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This website serves as a link and resource for the research and forestry community interested in the invasive pest, Sirex noctilio (the Sirex Woodwasp), and its control.

Just over 100 years has passed since the Eurasian woodwasp Sirex noctilio, first appeared outside its native range, in pine plantations of New Zealand. This alien invasive pest, together with its Amylostereum areolatum fungus symbiont, gradually spread, first to Australia and later, in the 1980's to South American countries. Sirex continues to spread in South America and alarmingly, in the early 1990's appeared for the first time on the African continent, in South Africa. Just two year's ago the wasp was encountered in New York and it is now known to be established in eastern North America. In every country where S. noctilio has become established, it has resulted in considerable damage and cost to local economies. There can be no doubt that the global spread of Sirex is set to continue. Special measures and a resurgence of research effort will clearly be required to contain the negative impacts of this scourge to global forests and forestry.

The first appearance of the Eurasian woodwasp in the southern hemisphere led to a period of intensive research on this pest. Substantial attention was given to control options that included the discovery and deployment of various biological control agents such as the wasp parasitoid Ibalia leucospoides and the parasitic nematode Deladenus siricidicola. These agents, together with silvicultural practices to reduce stress in plantations and stop the spread of the wasp, have yielded impressive control of Sirex, particularly in areas where Sirex first appeared. Control of Sirex in areas that it has more recently invaded has yielded variable and sometimes disappointing results. This could be attributed to factors relating to pine hosts new to Sirex, climatic conditions different to those where biological control has been effective, mismatch of biotypes of the wasp, its fungal symbiont or its parasites, or indeed a great number of other factors.

The website contains:

  • LITERATURE - View, download and contribute papers linked to Siricidae, their associated fungi, tree hosts, parasites and control programs.
  • LINKS - Sirex noctilio and Siricid related links

If you wish to contribute images or papers, or would like to join the SIREX LISTSERVER, linking the community of people working on this pest, please This email address is being protected from spambots. You need JavaScript enabled to view it. Bernard Slippers.

New Publications

Botha I, Maduna SN, Hagen SB, Lall N, Berger DK. (2026) 3RAD-guided SNP discovery for species identification and conservation of the medicinal southern African tree Genus Greyia Hook. & Harv.. Ecology and Evolution 16(5):e73412, 1-29. 10.1002/ece3.73412
Masuku SK, De Vos L, Thabiso TE, Steenkamp ET, Wingfield BD. (2026) Baseline sensitivity of South African Fusarium circinatum to tebuconazole. Journal of Plant Pathology 10.1007/s42161-026-02197-w
Fitawek W, Anjulo A, Healey M, Lawson SA, Hurley BP. (2026) The Moringa value chain in Ethiopia and the socio-economic impact of pests and diseases. CABI Agriculture and Bioscience 10.1079/ab.2026.00041 PDF
Lynn KMT, Wingfield MJ, Oliveira LSS, Alfenas AC, Ferreira Alfenas RF, Marincowitz S, Barnes I. (2026) Phylogenetic and population genetic analyses reveal patterns of divergence amongst isolates of Ceratocystis manginecans. Ecology and Evolution 16 10.1002/ece3.73652
Dlamini CM, Matongera TN, Lawson SA, Healey M, Tanga A, Regasa K, Kassie W, Hurley BP, Germishuizen I. (2026) Modelling spatiotemporal dynamics of wattle plantations in northwestern Ethiopia using harmonised PlanetScope and RapidEye imagery. Trees, Forests and People 25:101293. 10.1016/j.tfp.2026.101293 PDF
Ndou M, Potts WM, Duong TA, Teske PR, Childs AR, Henriques R. (2026) Conspecific scaffold-level genome assembly outperforms heterospecific chromosome-level assemblies for assessing genetic indicators in a threatened marine fish. Evolutionary Applications 19:e70247. 10.1111/eva.70247
Marx B, van Dijk A, Steenkamp ET, Wingfield MJ, Wingfield BD. (2026) Breaking the mould: Cellulose in the cell walls of the Ophiostomatales. Fungal Biology Reviews 57 10.1016/j.fbr.2026.100489
Wingfield BD, Coetzee MPA, Wingfield BJ, Groenewald M, Pohl C, Wingfield MJ. (2026) The genetic blueprint of Cyclohexamide resistance: Analysis of 816 yeast species. Research Square 10.21203/rs.3.rs-9313202/v1
Paap T, White D, Bose T, Burgess TI. (2026) Diversity and phylogeny of Phytophthora Clade 9, including descriptions of three novel species. Mycological Progress 25:29. 10.1007/s11557-026-02140-4
Kgatla MM, Barker C, Baxter JR, Bester-van der Merwe AE, Chaisi M, Chakona A, Cherry MI, Daniels SR, Du Preez LH, Haddad CR, Hawkes PG, Ho C, Hoareau TB, Jacobs A, Jacobs K, Janion-Scheepers C, Jansen van Vuuren B, Kabongo RM, Khoza TT, Khumalo NL, Mahlanza T, Makapela L, Makhubo BG, Maneveldt GW, Mashego K, Matcher G, Matthee CA, Mavhunga M, Midgley JM, Mlambo M, Monsanto DM, Mthombeni R, Murray SL, Mynhardt S, Nang-Mba B, Ndlovu M, Parbhu SP, Phetla V, Phukuntsi M, Pitcher TR, Samaai T, Sethusa MT, Simon CA, Sink K, Sole CL, Theron GL, van Asch B, van der Bank M, van Steenderen CJM, Villet MH, Visagie CM, Williams KA, Willows-Munro S, Da Silva JM, Mwale M. (2026) An overview of DNA barcoding of biodiversity in South Africa. PLOS ONE 21(4):e0345173. 10.1371/journal.pone.0345173