Study on Diversity of Poisonous Weeds in Grassland of the Ili Region in Xinjiang
Abstract
:1. Introduction
2. Materials and Methods
2.1. Research Methods
2.1.1. Field Survey
Route Planning
2.1.2. Plot Survey
Requirements for Plot Establishment
Sample Plot Survey Methods
2.2. Survey Subjects and Content
2.3. Data Statistical Analysis
2.3.1. Species of Poisonous Weeds
2.3.2. Analysis of the Composition Characteristics and Importance Values of Poisonous Weeds
- Importance Value (IV) = [Relative Abundance (Dr) + Relative Coverage (Pr) + Relative Frequency (Fr)]/3;
- Relative Abundance (Dr) = Number of individuals of a particular species/Total number of individuals of all species × 100%;
- Relative Coverage (Pr) = Coverage of a particular species/Sum of coverages of all species × 100%;
- Relative Frequency (Fr) = Frequency of a particular species/Total frequency of all species × 100%.
2.3.3. Species Diversity of Poisonous Weeds Populations
- Species richness (S) = The number of species present in the sample plots;
- Shannon–Wiener Diversity Index H′ = −;
- Simpson Diversity Index D = 1 − ;
- Pielou’s Evenness Index Jsw = H′/lnS
2.3.4. Spatial Distribution Pattern of Poisonous Weeds Populations
2.3.5. Vigor of Dominant Poisonous Weeds
3. Results
3.1. Composition of Poisonous Weeds
3.2. The Composition Characteristics and Importance Values of Poisonous Weeds
3.3. The Species Richness and Diversity of Poisonous Weeds Populations
3.3.1. Analysis of Species Richness in the Population of Poisonous Weeds
3.3.2. The Analysis of Shannon–Wiener Diversity Index (H′) in the Population of Poisonous Weeds
3.3.3. The Analysis of Simpson Diversity Index (D) in the Population of Poisonous Weeds
3.3.4. The Analysis of Pielou’s Evenness Index (Jsw) in the Population of Poisonous Weeds
3.4. The Spatial Distribution Pattern of the Poisonous Weeds Population
3.5. The Growth Status and Distribution Range of Dominant Poisonous Weeds
4. Discussion
5. Conclusions
- In the Ili region, there are a total of 126 species of poisonous plants, belonging to 28 families and 91 genera. Among them, the Asteraceae family has the highest number of poisonous plants, with 24 species; the Fabaceae family has 18 species; the Ranunculaceae family has 10 species; the Amaranthaceae family has 9 species; and the Lamiaceae family has 7 species. These five families account for 61% of the total.
- The Shannon–Wiener index (H′) is highest in the alpine meadow steppe, reaching 3.90, while the other four types of grasslands have Shannon–Wiener indices (H′) ranging from 2.60 to 3.60. Overall, the community richness and evenness in the Ili region is relatively good.
- The Simpson index (D) is highest in the alpine meadow steppe, reaching 0.97, while the Simpson indices (D) for the other four types of grasslands range from 0.91 to 0.96. The environment of suitable growing in the alpine meadow steppe contributes to a greater variety of poisonous weed species, resulting in a relatively high Simpson diversity index (D) for poisonous weeds.
- The evenness index (Jsw) is highest in the temperate desert steppe, reaching 0.88, while the evenness indices (Jsw) for the other four types of grasslands range from 0.75 to 0.86. Although the poisonous grassland area is relatively large in the Ili region, with a relatively uniform distribution in the temperate desert steppe and alpine meadow steppe, when considering all five grassland types together, the evenness of poisonous weeds distribution in the Ili region is relatively low.
- The overall spatial distribution pattern of poisonous weeds populations in the Ili region tends to be aggregated.
- In the Ili region, Huocheng County, Zhosu County, Xinyuan County, Tekesi County, and Nileke County are particularly affected by the harmful presence of poisonous weeds. In these five areas, poisonous weeds occupy a significant amount of growing resources, severely restricting the growth of forage and the grazing of livestock, leading to a continuous decline in the annual income of the pastoralists.
Supplementary Materials
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- James, L.F.; Shupe, J.L.; Binns, W.; Keeler, R.F. Abortive and teratogenic effects of locoweed on sheep and cattle. Am. J. Vet. Res. 1967, 28, 1379–1388. [Google Scholar] [PubMed]
- Marsh, C.D.; McBryde, C.N.; Thom, C.; Schroeder, E.C.; Rogers, L.A.; Pearl, R.; Shaw, R.H.; Gray, C.E.; Eckles, C.H.; Surface, F.M. The Loco-Weed Disease of the Plains; US Department of Agriculture, Bureau of Animal Industry: Washington, DC, USA, 1909; Volume 110. [Google Scholar]
- Green, B.T.; Lee, S.T.; Gardner, D.R.; Welch, K.D.; Cook, D. Bioactive alkaloids from plants poisonous to livestock in North America. Isr. J. Chem. 2019, 59, 351–359. [Google Scholar] [CrossRef]
- Dikareva, T.V.; Malkhazova, S.M.; Rumyantsev, V.Y.; Soldatov, M.S. Effect of arid conditions on the distribution of poisonous plants in the regional biomes of Russia. Arid-Land Ecosyst: Struct. Funct. Manag. 2018, 8, 64–72. [Google Scholar] [CrossRef]
- Riet-Correa, F.; Medeiros, R.M.T.; Schild, A.L. A review of poisonous plants that cause reproductive failure and malformations in the ruminants of Brazil. J. Appl. Toxicol. 2012, 32, 245–254. [Google Scholar] [CrossRef] [PubMed]
- Tokarnia, C.H.; Döbereiner, J.; Peixoto, P.V. Poisonous plants affecting livestock in Brazil. Toxicon 2002, 40, 1635–1660. [Google Scholar] [CrossRef]
- Guitart, R.; Croubels, S.; Caloni, F.; Sachana, M.; Davanzo, F.; Vandenbroucke, V.; Berny, P. Animal poisoning in Europe. Part 1: Farm livestock and poultry. Vet. J. 2010, 183, 249–254. [Google Scholar] [CrossRef]
- Kellerman, T.S.; Naudé, T.; Fourie, N. The distribution, diagnoses and estimated economic impact of plant poisonings and mycotoxicoses in South Africa. Onderstepoort J. Vet. Res. 1996, 63, 65–90. [Google Scholar]
- Kingsbury, J.M. Plants poisonous to livestock. A review. J. Dairy. Sci. 1958, 41, 875–907. [Google Scholar] [CrossRef]
- Koether, K.; Lee, S.T.; Belluci, R.S.; Garcia, R.; Pfister, J.A.; Cunha, P.H.J.; Rocha, N.S.; Borges, A.S.; Oliveira-Filho, J.P. Spontaneous poisoning by Palicourea marcgravii (Rubiaceae) in a sheep herd in southeastern Brazil. Toxicon 2019, 161, 1–3. [Google Scholar] [CrossRef]
- Lei, L.; Sun, W.; He, L.; Jiang, H.; Zhang, M.; He, W.; Hu, Z.; Gu, Y.; Song, H.; Zhang, Y. Cardiotoxicity of Consolida rugulosa, a poisonous weed in Western China. Ecotoxicol. Environ. Saf. 2019, 170, 141–147. [Google Scholar] [CrossRef]
- Li, X.; Wen, J.M.; Fu, X. A review of seed ecology of poisonous plants in the world’s grasslands. Acta Oecol. 2021, 110, 103711. [Google Scholar] [CrossRef]
- Wang, Q.; Li, C.; Pang, Z.; Wu, J.; Da, N.; Wang, D. Main poisonous plants of grassland in China and their control techniques. Acta Agrestia Sin. 2013, 21, 831–841. [Google Scholar]
- Yue, F.; Gao, S.; Cheng, T.; Xu, H.; Ding, W.; Cai, S. Current situation and prospect of grassland pest control in China. Acta Agrestia Sin. 2021, 29, 1615–1620. [Google Scholar]
- Zhao, B.; Lu, H.; Zhou, Q.; Wang, S.; Zhang, L.; Wen, W.; Yang, X. Research status and prevention and control of locoweed ecology and animal locoweed poisoning in natural grassland in China. In Proceedings of the Symposium of Poultry Ecology Branch. of Chinese Society of Animal Husbandry and Veterinary Medicine, Xining, China, 16 July 2014. [Google Scholar]
- Yan, D.; Zhou, Q.; Lu, H.; Wu, C.; Zhao, B.; Cao, D.; Liu, X. Distribution and control measures of poisonous weeds in natural grassland in Xinjiang. Chin. Agric. Sci. 2015, 48, 565–582. [Google Scholar]
- Zhao, B.; Lu, H.; Wu, C. Causes, types, distribution, prevention and control of poisonous weeds in natural grasslands of China. In Proceedings of the New Era Environmental and Health Academic Conference and the Fourth Congress of the Shaanxi Society of Toxicology, San Antonio, TX, USA, 11–15 March 2018. [Google Scholar]
- Zhou, Q.; Lu, H.; Wang, S.; Zhang, L.; Wen, L.; Yang, X. Current status of locoweed ecology and animal locoweed poisoning research and prevention in natural grasslands in western China. Chin. Agric. Sci. 2013, 46, 1280–1296. [Google Scholar]
- Li, J.; Xu, L.; Gao, X.; Zhou, M.; Liu, B. Grazing livestock poison celery poisoning disease. Xinjiang Agric. Sci. 1979, 2, 28–30. [Google Scholar]
- An, S.; Li, H.; Li, X.; Zhang, X. Species distribution and control measures of poisonous weeds in natural grassland of Yili River Valley, Xinjiang. Xinjiang Agric. Sci. 2010, 47, 540–542. [Google Scholar]
- Huang, M.; Shang, Z. Research progress on the management technology of poisonous weeds degraded grassland in the Qinghai-Tibet Plateau. Acta Agrestia Sin. 2019, 27, 1107–1116. [Google Scholar]
- Wu, J.; Yang, P.; Zhang, X.; Shen, Z.; Yu, C. Spatial and climatic patterns of the relative abundance of poisonous vs. non-poisonous plants across the Northern Tibetan Plateau. Environ. Monit. Assess. 2015, 187, 1–19. [Google Scholar] [CrossRef]
- Yue, F.; Li, X.; Yang, D.; Wang, Z.; Xu, Z.; Hua, L.; Xu, X.; Wang, B.; Han, H.; Cai, S. Development and analysis of major grassland pest control indicators in China. Pratac. Sci. 2022, 39, 1773–1781. [Google Scholar]
- Zhao, B.; Liu, Z.; Lu, H. Damage and Control of Poisonous Weed in Western Steppe of China. Chin. Agric. Sci. 2010, 9, 1512–1521. [Google Scholar] [CrossRef]
- Oakes, A.J.; Butcher, J.O. Poisonous and Injurious Plants of the US Virgin Islands; Agricultural Research Service, US Department of Agriculture: Washington, DC, USA, 1962. [Google Scholar]
- Yang, L. Investigation on the Distribution, Harm and Prevention and Control of Poisonous Grass Population in Natural Grassland in Altay, Xinjiang; Northwest A & F University: Xianyang, China, 2019. [Google Scholar]
- DB63/T241-2021; Technical Specifications for Comprehensive Management of Poisonous Grasses in Grassland. Qinghai Provincial Market Supervision Administration: Xining, China, 2021.
- Wei, Y.; Zhao, B.; Wei, S.; Liu, Y. Main Species and Distribution of Toxic Grasses in Natural Grassland of Western China; Beijing Science Press: Beijing, China, 2018. [Google Scholar]
- Zhao, B.; Mo, C. Prevention and Control Technology of Poison Grass Poisoning in Natural Grassland Livestock; Northwest A&F University Press: Xianyang, China, 2017. [Google Scholar]
- Gao, J.; Mei, S.; Li, M. Population structure and distribution of R.japonicum in Fengyangshan Nature Reserve. J. Nanjing For. Univ. Nat. Sci. Ed. 2009, 33, 35–38. [Google Scholar]
- Mori, A.S.; Lertzman, K.P.; Gustafsson, L. Biodiversity and ecosystem services in forest ecosystems: A research agenda for applied forest ecology. J. Appl. Ecol. 2017, 54, 12–27. [Google Scholar] [CrossRef]
- Yu, S.; Jiang, C.; Li, C.; Zhou, G. Effects of human disturbance on understory vegetation diversity in artificial Phyllostachys praecox forest. Sci. Silvae Sin. 2003, 16, 196–202. [Google Scholar]
- Huang, J.; Han, X.; Yang, Q.; Bai, Y. Some problems on the biological and ecological basis of alien species invasion. Biodiversity 2003, 03, 240–247. [Google Scholar]
- Wang, Q.; Deng, H.; Wang, S.; Li, Y. Current situation and thinking of forest ecology research in China. J. For. Res. 2002, 23, 231–234. [Google Scholar]
- Barbier, S.; Gosselin, F.; Balandier, P. Influence of tree species on understory vegetation diversity and mechanisms involved—A critical review for temperate and boreal forests. For. Ecol. Manag. 2008, 254, 1–15. [Google Scholar] [CrossRef]
- Hernandez, P.A.; Graham, C.H.; Master, L.L.; Albert, D.L. The effect of sample size and species characteristics on performance of different species distribution modeling methods. Ecography 2006, 29, 773–785. [Google Scholar] [CrossRef]
- Tong, H.; Yang, M.; Li, S. Quantitative ecology of weeds in orchards in summer. J. Anhui Agric. Sci. 2010, 38, 17558–17562. [Google Scholar]
- Brown, J.H. On the relationship between abundance and distribution of species. Proc. Am. Soc. Zool. 1984, 124, 255–279. [Google Scholar] [CrossRef]
- Liu, D.; Chang, Q. Ecological security research progress in China. Acta Ecol. Sin. 2015, 35, 111–121. [Google Scholar] [CrossRef]
- Guo, B.; Ling, S.; Tan, H.; Wang, S.; Wu, C.; Yang, D. Detectionof the Grassland Weed Phlomoides umbrosa Using Multi-Source Imagery and an Improved YOLOv8 Network. Agronomy 2023, 13, 3001. [Google Scholar] [CrossRef]
- Wu, J.; Li, Y.; Zhong, B.; Liu, Q.; Wu, S.; Ji, C.; Yang, A. Integrated vegetation cover of typical steppe in China based on mixed decomposing derived from high resolution remote sensing data. Sci. Total Environ. 2023, 904, 166738. [Google Scholar] [CrossRef] [PubMed]
- Zhu, J.; Wang, J.; DiTommaso, A.; Zhang, C.; Zheng, G.; Liang, W.; Zhou, W. Weed research status, challenges, and opportunities in China. Crop Prot. 2020, 134, 104449. [Google Scholar] [CrossRef]
Family Name | Genus Number | Species Number | Family Name | Genus Number | Species Number |
---|---|---|---|---|---|
Asteraceae | 19 | 24 | Apiaceae | 2 | 2 |
Fabaceae | 9 | 18 | Zygophyllaceae | 2 | 2 |
Labiatae | 7 | 7 | Thymelaeaceae | 2 | 2 |
Ranunculaceae | 6 | 10 | Urticaceae | 1 | 3 |
Chenopodiaceae | 6 | 9 | Caryophyllaceae | 1 | 2 |
Brassicaceae | 5 | 5 | Euphorbiaceae | 1 | 2 |
Rosaceae | 4 | 5 | Ephedraceae | 1 | 2 |
Orobanchaceae | 3 | 5 | Valerianaceae | 1 | 1 |
Poaceae | 3 | 5 | Campanulaceae | 1 | 1 |
Liliaceae | 3 | 3 | Berberidaceae | 1 | 1 |
Papaveraceae | 3 | 3 | Onagraceae | 1 | 1 |
Polygonaceae | 2 | 5 | Boraginaceae | 1 | 1 |
Gentianaceae | 2 | 3 | Moraceae Gaudich | 1 | 1 |
Solanaceae | 2 | 2 | Convolvulaceae | 1 | 1 |
Grassland Types | Variance | Mean Value | Variance/Mean Value | ResuI |
---|---|---|---|---|
The Ili region | 9.12 | 3.11 | 2.93 | aggregated distribution |
Temperate desert steppe | 5.33 | 2.42 | 2.20 | aggregated distribution |
Temperate typical steppe | 7.62 | 3.06 | 2.49 | aggregated distribution |
Temperate meadow steppe | 9.83 | 3.21 | 3.06 | aggregated distribution |
Alpine typical steppe | 20.53 | 3.71 | 5.53 | aggregated distribution |
Alpine meadow steppe | 5.60 | 2.93 | 1.91 | aggregated distribution |
Poisonous Weed Species | Average Density (Plants/m2) | Average Coverage (%) | Average Height (cm) |
---|---|---|---|
Cannabis sativa | 6.19 ± 3.16 | 46.27 ± 29.20 | 37.32 ± 24.72 |
Salvia deserta Schangin | 4.98 ± 2.75 | 35.54 ± 21.34 | 55.37 ± 21.26 |
Sophora alopecuroides | 4.37 ± 2.88 | 43.93 ± 28.03 | 53.38 ± 33.23 |
Achnatherum inebrians | 3.68 ± 2.31 | 39.17 ± 24.96 | 65.88 ± 32.21 |
Urtica cannabina | 3.66 ± 2.23 | 63.35 ± 27.46 | 93.58 ± 39.36 |
Phlomoides umbrosa (Turcz.) Kamelin & Makhm | 3.55 ± 1.52 | 33.51 ± 23.81 | 52.33 ± 19.29 |
Carduus nutans | 1.89 ± 0.64 | 35.31 ± 4.63 | 61.14 ± 37.51 |
Rumex acetosa | 1.58 ± 0.58 | 35.68 ± 26.95 | 99.97 ± 39.91 |
Onopordum acanthium L. | 1.52 ± 0.59 | 38.73 ± 23.95 | 89.22 ± 38.80 |
Aconitum leucostomum | 1.51 ± 0.74 | 42.51 ± 26.07 | 60.39 ± 32.81 |
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Wang, S.; Cheng, W.; Tan, H.; Guo, B.; Han, X.; Wu, C.; Yang, D. Study on Diversity of Poisonous Weeds in Grassland of the Ili Region in Xinjiang. Agronomy 2024, 14, 330. https://doi.org/10.3390/agronomy14020330
Wang S, Cheng W, Tan H, Guo B, Han X, Wu C, Yang D. Study on Diversity of Poisonous Weeds in Grassland of the Ili Region in Xinjiang. Agronomy. 2024; 14(2):330. https://doi.org/10.3390/agronomy14020330
Chicago/Turabian StyleWang, Sen, Wenliang Cheng, Haiyan Tan, Baoliang Guo, Xiaoqiang Han, Cailan Wu, and Desong Yang. 2024. "Study on Diversity of Poisonous Weeds in Grassland of the Ili Region in Xinjiang" Agronomy 14, no. 2: 330. https://doi.org/10.3390/agronomy14020330
APA StyleWang, S., Cheng, W., Tan, H., Guo, B., Han, X., Wu, C., & Yang, D. (2024). Study on Diversity of Poisonous Weeds in Grassland of the Ili Region in Xinjiang. Agronomy, 14(2), 330. https://doi.org/10.3390/agronomy14020330