Understory light quality affects leaf pigments and leaf phenology in different plant functional types
Brelsford, C. C.; Trasser, M.; Paris, T.; Hartikainen, S. M.; Robson, T. M.
Show abstract
Understory plant species take on different functional strategies, whereby some exploit periods of available light in springtime before the canopy closes, and others also benefit from sunlight later in autumn when the canopy opens again. These strategies involve understory species coordinating phenological events to pre-empt canopy leaf out and to extend their growing season beyond canopy leaf senescence, meanwhile accumulating photo-protective pigments which mitigate periods of high-light exposure. Canopy closure brings shade to the understory, but also causes drastic changes in light quality. Whilst many experiments manipulating spectral quality have revealed understory plant responses to the changing R:FR ratio in shade, effect of the blue and UV regions have been examined very little. We installed filters attenuating short wavelength regions of the solar spectrum in a forest understory in southern Finland, creating the following treatments: a transparent control filter, and filters attenuating UV radiation < 350 nm, all UV radiation, and both UV and blue light. In eight understory species, representing different plant functional types, we repeatedly assessed leaf optical properties to obtain epidermal flavonol and anthocyanin contents from leaf emergence in spring to leaf senescence in autumn, during both 2017 and 2018. Flavonols responded more to seasonal changes in light quality in relatively light-demanding species than in shade-tolerant and wintergreen species; and were particularly responsive to blue light. However, anthocyanins were largely unaffected by our filter treatments, suggesting that other cues such as cold temperatures govern their seasonal variation. UV radiation only accelerated leaf senescence in Acer platanoides seedlings, but blue light accelerated leaf senescence in all species measured apart from Quercus robur. In summary, seasonal changes in understory solar radiation in the blue and UV regions affected leaf pigments and leaf phenology; particularly for more light-demanding species. An increase in canopy duration under climate change will extend the period of shade in the understory, with consequences for the spectral cues available to understory plants. The resultant reduction in blue and UV radiation in shade, could delay leaf senescence in the understory even further.
Matching journals
The top 6 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Vertical gradients in photosynthetic physiology diverge at the latitudinal range extremes of white spruce 97%
- Variation in white spruce needle respiration at the species range limits: a potential impediment to northern expansion 95%
- Leaf cell wall properties and stomatal density influence oxygen isotope enrichment of leaf water 94%
Similar papers in this journal
- Unravelling resilience mechanisms in forests: role of non-structural carbohydrates in responding to extreme weather events 94%
- Adaptive plasticity in plant traits increases time to hydraulic failure under drought in a foundation tree 93%
- An eco-physiological model of forest photosynthesis and transpiration under combined nitrogen and water limitation 93%
Similar papers in this journal
- Chronic warming and dry soils limit carbon uptake and growth despite a longer growing season in beech and oak 95%
- Light quality signals generated by vegetation shade facilitate acclimation to reduced light quantity in shade-avoider plants 95%
- Thermal acclimation fails to confer a carbon budget advantage to invasive species over natives 95%
Similar papers in this journal
- Bulb growth potential is independent of leaf longevity for the spring ephemeral Erythronium americanum Ker-Gawl. 95%
- Smart Film Impacts Stomatal Sensitivity of Greenhouse Capsicum Through Altered Light 95%
- Intrinsic water use efficiency depends on stomatal aperture rather than stomatal density in C3 and C4 grasses grown at glacial CO2 and low light 94%
Similar papers in this journal
- Physiological responses to light explain competition and facilitation in a tree diversity experiment 96%
- Earlier snowmelt increases the strength of the carbon sink in montane meadows unequally across the growing season 93%
- Adaptations and responses of the common dandelion to low atmospheric pressure in high altitude environments 93%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.