Ecological Invasion, Impact, and Management of Johnsongrass [Sorghum halepense (L.) Pers.] for Sustainable Livestock Production: A Systematic Review
Abstract
1. Introduction
2. Materials and Methods
3. History and Origin of Sorghum halepense
4. Classification and Description of Sorghum halepense
5. Distribution and Spread of Sorghum halepense
6. Impact of Sorghum halepense on Biodiversity
7. Impact of Sorghum halepense on Livestock
8. Management and Control of Sorghum halepense
8.1. Mechanical Control Method
8.2. Chemical Control Method
8.3. Biological Control
8.4. Management of the Seed Bank
8.5. Integrated Management (IM)
9. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Eberlein, C.V.; Miller, T.L.; Luryey, E.L. Seasonal emergence and growth of Sorghum almum. Weed Technol. 1988, 2, 275–281. [Google Scholar] [CrossRef]
- Schantz, M.C. Sorghum halepense (Johnsongrass): A review of the invasion, management, and spread in the changing climate of the Southern Great Plains. Weed Sci. 2025, 73, e31. [Google Scholar] [CrossRef]
- McWhorter, C.G. Introduction and spread of Johnsongrass in the United States. Weed Sci. 1971, 19, 496–501. [Google Scholar] [CrossRef]
- Peerzada, A.M.; Ali, H.H.; Hanif, Z.; Bajwa, A.A.; Kebaso, L.; Frimpong, D.; Iqbal, N.; Namubiru, H.; Hashim, S.; Rasool, G.; et al. Eco-biology, impact, and management of Sorghum halepense (L.) Pers. Biol. Invasions 2017, 25, 955–973. [Google Scholar] [CrossRef]
- Ryder, N. Transcriptome assembly and annotation of Johnsongrass (Sorghum helepense) rhizomes identify candidate rhizome-specific genes. Plant Direct 2018, 2, e00065. [Google Scholar] [CrossRef]
- Overpeck, J.K.; Bartlein, P.J.; Webb, T. Potential magnitude of future vegetation change in eastern north America: Comparisons with the past. Science 1991, 254, 692–705. [Google Scholar] [CrossRef]
- Kelly, S.; Fletcher, R.A.; Barney, J.N. Intraspecific, ecotypic and home climate variation in photosynthetic traits of the widespread invasive grass Johngrass. AoB Plants 2020, 12, plaa015. [Google Scholar] [CrossRef]
- Yim, K.O.; Bayer, D.E. Rhizome expression in a selected cross in the Sorghum genus. Euphytica 1997, 94, 6. [Google Scholar] [CrossRef]
- Coiner, H.; Hayhoe, K.A.; Ziska, L.H.; Van Dorn, J.; Sage, R.F. Tolerance of subzero winter cold in kudzu (Pueraria montana var. lobata). Oecolgia 2018, 187, 839–849. [Google Scholar] [CrossRef]
- Hariprasanna, K.; Patil, J.V. Sorghum: Origin, classification, biology, and improvement. In Sorghum Molecular Breeding; Springer: New Delhi, India, 2015; pp. 3–20. [Google Scholar]
- Bednarova, M.; Karafiatova, M.; Hribova, E.; Bartos, J. B chromosomes in genus Sorghum (Poaceae). Plants 2021, 10, 505. [Google Scholar] [CrossRef]
- Garber, E.D. Cytotaxanomic studies in the genus Sorghum. Univ. Calif. Publ. Bot. 1950, 23, 283–362. [Google Scholar]
- Lazarides, M.; Hacker, J.B.; Andrew, M.H. Taxonomy, cytology, and ecology of indigenous Australian sorghum (Sorghum Moench: Andropogoneae: Poaceae). Aust. Syst. Bot. 1991, 4, 591–635. [Google Scholar] [CrossRef]
- Gamashe, S.S.; Tayade, N.; Ganapathy, K.N. Sorghum. In Plant Genebank Utilization for Trait Discovery in Milletps; Springer Nature: Singapore, 2025; Volume IV, pp. 43–76. [Google Scholar]
- Sias, C. Understanding Interspecific Hybridization Between Sorghum bicolor and Its Weedy Congener, S. halepense. Doctoral Dissertation, Texas A&M University, College Station, TX, USA, 2020. [Google Scholar]
- Gui, H.; Jiao, Y.; Tan, X.; Wang, X.; Huang, X.; Paterson, A.H. Duplication and genetic innovation in cereal genomes. Genome Res. 2019, 29, 261–269. [Google Scholar] [CrossRef]
- Peterson, A.H.; Kong, W.; Johnston, R.M.; Nabukalu, P.; Wu, G.; Poehlman Şin, B.; Kadıoğlu, İ.; Yıldırım, C. Determination of some biological properties of the seeds of the Johnson grass (Sorghum halepense (L.) Pers.). J. Agric. Biotechnol. 2024, 5, 71–78. [Google Scholar] [CrossRef]
- Khan, M.N.; Ali, S.; Yaseen, T.; Ullah, S.; Zaman, A.; Iqbal, M.; Shah, S. Eco-taxonomic study of family Poaceae (Gramineae). RADS J. Biol. Res. Appl. Sci. 2019, 10, 63–75. [Google Scholar] [CrossRef]
- Xu, Z.; Zhou, G. Gramineae. In Identification and Control of Common Weeds; Springer: Dordrecht, The Netherlands, 2017; Volume 1, pp. 3–364. [Google Scholar]
- Liang, Z.; Shi, S.; Xue, B.; Li, D.; Liu, Y.; Liu, C. Comparative analysis of TALE gene family in Gramineae. Agronomy 2025, 15, 1460. [Google Scholar] [CrossRef]
- Klein, P.; Smith, C.M. Invasive Johnsongrass, a threat to native grasslands and agriculture. Biologia 2021, 76, 413–420. [Google Scholar] [CrossRef]
- Warwick, S.I.; Black, L.D. The biology of Canadian weeds.: 61. Sorghum halepense (L.) Pers. Can. J. Plant Sci. 1983, 63, 997–1014. [Google Scholar] [CrossRef]
- Nestorović Živković, J.; Simonović, M.; Mišić, D.; Nešić, M.; Jovanović, V.; Gašić, U.; Bjedov, I.; Dmitrović, S. Bioherbicidal Evaluation of Methanol Extract of Sorghum halepense L. Rhizome and Its Bioactive Components Against Selected Weed Species. Molecules 2025, 30, 3060. [Google Scholar] [CrossRef]
- Kigel, J.; Rubin, B. Sorghum halepense. In Handbook of Flowering; CRC Press: Boca Raton, FL, USA, 2019; pp. 376–379. [Google Scholar]
- Rout, M.E.; Chrzanowski, T.H.; Smith, W.K.; Gough, L. Ecological impacts of the invasive grass Sorghum halepense on native tallgrass prairie. Biol. Invasions 2013, 15, 327–339. [Google Scholar] [CrossRef]
- Giantin, S.; Franzin, A.; Brusa, F.; Montemurro, V.; Bozzetta, E.; Caprai, E.; Fedrizzi, G.; Girolami, F.; Nebbia, C. Overview of cyanide poisoning in cattle from Sorghum halepense and S. bicolor cultivars in Northwest Italy. Animals 2024, 14, 743. [Google Scholar] [CrossRef] [PubMed]
- iNaturalist. 2026. Available online: https://www.inaturalist.org/observations?taxon_id=58387 (accessed on 2 February 2026).
- Taylor, J.R. Sorghum and millets: Taxonomy, history, distribution, and production. In Sorghum and Millets; AACC International Press: St. Paul, MN, USA, 2019; pp. 1–21. [Google Scholar]
- Hedayetullah, M.; Zaman, P. Johnson Grass (Aleppo Grass) Md. Hedayetullah and Parveen Zaman. In Forage Crops of the World, Volume I: Major Forage Crops; Apple Academic Press: Palm Bay, FL, USA, 2018; pp. 99–110. [Google Scholar]
- Linder, H.P.; Lehmann, C.E.; Archibald, S.; Osborne, C.P.; Richardson, D.M. Global grass (Poaceae) success underpinned by traits facilitating colonization, persistence, and habitat transformation. Biol. Rev. 2018, 93, 1125–1144. [Google Scholar] [CrossRef] [PubMed]
- Reynolds, L.; Wangdi, K. Country Pasture/Forage Resource Profiles; FAO: Rome, Italy, 2006. [Google Scholar]
- Wood, A.R.; Den Breeÿen, A. Plant pathogens and biological control of invasive alien plants in South Africa: A review of projects and progress (2011–2020). Afr. Entomol. 2021, 29, 983–1004. [Google Scholar] [CrossRef]
- O’Connor, T.G.; van Wilgen, B.W. The impact of invasive alien plants on rangelands in South Africa. In Biological Invasions in South Africa; Springer International Publishing: Cham, Switzerland, 2020; pp. 459–487. [Google Scholar]
- Friedman, J. The evolution of annual and perennial plant life histories: Ecological correlates and genetic mechanisms. Annu. Rev. Ecol. Evol. Syst. 2020, 51, 461–481. [Google Scholar] [CrossRef]
- Mordecai, E.A.; Molinari, N.A.; Stahlheber, K.A.; Gross, K.; D’Antonio, C. Controls over native perennial grass exclusion and persistence in California grasslands invaded by annuals. Ecology 2015, 96, 2643–2652. [Google Scholar] [CrossRef]
- Nagaraja, T.E.; Parveen, S.G.; Aruna, C.; Hariprasanna, K.; Singh, S.P.; Singh, A.K.; Joshi, D.C.; Joshi, P.; Tomar, S.M.S.; Talukdar, A.; et al. Millets and pseudocereals: A treasure for climate resilient agriculture ensuring food and nutrition security. Indian J. Genet. Plant Breed. 2024, 84, 1–37. [Google Scholar] [CrossRef]
- Yazlik, A.; Üremiş, İ. Impact of Sorghum halepense (L.) Pers. on the species richness in native range. Phytoparasitica 2022, 50, 1107–1122. [Google Scholar] [CrossRef]
- Bennett, H. Johnsongrass, dallisgrass, and other grasses for the humid south. In Forages: The Science of Grassland Agriculture, 3rd ed.; Heath, M.E., Metcalfe, D.S., Barnes, R.F., Eds.; Iowa State University Press: Ames, IA, USA, 1973; pp. 333–343. [Google Scholar]
- Hawkins, G.E.; Kelley, W.; Smith, L. Comparison of Starr Millet, Sweet, Sudangrass, Johngrass as Dairy Forages; Alabama Agricultural Experiment Station Leaflet Circular; Auburn University: Auburn, AL, USA, 1958; pp. 60–75. [Google Scholar]
- Rocteli, A.; Manuchehri, M. Johnsongrass in Pastures: Weed or Forage? Oklahoma State University: Stillwater, OK, USA, 2017; Volume 8, pp. 15–36. [Google Scholar]
- Watson, V.H.; Coats, R.E.; Kimbrough, L.E. Johnsongrass as a forage in Mississippi. Miss. State Univ. Bull. 1980, 886, 528. [Google Scholar]
- Andrae, J. Grazing impacts on pasture composition. UGA Coop. Ext. Bull. 2009, 1243, 1–6. [Google Scholar]
- Stichler, C.; Reagor, J.C. Nitrate and Prussic acid Poisoning; Drovers: Inverarnan, UK, 2024; pp. 45–60. [Google Scholar]
- Gensa, U. Review on cyanide poisoning in ruminants. J. Biol. Agric. Health 2019, 9, 1–12. [Google Scholar]
- Amjadian, O.A.; Arji, I.; Changizi, M.; Khaghani, S.; Salehi, H.R. Determination of cyanogenic glycosides in endemic species of wild almond seeds in the Zagros Mountains. Braz. J. Bot. 2020, 43, 697–704. [Google Scholar] [CrossRef]
- Baeza, M.; Luis, D.; Raventos, J.; Escarre, A. Factors influencing fire behaviour in shrublands of different stand ages and the implications for using prescribed burning to reduce wildfire risk. J. Environ. Manag. 2002, 65, 199–208. [Google Scholar] [CrossRef] [PubMed]
- Ceseki, A.; Al-Khatib, K.; Dahlberg, J.A. Biology and Management of Johnsongrass (Sorghum halepense); ANNR Publication 8569; University of California Agriculture and Natural Resources: Davis, CA, USA, 2017; 11p. [Google Scholar]
- Cox, S.; Nabukalu, P.; Paterson, A.H.; Kong, W.; Nakasagga, S. Development of Perennial Grain Sorghum. Sustainability 2018, 10, 172. [Google Scholar] [CrossRef]
- Johnson, W.G.; Wait, J.D. Johnsongrass control, total nonstructural carboydrates in rhizomes, and regrowth after application of herbicide-resistant corn (Zea mays). Weed Technol. 2003, 17, 36–41. [Google Scholar] [CrossRef]
- McCulough, P.; Shilling, D. Johnsongrass control in pastures, roadsides, and noncropland areas. UGA Coop. Ext. Bull. 2022, 15, 1–4. [Google Scholar]
- Emendack, Y.; Sanchez, J.; Laza, H. Dhurrin: A potential endogenous nitrogen turnover source for early seedling growth in sorghum. Front. Plant Sci. 2025, 16, 155–871. [Google Scholar] [CrossRef]
- Vinall, H. A study of the literature concerning poisoning of cattle by the prussic acid in sorghum, Sudan grass and Johnson grass. J. Am. Soc. Agron. 1921, 13, 267–280. [Google Scholar] [CrossRef][Green Version]
- Morell, P.L.; Williams-Coplin, T.D.; Lattu, A.L.; Browsers, J.E.; Chandler, J.M.; Paterson, A.H. Crop to weed introgression has impacted allelic composition of Johnsongrass populations with and without recent exposure to cultivated Sorghum. Mol. Ecol. 2005, 14, 2143–2154. [Google Scholar] [CrossRef]
- Sankaran, S.; Rajasekaran, M.P.; Govindaraj, V.; Sowmiya, P.; Shiny-Rebekka, S.; Kaleeswaran, B. Acute Cyanide Poisoning: Identification of Prussic Acid in by Analyzing of Various Parameters in Cattle. In Proceedings of the 2020 International Conference on Communication and Signal Processing, Bangalore, India, 19–24 July 2020; pp. 561–568. [Google Scholar]
- Provin, T.; Pitt, J.L. Nitrates and Prussic Acid in Forages: Sampling, Testing and Management Strategies; The Texas A&M University System: College Station, TX, USA, 2024. [Google Scholar]
- Rashid, S.; Ashraf, R.; Jamil, F.; Sanawar, S.; Zubair, Z.; Iftikhar, H.F. Use and abuse of sorghum and jequirity plants in cattle. In One Health Triad; Unique Scientific Publishers: Faisalabad, Pakistan, 2023; Volume 3, pp. 194–201. [Google Scholar]
- Kohler, B.; Gigon, A.; Edwards, P.J.; Krusi, B.; Langenauer, R.; Luscher, A. Changes in the species composition and conservation value of limestone grassland in Northern Switzerland after 22 years of contrasting managements. Perspect. Plant Ecol. Evol. Syst. 2005, 7, 51–67. [Google Scholar] [CrossRef]
- Deen, A.U.; Kumari, V.; Sharma, A.N.; Mondal, G.; Singh, G.P. Understanding cyanogenic glycoside toxicity in livestock: A review. Int. Chem. Stud. 2018, 6, 1559–1561. [Google Scholar]
- Harris, B.; Shearer, J. Nitrate, Prussic Acid and Grass Tetany Problems in Cattle Feeding; DS6; Animal Science Department, Florida Cooperative Extension Service, Institute of Food and Agricultural Sciences, University of Florida: Gainesville, FL, USA, 2003; 5p. [Google Scholar]
- Dweikat, I. A diploid, interspecific, fertile hybried from caltivated Sorghum, Sorghum bicolor, and the common Johngrass weed Sorghum helepense. Mol. Breed. 2005, 16, 93–101. [Google Scholar] [CrossRef]
- Venkateswaran, K.; Elangovan, M.; Sivaraj, N. Origin, Domestication, and diffusion of sorghum bicolor. In Breeding Sorghum for Diverse End Uses; Woodhead Publ.: Delhi, India, 2019; pp. 15–31. [Google Scholar]
- Van Saun, R.J. Trace mineral nutrition of sheep. Vet. Clin. Food Anim. Pract. 2023, 39, 517–533. [Google Scholar] [CrossRef] [PubMed]
- T’oth, V.; Lehoczky, E. Investigations on the germination depth of Johnsongrass (Sorghum helepense) pers. Commun. Agric. Appl. Biol. Sci. 2006, 71, 803–808. [Google Scholar]
- Sinha, R.K.; Kumari, B.I.B.H.A.; Kumar, A.N.I.L.; Azad, C.S. Sorghum poisoning in cattle and its therapeutic management. J. AgriSearch 2019, 6, 108–109. [Google Scholar]
- Selk, G. Nitrate and Prussic Poising in Cattle; CR-3272; Oklahoma Cooperative Extension Service: Stillwater, OK, USA, 1988; 6p. [Google Scholar]
- Fletcher, R.A.; Varnon, K.M.; Barney, J.N. Climate drives differences in the germination niche of globally distributed invasive grass. J. Plant Ecol. 2020, 13, 195–203. [Google Scholar] [CrossRef]
- Majumdar, S.; Sanwal, U.; Inderjit. Interference potential of Sorghum halepense on soil and plant seedling growth. Plant Soil. 2017, 418, 219–230. [Google Scholar] [CrossRef]
- Shiferaw, W.; Demissew, S.; Bekele, T. Ecology of soil seed banks: Implications for conservation and restoration of natural vegetation: A review. Int. J. Biodivers. Conserv. 2018, 10, 380–393. [Google Scholar] [CrossRef]
- Netto, A.G.; Christoffoleti, P.; VanGessel, M.; Carvalho, S.J.; Nicolai, M.; Brunharo, C. Seed production, dissemination, and weed seedbanks. In Persistence Strategies of Weeds; John Wiley & Sons: Hoboken, NJ, USA, 2022; pp. 19–42. [Google Scholar]
- Panotra, N.; Ashoka, P.; Vashistha, A.; Mohanty, L.K.; Yadav, V.; Gopal, R.; Parameswari, P.; Kaur, S. Integrated weed management in modern agriculture: A review of innovative approaches and their efficiency. J. Sci. Res. Rep. 2025, 31, 775–797. [Google Scholar] [CrossRef]
- Mashece, W.; Beyene, S.T.; Mndela, M.; Jordaan, G.; Gulwa, U.; Tokozwayo, S. Effect of herbicides on forage dry matter yield and plant density in the old arable lands in communal area of the Eastern Cape Province, South Africa. Int. J. Plant Biol. 2024, 15, 110–121. [Google Scholar] [CrossRef]




| Plant Family | Scientific Name | Type of Cyanogenic Glycoside | Concentration Level | References |
|---|---|---|---|---|
| Gramineae | Sorghum helepense | Dhurin (C14H17NO7) | High | [50,51] |
| Fabaceae | Phaseolus vulgaris | Linamarin (C10H17NO6) | High | [52] |
| Rosaceae | Prunus amygdalus | Prunacin (C14H17NO6) | High | [50] |
| Hydrocyanic Acid (ppm) | Effect on Livestock |
|---|---|
| Less than 500 | Considered safe |
| 500–750 | Slightly toxic, should not be the only source of feed to livestock |
| >750 | Toxic and will cause animal death |
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Tokozwayo, S.; Dumani, A.; Rapiya, M.; Mashece, W.; Kwaza, A.; Mthi, S.; Royimani, L. Ecological Invasion, Impact, and Management of Johnsongrass [Sorghum halepense (L.) Pers.] for Sustainable Livestock Production: A Systematic Review. Ecologies 2026, 7, 51. https://doi.org/10.3390/ecologies7020051
Tokozwayo S, Dumani A, Rapiya M, Mashece W, Kwaza A, Mthi S, Royimani L. Ecological Invasion, Impact, and Management of Johnsongrass [Sorghum halepense (L.) Pers.] for Sustainable Livestock Production: A Systematic Review. Ecologies. 2026; 7(2):51. https://doi.org/10.3390/ecologies7020051
Chicago/Turabian StyleTokozwayo, Sive, Azile Dumani, Monde Rapiya, Wandile Mashece, Ayanda Kwaza, Siza Mthi, and Lwando Royimani. 2026. "Ecological Invasion, Impact, and Management of Johnsongrass [Sorghum halepense (L.) Pers.] for Sustainable Livestock Production: A Systematic Review" Ecologies 7, no. 2: 51. https://doi.org/10.3390/ecologies7020051
APA StyleTokozwayo, S., Dumani, A., Rapiya, M., Mashece, W., Kwaza, A., Mthi, S., & Royimani, L. (2026). Ecological Invasion, Impact, and Management of Johnsongrass [Sorghum halepense (L.) Pers.] for Sustainable Livestock Production: A Systematic Review. Ecologies, 7(2), 51. https://doi.org/10.3390/ecologies7020051

