Seed dispersal potential by wild mallard duck as estimated from digestive tract analysis

2016 ◽  
Vol 61 (10) ◽  
pp. 1746-1758 ◽  
Author(s):  
Erik Kleyheeg ◽  
Marcel Klaassen ◽  
Merel B. Soons
2016 ◽  
Vol 77 ◽  
pp. 144-151 ◽  
Author(s):  
Franziska K. Harich ◽  
Anna C. Treydte ◽  
Joseph O. Ogutu ◽  
John E. Roberts ◽  
Chution Savini ◽  
...  

2014 ◽  
Vol 74 (3) ◽  
pp. 588-596 ◽  
Author(s):  
RML Silveira ◽  
B Weiss

We analysed the germination of seeds after their passage through the digestive tract of small floodplain fishes. Samples were collected in five open flooded fields of the northern Pantanal in March 2011. All fishes were sacrificed and their intestinal contents were removed. The fecal material was weighed and stored at 4°C in a GF/C filter wrapped in aluminum foil. The material was then transferred to a receptacle containing sterilised soil from the sampling area. The fecal samples were kept in a germination chamber for 68 days and then transferred to a greenhouse for another 67 days. We collected a total of 45 fish species and 1014 individuals which produced a total amount of 32g of fresh fecal mass and 11 seedlings. We were able to identify six seedlings: two Banara arguta, two Steinchisma laxa, one Hymenachne amplexicaulis and one Luziola sp.. The fish species that produced samples with seedlings were Astyanax assuncionensis, Metynnis mola, Plesiolebias glaucopterus, Acestrorhyncus pantaneiro and Anadoras wendelli. With the exception of B. arguta the remaining plant species and all fish species were not known to be associated with the seed dispersal process of these plants. We found a ratio of 0.435 seedlings.g–1 of fresh fecal material, which is 100 times higher than the amount of seedlings encountered in fresh soil mass (92,974 grams) in seed bank studies conducted in the same study area. In particular, Astyanax assuncionensis and Metynnis mola were among the most frequent and most abundant fish taxa in the area. Together with the high seed concentration in the fish fecal material, this evidence allows us to conclude that such fish species may play an important role in seed dispersal in the herbaceous plants of the Pantanal.


1979 ◽  
Vol 105 (14) ◽  
pp. 328-329 ◽  
Author(s):  
D. Alexander ◽  
D. Spackman ◽  
W. Allan ◽  
L. Borland

1982 ◽  
Vol 110 (1) ◽  
pp. 15-16 ◽  
Author(s):  
M. Lipkind ◽  
Y. Weisman ◽  
E. Shihmanter ◽  
D. Shoham

2020 ◽  
Vol 183 ◽  
pp. 104284
Author(s):  
Jan F. Kamler ◽  
Unn Klare ◽  
David W. Macdonald

2008 ◽  
Vol 178 (2) ◽  
pp. 424-435 ◽  
Author(s):  
Emily Darling ◽  
Karen E. Samis ◽  
Christopher G. Eckert

2012 ◽  
Vol 28 (6) ◽  
pp. 543-555 ◽  
Author(s):  
Adrian A. Barnett ◽  
Sarah A. Boyle ◽  
Liliam P. Pinto ◽  
Waldete C. Lourenço ◽  
Thais Almeida ◽  
...  

Abstract:The Neotropics house two guilds of large arboreal vertebrate seed predators: parrots and the pitheciin primates. Both have diets dominated by immature fruits. The possibility of members of the Pitheciinae (genera Cacajao, Chiropotes and Pithecia) acting as occasional seed dispersers has been mooted, but not experimentally shown. We combined primate behavioural data and seed germination data from three separate field studies in the Brazilian states of Amazonas and Pará to analyse patterns of post-consumption seed survivorship for seeds discarded by three pitheciin species (Cacajao melanocephalus ouakary, Chiropotes chiropotes and Chiropotes albinasus). We then calculated the frequency of dispersal events for four species eaten by C. m. ouakary. All three primate species dropped intact seeds while feeding, and 30.7% of 674 dropped seeds germinated ex situ. Undamaged seeds from unripe and ripe samples germinated (29.3% and 42.7%, respectively), and all three primate species carried some fruits up to 20 m from the parent tree before consuming them. Potential seed-dispersal events varied from 1 (Macrolobium acaciifolium) per fruiting cycle to more than 6500 (Duroia velutina), suggesting that there are differences in dispersal potential. In summary, although they are highly specialized seed predators, these primates may also act as important dispersers for some plant species, and effective dispersal is not restricted to ripe fruits, as immature fruits removed from a tree may continue to mature and the seeds later germinate, a much-neglected aspect of dispersal ecology. The possibility that similar events occur in parrots should be experimentally investigated.


2019 ◽  
Author(s):  
Zoe Bont ◽  
Marc Pfander ◽  
Christelle A. M. Robert ◽  
Meret Huber ◽  
Erik H. Poelman ◽  
...  

AbstractPlants allow their offspring to escape unfavourable local conditions through seed dispersal. Whether plants use this strategy to escape herbivores is not well understood. Here, we explore how different Taraxacum officinale populations modify seed dispersal in response to root herbivore attack by Melolontha melolontha in the field. Root herbivore attack increases seed dispersal potential through a reduction in seed weight in populations that have evolved under high root herbivore pressure, but not in populations that have evolved under low pressure. This increase in dispersal potential is associated with reduced germination, suggesting that adapted plants trade dispersal for establishment. Analysis of vegetative growth parameters suggests that increased dispersal is not the result of stress flowering. These results suggest that root herbivory selects for genotypes that increase their dispersal ability in response to herbivore attack.


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