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Biology subjects

Lara, A. S. T.

Publications and source records attributed to Lara, A. S. T..

2 recordsLinked to original sources

Climate-driven increase in transmission of wildlife malaria parasite over the last quarter century

Climate warming is expected to influence the prevalence of vector-transmitted parasites. Understanding the extent to which this is ongoing, or has already occurred, requires empirical data from populations monitored over long periods of time, but these studies are sparse. Further, vector-disease research involving human health is often influenced by disease control efforts that supersede natural trends. By screening for malaria parasite infections in a wildlife population of blue tits (Cyanistes caeruleus) in Northern Europe, over a 26-year period, we tested whether observed prevalence and transmission changes were climate-driven and show that all three malaria parasite genera have increased significantly in their prevalence and transmission over time. The most common parasite in the study, Haemoproteus majoris, increased in prevalence from 47% (1996) to 92% (2021), and this is a direct consequence of warmer temperatures elevating transmission. Climate window analyses reveal that elevated temperatures between May 9th and June 24th, a time period that overlaps with the host nestling period, are strongly positively correlated with H. majoris transmission in one-year-old birds. Warmer climate during this narrow timeframe has a demonstrable impact on parasite transmission, and this permeates into the overall prevalence in the host population. We now have empirical support that climate warming can drive a rapid rise in vector-transmitted parasites, and this has implications for other host-parasite systems. Given that we now know the exact time of year when climate warming is most influential on a common vector-transmitted parasite in this system, it is possible to investigate the evolutionary and environmental mechanisms that underly how these infections ultimately manifest. While more challenging to measure, similar implications of climate warming on human vector-disease systems might be occurring.

ecology↗

Species-specific loss of genetic diversity and accumulation of genetic load following agricultural intensification

Land-use change from agricultural intensification is a major driver of global insect declines. We investigated the genetic consequences of grassland decline in Sweden by sequencing museum and modern specimens of three focal and five additional Polyommatinae butterfly species. From 59 historical and 90 contemporary genomes, we find a 6% decline in genetic diversity and increased isolation and inbreeding in the grassland specialist Cyaniris semiargus over the past 70 years. In contrast, generalist Polyommatus icarus and heathland specialist Plebejus argus maintained genetic diversity and connectivity. Although currently genomic erosion is mild, we infer it lags considerably larger declines in effective population sizes. Using simulations, we demonstrate that only a small portion of genetic diversity is lost in early stages of decline, creating a genetic extinction debt. Two of five additional species show similar reductions, underscoring that restoration of grassland habitat is necessary to restore gene flow and halt further genomic erosion in grassland insects.

genomics↗