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Evidence from the domestication of apple for the maintenance of autumn colours by coevolutionHemispheric asymmetries in biodiversity--a serious matter for ecologyBreakdown of Chlorophyll in Higher Plants--Phyllobilins as Abundant, Yet Hardly Visible Signs of Ripening, Senescence, and Cell DeathSpring Versus Autumn or Young Versus Old Leaf Colors: Evidence for Different Selective Agents and Evolution in Various Species and FlorasThe sensory ecology of adaptive landscapes.Loss of autumn colors under domestication: a byproduct of selection for fruit flavor?Are autumn foliage colors red signals to aphids?Hypermodified fluorescent chlorophyll catabolites: source of blue luminescence in senescent leaves.Hybrid photoacoustic and optical imaging of pigments in vegetative tissues.Pigment patterns and photoprotection of anthocyanins in the young leaves of four dominant subtropical forest tree species in two successional stages under contrasting light conditions.Colors of young and old spring leaves as a potential signal for ant-tended hemipterans.Chlorophyll breakdown in senescent banana leaves: catabolism reprogrammed for biosynthesis of persistent blue fluorescent tetrapyrrolesLife-history strategies affect aphid preference for yellowing leaves.The shared and separate roles of aposematic (warning) coloration and the co-evolution hypothesis in defending autumn leaves.Optical effects of abaxial anthocyanin on absorption of red wavelengths by understorey species: revisiting the back-scatter hypothesisRed reveals branch die-back in Norway maple Acer platanoidesA novel blue fluorescent chlorophyll catabolite accumulates in senescent leaves of the peace lily and indicates a split path of chlorophyll breakdown.Unripe red fruits may be aposematic.How red is the red autumn leaf herring and did it lose its red color?MES16, a member of the methylesterase protein family, specifically demethylates fluorescent chlorophyll catabolites during chlorophyll breakdown in Arabidopsis.Support for a photoprotective function of winter leaf reddening in nitrogen-deficient individuals of Lonicera japonica.Photosynthetic costs and benefits of abaxial versus adaxial anthocyanins in Colocasia esculenta 'Mojito'.Coevolution and the adaptive value of autumn tree colours: colour preference and growth rates of a southern beech aphid.The coevolution of toxin and antitoxin genes drives the dynamics of bacterial addiction complexes and intragenomic conflict.Prerequisites for evolution: variation and selection in yellow autumn birch leaves.A general model of biological signals, from cues to handicapsRelated but not alike: not all Hemiptera are attracted to yellow
P2860
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P2860
description
2004 nî lūn-bûn
@nan
2004 թուականի Յունիսին հրատարակուած գիտական յօդուած
@hyw
2004 թվականի հունիսին հրատարակված գիտական հոդված
@hy
2004年の論文
@ja
2004年論文
@yue
2004年論文
@zh-hant
2004年論文
@zh-hk
2004年論文
@zh-mo
2004年論文
@zh-tw
2004年论文
@wuu
name
The coevolution theory of autumn colours
@ast
The coevolution theory of autumn colours
@en
The coevolution theory of autumn colours
@nl
type
label
The coevolution theory of autumn colours
@ast
The coevolution theory of autumn colours
@en
The coevolution theory of autumn colours
@nl
prefLabel
The coevolution theory of autumn colours
@ast
The coevolution theory of autumn colours
@en
The coevolution theory of autumn colours
@nl
P2860
P356
P1476
The coevolution theory of autumn colours
@en
P2093
Marco Archetti
P2860
P304
P356
10.1098/RSPB.2004.2728
P407
P50
P577
2004-06-22T00:00:00Z