Petal infrared transmission warms flowers and reduces microbial abundance

Summary Flowers create distinct internal microclimates, yet how these conditions filter microbial abundance remains poorly understood. We tested whether petal light transmission and internal floral temperature influence microbial abundance in two co‐occurring species, Lyonia lucida and Lyonia fruticosa (Ericaceae), which have translucent petal ‘windows’ that modify internal light environments. We measured internal and external floral temperatures, quantified culturable microbial abundance (yeasts, molds, bacteria), and assessed ultraviolet (UV) and infrared (IR) petal transmission using spectrometry. We then experimentally tested the UV resistance of microbial communities across 108 flowers from 18 plants. Additionally, we used manipulative light experiments to test whether IR radiation drove differences in floral warming between these two species. Petal windows transmitted more UV and IR radiation than pigmented tissue. Internal floral temperature predicted microbial abundance, with warmer flowers harboring fewer microbes. A spectral filter experiment confirmed that IR radiation warms L. lucida flowers but not L. fruticosa , while natural variation in UV transmission did not predict microbial abundance or UV resistance. Petal spectral traits shape floral microclimate and microbial abundance primarily through temperature‐mediated filtering linked to IR‐driven warming rather than passive UV sterilization. These results position flowers as microhabitats where petal traits constrain microbial communities.

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Publication Details

Journal
New Phytologist
Published
2026-10-07
DOI
https://doi.org/10.1111/nph.71608
Primary Topic
Light effects on plants
Type
article
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article

Petal infrared transmission warms flowers and reduces microbial abundance

Jessica Nicole Williams, Jacob S. Francis, Daniel A. Barker, Jonathan Carcache et al.
New Phytologist
Light effects on plants
article

Petal infrared transmission warms flowers and reduces microbial abundance

Jessica Nicole Williams, Jacob S. Francis, Daniel A. Barker, Jonathan Carcache, Antonia J. Millet
article en

Abstract

Summary Flowers create distinct internal microclimates, yet how these conditions filter microbial abundance remains poorly understood. We tested whether petal light transmission and internal floral temperature influence microbial abundance in two co‐occurring species, Lyonia lucida and Lyonia fruticosa (Ericaceae), which have translucent petal ‘windows’ that modify internal light environments. We measured internal and external floral temperatures, quantified culturable microbial abundance (yeasts, molds, bacteria), and assessed ultraviolet (UV) and infrared (IR) petal transmission using spectrometry. We then experimentally tested the UV resistance of microbial communities across 108 flowers from 18 plants. Additionally, we used manipulative light experiments to test whether IR radiation drove differences in floral warming between these two species. Petal windows transmitted more UV and IR radiation than pigmented tissue. Internal floral temperature predicted microbial abundance, with warmer flowers harboring fewer microbes. A spectral filter experiment confirmed that IR radiation warms L. lucida flowers but not L. fruticosa , while natural variation in UV transmission did not predict microbial abundance or UV resistance. Petal spectral traits shape floral microclimate and microbial abundance primarily through temperature‐mediated filtering linked to IR‐driven warming rather than passive UV sterilization. These results position flowers as microhabitats where petal traits constrain microbial communities.

New Phytologist
Florida Atlantic University (US)
Openalex Percentile: Top 14%
Light effects on plants
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Petal infrared transmission warms flowers and reduces microbial abundance — Jessica Nicole Williams, Jacob S. Francis, et al. · New Phytologist (2026) | TGRS Research Map | TGRS