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Biology subjects

Ruth, B.

Publications and source records attributed to Ruth, B..

2 recordsLinked to original sources

Selection for later flowering time in an orchid through frost damage and pollinator activity

Flowering time is a key trait for plant reproductive success ensuring both overlap with pollinator activity and favorable conditions for fruit development. To quantify selection on flowering time, we individually marked 1250 plants of the Small Spider Orchid, Ophrys araneola RchB., in six populations in Northern Switzerland and surveyed them during three years. We recorded the date of first flowering, frost damage, and fruiting success of individual plants. In addition, we analyzed historical records of the orchid and its only verified pollinator, the solitary bee Andrena combinata in Northern Switzerland, to estimate potential desynchronization due to climate change. We documented strong selection for later flowering driven by frost damage, with all populations showing significant selection for later flowering in at least one year. Selection for later flowering driven by pollination (fruit set) could only be analyzed in one population due to the overall low fruit set, where it was significant in one year. The historical data from between 1970 and 2019 indicated low synchronization between orchid flowering and bee occurrence, with mean flowering three weeks earlier than the mean peak of bee occurrence, corroborating selection for later flowering through fruit set. The data also showed a significant advance of flowering time and bee-occurrence in the last decades, but to a similar degree in orchids and bees, hence without an indication of increasing desynchronization through climate change. Our study shows that selection for later flowering is mostly caused by frost damage, but also by the little synchronized flowering and pollinator activity, which is however unlikely to be a consequence of climate change in this orchid.

evolutionary biology↗

Product inhibition can accelerate evolution

Molecular replicators studied in-vitro exhibit product inhibition, typically caused by the hybridization of products into complexes that are not able to replicate. As a result, the replication rate and the selection pressure is reduced, potentially allowing the "survival of everyone". Here, we introduce a stochastic evolution model of replicating and hybridizing RNA strands to study the effect of product inhibition on evolution. We found that hybridization, though reducing the efficiency of replication, can increase the rate of evolution, measured as fitness gain within a period of time. The positive effect has been observed for a mutation error smaller than half of the error threshold. In this situation, frequency-dependent competition causes an increased diversity that spreads not only within a neutral network but also over various neutral networks through a dynamical modulation of the fitness landscape, resulting in a more effective search for better replicators. The underlying model is inspired by RNA virus replication and the RNA world hypothesis. Further investigations are needed to validate the actual effect of accelerated evolution through product inhibition in those systems.

bioinformatics↗