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      Palm fruit colours are linked to the broad-scale distribution and diversification of primate colour vision systems

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          Abstract

          A long-standing hypothesis in ecology and evolution is that trichromatic colour vision (the ability to distinguish red from green) in frugivorous primates has evolved as an adaptation to detect conspicuous (reddish) fruits. This could provide a competitive advantage over dichromatic frugivores which cannot distinguish reddish colours from a background of green foliage. Here, we test whether the origin, distribution and diversity of trichromatic primates is positively associated with the availability of conspicuous palm fruits, i.e. keystone fruit resources for tropical frugivores. We combine global data of colour vision, distribution and phylogenetic data for more than 400 primate species with fruit colour data for more than 1700 palm species, and reveal that species richness of trichromatic primates increases with the proportion of palm species that have conspicuous fruits, especially in subtropical African forests. By contrast, species richness of trichromats in Asia and the Americas is not positively associated with conspicuous palm fruit colours. Macroevolutionary analyses further indicate rapid and synchronous radiations of trichromats and conspicuous palms on the African mainland starting 10 Ma. These results suggest that the distribution and diversification of African trichromatic primates is strongly linked to the relative availability of conspicuous (versus non-conspicuous) palm fruits, and that interactions between primates and palms are related to the coevolutionary dynamics of primate colour vision systems and palm fruit colours.

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            Ecological opportunity and the rate of morphological evolution in the diversification of Greater Antillean anoles.

            The pace of phenotypic diversification during adaptive radiation should decrease as ecological opportunity declines. We test this prediction using phylogenetic comparative analyses of a wide range of morphological traits in Greater Antillean Anolis lizards. We find that the rate of diversification along two important axes of Anolis radiation-body size and limb dimensions-decreased as opportunity declined, with opportunity quantified either as time elapsed in the radiation or as the diversity of competing anole lineages inferred to have been present on an island at different times in the past. Most previous studies of the ecological opportunity hypothesis have focused on the rate of species diversification; our results provide a complementary perspective, indicating that the rate of phenotypic diversification declines with decreasing opportunity in an adaptive radiation. © 2010 The Author(s). Journal compilation © 2010 The Society for the Study of Evolution.
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              Fruits, foliage and the evolution of primate colour vision.

              Primates are apparently unique amongst the mammals in possessing trichromatic colour vision. However, not all primates are trichromatic. Amongst the haplorhine (higher) primates, the catarrhines possess uniformly trichromatic colour vision, whereas most of the platyrrhine species exhibit polymorphic colour vision, with a variety of dichromatic and trichromatic phenotypes within the population. It has been suggested that trichromacy in primates and the reflectance functions of certain tropical fruits are aspects of a coevolved seed-dispersal system: primate colour vision has been shaped by the need to find coloured fruits amongst foliage, and the fruits themselves have evolved to be salient to primates and so secure dissemination of their seeds. We review the evidence for and against this hypothesis and we report an empirical test: we show that the spectral positioning of the cone pigments found in trichromatic South American primates is well matched to the task of detecting fruits against a background of leaves. We further report that particular trichromatic platyrrhine phenotypes may be better suited than others to foraging for particular fruits under particular conditions of illumination; and we discuss possible explanations for the maintenance of polymorphic colour vision amongst the platyrrhines.
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                Author and article information

                Journal
                Proc Biol Sci
                Proc. Biol. Sci
                RSPB
                royprsb
                Proceedings of the Royal Society B: Biological Sciences
                The Royal Society
                0962-8452
                1471-2954
                26 February 2020
                26 February 2020
                26 February 2020
                : 287
                : 1921
                : 20192731
                Affiliations
                [1 ]German Centre for Integrative Biodiversity Research (iDiv) Halle-Jena-Leipzig , Deutscher Platz 5e, 04103 Leipzig, Germany
                [2 ]Institute for Biodiversity and Ecosystem Dynamics (IBED), University of Amsterdam , PO Box 94240, Amsterdam, The Netherlands
                [3 ]Department of Primatology, Max Planck Institute for Evolutionary Anthropology , Deutscher Platz 6, 04103 Leipzig, Germany
                [4 ]Department of Biological Sciences, University of Bergen , PO Box 7803, 5020, Bergen, Norway
                [5 ]School of Natural Sciences and Psychology, Liverpool John Moores University , Byrom Street, L33AF, Liverpool, UK
                Author notes

                Electronic supplementary material is available online at https://doi.org/10.6084/m9.figshare.c.4853193.

                Author information
                http://orcid.org/0000-0002-2295-3510
                Article
                rspb20192731
                10.1098/rspb.2019.2731
                7062032
                32097588
                ae2f8f7e-c767-45fd-9746-6cf7147c175c
                © 2020 The Authors.

                Published by the Royal Society under the terms of the Creative Commons Attribution License http://creativecommons.org/licenses/by/4.0/, which permits unrestricted use, provided the original author and source are credited.

                History
                : 22 November 2019
                : 3 February 2020
                Funding
                Funded by: Deutsche Forschungsgemeinschaft, http://dx.doi.org/10.13039/501100001659;
                Award ID: FZT 118
                Funded by: Nederlandse Organisatie voor Wetenschappelijk Onderzoek, http://dx.doi.org/10.13039/501100003246;
                Award ID: 824.15.007
                Funded by: SYNTHESYS;
                Award ID: GB-TAF-6695
                Categories
                1001
                60
                70
                Ecology
                Research Article
                Custom metadata
                February 26, 2020

                Life sciences
                animal-mediated seed dispersal,coevolution,fruit coloration,plant–frugivore interaction,primatology,sensory adaptation

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