculture, Food and Environment. IOP Conference Series: Earth and Environmental Science. 2022;1018(1):012016. https://doi.org/10.1088/1755 1315/1018/1/012016
  28. 27. Naguleswaran V, Pakeerathan K, Mikunthan G. Biological control: a promising tool for bulb rot and leaf twisting fungal diseases in red onion (Allium cepa L.) in Jaffna District. World Applied Sciences Journal. 2014;31:1090–5.
  29. 28. Bandgar MS, Barhate BG, Raghuwanshi KS. Morphological variation among different isolates of Colletotrichum gloeosporioides isolated from various crops in Western Maharashtra, India. International Journal of Current Microbiology and Applied Sciences. 2018;7(2):2072–84. https://doi.org/10.20546/ijcmas.2018.702.247
  30. 29. Patil S, Nargund VB, Hariprasad K, Hegde G, Lingaraju S, Benagi VI. Etiology of twister disease complex in onion. International Journal of Current Microbiology and Applied Sciences. 2018;7(12):3644–57. https://doi.org/10.20546/ijcmas.2018.712.413
  31. 30. Freeman S, Minz D, Jurkevitch E, Maymon M, Shabi E. Molecular analyses of Colletotrichum species from almond and other fruits. Phytopathology. 2000;90(6):608–14. https://doi.org/10.1094/PHYTO.2000.90.6.608
  32. 31. Vengadaramana A, Costa DM. Molecular and pathogenic diversity of the causal agents of onion leaf twister disease in Batticaloa District of Sri Lanka. Universal Journal of Plant Science. 2014;2(7):121–7. https://doi.org/10.13189/ujps.2014.020702
  33. 32. Ansari A, Khanzada M, Rajput M, Maitlo S, Rajput AQ, Ujjan A. Effect of different abiotic factors on the growth and sporulation of Colletotrichum gloeosporioides causing anthracnose of mango. Plant Protection. 2018;2(1):23–30.
  34. 33. Asalkar UA, Hingole DG, Khaire PB, Mete VS. Effect of different solid media on the growth and sporulation of Colletotrichum gloeosporioides Penz. and Sacc. causing fruit rot of aonla. International Journal of Current Microbiology and Applied Sciences. 2019;8(10):610–6. https://doi.org/10.20546/ijcmas.2019.810.069
  35. 34. Admassiea M, Handisob S, Alemua A. Physiological and morphological studies of Colletotrichum capsici under different culture media temperature and light regimes. International Journal of Environmental Sciences. 2015;6(3):78–86.
  36. 35. De Menezes HD, Massola NS, Flint SD, Silva GJ, Bachmann L, Rangel DE, et al. Growth under visible light increases conidia and mucilage production and tolerance to UV B radiation in the plant pathogenic fungus Colletotrichum acutatum. Photochemistry and Photobiology. 2015;91(2):397–402. https://doi.org/10.1111/php.12495
  37. 36. Wang D, Zhang J, Jia X, Xin L, Zhai H. Antifungal effects and potential mechanism of essential oils on Colletotrichum gloeosporioides in vitro and in vivo. Molecules. 2019;24(18):3386. https://doi.org/10.3390/molecules24183386

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