FABI News

FABI Events

FABI in a nutshell

Research Features

What is the first thing that comes to mind when somebody mentions stink bugs? Everybody knows that I referred to their odour. Indeed, stink bugs are well known for producing blends of odoriferous compounds. This unpleasant smell come from a specific gland located in their abdomen where are storage severely compounds. These compounds are important for stink bugs to communicate and interact with their environment, especially in dense vegetation. Their odour can communicate an alarm signal amongst themselves, or signals of repulsion or attraction to their natural enemies.

 

Now I can see your question, why odoriferous compounds could be used to protect macadamia nuts? This is quite important for the management because these compounds could be used simultaneously to repulse stink bugs from their host plants, and to attract their natural enemies. In my research, we therefore study communication of stink bugs in order to understand how we can use these chemical messages as control options to protect macadamia orchards in South Africa.

Every year, the macadamia industry is affected by stink bugs, which results in several million rands of estimated crops loss. With no other solutions currently available, the industry is forced to spray a large quantity of insecticides. Although the utilisation of chemicals is a short-term control, understanding the biological characteristics of a species can provide clues to develop sustainable methods for the environment.

In our study, we looked at the two-spotted stink bug, Bathycoelia natalicola (family Pentatomidae). This native species of South Africa was discovered in the 1980s and represents the most dominant pest in macadamia orchards. We determined the gland contents of this bug at different ages, and between male and female. In addition, we analysed the behavioural effect of each of the components present in their blends. We extracted the compounds by two methods: directly by gland extractions, and indirectly with alive insects. We found in the odoriferous blend of males and females more than ten components with at least four main components. Our results show that these components are involved in the alarm behaviour of stink bugs and can be used as a defence toward their enemies. The next step will be to determine the minimum blend of compounds that are essential and sufficient to elicit an equivalent activity to that elicited by components released by live bugs, and the optimal ratio and rate of components that are repellent under field conditions. Identification of pheromone is required in order to exploit their full utility, but these results are the first step for South Africa in the

management control of B. natalicola in macadamia orchards.

Semiochemicals of stink bugs and management, a long journey

Many stink bugs are pests whose importance has increased in consequence of the expansion of

chemical utilisation, giving rise to several research on stink bug semiochemistry since the 80s.

Semiochemicals confer multiple communication functions and may be act as a pheromone,

allomone, kairomone or synomone, depending on the context which it is being used or

exploited by senders and receivers.

Pheromones are used for communication between members of the same species and can be

classify as sex, aggregation or alarm pheromone according to their functional role. Allomones

are components used against another species such as predators and parasitoids, which in the

case of stink bugs refer to their repellent smell. Conversely, natural enemies can used

kairomones of their prey to find them, where the benefit is for the receiver. Plant volatiles are

considered synomones when they attract natural enemies of stink bugs, conferring a mutual

benefit to the plant and enemies.

The utilisation of sex pheromones is the most well-known method of mating disruption in

insects, and widespread for lepidopteran pest control. Several studies on the sex pheromone

baited trap were conducted on stink bugs in the field. Nevertheless, compare to other insects,

stink bugs are more complex and are not easily caught in a simple sex pheromone trap. The

reason for this is their mating behaviour that results in a bimodal communication where a

chemical (sexual pheromone) and an acoustic signal (vibrations) are involved. Nevertheless,

scientists have more than one trick in their bag and they observed that stink bugs have an

aggregation capacity. Important research in USA on the invasive pest Halyomorpha halys, or

the brown marmorated stink bug, are currently conducted on commercial apple orchards where

a trap combined with his aggregation pheromone (discovered in 2014) are tested. Other field

experiments demonstrated the interest of the direct utilisation of the scent of stink bugs as a

spray in orchards to attract natural enemies.

As it the case in another country, the identification of semiochemicals of Bathycoelia natalicola

can provide a new tactic for integrated pest management in the macadamia orchards of South

Africa.

New Publications

Nadasen TR, Hein I, Berger DK. (2026) Structural phylogenetics identifies conserved effector families and cell death-inducing proteins from Cercospora zeina. Molecular Plant-Microbe Interactions First Look 10.1094/MPMI-05-26-0048-R
Mbamali SKS, Mohlomi N, Van Der Nest MA, Mchunu NP, Permaul K. (2026) Reciprocal Genome Projection Reveals Reference-Conditioned Functional Variation in Clinical Aspergillus Section Nigri Isolates. Pathogens 10.3390/pathogens15090941
Schertler A, Lenzner B, Dullinger S, Moser D, García-Rodríguez A, Krisai-Greilhuber I, Voglmayr H, Bufford JL, Santini A, Ghelardini L, Capinha C, Reino L, Wingfield MJ, Thines M, Talhinhas P, Dawson W, van Kleunen M, Kreft H, Pergl J, Pyšek P, Weigelt P, Winter M, Essl F. (2026) Are novel and co-xenic associations common in alien fungal and fungus-like plants pathogens?. New Phytologist 10.1111/nph.71455
Thango S, Nsibo DL, Berger DK, Visagie CM, Slippers B. (2026) Phenotypic variation in the in vitro and in planta aggressiveness traits among Exserohilum turcicum strains from South Africa. Plant Pathology 75(4):e70257. 10.1111/ppa.70257
Bradshaw MJ, Paul A, Villani S, Bensch K, Mitchell KJ, Pfister DH, Visagie CM, Garfinkel AR, Quesada-Ocampo L, Aime MC, Braun U. (2026) Modern taxonomy as the foundation for identifying and managing fungal and fungus like plant pathogens. Plant Disease 10.1094/PDIS-12-25-2537-FE
Balocchi F, Wingfield MJ, Paap T. (2026) Occurrence of Phytophthora cinnamomi in the rhizosphere of declining Leucadendron elimense subsp. salteri in South Africa. Forest Pathology 56(4):e70097. 10.1111/efp.70097 PDF
Pham NQ, Wingfield BD, Marincowitz S, Marpaung YMAN, Selebi AP, Tarigan M, Wingfield MJ. (2026) A novel Cryphonectria species (Cryphonectriaceae, Diaporthales) discovered on Eucalyptus, including insights into the mating biology of the genus. Fungal Biology 130:101831. 10.1016/j.funbio.2026.101831
Kim JS, Lee W, Seo CW, Lee JW, Perera RH, Rho SM, Visagie CM, Houbraken J, Lim YW. (2026) A comprehensive assessment of Penicillium diversity in marine environments. Studies in Mycology 115:1–57. 10.3114/sim.2026.115.01
Jami F, Truter M, Pavlic M, Chen SF, Roux J. (2026) Identification of Botryosphaeriaceae species in the South African National Collection of fungi, including a novel species of Oblongocollomyces. African Biodiversity & Conservation 56(1):1-13. PDF
Vettraino AM, Bose T. (2026) Urban green spaces as emerging hotspots for Phytophthora diversity: a global synthesis of host associations, distribution and management gaps. Frontiers in Forests and Global Change 9:1872981. 10.3389/ffgc.2026.1872981
Burgess TI, Wingfield MJ. (2026) Unveiling a hidden menace: Invasive tree pathogens, less known but increasingly threatening Southern hemisphere forests. Annual Review of Phytopathology 64 10.1146/annurev-phyto-011325-100959
Motete T, Solís M, Hammerbacher A, Naidoo S. (2026) Gene expression profiling in Eucalyptus associates Phenylpropanoid resistance to Teratosphaeria destructans. Plant Pathology 10.1111/ppa.70207
Aylward J, Atkins S, Roets F, Danti R, Della Rocca G, Emiliani G, Fraser S, Garbelotto MM, Herron DA, Scali E, Wingfield BD, Wingfield MJ. (2026) High genetic diversity in the Cypress canker pathogen Seiridium cardinale in the Southern Hemisphere. Plant Pathology 75 10.1111/ppa.70212
van Heerden A, Pham NQ, Duong TA, Wingfield MJ, Wingfield BD. (2026) Draft genome sequence of Ganoderma philippii, a serious root rot pathogen of Eucalyptus in Southeast Asia. Australasian Plant Pathology 55:81. 10.1007/s13313-026-01159-1
Schoeman C, Roodt D, Mc Menamin A, Bezuidt O, Dithugoe C, Pinard D, Mizrachi E. (2026) Conserved symbiosis-associated genes in the cycad Encephalartos natalensis suggest co-option for cyanobacterial symbiosis. New Phytologist 10.1111/nph.71311
Townsend G, Hill M, Hurley BP, Roets F. (2026) Native Scolytinae and Platypodinae beetle assemblages in indigenous South African forests and their co-occurrence with the invasive PSHB beetle. Journal of Insect Conservation 30 10.1007/s10841-026-00779-8
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
Balocchi F, Duncan G, Yilmaz N, Wingfield MJ, Paap T. (2026) The critically endangered geophyte Gladiolus aureus threatened by a wilt disease associated with Fusarium libertatis. Journal of Plant Pathology 10.1007/s42161-026-02227-7 PDF
Bose T, Wingfield MJ. (2026) Plantations are invasive pathogen bridgeheads—response to Li et al.. Trends in Ecology & Evolution 10.1016/j.tree.2026.05.006
Jamieson B-A, Paap T, Pegg GS, Carnegie AJ, Wingfield MJ, Roux J, Hardy GEStJ, Drenth A, Hammerbacher A, Bose T. (2026) Quambalaria spp.: Emerging Tree Pathogens of Concern. Current Forestry Reports 12:13. 10.1007/s40725-026-00274-y
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
Li GQ, Slippers B, Wingfield MJ, Chen SF. (2026) Diversity, distribution and host range of Botryosphaeriaceae in China. Forest Pathology 10.1111/efp.70077