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Arnedo, M. A.

Publications and source records attributed to Arnedo, M. A..

3 recordsLinked to original sources

Tempo and mode of diversification of the red devil spiders (Araneae: Dysderidae) of the Canary Islands

The study of adaptive radiations has shed light on our current understanding of evolution. However, previous studies examining the mode in which species diversified, how diversification rates varied, and how ecological specialization affected these processes have found few different results across different taxa and geographic and ecological systems, showing how complex this process is. To gain a more complete picture of how species evolve, additional model systems that encompass alternative ecological requirements are needed. Here, we present the results of a study aimed to unravel the diversification mode and evolutionary drivers of the spider genus Dysdera, the red devil spiders, endemic to the Canary Islands. These species exhibit remarkable phenotypic variability in their mouthparts, which has been related to different levels of specialization in the predation of isopods. We explored patterns of linage diversification and assessed the role of trophic specialization as a driver of species diversification. Additionally, we used climatic variables, occurrence data and morphological information to unravel the underlying mode of speciation by means of joint species distribution models and age-range correlation methods. Our results reveal that red devil spiders underwent an early burst of diversification, followed by a slowdown of diversification rates, which is a hallmark of adaptive radiation. We also found evidence that the trophic morphology shaped diversification, with specialist species exhibiting higher rates of diversification. Finally, our analyses suggest that speciation occurred mostly in allopatry, with subsequent secondary sympatry following range expansion.

evolutionary biology↗

Rearrangements and accelerated mutation rates on Dendrodorididae mitogenomes rumble their evolution

The systematics of the family Dendrodorididae poses a challenge to evolutionary biologists, as their mitochondrial and nuclear markers provide contradictory phylogenetic signals. Nuclear pseudogenes or exogenous contamination are hypothesized to cause the molecular discordance. However, these hypotheses have not been tested. We used genomic data from seven Dendrodorididae species to investigate the evolution of this family. Two mitogenomes displayed a novel structural rearrangement in nudibranchs, involving the translocation of three collinear genes and five surrounding tRNAs. Additionally, we found numerous mitogenomic regions with non-synonymous mutations and multiple indels in both coding and ribosomal genes. Protein modeling resulted in similar structures, suggesting that functionality is conserved. Phylogenies using mitogenomic data confirmed a specific clade membership for the rearranged mitogenomes. The incorporation of nuclear data did not fully resolve the systematic relationships of Dendrodorididae, acknowledging the evolutionary complexity of this group. The present study provides novel evidence on sudden molecular changes in mitogenomes, and highlights the relevance of using genomic data to unveil rare evolutionary processes, which is critical for understanding evolution of neglected taxa.

evolutionary biology↗

Population genomics of adaptive radiations: Exceptionally high levels of genetic diversity and recombination in an endemic spider from the Canary Islands

The spider genus Dysdera has undergone a remarkable diversification in the oceanic archipelago of the Canary Islands, [~]60 endemic species originated during the 20 million years since the origin of the archipelago. This evolutionary radiation has been accompanied by substantial dietary shifts, often characterized by phenotypic modifications encompassing morphological, metabolic and behavioral changes. Hence, these endemic spiders represent an excellent model for understanding the evolutionary drivers and to pinpoint the genomic determinants underlying adaptive radiations. Recently, we achieved the first chromosome-level genome assembly of one of the endemic species, D. silvatica, providing a high-quality reference sequence for evolutionary genomics studies. Here, we conducted a low-coverage based resequencing study of a natural population of D. silvatica from La Gomera island. Taking advantage of the new high-quality genome, we characterized genome-wide levels of nucleotide polymorphism, divergence, and linkage disequilibrium, and inferred the demographic history of this population. We also performed comprehensive genome-wide scans for recent positive selection. Our findings uncovered exceptionally high levels of nucleotide diversity and recombination in this geographically restricted endemic species, indicative of large historical effective population sizes. Furthermore, we identified genomic regions potentially under positive selection, shedding light on relevant biological processes, such as vision and nitrogen extraction as possible targets of adaptation and eventually, as drivers of the species diversification. This pioneering study in spiders endemic of an oceanic archipelago lays the groundwork for broader population genomics investigations aimed at understanding the genetic mechanisms driven adaptive radiations in island ecosystems.

evolutionary biology↗