Ecological fitting in a deceptive trap flower: Aristolochia gibertii recruits native drosophilid flies outside South America

Deceptive pollination, in which plants lure pollinators without offering rewards, represents a sophisticated evolutionary strategy. The trap-flowers of Aristolochia provide an excellent system to study the coordinated evolution of floral morphology, chemistry, and phenology. However, the functional integration of these traits remains poorly understood, especially in introduced populations where pollinators differ from those in the native range. We investigated the reproductive ecology of the South American vine Aristolochia gibertii in an introduced population in southern China, combining floral anatomical, histochemical, and volatile analyses with visitor surveys and controlled bagging experiments. Flowers exhibit strict protogyny with a time-regulated trapping mechanism: erect retrorse trichomes confine dipteran visitors during the female phase, whereas trichome collapse during the male phase permits the pollen-laden visitors to escape. Concurrently, the gynostemium transitions in a coordinate fashion: stigmatic lobes elevate, split, and reflex downward upon male-phase entry, coinciding with anther dehiscence and stigma senescence, thereby preventing selfing. Volatile emissions shift markedly between phases: cis -β-ocimene dominates the female phase, while limonene and other terpenoids increase during the male phase; both phases emit fermentation-related volatiles (acetoin and 2,3-butanediol) that mimic yeast odors. Drosophilid flies, particularly Drosophila ficusphila , accounted for over 70% of visitors and served as the primary pollen vectors. Minute nectaries provide trace amounts of nectar, sustaining captives without offering a substantial reward. Bagging experiments confirmed an obligate outcrossing system, with no fruit set from autonomous self-pollination. Our findings demonstrate that A. gibertii achieves efficient pollination through tightly coordinated mechanical, temporal, and chemical traits that exploit drosophilid sensory biases. This system exemplifies ecological fitting, wherein an introduced plant recruits native generalist pollinators without a co-evolutionary history, and provides a mechanistic framework for understanding multi-trait integration in angiosperm deception strategies.

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Journal
BMC Plant Biology
Published
2026-09-18
DOI
https://doi.org/10.1186/s12870-026-09814-x
Primary Topic
Plant and animal studies
Type
article
Field-Weighted Citation Impact
0.00

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article

Ecological fitting in a deceptive trap flower: Aristolochia gibertii recruits native drosophilid flies outside South America

Shuai Liao, Lifang Xiao, Xiaoxia Deng, 刘长秋 et al.
BMC Plant Biology
Plant and animal studies
article

Ecological fitting in a deceptive trap flower: Aristolochia gibertii recruits native drosophilid flies outside South America

Shuai Liao, Lifang Xiao, Xiaoxia Deng, 刘长秋, Huayan Chen, Conrad Labandeira
article en

Abstract

Deceptive pollination, in which plants lure pollinators without offering rewards, represents a sophisticated evolutionary strategy. The trap-flowers of Aristolochia provide an excellent system to study the coordinated evolution of floral morphology, chemistry, and phenology. However, the functional integration of these traits remains poorly understood, especially in introduced populations where pollinators differ from those in the native range. We investigated the reproductive ecology of the South American vine Aristolochia gibertii in an introduced population in southern China, combining floral anatomical, histochemical, and volatile analyses with visitor surveys and controlled bagging experiments. Flowers exhibit strict protogyny with a time-regulated trapping mechanism: erect retrorse trichomes confine dipteran visitors during the female phase, whereas trichome collapse during the male phase permits the pollen-laden visitors to escape. Concurrently, the gynostemium transitions in a coordinate fashion: stigmatic lobes elevate, split, and reflex downward upon male-phase entry, coinciding with anther dehiscence and stigma senescence, thereby preventing selfing. Volatile emissions shift markedly between phases: cis -β-ocimene dominates the female phase, while limonene and other terpenoids increase during the male phase; both phases emit fermentation-related volatiles (acetoin and 2,3-butanediol) that mimic yeast odors. Drosophilid flies, particularly Drosophila ficusphila , accounted for over 70% of visitors and served as the primary pollen vectors. Minute nectaries provide trace amounts of nectar, sustaining captives without offering a substantial reward. Bagging experiments confirmed an obligate outcrossing system, with no fruit set from autonomous self-pollination. Our findings demonstrate that A. gibertii achieves efficient pollination through tightly coordinated mechanical, temporal, and chemical traits that exploit drosophilid sensory biases. This system exemplifies ecological fitting, wherein an introduced plant recruits native generalist pollinators without a co-evolutionary history, and provides a mechanistic framework for understanding multi-trait integration in angiosperm deception strategies.

BMC Plant Biology
Smithsonian Institution (US), National Museum of Natural History (US), Chinese Academy of Sciences (CN), Guangxi Institute of Botany (CN), Guangdong Academy of Sciences (CN), South China Botanical Garden (CN), Shanghai Chenshan Plant Science Research Center (CN), Institute of Zoology (CN), China National Botanical Garden, University of Maryland, College Park (US), Capital Normal University (CN)
South China Botanical Garden, Chinese Academy of Sciences
Life in Land
Openalex Percentile: Top 8%
Plant and animal studies
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