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Forest regrowth reduces richness and abundance of invasive alien plant species in community managed Shorea robusta forests of central Nepal

  • Received : 2020.04.25
  • Accepted : 2020.06.11
  • Published : 2020.06.30

Abstract

Background: Natural forests are generally considered to be less prone to biological invasions than other modified ecosystems, particularly when canopy cover is high. Few decades of management of degraded forests by local communities in Nepal has increased canopy cover and altered disturbance regimes. These changes might have reduced the abundance of invasive alien plant species (IAPS) in forests. To understand the status of IAPS in such forests, we studied two community managed Shorea robusta forests (Sundari and Dhusheri) of Nawalpur district in central Nepal. In these two forests, vegetation sampling was done using circular plots 10 m radius at forest edge, gaps, and within canopy. Variation of IAPS richness and cover across these microhabitats were compared, and their variation with tree canopy cover and basal area analyzed. Result: Altogether 14 IAPS were recorded in the study forests; among them Chromolaena odorata, Ageratum houstonianum, and Lantana camara had the highest frequency. Mikania micrantha was at the early stage of colonization in Sundari Community Forest (CF) but absent in Dhuseri CF. Both IAPS cover and richness was higher at forest edge and gap than in canopy plots and both these attributes declined with increasing canopy cover and tree basal area. Conclusion: The results indicate that increase in canopy cover and closure of forest gaps through participatory management of degraded forests can prevent plant invasions and suppress the growth of previously established IAPS in Shorea robusta forests of Nepal. This is the unacknowledged benefit of participatory forest management in Nepal.

Keywords

References

  1. Armonk NY: IBM Corp. IBM SPSS Statistics for Windows, Version 20.0. 2011.
  2. Baret S, Cournac B, Edwards CP, Strasberg D. Effects of canopy gap size on recruitment and invasion of the non-indigenous Rubus alceifolius in lowland tropical rain forest of Reunion. J Trop Ecol. 2008;24:337-45. https://doi.org/10.1017/S0266467408004987
  3. Belnap J, Phillips SL, Sherrod SK, Moldenke A. Soil biota can change after exotic plant invasion: does this affect ecosystem processes? Ecology. 2005;86:3007-17. https://doi.org/10.1890/05-0333
  4. Bhatta S. Distribution Mapping and Impact Assessment of Invasive Alien Plant Species in Bardia National Park, Western Nepal [MSc thesis]. Kathmandu, Nepal: Central Department of Botany, Tribhuvan University; 2019.
  5. Bremner A, Park K. Public attitudes to the management of invasive non-native species in Scotland. Biol Conserv. 2007;139:306-14. https://doi.org/10.1016/j.biocon.2007.07.005
  6. Burnham KM, Lee TD. Canopy gaps facilitate establishment, growth, and reproduction of invasive Frangula alnus in a Tsuga canadensis dominated forest. Biol Invasions. 2010;12:1509-20. https://doi.org/10.1007/s10530-009-9563-8
  7. Chaudhary R, Shrestha BB, Thapa H, Siwakoti M. Status and impacts of invasive alien plant species in Parsa National Park, central Nepal. Banko Janakari. 2020;30(1):21-31. https://doi.org/10.3126/banko.v30i1.29179
  8. Daubenmire R. A Canopy-coverage method of vegetational analysis. Northwest Sci. 1959;33:43-64.
  9. DCFUG. Constitution of Dhuseri Community Forest User Group [Nepali]. Nawalpur, Nepal: Dhuseri Community Forest User Group (DCFUG); 2007.
  10. Ehrenfeld JG. Effects of exotic plant invasions on soil nutrient cycling processes. Ecosystems. 2003;6:503-23. https://doi.org/10.1007/s10021-002-0151-3
  11. Foxcroft LC, Jarosik V, Pysek P, Richardson DM, Rouget M. Protected-area boundaries as filters of plant invasions. Conservation Biology. 2011;25:400-5. https://doi.org/10.1111/j.1523-1739.2010.01617.x
  12. Funk JL. The physiology of invasive plants in low resource environments. Conserv Physiol. 2013;1:1-16.
  13. Guo Q, Brockway DG, Larson DL, Wang D, Ren H. Improving ecological restoration to curb biotic invasion-a practical guide. Invasive Plant Sci Manag. 2018;11:163-74. https://doi.org/10.1017/inp.2018.29
  14. Hartman KM, McCarthy BC. Changes in forest structure and species composition following invasion by a non-indigenous shrub, Amur honeysuckle (Lonicer amaackii). J Torrey Bot Soc. 2008;135:245-59. https://doi.org/10.3159/07-RA-036.1
  15. Joshi AA, Mudappa D, Shankar TR. Invasive alien species in relation to edges and forest structure in tropical rainforest fragments of the Western Ghats. Trop Ecol. 2015;56:233-44.
  16. Lockwood JL, Cassey P, Blackburn T. The role of propagule pressure in explaining species invasions. Trends Ecol Evol. 2005;20:223-5. https://doi.org/10.1016/j.tree.2005.02.004
  17. Lowe S, Browne M, Boudjelas S, Poorter DM. 100 of the World's Worst Invasive Alien Species. A selection from the Global Invasive Species Database. Auckland, New Zealand: The Invasive Species Specialist Group (ISSG); 2002.
  18. Ludecke D, Makowski D, Waggoner P, Patil I. Performance: assessment of regression models performance. R package version 0.4.5. https://CRAN.Rproject.org/package=performance. 2020.
  19. Martin PH, Canham CD, Marks PL. Why forests appear resistant to exotic plant invasions: intentional introductions stand dynamics, and the role of shade tolerance. Front Ecol Environ. 2009;7:142-9. https://doi.org/10.1890/070096
  20. Matlack GR. Vegetation dynamics of the forest edge-trends in space and successional time. J Ecol. 1994;82:113-23. https://doi.org/10.2307/2261391
  21. Mavimbela LZ, Sieben EJJ, Proches S. Invasive alien plant species, fragmentation and scale effects on urban forest community composition in Durban. South Africa. New Zeal J For Sci. 2018;48:19. https://doi.org/10.1186/s40490-018-0124-8.
  22. McNab WH, Loftis DL. Probability of occurrence and habitat features for oriental bittersweet in an oak forest in the sourthern Appalachian Mountains. USA. Forest Ecol Manag. 2002;155:45-54. https://doi.org/10.1016/S0378-1127(01)00546-1
  23. MFSC. Nepal National Biodiversity Strategy and Action Plan 2014-2020. Kathmandu, Nepal: Ministry of Forest and Soil Conservation (MFSC); 2014.
  24. Minden V, Jacobi J, Porembski S, Boehmer H. Effects of invasive alien kahili ginger (Hedy chium gardnerianum) on native plant species regeneration in a Hawaiian rainforest. Appl Veg Sci. 2010;13:5-14. https://doi.org/10.1111/j.1654-109X.2009.01056.x
  25. Norbu N. Invasion Success of Chromolaena odorata in the Tarai of Nepal [MSc thesis]. International Institute for Geo-information Science and Earth Observation: Enschede, The Netherlands; 2004.
  26. Oldekop JA, Sims KR, Karna BK, Whittingham MJ, Agrawal A. Reductions in deforestation and poverty from decentralized forest management in Nepal. Nature Sustainability. 2019;2:421-8. https://doi.org/10.1038/s41893-019-0277-3
  27. Parendes LA, Jones JA. Role of light availability and dispersal in exotic plant invasion along roads and streams in the H.J. Andrews Experimental Forest, Oregon. Conserv Biol. 2000;14:64-75. https://doi.org/10.1046/j.1523-1739.2000.99089.x
  28. Prasad A, Ratnam J, Sankaran M. Rainfall and removal method influence eradication success for Lantana camara. Biol Invasions. 2018;20:3399-407. https://doi.org/10.1007/s10530-018-1785-1
  29. R Development Core Team. R: A Language and environment for Statistical Computing. R Foundation for Statistical Computing Vienna. 2016. Available at: http://www.R-project.org/.
  30. Rai RK, Scarborough H, Subedi N, Lamichhane BR. Invasive plants - do they devastate or diversify rural livelihoods? Rural farmers' perception of three invasive plants in Nepal. Nat Conserv. 2012;20:170-6. https://doi.org/10.1016/j.jnc.2012.01.003
  31. SCFUG. Constitution of Sundari Community Forest User Group [Nepali]. Nawalpur, Nepal: Sundari Community Forest User Group (SCFUG); 2007.
  32. Shrestha BB, Invasive alien plant species in Nepal. In: Jha PK, Siwakoti M, Rajbhandary S, editors. Frontiers of botany. Kathmandu: Central Department of Botany, Tribhuvan University; 2016. p. 269-284.
  33. Shrestha BB, Management of invasive alien plant species in Nepal: current practices and future prospects. In: Garkoti SC, van Bloem S, Fule PZ, RL Semwal, editors. Tropical ecosystems: structure, functions and global change. Singapore: Springer Nature; 2019. p. 45-68.
  34. Shrestha BB, Joshi-Rijal S, Bisht N, Yi S, Kotru R, Chaudhary RP, Wu N, Inventory and impact assessment of invasive alien plant species in Kailash Sacred Landscape. ICIMOD Working Paper 2018/2. Kathmandu, Nepal: International Center for Integrated Mountain Development (ICIMOD); 2018.
  35. Shrestha BB, Shrestha UB, Sharma KP, Thapa-Parajuli RB, Devkota A, Siwakoti M. Community perception and prioritization of invasive alien plants in Chitwan-Annapurna Landscape. Nepal. J Environ Manage. 2019;229:38-47. https://doi.org/10.1016/j.jenvman.2018.06.034
  36. Shrestha UB, Shrestha BB, Shrestha S. Biodiversity conservation in community forests of Nepal: Rhetoric and reality. International J Biodivers Conserv. 2010;2:98-104.
  37. Siwakoti M, Shrestha BB, Devkota A, Shrestha UB, Parajuli RBT, Sharma KP. Assessment of the effects of climate change on the distribution of invasive alien species in Nepal. In: Bhuju DR, Claughlin KM, Sijapati J, Devkota BD, Shrestha N, Ghimire GP, Neupane PK, editors. Building knowledge for climate resilience in Nepal: research briefs. Lalitpur, Nepal: Nepal Academy of Science and Technology; 2016. p. 5-8.
  38. Thapa-Magar KB, Shrestha BB. Carbon stock in community managed hill sal (Shorea robusta) forests of central Nepal. J Sustain Forest. 2015;34(5):483-501. https://doi.org/10.1080/10549811.2015.1031251
  39. Tiwari S, Siwakoti M, Adhikari B, Subedi K. An inventory and assessment of invasive alien plant species of Nepal. IUCN- The World Conservation Union, Nepal: Kathmandu, Nepal; 2005.
  40. Vargas R, Gartner S, Alvarez M, Hagen E, Reif A. Does restoration help the Conservation of the threatened forest of Robinson Crusoe Island? The impact of forest gap attributes on endemic plant species richness and exotic invasions. Biodivers Conserv. 2013;22:1283-300. https://doi.org/10.1007/s10531-013-0461-0
  41. Wickham H. ggplot2: Elegant graphics for data analysis. New York: Springer-Verlag; 2016.
  42. Witkowski ETF, Wilson M. Changes in density, biomass, seed production and soil seed banks of the non-native invasive plant, Chromolaena odorata, along a 15 year chronosequence. Plant Ecology. 2001;152:13-27. https://doi.org/10.1023/A:1011409004004
  43. Wittenberg R, Cock MJ, editors. Invasive alien species: a toolkit of best prevention and management practices. Wallingford, Oxon, UK: CAB International; 2001.
  44. Yamamoto SI. Forest gap dynamics and tree regeneration. J Forest Res. 2000;5:223-9. https://doi.org/10.1007/BF02767114
  45. Zachariades C, Day M, Muniappan R, Reddy GVP. Chromolaena odorata (L.) King and Robinson (Asteraceae). In: Muniappan R, Reddy GVP, Raman A, editors. Biological control of tropical weeds using arthropods. Cambridge, UK: Cambridge University Press; 2009. p. 130-162.
  46. Zobel DB, Jha PK, Behan MJ, Yadav UKR. A Practical Manual for Ecology. Ratna Pustak Distributors: Kathmandu, Nepal; 1987.

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