Airborne ascospore discharge with co‐dispersal of attached epihymenial algae in some foliicolous lichens

2021 ◽  
Author(s):  
William B. Sanders ◽  
Benjamin J. Brisky
BIO-PROTOCOL ◽  
2018 ◽  
Vol 8 (15) ◽  
Author(s):  
Yan Guo ◽  
Wan-Qian Wei ◽  
Dong Zhang ◽  
Wei-Hua Tang

Symbiosis ◽  
2021 ◽  
Author(s):  
Rafael de Paiva Farias ◽  
Lucas Erickson Nascimento da Costa ◽  
Augusto César Pessôa Santiago ◽  
Viviane Monique dos Santos

1994 ◽  
Vol 26 (3) ◽  
pp. 311-312 ◽  
Author(s):  
Harrie J.M. Sipman
Keyword(s):  

2003 ◽  
Vol 54 (9) ◽  
pp. 837 ◽  
Author(s):  
A. D. Wherrett ◽  
K. Sivasithamparam ◽  
M. J. Barbetti

A study was carried out to establish key developmental stages of Leptosphaeria maculans on canola residues leading up to ascospore discharge and how these stages could be affected by chemicals. The residues were dipped in a range of chemicals, including fungicides, herbicides, and surfactants, to determine possible manipulative effects of the chemicals on the development of the fungus including ascospore discharge. Treated residues were placed in the field during the growing season. Ascospore discharge was found to be closely related to pseudothecial maturity and density. There was no significant difference between pseudothecial maturation on the crown component compared with the stem component. A high correlation between rainfall and pseudothecial density suggested that rainfall was a good complimentary indicator for timing of ascospore discharge. These results may provide the canola industry with a potential method of monitoring pseudothecial development for estimating disease hazards. This would allow manipulation of sowing times so as to minimise or avoid heavy ascospore showers coinciding with the early seedling phase. Twenty chemical treatments showed significant efficacy in decreasing ascospore numbers early in the season, most often by delaying the development of the pseudothecia on the residues. Two scenarios were formulated giving growers the potential to manipulate pseudothecial development and/or ascospore discharge. Firstly, a number of chemicals, such as fluquinconazole, technical grade flutriafol, and gluphosinate-ammonium, were able to delay pseudothecial development and subsequent ascospore discharge was decreased by 100%, 99%, and 96%, respectively. This scenario gives growers the potential to minimise synchronisation of ascospore discharge with early crop establishment. Secondly, a situation where pseudothecial development is not delayed, but number of ascospores discharged is reduced (e.g. ziram by 45%) would only be effective if the reduction resulted in a less severe disease epidemic. There is significant potential for development of commercial chemical treatments of residues to reduce disease pressure on seedlings.


Author(s):  
C. Booth

Abstract A description is provided for Gibberella zeae. Information is included on the disease caused by the organism, its transmission, geographical distribution, and hosts. HOSTS: Wheat, maize, barley, carnations and other ornamentals; also reported infecting Lycopersicon, Pisum, Trifolium and Solanum DISEASE: Seedling blight, pre-emergence and post-emergence blight, root and foot rot, brown rot, culm decay, head or kernel blight (scab or ear scab) of wheat, maize, barley and other cereals. Leaf and flower rot of carnations and other ornamentals. Also reported infecting species of Lycopersicon, Pisum, Trifolium and Solanum. GEOGRAPHICAL DISTRIBUTION: Worldwide on maize and rice in the tropics. Wheat, oats, barley and rye in temperate regions. TRANSMISSION: By planting infected or infested seeds or by planting in infested soil. Secondary infection occurs widely by water droplets under moist conditions or by ascospore discharge.


1969 ◽  
pp. 287-308
Author(s):  
Robert Lücking

A total of 28 0 foliicolous lichens and 1 2 Jichenicolous fungi was found in an inventory made in the lowland rain forest at La Selva Bi010gical Station, Costa Rica. ll1e species composition reflects 50 % of the world's diversity of foliicolous lichens and i5 representative for neotropical lowland rain forests. The most common specíes are Gyalectidium filicinum, :-,'poropodium leprieuríi, Trieharia vainloi, Porina epiphylla. Phyllophiale alba, Trichotheliuní epiphyllwll. Mazosia phyllosema, Tricharia ureeolata. and Arthonia leptosperma. Many species show distinct microsite preferences: (1) Characteristic of the shady Ullderstory, inc1uding Arthoniaceae, Opegraphaceae, Pilocarpaceae, and Trichotbeliaoeae; (2) characteristic oflíght gaps, .incJuding Gomphillaceae and Ectolechiaceae; (3) characteristic of the canopy, incJuding Asterothyriaceae and Gomphil1ace.ae. Only few species exhibit preferences towards oertainleaf types, either dicoty1edoneous oc palm lea ves. The microsite preferences agree with earlier established indices, except for a few species for which modified índices are proposed, Communities resulting f'l-om tbese preferences are illustraíed by clustering of phorophytes and associatiol1s oí foliicolous ·lichens. The . three principal associatiol1s correspood to the shady understory,- light gaps and the canopy, whereas two subassociations reflect subtJe phorophyte preferences, Species diversity and compositiona.re strongly affected by the degreeof disturbanceofvegetation typesatLa Selva. Diversity i8 highest in the primary forest and lowest in young successíonal stages.The foliicolons lishen flora of open,anthropogenic vegetatíon resembles that oí l¡ght gaps. 01' fue canopy in the primary forest, while species characteristíc of the forest understory disappear.


2003 ◽  
Vol 35 (1) ◽  
pp. 33-53 ◽  
Author(s):  
Robert Lücking

AbstractTakhtajan's floristic regions of the world, based on vascular plant distribution, were used for a comparative analysis of foliicolous lichen biogeography. Of the 35 regions distinguished by that author, 23 feature foliicolous lichens. The South-East African, Fijian, Polynesian and Hawaiian regions lack sufficient information and were excluded from further analysis. Using multi-dimensional scaling and cluster and cladistic analyses, the remaining 19 regions were grouped into six lichenogeographical regions: (1) Neotropics, (2) African Paleotropics (including Madagascar, Réunion and Seychelles), (3) Eastern Paleotropics (including North-East Australia and New Caledonia), (4) Valdivian region (temperate rainforest in southern South America), (5) Tethyan region (subtropical areas of Macaronesia, Mediterranean, and Western Irano-Turanian) and (6) Neozealandic-Tasmanian region (temperate rainforests of New Zealand and Tasmania). Affinities between these six large scale regions, with 57–77% shared species, are still stronger than those between the 35 smaller scale regions denned by Takhtajan [(20−)40–60(−75)% shared species]. Based on presence/absence within each of the six regions, 22 potential distribution patterns were defined for foliicolous lichens. Many species are widely distributed; 21% are cosmopolitan or pantropical, while 19% are disjunct on at least two continents, and only 60% are restricted to one of the three major tropical areas (nearly 100% in vascular plants). Most of the latter are found in the Neotropics, while the African Paleotropics are poor in endemics. Most genera deviate significantly from overall distribution patterns; for example, Strigula and Calopadia have higher proportions of widely distributed species, while Porina displays a concentration of Eastern Paleotropical endemics. Species diversity and composition of the six regions indicate that the three extra-tropical foliicolous lichen biotas (Valdivian, Tethyan, Neozealandic-Tasmanian) are the result of partly separate evolutionary histories. On the other hand, there is a strong affinity between the Neotropics and the African Paleotropics, suggesting a shared Western Gondwanan element in the foliicolous lichen biotas of these two regions.


Plant Disease ◽  
2017 ◽  
Vol 101 (3) ◽  
pp. 414-420 ◽  
Author(s):  
Franziska M. Porsche ◽  
Barbara Pfeiffer ◽  
Andreas Kollar

Ascospores of Venturia inaequalis, released from pseudothecia in overwintered, infected apple leaves, serve as the primary inoculum for apple scab. In this study, we tested a new sanitation strategy to reduce ascospore inoculum under orchard conditions over three overwintering periods. After leaf fall, nutrient media containing different concentrations of degraded casein or a yeast extract from Saccharomyces cerivisiae were applied to leaf litter infected with apple scab. The application of 30 and 60% yeast extract showed the greatest efficacy, and significantly reduced ascospore discharge by 99% (P < 0.01) in 2013 and 2014. The efficacy of the treatments did not differ from treatment with 5% urea (P > 0.05). Leaf litter decay was accelerated in the plots treated with yeast extract compared with untreated control plots. Moreover, apple leaves treated with yeast extract had completely decayed due to earthworm activity before ascospore maturity. In comparison, up to 26% of the leaves in untreated control plots had not decayed. These results suggest that the treatment of leaf litter with yeast extract can almost completely eliminate apple scab inoculum in the course of the whole primary season. These sanitation practices may be beneficial for both organic and conventional cultivation. The reduced infection pressure may allow growers the usage of fungicides with lower efficacy or to reduce the number of applications needed to manage apple scab in spring.


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