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Klepka, L.

Publications and source records attributed to Klepka, L..

4 recordsLinked to original sources

Environmental drivers of heritable trait variation and lag of adaptation to climate in Hordeum murinum

1. Most plant species are genetically differentiated among populations, often reflected by phenotypic trait variation that corresponds to local adaptation. Yet the strength of local adaptation and heritable contribution to phenotypic traits vary across traits, species, and environments. Additionally, climate change is rapidly altering environmental conditions, and the climate may shift faster than populations can adapt or track the change via dispersal, resulting in adaptive lags. However, it remains unclear how widespread such adaptive lags are across plant species. 2. We focused on Hordeum murinum, an annual ruderal grass widespread in Europe. We combined continental-scale in situ measurements of 2070 plants across 207 populations with common garden experiments across two contrasting climates and two soil types to disentangle heritable variation from phenotypic plasticity and assess potential adaptive lags under climate change. 3. We found that heritable variation was pronounced in developmental traits, particularly flowering time and plant height, while seed weight, reproductive investment and SLA showed intermediate heritable contribution, and flag leaf area and total biomass were primarily plastic. Heritable trait variation was strongly associated with temperature at the populations origin, and trait clines were consistent with in situ patterns, suggesting that temperature is the main driver of genetic differentiation in H. murinum. However, we detected that fitness peaked in populations originating from warmer climates, indicating that evolutionary responses may not keep pace with rapid environmental shifts. 4. Synthesis: Our results highlight that H. murinum harbors substantial heritable variation, shaped primarily by temperature. However, the pace of evolutionary change may be insufficient to track ongoing climate change, leaving populations potentially vulnerable to future environmental conditions.

ecology↗

Beyond viability: Seed ageing alters development and phenology of adult plants

O_LIStored seeds are crucial repositories of plant genetic diversity. However, long-term storage inevitably causes seed deterioration and loss of viability, and chemical processes within the seeds during storage can influence germination and seedling establishment. Emerging evidence suggests that seed ageing can also affect traits of adult plants, yet the extent to which this phenomenon is relevant across species, particularly for wild plant species with high genetic variation, remains unclear. C_LIO_LITo address this, we focused on 14 grassland species and subjected their seeds to simulated long-term storage by exposing them to artificial ageing conditions (60% rH, 45{degrees}C). We then compared plants grown from the aged seeds with plants from fresh seeds in a common garden experiment. C_LIO_LIArtificially aged seeds germinated later, the developing seedlings had lower survival rates and reduced growth. Adult plants grown from aged seeds flowered later, produced fewer flowers, and had less biomass by the end of the first vegetation period than those from fresh seeds. The effect of the ageing treatment varied between species, but the trend was overall significant across species, with minor differences between perennials and annuals. Interestingly, in perennial plants, the effects vanished or were inverted in the second growing season, with plants growing from aged seeds flowering earlier and producing more biomass. C_LIO_LISynthesis. Our results show that seed storage affects seedling performance, plant growth, and flowering phenology. These direct storage effects should be considered when using stored seeds for species conservation, ecosystem restoration, or evolutionary research relying on stored seeds. C_LI

plant biology↗

Limitations of p50 as a measure of seed longevity and the way forward

PremiseComparative studies of seed longevity assess how environmental conditions, species identity, populations, or genotypes affect seed viability loss in stored seeds. These studies commonly use the time it takes for seed viability to drop to 50% - known as p50, - as a measure of seed longevity. However, p50 is influenced by the initial seed viability. To allow comparisons regardless of the initial seed viability, standard protocols for comparative studies of seed longevity recommend using seed lots with "similar and high" initial viability, typically between 85 and 100%. However, even such range of initial seed viabilities might result in substantial variation in p50. MethodsHere, we use a modelling approach to illustrate how variation in initial viability affects p50 estimates, and to propose alternative, more robust measures of seed longevity in storage. ResultsWe show that for hypothetical accessions with identical rates of seed viability loss, variation in initial viability between 85 and 100% leads to a threefold variation in p50 estimates. Most of the unintended variation is introduced by accessions with very high viability (>95%). Restricting the initial viability to a narrower range (e.g., 85-95%) reduces but does not eliminate this bias. Alternatively, p50 can be recalculated to a standardized value of initial viability (e.g., 90%), which makes it proportional to the rate of probit viability loss without any noise. However, the most straightforward measure of seed longevity for comparative studies is the rate of viability loss itself, represented by {sigma} (sigma) from the viability equation. ConclusionThe common measure of seed longevity, p50, is affected by unintended, substantial variation caused by varying initial viability of the seed lot, and is thus suboptimal for comparative studies of seed longevity among seed accessions. More robust measures of seed longevity include the rate of viability loss, or p50 standardized to a certain initial seed viability.

ecology↗

Large interspecific and intraspecific variation in seed longevity in storage

PremiseConservation seed banks are essential for ex-situ plant conservation, but stored seeds slowly deteriorate and lose viability. Seed longevity in storage is determined by the initial seed viability and the rate of seed viability loss. The rate of seed viability loss in storage varies between species, and there is possibly also some variation between populations or even genotypes within species. However, the extent of this intraspecific variability and its drivers remain unclear. MethodsWe investigated both inter- and intraspecific variability in seed longevity and its predictors in 41 common grassland species and 188 seed accessions from across Europe. We exposed the seeds to artificial ageing conditions (60% RH, 45{degrees}C) and used probit analysis to obtain the rate of seed viability loss ({sigma}) as a measure of seed longevity. We then related {sigma} to both accession- and species-specific factors. Key resultsSeed longevity ({sigma}) varied significantly among accessions within 58% of the species, and the probability of detecting such intraspecific differences increased with the number of accessions available for a given species. This suggests that within-species variation in seed longevity is widespread. Accession-specific predictors explained only 14.4% of the within-species variability. Specifically, seed longevity increased with the mean annual temperature at the accession origin and decreased with the accession-specific seed weight. Across species, seed longevity differed among plant families but was unrelated to seed weight or seed chemical composition. ConclusionsOur findings highlight substantial within-species variation in seed longevity in storage, which, however, is difficult to predict.

ecology↗