Abstract
Pollen is a valuable source of germplasm for breeding and has few associated pests compared with other sources of genetic material. This review seeks to assist the development of appropriate phytosanitary measures by considering the pests that are transmitted by pollen. There are no invertebrates, bacteria, phytoplasmas or spiroplasmas that are pollen-transmitted. Only a limited number of fungal pathogens are associated with the pollen of a restricted number of hosts. In contrast, 39 viruses are pollen-transmitted and a further six are tentatively considered to be pollen-transmitted. The majority of these viruses belong to the Alphacryptovirus, Ilarvirus, Nepovirus or Potyvirus genera. Five viroids have also been identified as being pollen-transmitted.
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Adams AN, Clark MF, Barbara DJ (1989) Host range, purification and some properties of a new ilarvirus from Humulus japonicus. The Annals of Applied Biology 114, 497–508.
Allen WR, Davidson TR (1967) Tomato bushy stunt virus from Prunus avium L.: 1. Field studies and virus characterisation. Canadian Journal of Botany 45, 2375–2383.
Anonymous (2006) International Standards for Phytosanitary Measures No. 02 (1995). Guidelines for pest risk analysis. Commission on Phytosanitary Measures. Available at https://www.ippc.int/servlet/ CDSServlet?status=ND0xMzM5OSY2PWVuJjMzPSomMzc9a29z [Verified 28 June 2007]
Antignus Y, Lachman O, Pearlsman M (2007) Spread of Tomato apical stunt viroid (TASVd) in greenhouse tomato crops is associated with seed transmission and bumble bee activity. Plant Disease 91, 47–50. doi: 10.1094/PD-91-0047
Aparicio F, Sanchez-Pina MA, Sanchez-Navarro JA, Pallas V (1999) Location of Prunus necrotic ringspot ilarvirus within pollen grains of infected nectarine trees: evidence from RT-PCR, dot-blot and in situ hybridisation. European Journal of Plant Pathology 105, 623–627. doi: 10.1023/A:1008783705183
Aramburu J, Rovira M (2000) Incidence and natural spread of apple mosaic ilarvirus in hazel in north-east Spain. Plant Pathology 49, 423–427. doi: 10.1046/j.1365-3059.2000.00477.x
Arancibia RA, Valverde RA, Can F (1995) Properties of a cryptic virus from pepper (Capsicum annuum). Plant Pathology 44, 164–168.
Blackstock JM (1978) Lucerne transient streak and lucerne latent, two new viruses of lucerne. Australian Journal of Agricultural Research 29, 291–304. doi: 10.1071/AR9780291
Boccardo G, Lisa V, Luisoni E, Milne RG (1987) Cryptic plant viruses. Advances in Virus Research 32, 171–214.
Bos L (1983) ‘Introduction to plant virology.’ (Longman Group Ltd.: Essex)
Boylan-Pett W, Ramsdell DC, Hoopingarner RA, Hancock JF (1991) Honeybee foraging behaviour, in-hive survival of infectious, pollen-borne blueberry leaf mottle virus and transmission of the virus in highbush blueberry. Phytopathology 81, 1407–1412.
Bristow PR, Martin RR (1999) Transmission and the role of honeybees in field spread of Blueberry shock ilarvirus, a pollen-borne virus of highbush blueberry. Phytopathology 89, 124–130. doi: 10.1094/PHYTO.1999.89.2.124
Brlansky RH, Carroll TW, Zaske SK (1986) Some ultra-structural aspects of the pollen transmission of barley stripe mosaic virus in barley. Canadian Journal of Botany 64, 853–858.
Brunt A, Crabtree K, Dallwitz M, Gibbs A, Watson L (1996) ‘Viruses of plants: descriptions and lists from the VIDE database.’ (CABI International: Wallingford)
Callahan KL (1957) Pollen transmission of elm mosaic virus. Phytopathology 47, 5.
Camargo IJB, Kitajima EW, Costa AS (1969) Visualization of the pepper ringspot virus in tomato pollen. Phytopathologische Zeitschrift 64, 282–285.
Carroll TW, Mayhew DE (1976) Anther and pollen infection in relation to the pollen and seed transmissibility of two strains of barley stripe mosaic virus in barley. Canadian Journal of Botany 54, 1604–1621.
Childress AM, Ramsdell DC (1986) Detection of blueberry leaf mottle virus in highbush blueberry pollen and seed. Phytopathology 76, 1333–1337.
Childress AM, Ramsdell DC (1987) Bee-mediated transmission of blueberry leaf mottle virus via infected pollen in highbush blueberry. Phytopathology 77, 167–172.
Cole A, Mink GI, Regev S (1982) Location of prunus necrotic ringspot virus on pollen grains from infected almond and cherry trees. Phytopathology 72, 1542–1545.
Converse RH (1991) Pollen-transmitted diseases: Raspberry Bushy Dwarf. In ‘Compendium of raspberry and blackberry diseases and insects’. (Eds MA Ellis, RH Converse, RN Williams, B Williamson) pp. 51–52. (APS Press: St Paul, MN)
Converse RH, Lister RM (1969) The occurrence and some properties of Black raspberry latent virus. Phytopathology 59, 325–333.
Cooper JI, Massalski PR, Edwards ML (1984) Cherry leaf roll virus in the female gametophyte and seed of birch and its relevance to vertical virus transmission. The Annals of Applied Biology 105, 55–64.
Cory L, Hewitt WB (1968) Some grapevine viruses in pollen and seed. Phytopathology 58, 1316–1319.
Das CB, Milbeath JS, Swenson KG (1961) Seed and pollen transmission of prunus ringspot virus in buttercup squash. Phytopathology 51, 64.
de Assis FM, Sherwood JL (2000) Evaluation of seed transmission of Turnip yellow mosaic virus and Tobacco mosaic virus in Arabidopsis thaliana. Phytopathology 90, 1233–1238. doi: 10.1094/PHYTO.2000.90.11.1233
Desjardins PR, Drake RJ, Atkins EL, Bergh BO (1979) Pollen transmission of avocado sunblotch viroid experimentally demonstrated. California Agriculture 33, 14–15.
Desjardins PR, Drake RJ, Sasaki PJ, Atkins EL, Bergh BO (1984) Pollen transmission of avocado sunblotch viroid and the fate of the pollen recipient tree. Phytopathology 74, 845.
Evans TA, Stephens CT (1988) Association of asparagus virus II with pollen from infected asparagus (Asparagus officinalis). Plant Disease 72, 195–198. doi: 10.1094/PD-72-0195
Fernow KH, Peterson LC, Plaisted RL (1970) Spindle tuber viroid in seeds and pollen of infected potato plants. American Potato Journal 47, 75–80.
Francki RIB, Miles R (1985) Mechanical transmission of sowbane mosaic virus carried on pollen from infected plants. Plant Pathology 34, 11–19.
Frosheiser FI (1974) Alfalfa mosaic virus transmission to seed through alfalfa gametes and longevity in alfalfa seed. Phytopathology 64, 102–105.
Gallitelli D, Finetti-Sialer M, Martelli GP (2005) Anulavirus, a proposed new genus of plant viruses in the family Bromoviridae. Archives of Virology 150, 407–411. doi: 10.1007/s00705-004-0450-4
Gaspar JO, Vega J, Camargo IJB, Costa AS (1984) An ultrastructural study of particle distribution during microsporogenesis in tomato plants infected with the Brazilian tobacco rattle virus. Canadian Journal of Botany 62, 372–378.
Gilmer RM (1965) Additional evidence of tree-to-tree transmission of Sour cherry yellows virus by pollen. Phytopathology 55, 482–483.
Gold AH, Suneson CA, Houston BR, Oswald JW (1954) Electron microscopy and seed and pollen transmission of rod-shaped particles associated with the false stripe virus disease of barley. Phytopathology 44, 115–117.
Greber RS, Klose MJ, Teakle DS, Milne JR (1991) High incidence of tobacco streak virus in tobacco and its transmission by Microcephalothrips abdominalis and pollen from Ageratum houstonianum. Plant Disease 75, 450–452.
Hadidi A, Flores R, Randles JW, Semancik JS (2003) ‘Viroids.’ (Science Publishers Inc.: Enfield, NH)
Hamilton RI, Leung E, Nichols C (1977) Surface contamination of pollen by plant viruses. Phytopathology 67, 395–399.
Hardy VG, Teakle DS (1992) Transmission of sowbane mosaic virus by Thrips tabaci in the presence and absence of virus-carrying pollen. The Annals of Applied Biology 121, 315–320.
Hearon SS, Locke JC (1984) Graft, pollen, and seed transmission of an agent associated with top spotting in Kalanchoë blossfeldiana. Phytopathology 74, 347–350.
Hemmati K, McLean DL (1977) Gamete-seed transmission of alfalfa mosaic virus and its effect on seed germination and yield in alfalfa plants. Phytopathology 67, 576–579.
Hollings M, Komuro Y, Tochihara H (1975) Cucumber green mottle mosaic virus. Descriptions of plant viruses. Available at http://www.dpvweb. net/dpv/showdpv.php?dpvno=154 [Verified 27 June 2007]
Huang HC (2003) Verticillium wilt of alfalfa: epidemiology and control strategies. Canadian Journal of Plant Pathology 25, 328–338.
Hull R (2004a) Southern bean mosaic virus. Descriptions of plant viruses. Available at http://www.dpvweb.net/dpv/showdpv.php?dpvno=408 [Verified 27 June 2007]
Hull R (2004b) Transmission 2: mechanical, seed, pollen and epidemiology. In ‘Matthews’ plant virology’. pp. 533–582. (Elsevier Academic Press: The Netherlands)
Jackson D (1999) Flowers and fruit. In ‘Temperate and subtropical fruit production’. (Eds DI Jackson, NE Looney) pp. 33–43. (CABI Publishing: Wallingford)
Johansen E, Edwards MC, Hampton RO (1994) Seed transmission of viruses: current perspectives. Annual Review of Phytopathology 32, 363–386. doi: 10.1146/annurev.py.32.090194.002051
Jones RAC (1982) Tests for transmission of four potato viruses through potato true seed. The Annals of Applied Biology 100, 315–320.
Kassanis B, Russell GE, White RF (1978) Seed and pollen transmission of beet cryptic virus in sugar beet plants. Phytopathologische Zeitschrift 91, 76–79.
Kenten RH, Cockbain AJ, Woods RD (1980) Vicia cryptic virus. Rothamsted Experimental Station Annual Report 1979 (Part 1), 176.
Klose MJ, Sdoodee R, Teakle DS, Milne JR, Greber RS, Walter GH (1996) Transmission of three strains of Tobacco streak ilarvirus by different thrips species using virus-infected pollen. Journal of Phytopathology 144, 281–284.
Krczal G, Albouy J, Damy I, Kusiak C, Deogratias JM, Moreau JP, Berkelmann B, Wohanka W (1995) Transmission of Pelargonium virus (PFBV) in irrigation systems and by thrips. Plant Disease 79, 163–166.
Kryczynski S, Paduch-Cichal E, Skrzeczkowski LJ (1988) Transmission of three viroids through seed and pollen of tomato plants. Journal of Phytopathology 121, 51–57.
Kyriakopoulou PE, Rana GL, Roca F (1985) Geographic distribution, natural host range, pollen and seed transmissibility of artichoke yellow ringspot virus. Annales de l’Institut Phytopathologique Benaki 14, 139–155.
Li L, Wang XF, Zhou GH (2007) Analyses of maize embryo invasion by Sugarcane mosaic virus. Plant Science 172, 131–138. doi: 10.1016/j.plantsci.2006.08.006
Lister RM, Murant AF (1967) Seed transmission of nematode-borne viruses. The Annals of Applied Biology 59, 49–62.
Louie R, Lorbeer JW (1966) Mechanical transmission of onion yellow-dwarf virus. Phytopathology 56, 1020–1023.
Louie R, Gordon DT, Knoke JK, Gingery RE, Bradfute OE, Lipps PE (1982) Maize white line mosaic virus in Ohio. Plant Disease 66, 167–170.
Macanawai AR, Ebenebe AA, Hunter D, Devitt LC, Hafner GJ, Harding RM (2005) Investigations into the seed and mealybug transmission of Taro bacilliform virus. Australasian Plant Pathology 34, 73–76. doi: 10.1071/AP04084
MacLeod MR, Wood NT, Sinclair JA, Mayo MA, McGavin WJ, Jorgensen L, Jones AT (2004) Further studies on the molecular biology of Raspberry bushy dwarf virus and the development of resistance to it in plants. ISHS Acta Horticulturae: X International Symposium on Small Fruit Virus Diseases 656, 159–163.
Martin RR, Tzanetakis IE (2006) Characterisation and recent advances in detection of strawberry viruses. Plant Disease 90, 384–396. doi: 10.1094/PD-90-0384
Massalski PR, Cooper JI, Hellen CUT, Edwards ML (1988) The effect of cherry leaf roll virus infection on the performance of birch pollen and studies on virus replication in germinating pollen. The Annals of Applied Biology 112, 415–425.
Medina AC, Grogan RG (1961) Seed transmission of bean mosaic viruses. Phytopathology 51, 452–456.
Milne JR, Walter GH (2003) The coincidence of thrips and dispersed pollen in PNRSV-infected stone fruit orchards — a precondition for thrips-mediated transmission via infected pollen. The Annals of Applied Biology 142, 291–298. doi: 10.1111/j.1744-7348.2003.tb00253.x
Mink GI (1993) Pollen and seed transmitted viruses and viroids. Annual Review of Phytopathology 31, 375–402.
Mink GI (1998) Viruses spread in pollen. In ‘Compendium of stone fruit diseases’. (Eds JM Ogawa, EI Zehr, GW Bird, DF Ritchie, K Uriu, JK Uyemoto) pp. 64–66. (APS Press: St Paul, MN)
Mircetich S, Rowhani A, Cucuzza J (1982) Seed and pollen transmission of cherry leafroll virus (CLRV-W), the causal agent of the blackline disease (bl) of English walnut trees. Phytopathology 72, 988.
Murant AF, Chambers J, Jones AT (1974) Spread of raspberry bushy dwarf virus by pollination, its association with crumbly fruit, and problems of control. The Annals of Applied Biology 77, 271–281.
Pacumbaba EP, Zelazny B, Orense JC, Rillo EP (1994) Evidence for pollen and seed transmission of the coconut cadang-cadang viroid in Cocos nucifera L. Journal of Phytopathology 142, 37–42.
Pahalawatta V, Druffel K, Pappu HR (2007) Seed transmission of Dahlia mosaic virus in Dahlia pinnata. Plant Disease 91, 88–91. doi: 10.1094/PD-91-0088
Pesic Z, Hiruki C, Chen MH (1988) Detection of viral antigen by immunogold cytochemistry in ovules, pollen, and anthers of alfalfa infected with alfalfa mosaic virus. Phytopathology 78, 1027–1032.
Pethybridge SJ, Wilson CR, Hay FS, Leggett GW, Sherriff LJ (2002) Mechanical transmission of Apple mosaic virus in Australian hop (Humulus lupulus) gardens. The Annals of Applied Biology 141, 77–85. doi: 10.1111/j.1744-7348.2002.tb00198.x
Rebenstorf K, Candresse T, Dulucq MJ, Büttner C, Obermeier C (2006) Host species-dependent population structure of a pollen-borne plant virus, Cherry leaf roll virus. Journal of Virology 80, 2453–2462. doi: 10.1128/JVI.80.5.2453-2462.2006
Roberts IM, Wang D, Thomas CL, Maule AJ (2003) Pea seed-borne mosaic virus seed transmission exploits novel symplastic pathways to infect the pea embryo and is, in part, dependent upon chance. Protoplasma 222, 31–43. doi: 10.1007/s00709-003-0015-5
Ryder EJ (1964) Transmission of common lettuce mosaic virus through the gametes of the lettuce plant. Plant Disease Reporter 48, 522–523.
Scarborough BA, Smith SH (1977) Effects of tobacco and tomato ringspot viruses on the reproductive tissues of Pelargonium × hortorum. Phytopathology 67, 292–297.
Schmelzer K (1969) Das Ulmenscheckungs-Virus. Phytopathologische Zeitschrift 64, 39–67.
Sdoodee R, Teakle DS (1987) Transmission of tobacco streak virus by Thrips tabaci: a newmethod of plant virus transmission. Plant Pathology 36, 377–380. doi: 10.1111/j.1365-3059.1987.tb02247.x
Sdoodee R, Teakle DS (1988) Seed and pollen transmission of tobacco streak virus in tomato (Lycopersicon esculentum cv. Grosse Lisse). Australian Journal of Agricultural Research 39, 469–474. doi: 10.1071/AR9880469
Sdoodee R, Teakle DS (1993) Studies on the mechanism of transmission of pollen-associated Tobacco streak ilarvirus virus by Thrips tabaci. Plant Pathology 42, 88–92. doi: 10.1111/j.1365-3059.1993.tb01473.x
Silva C, Tereso S, Nolasco G, Oliveira MM (2003) Cellular location of Prune dwarf virus in almond sections by in situ reverse transcription-polymerase chain reaction. Phytopathology 93, 278–285. doi: 10.1094/PHYTO.2003.93.3.278
Slack SA (2001) Potato virus T. In ‘Compendium of potato diseases’. (Eds WR Stevenson, R Loria, GD Franc, DP Weingartner) p. 68. (APS Press: St Paul, MN)
Spiewak R, Krysinska-Traczyk E, Sitkowska J, Dutkiewicz J (1996) Microflora of allergenic pollens — a preliminary study. Annals of Agricultural and Environmental Medicine 3, 127–130.
Stelfox D, Williams JR, Soehngen U, Topping RC (1978) Transport of Sclerotinia sclerotiorum ascospores in rapeseed pollen in Alberta. Plant Disease Reporter 62, 576–579.
Tsuchizaki T, Yora K, Asuyama H (1970) Seed transmission of viruses in cowpea and Azuki bean plants. Annals of the Phytopathological Society of Japan 36, 237–242.
Tzanetakis IE, Wintermantel WM, Cortez AA, Barnes JE, Barrett SM, Bolda MP, Martin RR (2006) Epidemiology of strawberry pallidosis-associated virus and occurrence of pallidosis disease in North America. Plant Disease 90, 1343–1346. doi: 10.1094/PD-90-1343
Valkonen JPT, Pehu E, Watanabe K (1992) Symptom expression and seed transmission of alfalfa mosaic virus and potato yellowing virus (SB-22) in Solanum brevidens and S. etuberosum. Potato Research 35, 403–410. doi: 10.1007/BF02357596
Wagnon HK, Traylor JA, Williams HE, Weiner AC (1968) Investigations of cherry rasp leaf disease in California. Plant Disease Reporter 52, 618–622.
Walter MH, Kaiser WJ, Klein RE, Wyatt SD (1992) Association between tobacco streak ilarvirus seed transmission and anther tissue infection in bean. Phytopathology 82, 412–415.
Wang D, Maule AJ (1992) Early embryo invasion as a determinant in pea of the seed transmission of pea seed-borne mosaic virus. The Journal of General Virology 73, 1615–1620.
Williams HE, Traylor JA, Wagnon HK (1962) Recovery of virus from refrigerated fruit tree and grapevine pollen collections. Phytopathology 52, 367.
Williams HE, Traylor JA, Wagnon HK (1963) The infectious nature of pollen from certain virus-infected stone fruit trees. Phytopathology 53, 1144.
Yang AF, Hamilton RI (1974) The mechanism of seed transmission of tobacco ringspot virus in soybean. Virology 62, 26–37. doi: 10.1016/ 0042-6822(74)90300-6
Yang Y, Kim KS, Anderson EJ (1997) Seed transmission of cucumber mosaic virus in spinach. Phytopathology 87, 924–931. doi: 10.1094/PHYTO.1997.87.9.924
Zitter TA (1991) Diseases caused by viruses. In ‘Compendium of tomato diseases’. (Eds JB Jones, RE Stall, TA Zitter) pp. 31–34. (APS Press: St Paul, MN)
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Card, S.D., Pearson, M.N. & Clover, G.R.G. Plant pathogens transmitted by pollen. Australasian Plant Pathology 36, 455–461 (2007). https://doi.org/10.1071/AP07050
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DOI: https://doi.org/10.1071/AP07050