bioRxiv Science⌕ Search

bioRxiv · 10.1101/2024.08.09.607325

The Evolution of Extreme Genetic Variability in a Parasite-Resistance Complex in a Planktonic Crustacean

Abstract

Genomic regions that play a role in parasite defense are often found to be highly variable, with the MHC serving as an iconic example. Single nucleotide polymorphisms may represent only a small portion of this variability, with Indel polymorphisms and copy number variation further contributing. In extreme cases, haplotypes may no longer be recognized as homologs. Understanding the evolution of such highly divergent regions is challenging because the most extreme variation is not visible using reference-assisted genomic approaches. Here we analyze the case of the Pasteuria Resistance Complex (PRC) in the crustacean Daphnia magna, a defense complex in the host against the common and virulent bacterium Pasteuria ramosa. Two haplotypes of this region have been previously described, with parts of it being non-homologous, and the region has been shown to be under balancing selection. Using pan-genome analysis and tree reconciliation methods to explore the evolution of the PRC and its characteristics within and between species of Daphnia and other Cladoceran species, our analysis revealed a remarkable diversity in this region even among host species, with many non-homologous hyper-divergent-haplotypes. The PRC is characterized by extensive duplication and losses of Fucosyltransferase (FuT) and Galactosyltransferase (GalT) genes that are believed to play a role in parasite defense. The PRC region can be traced back to common ancestors over 250 million years. The unique combination of an ancient resistance complex and a dynamic, hyper-divergent genomic environment presents a fascinating opportunity to investigate the role of such regions in the evolution and long-term maintenance of resistance polymorphisms. Our findings offer valuable insights into the evolutionary forces shaping disease resistance and adaptation, not only in the genus Daphnia, but potentially across the entire Cladocera class. SignificanceUnderstanding how organisms adapt to their environment requires insights into the evolution of genetic defenses against their parasites. While the Major Histocompatibility Complex (MHC) is a well-known example of a highly variable immune-related gene region, much remains unknown about the evolution of other such regions. Our study investigates the Pasteuria Resistance Complex (PRC) in water fleas, a genomic region crucial for defense against a parasitic bacterium. We discovered that the PRC is exceptionally diverse, with a history spanning hundreds of millions of years. This research provides new insights into the mechanisms underlying the maintenance of genetic diversity in the face of persistent parasite pressure. Our findings contribute to a broader understanding of how organisms evolve robust defenses against infectious diseases.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

Naser-Khdour, S., Scheuber, F., Fields, P. D., Ebert, D.. 2024-08-09. The Evolution of Extreme Genetic Variability in a Parasite-Resistance Complex in a Planktonic Crustacean. https://doi.org/10.1101/2024.08.09.607325

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related preprints

Time-calibrated phylogenomics reveals relationships and parallel evolution of neoteny within Elateriformia (Coleoptera) despite pervasive homoplasy

The controversy over Elateriformia relationships hampers understanding of the evolution of disparate soft-bodied and fully sclerotized phenotypes, bioluminescence, and the ontogenetic reprogramming that leads to larviform females. Elateriformia contains >50,000 species in 34 families, including fireflies, jewel, and click beetles. We sample 31 families and 195 ingroup taxa, each with up to 4,224 orthologs. Through explicit hypothesis testing, coalescent-based approaches, and evaluation of dataset properties, we resolve backbone relationships. We reconfirm the monophyly of Byrrhoidea sensu lato, rejecting the recent resurrection of Dryopoidea, and verify the reciprocally monophyletic lampyroid and elaterid clades. We characterize short internodes and gene-tree discordance, both of which are indicative of ancient rapid radiations. Counterintuitively, signals from moderately variable genes are crucial for resolving certain splits, suggesting that even subtle rate differences distinguish phylogenetically informative loci from overly conserved, less informative markers. Time-calibrated phylogenies indicate the early origin of Elateriformia (281-287 Mya), with superfamilies diverging at the Permian-Triassic boundary and diversifying throughout the Jurassic. We identify 15 independent origins of soft-bodiedness and neotenic modifications spanning the Mid Jurassic to the present. Our hypothesis provides a foundation for investigating the genetic mechanisms underlying ontogenetic reprogramming and bioluminescence.

evolutionary biology↗

Reticulate Evolution and Plastome Restructuring Shape Asian Passiflora Diversification

Asian Passifloraceae occupy a distinctive evolutionary and ecological position within the family despite their relatively low species diversity compared with the Neotropics. Many Asian representatives are highly localized, small and often ephemeral climbers that persist seasonally through rhizomes, tuberous stems or dormant seeds, while considerable morphological plasticity may obscure species limits and evolutionary relationships. Xishuangbanna, southwestern China, lies at the convergence of Southeast Asian, Indian-Himalayan and southern Chinese floristic elements and represents an important regional centre of Passifloraceae diversity, with two species of Adenia and five species of Passiflora, including the recently described P. xishuangbannaensis and P. menghaiensis. We investigate the evolutionary relationships, plastome evolution and population genomics of these taxa using complete plastome assemblies, a concatenated dataset of 68 selected plastid protein-coding genes, 356 reconstructed nuclear Coding Sequences (CDS), and Genotyping-By-Sequencing (GBS) across the known wild distribution of P. xishuangbannaensis. Plastid, concatenated nuclear and nuclear coalescent phylogenies were strongly incongruent and differed from published classifications based on morphology and earlier phylogenies (ITS, ncpGS, ctyGS, ndhF and trnL-F). Gene-tree discordance and phylogenetic-network inference indicated widespread incomplete lineage sorting together with introgression. The two statistically best-supported network models placed P. menghaiensis, which showed high genetic similarity to the Indian P. napalensis, as a sister lineage involved in independent reticulation events associated with P. altebilobata, P. xishuangbannaensis and P. sumatrana. A pronounced biogeographic pattern was evident within Passiflora supersection Disemma, particularly in the P. siamica-P. cochinchinensis lineage across the Hua Line, whereas relationships among other Asian Passiflora blurred this boundary. This pattern suggests that diversification and reticulation within the Asian lineage may have overlapped temporally with the development of the biogeographic divide represented by the Hua Line. The concentration of early-diverging lineages around Xishuangbanna and the eastern Himalayan-Indian region further points to this area as an important centre in the early diversification of Asian Passiflora. Within this context, the highly localized P. xishuangbannaensis may represent either a relictual of an early Asian lineage or the surviving product of an ancient reticulate complex, contrasting with lineages such as P. siamica that subsequently expanded farther across Southeast Asia. Comparative plastome analyses revealed extensive structural and gene-content evolution within subgenus Decaloba, including pseudogenization, gene and intron losses, and repeated Inverted-Repeat (IR) expansions and contractions; substantial plastome modification also characterized supersection Disemma. Passiflora sumatrana exhibited a particularly distinctive IR expansion extending into the accD-pafII region, potentially characterizing this lineage. Adenia plastomes were generally more structurally conservative, although A. penangiana displayed an IR-boundary contraction involving the rps19-rpl2 region. Mitochondrial CDS and non-coding regions provided the best-resolved phylogenetic signal and revealed strong discordance with the chloroplast phylogeny, consistent with maternal mitochondrial inheritance and variable plastid transmission, potentially involving paternal or biparental inheritance and heteroplasmy. GBS analyses of P. xishuangbannaensis using complementary distant-reference, de novo and closely related-reference approaches showed that mapping to P. organensis provided the clearest SNP distribution and population resolution. ADMIXTURE, PCA and FST analyses revealed two strongly geographically structured populations with additional substructure and substantial differentiation (FST = 0.112). Linkage disequilibrium based demographic reconstruction using GONE2 indicated declining effective population size (Ne) toward the present in both populations, with a particularly abrupt recent decline in Pop1 and a more gradual decline in Pop2. Few candidate Self-Incompatibility (SI) genes could be confidently reconstructed, including limited recovery of highly variable docking regions. However, the intracellular region of an S-locus Receptor Kinases (SRK) contained a distinctive non-synonymous substitution predicted to alter protein configuration without major disruption of overall folding, potentially contributing to compatibility differences between populations. Together, these results reveal a complex evolutionary history combining historical dispersal, incomplete lineage sorting, reticulation, morphological plasticity, plastome structural evolution and strong population differentiation. The narrow distributions and recent demographic decline of these newly recognized Xishuangbanna taxa emphasize their conservation importance, while broader Asian taxon sampling and deeper genomic sequencing will be essential to resolve the evolutionary history of this discreet and poorly known Passifloraceae radiation.

evolutionary biology↗

Who are my Neighbours? Selection Targets Robustness to Full Replication Events, Not to Individual Mutations

Theory predicts that populations should evolve mutational robustness the ability to maintain a constant phenotype despite mutations. However, selection does not operate on individual mutations but on phenotypes resulting from entire replication events, which may involve a variable number of mutations. We therefore distinguish mutational robustness from replicative robustness, defined as the probability that a replication event produces similarly fit offspring. Mutational and replicative robustness may seem closely aligned at first sight, but we show with an evolutionary simulation model that they can be selected in opposite directions. Our results show that while genomes with high redundancy and/or large amounts of non-coding DNA are mutationally robust, they are replicatively fragile because their size increases the number of mutations per replication. This is especially relevant when genomes are at risk of severe disruption from chromosomal rearrangements. Our results expose limits of the fitness landscape metaphor in the context of robustness evolution: neutral plateaus may be mutationally robust but replicatively unstable and therefore disfavoured by selection, whereas narrow peaks arising from densely encoded genomes can replicate more reliably. Our results identify replicative robustness as a distinct target of selection that depends not only on tolerance to individual mutations but also on their overall likelihood of occurring.

evolutionary biology↗