Altschul SF, Gish W, Miller W, Myers EW, Lipman DJ (1990) Basic local alignment search tool. J Mol Biol 215(3):403–410
PubMed
CAS
PubMed Central
Google Scholar
Atallah J, Teixeira L, Salazar R, Zaragoza G, Kopp A (2014) The making of a pest: the evolution of a fruit-penetrating ovipositor in Drosophila suzukii and related species. Proc R Soc B 281(1781):20132840
PubMed
PubMed Central
Google Scholar
Balagawi S, Drew RA, Clarke AR (2013) Simultaneous tests of the preference-performance and phylogenetic conservatism hypotheses: is either theory useful? Arthropod Plant Interact 7(3):299–313
Google Scholar
Ballabeni P, Wlodarczyk M, Rahier M (2001) Does enemy-free space for eggs contribute to a leaf beetle’s oviposition preference for a nutritionally inferior host plant? Funct Ecol 15(3):318–324. https://doi.org/10.1046/j.1365-2435.2001.00529.x
Article
Google Scholar
Bartelt RJ, Hossain MS (2006) Development of synthetic food-related attractant for Carpophilus davidsoni and its effectiveness in the stone fruit orchards in southern Australia. J Chem Ecol 32(10):2145–2162. https://doi.org/10.1007/s10886-006-9135-7
Article
PubMed
CAS
PubMed Central
Google Scholar
Bartelt RJ, Hossain MS (2010) Chemical ecology of Carpophilus sap beetles (Coleoptera: Nitidulidae) and development of an environmentally friendly method of crop protection. Terr Arth Rev 3(1):29–61
Google Scholar
Batista NN, Ramos CL, Ribeiro DD, Pinheiro ACM, Schwan RF (2015) Dynamic behavior of Saccharomyces cerevisiae, Pichia kluyveri and Hanseniaspora uvarum during spontaneous and inoculated cocoa fermentations and their effect on sensory characteristics of chocolate. LWT- Food Sci Technol 63(1):221–227
CAS
Google Scholar
Beaulieu M, Franke K, Fischer K (2017) Feeding on ripening and over-ripening fruit: interactions between sugar, ethanol and polyphenol contents in a tropical butterfly. J Exp Biol 220(17):3127–3134
PubMed
PubMed Central
Google Scholar
Becher PG et al (2012) Yeast, not fruit volatiles mediate Drosophila melanogaster attraction, oviposition and development. Funct Ecol 26(4):822–828. https://doi.org/10.1111/j.1365-2435.2012.02006.x
Bellutti N, Gallmetzer A, Innerebner G, Schmidt S, Zelger R, Koschier EH (2018) Dietary yeast affects preference and performance in Drosophila suzukii. J Pest Sci 91(2):651–660
Google Scholar
Biere A, Bennett AE (2013) Three-way interactions between plants, microbes and insects. Funct Ecol 27(3):567–573
Google Scholar
Billeter J-C, Wolfner MF (2018) Chemical Cues that Guide Female Reproduction in Drosophila Melanogaster. J Chem Ecol 44(9):750–769
PubMed
CAS
PubMed Central
Google Scholar
Birke A, Aluja M (2018) Do mothers really know best? Complexities in testing the preference-performance hypothesis in polyphagous frugivorous fruit flies. Bull Entomol Res 108(5):674–684
PubMed
CAS
Google Scholar
Blount BA, Driessen MR, Ellis T (2016) GC Preps: Fast and Easy Extraction of Stable Yeast Genomic DNA. Sci Rep 6:26863
PubMed
CAS
PubMed Central
Google Scholar
Cadez N, Poot GA, Raspor P, Smith MT (2003) Hanseniaspora meyeri sp. nov., Hanseniaspora clermontiae sp. nov., Hanseniaspora lachancei sp. nov. and Hanseniaspora opuntiae sp. nov., novel apiculate yeast species. Int J Syst Evol Microbiol 53(5):1671–1680
Christiaens JF et al (2014) The Fungal Aroma Gene ATF1 Promotes Dispersal of Yeast Cells through Insect Vectors. Cell Rep 9(2):425–432. https://doi.org/10.1016/j.celrep.2014.09.009
Cunningham J (2012) Can mechanism help explain insect host choice? J Evol Biol 25(2):244–251
Cunningham JP, Carlsson MA, Villa TF, Dekker T, Clarke AR (2016) Do fruit ripening volatiles enable resource specialism in polyphagous fruit flies? J Chem Ecol 42(9):931–940
PubMed
CAS
Google Scholar
Douglas AE (2013) Microbial brokers of insect-plant interactions revisited. J Chem Ecol 39(7):952–961
PubMed
CAS
PubMed Central
Google Scholar
Dowd PF (1987) A labor-saving method for rearing the driedfruit beetle (Coleoptera: Nitidulidae) on pinto bean-based diet. J Econ Entomol 80(6):1351–1353
Google Scholar
Duetz W, Bouwmeester H, Van Beilen J, Witholt B (2003) Biotransformation of limonene by bacteria, fungi, yeasts, and plants. Appl Microbiol Biotechnol 61(4):269–277
PubMed
CAS
PubMed Central
Google Scholar
Dweck HK et al (2013) Olfactory preference for egg laying on citrus substrates in Drosophila. Curr Biol 23(24):2472–2480
PubMed
CAS
PubMed Central
Google Scholar
Edgar RC (2004) MUSCLE: multiple sequence alignment with high accuracy and high throughput. Nucleic Acids Res 32(5):1792–1797
PubMed
CAS
PubMed Central
Google Scholar
El-Sayed A, Suckling D, Wearing C, Byers J (2006) Potential of mass trapping for long-term pest management and eradication of invasive species. J Econ Entomol 99(5):1550–1564
PubMed
CAS
Google Scholar
Ganter PF (2006) Yeast and invertebrate associations. In: Rosa CA, bor PG (eds) The Yeast Handbook – Biodiversity and Ecophysiology of Yeasts. Springer, Heidelber, pp 303–370
Google Scholar
Gonzalez F (2014) Symbiosis between yeasts and insects. Crop Production Science:3
Gripenberg S, Mayhew PJ, Parnell M, Roslin T (2010) A meta-analysis of preference–performance relationships in phytophagous insects. Ecol Lett 13(3):383–393
PubMed
Google Scholar
Hall TA (1999) BioEdit: a user-friendly biological sequence alignment editor and analysis program for Windows 95/98/NT. Nucleic Acids Symp Ser 41:95–98
CAS
Google Scholar
Hamby KA, Hernandez A, Boundy-Mills K, Zalom FG (2012) Associations of yeasts with spotted-wing drosophila (Drosophila suzukii; Diptera: Drosophilidae) in cherries and raspberries. Appl Environ Microbiol 78(14):4869–4873. https://doi.org/10.1128/AEM.00841-12
Article
PubMed
CAS
PubMed Central
Google Scholar
Hammer Ř, Harper D, Ryan P (2001) PAST: Paleontological Statistics software package for education and data analysis. Palaeontol Electron 4(1):9
Google Scholar
Hofstetter RW, Dinkins-Bookwalter J, Davis TS, Klepzig KD (2015) Symbiotic associations of bark beetles Bark Beetles. Elsevier, p 209–245
Hossain M, Williams D (2003) Phenology of carpophilus beetle populations (Coleoptera: Nitidulidae, Carpophilus spp.) in a fruit dump in northern Victoria. Aust J Exp Agric 43(10):1275–1279
Google Scholar
Hossain MS, Bartelt RJ, Hossain MA, Williams DG, Chandra S (2008) Longevity of pheromone and co-attractant lures used in attract‐and‐kill stations for control of Carpophilus spp. Entomol Exp Appl 129(2):148–156
CAS
Google Scholar
Hossain M, Rettke M, Williams D, Hossain A (2009) Predominant Carpophilus spp. (Coleoptera: Nitidulidae) associated with damaged apricot fruit on trees. Gen Appl Entomol 38:43–48
Google Scholar
James DG, Vogele B (2000) Development and survivorship of Carpophilus hemipterus (L.), Carpophilus mutilatus Erichson and Carpophilus humeralis (F.)(Coleoptera: Nitidulidae) over a range of constant temperatures. Aust J Entomol 39(3):180–184
Google Scholar
James DG, Faulder RJ, Bartelt RJ (1995) Fauna and Seasonal Abundance of Carpophilus spp.(Coleoptera: Nitidulidae) in Four Stone Fruit Growing Regions of Southeastern Australia as Determined by Pheromone-trapping. Austral Entomol 34(4):327–333
Google Scholar
James DG, Faulder RJ, Vogele B, Bartelt RJ, Moore CJ (1997) Phenology of Carpophilus spp.(Coleoptera: Nitidulidae) in stone fruit orchards as determined by pheromone trapping: implications for prediction of crop damage. Austral Entomol 36(2):165–173
Google Scholar
Janisiewicz W, Kurtzman C, Buyer J (2010) Yeasts associated with nectarines and their potential for biological control of brown rot. Yeast 27(7):389–398
PubMed
CAS
PubMed Central
Google Scholar
Keesey IW, Knaden M, Hansson BS (2015) Olfactory specialization in Drosophila suzukii supports an ecological shift in host preference from rotten to fresh fruit. J Chem Ecol 41(2):121–128. https://doi.org/10.1007/s10886-015-0544-3
Article
PubMed
CAS
PubMed Central
Google Scholar
Kimura M (1980) A simple method for estimating evolutionary rates of base substitutions through comparative studies of nucleotide sequences. J Mol Evol 16(2):111–120
PubMed
CAS
PubMed Central
Google Scholar
Klepzig KD, Adams A, Handelsman J, Raffa K (2009) Symbioses: a key driver of insect physiological processes, ecological interactions, evolutionary diversification, and impacts on humans. Environ Entomol 38(1):67–77
PubMed
CAS
PubMed Central
Google Scholar
Kumar S, Stecher G, Tamura K (2016) MEGA7: Molecular Evolutionary Genetics Analysis version 7.0 for bigger datasets. Mol Biol Evol:msw054
Kurtzman C, Robnett C (1997) Identification of clinically important ascomycetous yeasts based on nucleotide divergence in the 5’end of the large-subunit (26S) ribosomal DNA gene. J Clin Microbiol 35(5):1216–1223
PubMed
CAS
PubMed Central
Google Scholar
Lachance M-A, Bowles JM (2002) Metschnikowia arizonensis and Metschnikowia dekortorum, two new large-spored yeast species associated with floricolous beetles. FEMS Yeast Res 2(2):81–86
PubMed
CAS
PubMed Central
Google Scholar
Lachance M-A, Starmer WT, Rosa CA, Bowles JM, Barker JSF, Janzen DH (2001) Biogeography of the yeasts of ephemeral flowers and their insects. FEMS Yeast Res 1(1):1–8
PubMed
CAS
Google Scholar
Lenth R (2018) Emmeans: Estimated marginal means, aka least-squares means. R package version 1(1)
Leschen R, Marris J (2005) Carpophilus (Coleoptera: Nitidulidae) of New Zealand with notes on Australian species. Landc Res Contract Rep: LCO 405/153:1–40
Google Scholar
Levins R, MacArthur R (1969) An hypothesis to explain the incidence of monophagy. Ecology 50(5):910–911
Google Scholar
Macarthur R, Levins R (1967) The limiting similarity, convergence, and divergence of coexisting species. The American Naturalist 101(921):377–385
Mansfield C, Hossain M (2004) The attractiveness of different fermenting food odours to’Carpophilus’ spp.(Coleoptera: Nitidulidae). Gen Appl Ent 33:41–44
Google Scholar
Mayhew PJ (2001) Herbivore host choice and optimal bad motherhood. Trends Ecol Evol 16(4):165–167. https://doi.org/10.1016/s0169-5347(00)02099-1
Article
PubMed
PubMed Central
Google Scholar
McKenzie J, Parsons P (1972) Alcohol tolerance: an ecological parameter in the relative success of Drosophila melanogaster and Drosophila simulans. Oecologia 10(4):373–388
PubMed
CAS
Google Scholar
Miller M, Mrak E (1953) Yeasts associated with dried-fruit beetles in figs. Appl Microbiol 1(4):174
PubMed
CAS
PubMed Central
Google Scholar
Morais P, Rosa C, Mendoncahagler L, Hagler A (1992) Apiculate yeasts with high growth temperatures isolated from Drosophila in Rio-De-Janeiro, RJ, Brazil. Rev De Microbiol 23(3):163–166
Google Scholar
Morais PB, Martins MB, Klaczko LB, Mendonça-Hagler LC, Hagler AN (1995) Yeast succession in the Amazon fruit Parahancornia amapa as resource partitioning among Drosophila spp. Appl Environ Microbiol 61(12):4251–4257
PubMed
CAS
PubMed Central
Google Scholar
Mori BA et al (2017) Enhanced yeast feeding following mating facilitates control of the invasive fruit pest Drosophila suzukii. J Appl Ecol 54(1):170–177
Google Scholar
Murphy KA, Tabuloc CA, Cervantes KR, Chiu JC (2016) Ingestion of genetically modified yeast symbiont reduces fitness of an insect pest via RNA interference. Sci Rep 6:22587
PubMed
CAS
PubMed Central
Google Scholar
Nout MJRa, Bartelt RJ (1998) Attraction of a flying nitidulid (Carpophilus humeralis) to volatiles produced by yeasts grown on sweet corn and a corn-based medium. J Chem Ecol 24(7):1217–1239
CAS
Google Scholar
Paiva MR, Kiesel K (1985) Field responses of Trypodendron spp.(Col., Scolytidae) to different concentrations of lineatin and α-pinene. Zeitschrift für angewandte Entomologie 99(1‐5):442–448
CAS
Google Scholar
Palanca L, Gaskett AC, Gunther CS, Newcomb RD, Goddard MR (2013) Quantifying variation in the ability of yeasts to attract Drosophila melanogaster. PLoS One 8(9):e75332. https://doi.org/10.1371/journal.pone.0075332
Article
PubMed
CAS
PubMed Central
Google Scholar
Paul JS, Tiwari K, Jadhav S (2015) Long term preservation of commercial important fungi in glycerol at 4 C. Int J Biol Chem 9(2):79–85
CAS
Google Scholar
Pietrowski GdAM, dos Santos CMEr, Sauer E, Wosiacki G, Nogueira A (2012) Influence of fermentation with Hanseniaspora sp. yeast on the volatile profile of fermented apple. J Agric Food Chem 60(39):9815–9821
Google Scholar
Piper AM, Farnier K, Linder T, Speight R, Cunningham JP (2017) Two gut-associated yeasts in a tephritid fruit fly have contrasting effects on adult attraction and larval survival. J Chem Ecol 43(9):891–901
PubMed
CAS
Google Scholar
Quan AS, Eisen MB (2018) The ecology of the Drosophila-yeast mutualism in wineries. PloS one 13(5):e0196440
PubMed
PubMed Central
Google Scholar
R CT (2019) R: A language and environment for statistical computing. R Foundation for statistical computing, Vienna
Google Scholar
Scheidler NH, Liu C, Hamby KA, Zalom FG, Syed Z (2015) Volatile codes: Correlation of olfactory signals and reception in Drosophila-yeast chemical communication. Sci Rep 5:14059. https://doi.org/10.1038/srep14059
Article
PubMed
CAS
PubMed Central
Google Scholar
Scheirs J, De Bruyn L (2002) Integrating optimal foraging and optimal oviposition theory in plant–insect research. Oikos 96(1):187–191
Google Scholar
Scheirs J, De Bruyn L, Verhagen R (2000) Optimization of adult performance determines host choice in a grass miner. Proc R Soc B 267(1457):2065–2069
PubMed
CAS
PubMed Central
Google Scholar
Spencer DM, Spencer J, De Figueroa L, Heluane H (1992) Yeasts associated with rotting citrus fruits in Tucumán, Argentina. Mycol Res 96(10):891–892
Google Scholar
Stamps JA, Yang LH, Morales VM, Boundy-Mills KL (2012) Drosophila regulate yeast density and increase yeast community similarity in a natural substrate. PLoS One 7(7):e42238. https://doi.org/10.1371/journal.pone.0042238
Article
PubMed
CAS
PubMed Central
Google Scholar
Starmer WT, Fogleman JC (1986) Coadaptation of Drosophila and yeasts in their natural habitat. J Chem Ecol 12(5):1037–1055
PubMed
CAS
PubMed Central
Google Scholar
Starmer WT, Ganter PF, Aberdeen V, Lachance M-A, Phaff HJ (1987) The ecological role of killer yeasts in natural communities of yeasts. Can J Microbiol 33(9):783–796
PubMed
CAS
PubMed Central
Google Scholar
Stefanini I (2018) Yeast-insect associations: It takes guts. Yeast 35(4):315–330. https://doi.org/10.1002/yea.3309
Article
PubMed
CAS
PubMed Central
Google Scholar
Stockel J, Sureau F (1981) Monitoring for the Angoumois grain moth in corn. In: Mitchell E (ed) Management of insect pests with semiochemicals. Springer Boston MA, p 63–73
Suh S-O, Blackwell M (2004) Three new beetle-associated yeast species in the Pichia guilliermondii clade. FEMS Yeast Res 5(1):87–95
PubMed
CAS
PubMed Central
Google Scholar
Suh S-O, McHUGH JV, Pollock DD, Blackwell M (2005) The beetle gut: a hyperdiverse source of novel yeasts. Mycol Res 109(3):261–265
PubMed
CAS
PubMed Central
Google Scholar
Thompson JN (1988) Evolutionary ecology of the relationship between oviposition preference and performance of offspring in phytophagous insects. Entomol Exp Appl 47(1):3–14
Google Scholar
Urbina H, Schuster J, Blackwell M (2013) The gut of Guatemalan passalid beetles: a habitat colonized by cellobiose-and xylose-fermenting yeasts. Fungal Ecol 6(5):339–355
Google Scholar
Vacek DC, Starmer WT, Heed WB (1979) Relevance of the ecology of citrus yeasts to the diet of Drosophila. Microb Ecol 5(1):43–49
PubMed
CAS
PubMed Central
Google Scholar
Vadkertiová R, Molnárová J, Vránová D, Sláviková E (2012) Yeasts and yeast-like organisms associated with fruits and blossoms of different fruit trees. Can J Microbiol 58(12):1344–1352
PubMed
PubMed Central
Google Scholar
Walter GH (1991) What is resource partitioning? J Theoretical Biology 150(2):137–143
West SA, Cunningham JP (2002) A general model for host plant selection in phytophagous insects. J Theor Biol 214(3):499–513. https://doi.org/10.1006/jtbi.2001.2475
Article
PubMed
PubMed Central
Google Scholar
White TJ, Bruns T, Lee S, Taylor J (1990) Amplification and direct sequencing of fungal ribosomal RNA genes for phylogenetics. PCR protocols: a guide to methods applications 18(1):315–322
Google Scholar
Witzgall P et al (2012) "This is not an apple”-yeast mutualism in codling moth. J Chem Ecol 38(8):949–957. https://doi.org/10.1007/s10886-012-0158-y