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Tree pests and diseases: the threat to biodiversity and the delivery of ecosystem services

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Abstract

The increasing number of invasive pests and pathogens entering North America and Europe indicate that the threat which they pose to forests is increasing concurrently with climate change and globalisation. To date research has mainly focussed on the protection of trees of economic importance. In most countries the major portion of research costs tend to be borne by the state with governments funding tree health research and the implementation of statutory work (risk assessment, border inspection and surveillance), whilst commercial enterprises cover the costs of ongoing management of established pests and pathogens. The costs of responding to new outbreaks tend to be shared with government or regional authorities organising initial response but owners covering subsequent operational costs without state compensation. However in recent years a number of major epidemics have devastated natural ecosystems and landscapes valued both for timber and for their wider benefits to the general public. Against this background it is helpful to consider more explicitly the consequences of pests and pathogens for the full range of ecosystem services. Biodiversity was originally perceived to be an ecosystem service but is now recognised as fundamental in supporting ecological function. Many ecosystem services are uncosted and enjoyed by a range of stakeholders raising important questions about who is responsible for measures to protect tree health. We present data here on the new outbreaks which have occurred in the UK and, as an example of rapid spread of a disease, on the development of Hymenoscyphus fraxineus in the UK over the last 3 years. These data indicate that tree pests and diseases represent a major contemporary problem to which the ecosystem services concept, and its associated implications for cost sharing, can move forward our approach to prevention and outbreak management and may improve the outcomes of international measures to minimise the man-mediated movement and impacts of pests and pathogens.

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References

  • Anagnostakis SL (1987) Chestnut blight: the classical problem of an introduced pathogen. Mycologia 79:23–37

    Article  Google Scholar 

  • Aukema JE, McCullough DG, Von Holle B, Liebhold AM, Britton K, Frankel SJ (2010) Historic accumulation of nonindigenous forests pests in the continental United States. Bioscience 60(11):886–897

    Article  Google Scholar 

  • Berg EE, Henry JD, Fastie CL, De Volder AD, Matsuoka SM (2006) Spruce beetle outbreaks on the Kenai Peninsula, Alaska and Kluane National Park and Reserve, Yukon Territory: relationship to summer temperatures and regional differences in disturbance regimes. For Ecol Manag 227:219–232. doi:10.1016/j.foreco.2006.02.038

    Article  Google Scholar 

  • Boyd IL, Freer-Smith PH, Godfray HCJ, Gilligan CA (2013) The consequence of tree pests and diseases for ecosystem services. Science 342:823–831. doi:10.1126/science.1235773

    Article  CAS  Google Scholar 

  • Brasier CM (2000) Intercontinental spread and continuing evolution of the Dutch elm disease pathogens. In: Dunne CP (ed) The Elms: breeding, conservation and disease management. Kluwer Academic Publishers, Boston, pp 61–72

    Chapter  Google Scholar 

  • Brasier CM (2008) The biosecurity threat to the UK and global environment from international trade in plants. Plant Pathol 57:792–808

    Article  Google Scholar 

  • Brasier CM, Webber JF (2010) Sudden larch death. Nature 466(824–5):824–825

    Article  CAS  PubMed  Google Scholar 

  • Brockerhoff EG, Jactel H, Parrotta JA, Ferraz SFB (2013) Role of eucalypt and other planted forests in biodiversity conservation and the provision of biodiversity-related ecosystem services. For Ecol Manag 301:43–50

    Article  Google Scholar 

  • Brown AV, Webber JF (2003) Red band needle blight of pine. Edinburgh, UK, Forestry Commission Forest Research Information Note 49

  • Defra (2013a) Tree health and plant biosecurity expert taskforce: Final report—May 2013. www.gov.uk/government/publications/tree-health-and-plant-biosecurity-expert-taskforce-final-report

  • Defra (2013b) UK Plant Health Risk Register. www.secure.fera.defra.gov.uk/phiw/riskregister/

  • Denman S, Brown N, Kirk S, Jeger M, Webber J (2014) A description of the symptoms of Acute Oak Decline in Britain and a comparative review on causes of similar disorders on oak in Europe. Forestry 87:535–551. doi:10.1093/forestry/cpu010

    Article  Google Scholar 

  • Ellison AM et al (2005) Loss of foundation species: consequences for the structure and dynamics of forested ecosystems. Front Ecol Environ 3:479–486. doi:10.1890/1540-9295(2005)003[0479:LOFSCF]2.0.CO;2

  • EPPO (2013) Diagnostic protocol PM 7/117 (1) Hymenoscyphus pseudoablidus (anamorph Chalara fraxinea). EPPO Bull 43:449–461

    Article  Google Scholar 

  • Eschen R, Rigaux L, Sukovata L, Vettraino AM, Marzano M, Gregoire J-C (2015a) Phytosanitary inspection of woody plants for planting at European Union entry points: a practical enquiry. Biol Invasions 17:2403–2413

    Article  Google Scholar 

  • Eschen R, Roques A, Santini A (2015b) Taxonomic dissimilarity in patterns of interception and establishment of alien arthropods, nematodes and pathogens affecting woody plants in Europe. Divers Distrib 21:36–45. doi:10.1111/ddi.12267

    Article  Google Scholar 

  • Fargione JE, Tilman D (2005) Diversity decreases invasion via both sampling and complementarity effects. Ecol Lett 8:604–611. doi:10.1111/j.1461-0248.2005.00753.x

    Article  Google Scholar 

  • Fielding NJ, O’Keefe T, King CJ (1991) Dispersal and host-finding capability of the predatory beetle Rhizophagus grandis Gyll. J Appl Entomol 112:89–98

    Article  Google Scholar 

  • Forestry Commission (2012) Biosecurity guidance. www.forestry.gov.uk/pdf/FC_Biosecurity_guidance

  • Gilligan CA, Frasier R, Godfray C, Hanley N, Leather S, Meagher T, Mumford J, Petts J, Pigeon N, Potter C, Shaw MW, Unger J-G, Woodward S (2013) Final report. Tree Health and Plant Biosecurity Expert Taskforce. London: Department for the Environment, Food and Rural Affairs

  • Green S, Webber JF (2012) The emerging threat from Phytophthora to trees in Scotland. Scott For 66:9–16

    Google Scholar 

  • Green S, Elliot M, Armstrong A, Hendry SJ (2015) Phytophthora austrocedrae emerges as a serious threat to juniper (Juniperus communis) in Britain. Plant Pathol 64:456–466. doi:10.1111/ppa.12253

    Article  CAS  Google Scholar 

  • Gross A, Hosoya T, Queloz V (2014) Population structure of the invasive pathogen Hymenoscyphus pseudoalbidus. Mol Ecol 23:2943–2960. doi:10.1111/mec.12792

    Article  PubMed  Google Scholar 

  • IPPC (1997) International plant protection convention. FAO. Corporate document repository http://www.fao.org/docrep/003/x7354e/x7354e05.htm

  • Jactel H, Brockerhoff EG (2007) Tree diversity reduces herbivory by forest insects. Ecol Lett 10(9):835–848

    Article  PubMed  Google Scholar 

  • Jactel H, Birgersson G, Andersson S, Schlyter F (2011) Non-host volatiles mediate associational resistance to the pine processionary moth. Oecologia 166:703–711. doi:10.1007/s00442-011-1918-z

    Article  CAS  PubMed  Google Scholar 

  • Jacobs DF (2007) Toward development of silvicultural strategies for forest restoration of American chestnut (Castanea dentate) using blight-resistant hybrids. Biol Conserv 137:497–506

    Article  Google Scholar 

  • Kurz WA et al (2008) Mountain pine beetle and forest carbon feedback to climate change. Nature 452:987–990. doi:10.1890/11-1412.1

    Article  CAS  PubMed  Google Scholar 

  • Leung B, Lodge DM, Finnoff D, Shogren JF, Lewis MA, Laberti G (2002) An ounce of prevention or a pound of cure: bioeconomic risk analysis or invasive species. Proc R Soc Lond 269(1508):2407–2413. doi:10.1098/rspb.2002.2179

    Article  Google Scholar 

  • Liebhold AM, Brockerhoff EG, Garrett LJ, Parke JL, Britton K (2012) Live plant imports: the major pathway for forest insect and pathogen invasions of the US. Front Ecol Environ 10:135–143

    Article  Google Scholar 

  • Lovett GM, Canham CD, Arthur MA, Weathers KC, Fitzhugh RD (2006) Forest ecosystem responses to exotic pests and pathogens in eastern North America. Bioscience 56:395

    Article  Google Scholar 

  • Morath S, Fielding N, Tilbury C, Jones B (2015) Oriental chestnut gall wasp: news of a recent unwelcome discovery. Q J For 109(4):253–258

    Google Scholar 

  • Mitchell RJ, Beaton JK, Bellamy PE, Broome A, Chetcuti J, Eaton S, Ellis CJ, Gimona A, Harmer R, Hester AJ, Hewison RL, Hodgetts NG, Iason GR, Kerr G, Littlewood NA, Newey S, Potts JM, Pozsgai G, Ray D, Sim DA, Stockan JA, Taylor AFS, Woodward S (2014) Ash dieback in the UK: a review of the ecological and conservation implications and potential management options. Biol Conserv 175:95–109

    Article  Google Scholar 

  • Mullet MS, Baden R, Fraser S, Brown AV, Tubby KV (2015) The population structure of Dothistroma septosporum in Britain. Plant Pathology. doi:10.1111/ppa.12461

    Google Scholar 

  • Preisler HK, Hiche A, Ager AA, Hayes JL (2012) Climate and weather influences on spatial temporal patterns of mountain pine beetle populations in Washington and Oregon. Ecology 93:2421–2434

    Article  PubMed  Google Scholar 

  • Roques A (2010) Alien forest insects in a warmer world and a globalised economy: impacts of changes in trade, tourism and climate on forest biosecurity. N Z J For Sci 40:S77–S94

    Google Scholar 

  • Roy AR, Alexander HM, Davidson J, Campbell FT, Burdon JJ, Sniezko R, Brasier C (2014) Increasing forest loss worldwide from invasive pests requires new trade regulations. Front Ecol Environ 12(8):457–465

    Article  Google Scholar 

  • Santini A, Ghelardini L, De Pace C, Desprez-Loustau ML, Capretti P, Chandelier A, Cech T, Chira D, Diamandis S, Gaitniekis T, Hantula J, Holdenrieder O, Jankovsky L, Jung T, Jurc D, Kirisits T, Kunca A, Lygis V, Malecka M, Marcais B, Schmitz S, Schumacher J, Solheim H, Solla A, Szabo I, Tsopelas P, Vannini A, Vettraino AM, Webber J, Woodward S, Stenlid J (2013) Biogeographical patterns and determinants of invasion by forest pathogens in Europe. New Phytol 197:238–250

    Article  CAS  PubMed  Google Scholar 

  • Smith RM, Baker RHA, Malumphy CP, Hockland S, Hammon RP, Ostojá-Starzewski JC, Collins DW (2007) Recent non-native invertebrate plant pest establishments in Great Britain: origins, pathways, and trends. Agric For Entomol 9:307–326

    Article  Google Scholar 

  • Soja AJ, Tchebakova NM, French NHF, Flannigan MD, Shugart HH, Stocks BJ, Sukhinin AI, Parfenova EI, Chapin FS III, Stackhouse PW (2007) Climate-induced boreal forest change: predictions versus current observations. Glob Planet Chang 56:274–296

    Article  Google Scholar 

  • Straw NA, Williams DT (2013) Impact of the leaf miner Cameraria ohridella (Lepidoptera: Gracillarudae) and bleeding canker on horse chestnut: direct effects and interaction. Agric For Entomol 15:321–333. doi:10.1111/afe.12020

    Article  Google Scholar 

  • Thompson ID, Okabe K, Tylianakis JM, Kumar P, Brockerhoff EG, Schellhorn NA, Parrotta JA, Nasi R (2011) Forest biodiversity and the delivery of ecosystem goods and services: translating science into policy. Bioscience 61(12):972–981. doi:10.1525/bio.2011.61.12.7

    Article  Google Scholar 

  • Thompson ID, Okabe K, Parrotta JA, Brockerhoff E, Jactel H, Forrester DA, Taki H (2014) Biodiversity and ecosystem services: lessons from nature to improve management of planted forests for REDD-plus. Biodivers Conserv 23:2613–2635. doi:10.1007/s10531-014-0736-0

    Article  Google Scholar 

  • Tilman D (2001) Functional diversity. In: Levin SA (ed) Encyclopaedia of Biodiversity, vol 3. Academic Press, San Diego, pp 109–113

    Chapter  Google Scholar 

  • Webber JF (2010) Pest risk analysis and invasion pathways for plant pathogens. N Z J For Sci 40:S45–S56

    Google Scholar 

  • Williamson M, Fitter A (1996) The varying success of invaders. Ecology 77:1661–1666

    Article  Google Scholar 

  • Wingfield MJ, Slippers B, Roux J, Wingfield BD (2001) Worldwide movement of exotic forest fungi, especially in the tropics and the southern hemisphere. Bioscience 51(2):134–140

    Article  Google Scholar 

  • Wingfield MJ, Slippers B, Wingfield BD (2010) Novel associations between pathogens, insects and tree species threaten world forests. N Z J For Sci 40:95–103 (www.scionresearch.com/nzjfs)

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Acknowledgments

We would like to thank the Forestry Commission (FC) for funding this analysis and the FC staff and partner organisations who have contributed to the survey, monitoring and diagnostic work reported here.

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Correspondence to Peter H. Freer-Smith.

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Communicated by Dr. Eckehard Brockerhoff, Dr. Hervé Jactel, Dr. Bryan Finegan and Dr. Ian Thompson.

This is part of the special issue on ‘Forest biodiversity and ecosystem services'.

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Freer-Smith, P.H., Webber, J.F. Tree pests and diseases: the threat to biodiversity and the delivery of ecosystem services. Biodivers Conserv 26, 3167–3181 (2017). https://doi.org/10.1007/s10531-015-1019-0

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