Distribution of Root-Lesion and Stunt Nematodes, and Their Relationship with Soil Properties and Nematode Fauna in Sugarcane Fields in Okinawa, Japan
Abstract
:1. Introduction
2. Materials and Methods
2.1. Study Fields
2.2. Soil Sampling
2.3. Nematode Extraction, Identification and Enumeration
2.4. Physico-Chemical Properties of Soil
2.5. Free-Living Nematode Biodiversity and Maturity Indices
2.6. Statistical Analysis
3. Results
3.1. Nematodes in Sugarcane Fields
3.2. Spatial Distribution of Pratylenchus and Tylenchorhynchus
3.3. Soil Physico-Chemical Properties
3.4. The Relationship between Soil Properties and Abundance of Pratylenchus and Tylenchorhynchus
3.5. Diversity of Free-Living Nematodes
3.6. Nematode Fauna in Sugarcane Fields
4. Discussion
5. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
- Cadet, P.; Spaull, V.W. Nematode parasites of sugarcane. In Plant Parasitic Nematodes in Subtropical and Tropical Agriculture, 2nd ed.; Luc, M., Sikora, R.A., Bridge, J., Eds.; CAB International: Wallingford, UK, 2005; pp. 645–674. [Google Scholar] [CrossRef]
- Berry, S.D.; Fargette, M.; Spaull, V.W.; Morand, S.; Cadet, P. Detection and quantification of root-knot nematode (Meloidogyne javanica), lesion nematode (Pratylenchus zeae) and dagger nematode (Xiphinema elongatum) parasites of sugarcane using real-time PCR. Mol. Cell. Probes 2008, 22, 168–176. [Google Scholar] [CrossRef] [PubMed]
- Blair, B.L.; Stirling, G.R. The role of plant-parasitic nematodes in reducing yield of sugarcane in fine-textured soils in Queensland, Australia. Aust. J. Exp. Agric. 2007, 47, 620–634. [Google Scholar] [CrossRef]
- Cadet, P.; Spaull, V.W. Effect of nematodes on the sustained production of sugarcane in South Africa. Field Crops Res. 2003, 83, 91–100. [Google Scholar] [CrossRef]
- Stirling, G.R.; Blair, B. Nematodes are involved in the yield decline syndrome of sugarcane in Australia. In Proceedings of the XXIV the International Society of Sugar Cane Technologists, Brisbane, Australia, 17–21 September 2001; Hogarth, D.M., Ed.; Australian Society of Sugar Cane Technoloists: Mackay, Australia, 2001; pp. 430–433. [Google Scholar]
- Kawanobe, M.; Miyamaru, N.; Yoshida, K.; Kawanaka, T.; Toyota, K. A field experiment with nematicide treatment revealed potential sugarcane yield loss caused by plant-parasitic nematodes in Okinawa, Japan. Nematol. Res. 2016, 46, 9–16. [Google Scholar] [CrossRef] [Green Version]
- Kawanobe, M.; Miyamaru, N.; Yoshida, K.; Kawanaka, T.; Fujita, T.; Toyota, K. Sugarcane yield loss in the ratoon crop carried over from the plant crop damaged by plant-parasitic nematode in a heavy clay field in Okinawa, Japan. Nematol. Res. 2019, 49, 1–7. [Google Scholar] [CrossRef] [Green Version]
- Okinawa Prefecture Sugarcane Production. Available online: https://www.pref.okinawa.jp/site/norin/togyo/kibi/mobile/seisanjisseki.html (accessed on 23 February 2020).
- FOASTAT. Available online: http://www.fao.org/faostat/en/#home (accessed on 30 September 2019).
- Kawanobe, M.; Toyota, K.; Seko, T.; Gunjima, K. Nematicidal activity of fipronil against Pratylenchus zeae in sugarcane. J. Nematol. 2019, 51, e2019–e2075. [Google Scholar] [CrossRef] [Green Version]
- Kennedy, A.C.; Smith, K.L. Soil microbial diversity and the sustainability of agricultural soils. Plant Soil 1995, 170, 75–86. [Google Scholar] [CrossRef]
- Neher, D.A. Ecology of plant and free-living nematodes in natural and agricultural soil. Annu. Rev. Phytopathol. 2010, 48, 371–394. [Google Scholar] [CrossRef] [Green Version]
- Yeates, G.W.; Bongers, T. Nematode diversity in agroecosystems. Agric. Ecosyst. Environ. 1999, 74, 113–135. [Google Scholar] [CrossRef]
- Mulder, C.; Zwart, D.; Van Wijnen, H.J.; Schouten, A.J.; Breure, A.M. Observational and simulated evidence of ecological shifts within the soil nematode community of agroecosystems under conventional and organic farming. Funct. Ecol. 2003, 17, 516–525. [Google Scholar] [CrossRef]
- Goralczyk, K. Nematodes in a coastal dune succession: Indicators of soil properties? Appl. Soil Ecol. 1998, 9, 465–469. [Google Scholar] [CrossRef]
- Nahar, M.S.; Grewal, P.S.; Miller, S.A.; Stinner, D.; Stinner, B.R.; Kleinhenz, M.D.; Wszelaki, A.; Doohan, D. Differential effects of raw and composted manure on nematode community, and its indicative value for soil microbial, physical and chemical properties. Appl. Soil Ecol. 2006, 34, 140–151. [Google Scholar] [CrossRef]
- Cheng, J.; Karambelkar, B.; Xie, Y. Leaflet: Create Interactive Web Maps with the JavaScript ‘Leaflet’ Library. R Package Version 2.0.3. 2019. Available online: https://CRAN.R-project.org/package=leaflet (accessed on 10 January 2020).
- Okinawa Prefecture Soil Maps. Available online: https://www.pref.okinawa.jp/site/norin/engei/documents/p1-8.pdf (accessed on 24 March 2020).
- Obara, H.; Ohkura, T.; Takata, Y.; Kohyama, K.; Maejima, Y.; Hamazaki, T. Comprehensive soil classification system of Japan first approximation. Bull. Natl. Inst. Agro-Environ. Sci. 2011, 29, 1–73, (In Japanese with English Summary). [Google Scholar] [CrossRef] [Green Version]
- Japan Meteorological Agency. Available online: http://www.data.jma.go.jp/obd/stats/etrn/ (accessed on 23 February 2020).
- GIS Maps. Available online: https://cyberjapandata.gsi.go.jp/xyz/blank/{z}/{x}/{y}.png (accessed on 28 February 2020).
- Geospatial Information Authority of Japan. Available online: https://maps.gsi.go.jp/development/ichiran.html (accessed on 28 February 2020).
- Ingham, R.E.; Trofymow, J.A.; Ingham, E.R.; Coleman, D.C. Interactions of bacteria, fungi, and their nematode grazers: Effects on nutrient cycling and plant growth. Ecol. Monogr. 1985, 55, 119–140. [Google Scholar] [CrossRef]
- Jenkins, W.R. A rapid centrifugal-flotation technique for separating nematodes from soil. Plant Dis. Rep. 1964, 48, 692. [Google Scholar]
- Kawanobe, M.; Miyamaru, N.; Yoshida, K.; Kawanaka, T.; Toyota, K. Plant-parasitic nematodes in sugarcane fields in Kitadaito Island (Okinawa), Japan, as a potential sugarcane growth inhibitor. Nematology 2014, 16, 807–820. [Google Scholar] [CrossRef]
- Kawanobe, M.; Miyamaru, N.; Yoshida, K.; Kawanaka, T.; Toyota, K. Quantification of lesion nematode (Pratylenchus zeae), stunt nematode (Tylenchorhynchus leviterminalis), spiral nematode (Helicotylenchus dihystera), and lance nematode (Hoplolaimus columbus), parasites of sugarcane in Kitadaito, Okinawa, Japan, using real-time PCR. Nematol. Res. 2015, 45, 35–44. [Google Scholar] [CrossRef]
- Teruya, R. Harmful nematodes in Okinawa. Plant Prot. 1971, 25, 458–460. (In Japanese) [Google Scholar]
- Shishida, Y. Nematoda. In Pictorial Keys to Soil Animal of Japan; Aoki, J., Ed.; Tokai University Press: Tokyo, Japan, 1999; pp. 15–38. (In Japanese) [Google Scholar]
- Kawanobe, M.; Toyota, K.; Fujita, T.; Hatta, D. Evaluation of nematicidal activity of fluensulfone against non-target free-living nematodes under field conditions. Agronomy 2019, 9, 853. [Google Scholar] [CrossRef] [Green Version]
- Yeates, G.W.; Bongers, T.D.; De Goede, R.G.M.; Freckman, D.W.; Georgieva, S.S. Feeding habits in soil nematode families and genera—An outline for soil ecologists. J. Nematol. 1993, 25, 315–331. [Google Scholar]
- Kawanobe, M.; Toyota, K.; Uchihara, H.; Takae, M. Developing a real-time PCR diagnostic method for a potential threat to chrysanthemum, Paratylenchus dianthus. J. Nematol. 2019, 51, e2019–e2043. [Google Scholar] [CrossRef] [Green Version]
- Gee, G.W.; Or, D. Particle-size analysis. In Methods of Soil Analysis, Part 4, Physical Methods, SSSA Book Ser. No. 5; Dane, J.H., Ed.; Soil Science Society of America: Madison, WI, USA, 2002; pp. 255–289. [Google Scholar]
- Blakemore, L.C.; Searle, P.L.; Daly, B.K. Methods for chemical analysis of soils. In New Zealand Soil Bureau Scientific Report 80; New Zealand Society of Soil Science: Lower Hutt, New Zealand, 1987; p. 103. [Google Scholar]
- Bongers, T. The maturity index: An ecological measure of environmental disturbance based on nematode species composition. Oecologia 1990, 83, 14–19. [Google Scholar] [CrossRef] [PubMed]
- Bongers, T.; Ferris, H. Nematode community structure as a bioindicator in environmental monitoring. Trends Ecol. Evol. 1999, 14, 224–228. [Google Scholar] [CrossRef]
- R Core Team. R: A Language and Environment for Statistical Computing; R Foundation for Statistical Computing: Vienna, Austria, 2019; Available online: https://www.R.-project.org/ (accessed on 30 July 2019).
- Hothorn, T.; Bretz, F.; Westfall, P. Simultaneous inference in general parametric models. Biom. J. 2008, 50, 346–363. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Bates, D.; Maechler, M.; Bolker, B.; Walker, S. Fitting linear mixed-effects models using lme4. J. Stat. Softw. 2015, 67, 1–48. [Google Scholar] [CrossRef]
- Pebesma, E.J. Multivariable geostatistics in S: The gstat package. Comput. Geosci. 2004, 30, 683–691. [Google Scholar] [CrossRef]
- Graler, B.; Pebesma, E.; Heuvelink, G. Spatio-temporal interpolation using gstat. R J. 2016, 8, 204–218. [Google Scholar] [CrossRef]
- Bray, J.R.; Curtis, J.T. An ordination of the upland forest communities of southern Wisconsin. Ecol. Monogr. 1957, 27, 326–349. [Google Scholar] [CrossRef]
- Oksanen, J.; Blanchet, F.G.; Friendly, M.; Kindt, R.; Legendre, P.; McGlinn, D.; Minchin, P.R.; O’Hara, R.B.; Simpson, G.L.; Solymos, P.; et al. Vegan: Community Ecology Package. R Package Version 2.5-6. 2019. Available online: https://CRAN.R-project.org/package=vegan (accessed on 12 February 2020).
- Wickham, H. ggplot2: Elegant Graphics for Data Analysis; Springer: New York, NY, USA, 2016. [Google Scholar]
- Spaull, V.W.; Cadet, P. Nematodes and nutrients: Association between plant-parasitic nematodes and soil chemicals. In Proceedings of the Annual Congress-South African Sugar Technologists’ Association, South African Sugar Technologists’ Association, Durban, South Africa, 31 July–3 August 2001; pp. 116–117. [Google Scholar]
- Liang, W.; Pinhasi-Adiv, Y.; Shtultz, H.; Steinberger, Y. Nematode population dynamics under the canopy of desert halophytes. Arid Soil Res. Rehab. 2000, 14, 183–192. [Google Scholar] [CrossRef]
- Schmitt, D.P. Population patterns of some stylet-bearing nematodes in a native Iowa prairie. J. Nematol. 1969, 1, 304. [Google Scholar]
- Kheir, A.M.; Shohla, G.S.; Elgindi, D.M. Population behaviour of Tylenchorhynchus clarus infecting Egyptian cotton, Gossypium barbadense, in relation to soil type. J. Plant Dis. Protect. 1977, 84, 663–665. [Google Scholar]
- Norton, D.C.; Frederick, L.R.; Ponchllia, P.E.; Nyhan, J.W. Correlations of nematodes and soil properties in soybean fields. J. Nematol. 1971, 3, 154–163. [Google Scholar] [PubMed]
- Berry, S.D.; Cadet, P.; Spaull, V.W. Nematode pests of sugarcane. In Nematology in South Africa: A View from the 21st Century; Fourie, H., Spaull, V., Jones, R., Daneel, M., De Waele, D., Eds.; Springer: Cham, Switzerland, 2017; pp. 261–284. [Google Scholar]
- Iwahori, H.; Uesugi, K.; Tateishi, Y. Plant-parasitic nematode fauna in upland field crops, fruit trees, and weeds in Okinawa Prefecture, Japan. Kyushu Pl. Prot. Res. 2008, 54, 132–137, (In Japanese with English Summary). [Google Scholar] [CrossRef]
- Kimpinski, J.; Willis, C.B. Influence of soil temperature and pH on Pratylenchus penetrans and P. crenatus in alfalfa and timothy. J. Nematol. 1981, 13, 333–338. [Google Scholar] [PubMed]
- Acosta, N.; Malek, R.B. Influence of temperature on population development of eight species of Pratylenchus on soybean. J. Nematol. 1979, 11, 229–232. [Google Scholar] [PubMed]
- Stirling, G.R.; Rames, E.; Stirling, A.M.; Hamill, S. Factors associated with the suppressiveness of sugarcane soils to plant-parasitic nematodes. J. Nematol. 2011, 43, 135–148. [Google Scholar]
Okinawa-North | Okinawa-South | Miyako | Ishigaki | |||||
---|---|---|---|---|---|---|---|---|
Free-living nematodes | 146 | a | 82 | bc | 128 | ab | 54 | c |
Plant-parasitic nematodes | 372 | a | 273 | ab | 200 | b | 146 | b |
Pratylenchus | 63 | a | 17 | b | 20 | b | 17 | b |
Tylenchorhynchus | 148 | ab | 203 | a | 77 | b | 83 | b |
Helicotylenchus | 153 | a | 21 | b | 64 | b | 23 | b |
Hoplolaimus | 2 | a | 3 | a | 4 | a | 3 | a |
Meloidogyne | 0 | a | 0 | a | 3 | b | 0 | a |
Paratylenchus | 2 | a | 0 | a | 0 | a | 0 | a |
Rotylenchulus | 1 | a | 27 | ab | 32 | b | 12 | ab |
Xiphinema | 0 | a | 0 | a | 0 | a | 0 | a |
Ring nematodes | 3 | ab | 0 | a | 0 | a | 7 | b |
Okinawa-North | Okinawa-South | Miyako | Ishigaki | |||||
---|---|---|---|---|---|---|---|---|
Acrobeloides | 48% | a | 51% | a | 15% | b | 13% | b |
Other Cephalobidae | 16% | a | 15% | a | 15% | a | 19% | a |
Rhabditis | 8% | a | 7% | a | 0% | b | 3% | b |
Other Rhabditidae | 9% | a | 10% | a | 12% | a | 11% | a |
Other bacterivores | 10% | a | 10% | a | 31% | b | 20% | c |
Aphelenchus | 3% | a | 2% | a | 3% | a | 1% | a |
Aphelenchoides | 0% | ac | 0% | a | 3% | b | 2% | bc |
Filenchus | 3% | a | 3% | a | 4% | a | 13% | b |
Ditylenchus | 0% | a | 0% | a | 0% | a | 0% | a |
Dorylaimida | 3% | a | 2% | a | 16% | b | 16% | b |
Predators | 0% | a | 0% | a | 1% | b | 2% | b |
Okinawa-North | Okinawa-South | Miyako | Ishigaki | |||||
---|---|---|---|---|---|---|---|---|
pH (H2O) | 5.4 | a | 8.1 | b | 6.9 | c | 5.8 | a |
pH (KCl) | 4.3 | a | 7.0 | b | 5.9 | c | 4.9 | a |
Soil moisture (%) | 14.1 | a | 14.8 | a | 18.7 | b | 13.8 | a |
EC(mS m−1) | 13.0 | a | 14.3 | a | 13.3 | a | 13.5 | a |
Clay (%) | 32.9 | a | 41.4 | b | 61.6 | c | 29.6 | a |
Silt (%) | 38.4 | a | 49.6 | b | 29.0 | c | 30.2 | c |
Sand (%) | 28.7 | a | 9.1 | b | 9.3 | b | 40.1 | c |
Total C (g C kg−1) | 0.93 | ab | 0.85 | a | 1.17 | b | 0.77 | a |
Total N (g N kg−1) | 0.10 | ab | 0.10 | a | 0.14 | b | 0.09 | a |
Available P (mg P kg−1) | 214.0 | a | 103.0 | a | 87.2 | a | 113.8 | a |
Exch. K+ (cmol kg−1) | 0.3 | a | 0.5 | a | 1.0 | b | 0.6 | a |
Exch. Na+ (cmol kg−1) | 0.1 | a | 0.2 | a | 0.3 | b | 0.1 | a |
Exch. Ca2+ (cmol kg−1) | 11.2 | a | 35.7 | b | 15.9 | a | 7.2 | a |
Exch. Mg2+ (cmol kg−1) | 1.6 | ac | 2.7 | b | 2.5 | ab | 1.1 | c |
CEC (cmol kg−1) | 14.1 | a | 17.9 | b | 17.9 | b | 11.2 | a |
Okinawa-North | Okinawa-South | Miyako | Ishigaki | |||||
---|---|---|---|---|---|---|---|---|
Shannon-Wiener H′ | 2.07 | ab | 1.93 | a | 2.43 | bc | 2.60 | c |
Evenness J′ | 0.90 | ab | 0.84 | a | 1.05 | bc | 1.13 | c |
Number of free-living nematode species | 6.94 | ab | 6.58 | a | 7.50 | ab | 7.81 | b |
Species richness (Margalef index) | 1.50 | a | 1.56 | a | 1.61 | ab | 2.05 | b |
Simpson′s D | 0.34 | ab | 0.38 | a | 0.23 | bc | 0.19 | c |
Maturity Index (MI) | 1.90 | a | 1.87 | a | 2.20 | b | 2.17 | b |
MI (cp2–5) | 1.73 | a | 1.69 | a | 2.08 | b | 2.02 | b |
MI (Cephalobidae adjusted) | 1.26 | a | 1.21 | a | 1.90 | b | 1.84 | b |
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Kawanobe, M.; Sugihara, S.; Miyamaru, N.; Yoshida, K.; Nonomura, E.; Oshiro, H.; Toyota, K. Distribution of Root-Lesion and Stunt Nematodes, and Their Relationship with Soil Properties and Nematode Fauna in Sugarcane Fields in Okinawa, Japan. Agronomy 2020, 10, 762. https://doi.org/10.3390/agronomy10060762
Kawanobe M, Sugihara S, Miyamaru N, Yoshida K, Nonomura E, Oshiro H, Toyota K. Distribution of Root-Lesion and Stunt Nematodes, and Their Relationship with Soil Properties and Nematode Fauna in Sugarcane Fields in Okinawa, Japan. Agronomy. 2020; 10(6):762. https://doi.org/10.3390/agronomy10060762
Chicago/Turabian StyleKawanobe, Masanori, Soh Sugihara, Naoko Miyamaru, Koichi Yoshida, Eito Nonomura, Hiroaki Oshiro, and Koki Toyota. 2020. "Distribution of Root-Lesion and Stunt Nematodes, and Their Relationship with Soil Properties and Nematode Fauna in Sugarcane Fields in Okinawa, Japan" Agronomy 10, no. 6: 762. https://doi.org/10.3390/agronomy10060762
APA StyleKawanobe, M., Sugihara, S., Miyamaru, N., Yoshida, K., Nonomura, E., Oshiro, H., & Toyota, K. (2020). Distribution of Root-Lesion and Stunt Nematodes, and Their Relationship with Soil Properties and Nematode Fauna in Sugarcane Fields in Okinawa, Japan. Agronomy, 10(6), 762. https://doi.org/10.3390/agronomy10060762