A review of plant phenolics and endozoochory

被引:1
|
作者
Krebs, Samuel A. [1 ]
Schummer, Michael L. [1 ]
机构
[1] SUNY Coll Environm Sci & Forestry SUNY ESF, Dept Environm Biol, 1 Forestry Dr, Syracuse, NY 13210 USA
来源
ECOLOGY AND EVOLUTION | 2024年 / 14卷 / 09期
关键词
bird vision; coevolution; phenolics; plant defense; seed dispersal; UV reflection; SEED-GERMINATION; ULTRAVIOLET REFLECTANCE; SECONDARY METABOLITES; ANTIOXIDANT ACTIVITY; CHEMICAL DEFENSE; AVIAN VISION; BIRDS; FRUIT; DISPERSAL; COLOR;
D O I
10.1002/ece3.70255
中图分类号
Q14 [生态学(生物生态学)];
学科分类号
071012 ; 0713 ;
摘要
Phenolic compounds (phenolics) are secondary metabolites ubiquitous across plants. The earliest phenolics are linked to plants' successful transition from an aquatic to a terrestrial environment, serving as protection against damaging ultraviolet (UV) radiation, and as antioxidants to reduce oxidative stress in an atmosphere with an increasingly high O2:CO2 ratio. In modern plants, phenolics are best known for the defense against fungal and bacterial pathogens and as antifeedants that deter herbivory. Phenolics also play a role in seed dormancy, delaying germination, and lengthening viability in the seed bank. Many plants' seeds are endozoochorous - dispersed by animals, like birds, who eat and later excrete the seeds. Plants send visual signals to attract birds with UV-sensitive (UVS) vision for pollination and seed dispersal. As fruits ripen, antioxidant activity and phenolic content decrease. The waxy cuticle of fruits increases in UV reflection as phenolic rings, which absorb UV light, degrade. The UV contrast that birds detect may act as an honest signal, indicating nutritional changes in the fruit. However, there is little evidence to support the evolution of UV coloration during ripening being driven by frugivore selection. Antioxidant properties of fruit phenolics may be dually adaptive in plants and avian frugivores.
引用
收藏
页数:12
相关论文
共 50 条
  • [21] Peduncles elicit large-mammal endozoochory in a dry-fruited plant
    Zhou, Youbing
    Newman, Chris
    Xie, Zongqiang
    Macdonald, DavidW.
    ANNALS OF BOTANY, 2013, 112 (01) : 85 - 93
  • [22] EFFECT OF PHENOLICS ON PLANT AMINE OXIDASES
    SRIVASTAVA, SK
    NAIK, BI
    RAJ, ADS
    PHYTOCHEMISTRY, 1982, 21 (07) : 1519 - 1521
  • [23] Biological Activity of Phenolics in Plant Cells
    Bidel, Luc P. R.
    Coumans, Marc
    Baissac, Yves
    Doumas, Patrick
    Jay-Allemand, Christian
    RECENT ADVANCES IN POLYPHENOL RESEARCH, VOL 2, 2010, 2 : 163 - 205
  • [24] FLUORESCENCE SPECTRA OF SOME PLANT PHENOLICS
    WOLF, FT
    PLANT PHYSIOLOGY, 1969, S 44 : 39 - &
  • [25] METHOD FOR FRACTIONATION AND ESTIMATION OF PLANT PHENOLICS
    MARIGO, G
    ANALUSIS, 1973, 2 (02) : 106 - 110
  • [26] ROLE OF PHENOLASES IN SYNTHESIS OF PLANT PHENOLICS
    BUTT, VS
    VAUGHAN, PFT
    PHYTOCHEMISTRY, 1972, 11 (02) : 861 - &
  • [27] Plant Phenolics and Lectins as Vaccine Adjuvants
    Reyna-Margarita, Hernandez-Ramos
    Irais, Castillo-Maldonado
    Mario-Alberto, Rivera-Guillen
    Agustina, Ramirez-Moreno
    Luis-Benjamin, Serrano-Gallardo
    David, Pedroza-Escobar
    CURRENT PHARMACEUTICAL BIOTECHNOLOGY, 2019, 20 (15) : 1236 - 1243
  • [28] PLANT PHENOLICS AS NATURALLY OCCURRING ANTIOXIDANTS
    HERRMANN, K
    FETTE SEIFEN ANSTRICHMITTEL, 1973, 75 (08): : 499 - 504
  • [29] Plant phenolics - from field to fork
    Lee, Jungmin
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2011, 242
  • [30] Antioxidative and antiradical properties of plant phenolics
    Sroka, Z
    ZEITSCHRIFT FUR NATURFORSCHUNG C-A JOURNAL OF BIOSCIENCES, 2005, 60 (11-12): : 833 - 843