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Grafe, U.

Publications and source records attributed to Grafe, U..

2 recordsLinked to original sources

Genomic evidence for rapid speciation and gene flow between sympatric carnivorous Nepenthes pitcher plants

Speciation can result from both neutral and adaptive processes, but their relative importance and the factors exerting selective pressures are incompletely understood. In theory, interspecific gene flow could suffice to reverse speciation, or else erode neutral divergence and expose traits and underlying genes whose divergence is due to selection. Hence, introgression can shed light on selection during the speciation process. Here we study mixed assemblages of carnivorous Nepenthes pitcher plants, which frequently produce natural hybrids yet maintain distinct phenotypes. Using ddRAD-seq markers, we characterize divergence and introgression for eight Nepenthes species that grow sympatrically in communities of three to seven species at four locations in Southeast Asia, totalling 22 populations. The sympatric species fell into two discrete classes of high and low divergence. Five lineages with high divergence displayed little recent introgression in tests of location-dependent allele sharing (ABBA-BABA) despite the presence of some natural hybrids. However, all five lineages appear to have introgressed in the more distant past, as revealed by coalescent models with Approximate Bayesian Computation. In the same locations occur three further sympatric species with low genetic divergence. These incipient species also showed some natural hybrids, but in addition both ABBA-BABA tests and ABC suggested very recent or ongoing introgression, raising the question how divergence is maintained in these hybrid zones. One trait possibly involved in maintenance of divergence against gene flow might be the carnivorous pitcher traps, whose morphology showed greater divergence than expected under neutral evolution (Pst-Fst) in the introgressing species pair N. hemsleyana and N. rafflesiana t.f..

evolutionary biology↗

Adaptive evolution of carnivory in Nepenthes pitcher plants: a comparative transcriptomics and proteomics perspective

While trait diversity associated with evolutionary radiations is easily recognized, their function and adaptive relevance often remain elusive. Here we study the evolution of carnivory genes in Nepenthes, an iconic radiation of carnivorous pitcher plants. We investigate 13 species chosen to represent the diversity of nutrient acquisition strategies, geography and climates covered by the genus. Using a combination of proteomics and transcriptomics, we discovered that Nepenthes secrete hundreds of enzymes and antimicrobial proteins into their digestive fluids. Further genes related to plant carnivory were uncovered by analyses of gene expression changes induced by experimental feeding of starved Nepenthes traps. Feeding status appears to affect the relative abundance of nearly 35% of all expressed genes, and may be accompanied by a strong physiological shift away from photosynthesis towards heterotrophy, proteolysis, and protein synthesis. Among the many thousand genes showing signatures of adaptive evolution in sequence or expression level within the Nepenthes radiation, the secreted pitcher fluid proteins and the carnivory-related genes were over-represented. A bias towards carnivory genes, and towards trap-expressed genes versus leaf-expressed genes, was also observed among the genes differing in expression in a young pair of sister species. Together, our results suggest that the molecular basis of the carnivorous syndrome was disproportionally targeted by positive selection during the Nepenthes radiation. This study demonstrates how the evolutionary relevance of putative key traits can be tested at the level of underlying genes.

evolutionary biology↗