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Wighard, S.

Publications and source records attributed to Wighard, S..

3 recordsLinked to original sources

Functional divergence of conserved developmental plasticity genes between two distantly related nematodes

Genes diverge in form and function in multiple ways over time; they can be conserved, acquire new roles, or eventually be lost. However, the way genes diverge at the functional level is little understood, particularly in plastic systems. We investigated this process using two distantly related nematode species, Allodiplogaster sudhausi and Pristionchus pacificus. Both these nematodes display environmentally-influenced developmental plasticity of mouth-form feeding structures. This phenotype can be manipulated by growth on particular diets, making them ideal traits to investigate functional divergence of developmental plasticity genes between organisms. Using CRISPR-engineered mutations in A. sudhausi mouth-form genes, we demonstrate examples of the various ways ancestral genes regulate developmental plasticity and how these roles can progressively diverge. We examined four ancestral genes, revealing distinct differences in their conservation and functional divergence in regulating the mouth phenotype in both species. Specifically, certain genes retain the same characteristics, while others have acquired a new function. Additionally, two ancestral genes retain their functions as switch genes, which completely prevent a phenotype, and the other two display quantitative effects, with knockouts in these genes displaying intermediate phenotypes. Remarkably, despite the evolutionary distance, all genes examined were involved in mouth-form regulation. Finally, multiple gene knock-out mutants were engineered, with key sulfatase-encoding genes acting downstream of all others, suggesting they play a major role in mouth-form plasticity. Together, this study represents the first mutant-based functional analysis of the evolution of developmental plasticity between two highly diverged species, offering new insights into the genetic mechanisms underlying phenotypic evolution. Article SummaryWhile evolutionary divergence of genes is well-studied at the sequence level, the resulting functional and phenotypic consequences are less known, particularly in plastic systems. Here, we examined functional divergence of a set of genes involved in developmental plasticity of mouth-form between two highly diverged nematode species. We found that all studied genes control mouth-form plasticity in both species; however, with strong functional divergence and gene-specific quantitative effects or even novel functions. Thus, there is a spectrum from full conservation, partial conservation to the gain of a new function; with genes involved in sulfation showing the strongest conservation during evolution.

evolutionary biology↗

The genome assembly of Rhabditoides inermis from a complex microbial community reveals further evidence for parallel gene family expansions across multiple nematodes

BackgroundFree-living nematodes such as Caenorhabditis elegans and Pristionchus pacificus are powerful model systems for linking specific traits to their underlying genetic basis. To trace the evolutionary history of a candidate gene, a robust phylogenomic framework is indispensable. ResultsIn this work, we generated a near chromosome-scale genome assembly of the nematode Rhabditoides inermis which had previously been proposed as the sister group of the family Diplogastridae to which P. pacificus belongs. The genome was assembled from a complex microbial community that consists of multiple bacteria and a fungus of the genus Vanrija. The R. inermis genome has five chromosomes that likely arose from recent fusions of different Nigon elements. Phylogenomic analysis grouped R. inermis within a clade including C. elegans, Mesorhabditis belari and other rhabditids and thus, did not support a sister group relationship between R. inermis and the family Diplogastridae. Comparative genomic analyses identified abundant lineage-specific orthogroups which reveal evidence for parallel expansions of environmentally responsive gene families. ConclusionsOur work demonstrates the value of the R. inermis genome as a resource for future phylogenomic analysis and for studying gene family evolution.

genomics↗

Conserved switch genes regulate a novel cannibalistic morph after whole genome duplication

Developmental plasticity facilitates morphological and behavioural novelty, but associated regulatory mechanisms remain elusive. Nematodes have emerged as a powerful model to study developmental plasticity and its evolution. Here, we show the predatory nematode Allodiplogaster sudhausi evolved an additional third mouth morph, concomitant with whole genome duplication (WGD) and a strong increase in body size. The three mouth morphs are induced by different diets; bacteria, fungi and nematodes. CRISPR experiments indicate that regulation of the third morph involves co-option of a conserved developmental switch gene, which through WGD resulted in two mouth-form regulators. Gene dosage studies revealed a diverged role of these developmental switches, with functional redundancy and quantitative effects in the two mouth-form decisions, respectively. The third morph is cannibalistic and kills kin, whereas the other two morphs do not. Thus, the recent evolution of a new morph relies on pre-existing regulatory mechanisms and adds behavioural and social complexity. One-Sentence SummaryExperimental genetics in a nematode reveals a key role for developmental plasticity in the evolution of nutritional diversity

evolutionary biology↗