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Deiss, T. C.

Publications and source records attributed to Deiss, T. C..

3 recordsLinked to original sources

Bergerac Strains of C. elegans Revisited: Expansion of Tc1 elements Impose a Significant Genomic and Fitness Cost

The DNA transposon Tc1 was the first transposable element (TE) to be characterized in Caenorhabditis elegans and to date, remains the best-studied TE in Caenorhabditis worms. While Tc1 copy-number is regulated at approximately 30 copies in the laboratory N2/Bristol and the vast majority of C. elegans strains, the Bergerac strain and its derivatives have experienced a marked Tc1 proliferation. Given the historical importance of the Bergerac strain in the development of the C. elegans model, we implemented a modern genomic analysis of three Bergerac strains (CB4851, RW6999, and RW7000) in conjunction with multiple phenotypic assays to better elucidate the (i) genomic distribution of Tc1, and (ii) phenotypic consequences of TE deregulation for the host organism. The median estimates of Tc1 copy-number in the Bergerac strains ranged from 451 to 748, which is both (i) greater than previously estimated, and (ii) likely to be an underestimate of the actual copy-numbers since coverage-based estimates and ddPCR results both suggest higher Tc1 numbers. All three Bergerac strains had significantly reduced trait means compared to the N2 control for each of four fitness-related traits, with specific traits displaying significant differences between Bergerac strains. Tc1 proliferation was genome-wide, specific to Tc1, and particularly high on chromosomes V and X. There were fewer Tc1 insertions in highly expressed chromatin environments than expected by chance. Furthermore, Tc1 integration motifs were also less frequent in exon than non-coding sequences. The source of the proliferation of Tc1 in the Bergerac strains is specific to Tc1 and independent of other TEs. The Bergerac strains contain none of the alleles that have previously been found to derepress TE activity in C. elegans. However, the Bergerac strains had several Tc1 insertions near or within highly germline-transcribed genes which could account for the recent germline proliferation.

evolutionary biology↗

Mutation rate and spectrum in Caenorhabditis elegans mutation accumulation lines subjected to RNAi-induced knockdown of the mismatch repair gene msh-2

DNA mismatch repair (MMR), an evolutionarily conserved repair pathway shared by prokaryotic and eukaryotic species alike, influences molecular evolution by detecting and correcting mismatches that escape DNA polymerase proofreading, thereby protecting genetic fidelity, reducing the mutational load, and preventing lethality. Herein we conduct the first genome-wide evaluation of the alterations to the mutation rate and spectrum under impaired activity of the MutS homolog, msh-2, in Caenorhabditis elegans. We performed mutation accumulation (MA) under RNAi-induced knockdown of msh-2 for 50 generations in obligately outcrossing fog-2(lf) lines, followed by next-generation sequencing of 19 MA lines and the ancestral control. msh-2 impairment substantially increased the frequency of nuclear base substitutions ([~]23x) and small indels ([~]328x) relative to wildtype. However, we observed no increase in the mutation rates of mtDNA, and copy-number changes of single-copy genes. There was a marked increase in copy-number variation of rDNA genes under MMR impairment. In C. elegans, msh-2 repairs transitions more efficiently than transversions as well as increases the AT mutational bias relative to wildtype. The local sequence context, including sequence complexity, G+C-content, and flanking bases influenced the mutation rate. The X chromosome had a lower substitution and higher indel rate than autosomes, which can either result from sex-specific mutation rates or a nonrandom distribution of mutable sites in the genome. Comparison of MMR impairment in C. elegans to that in other species shows that the specificity of the MMR varies between taxa, and is more efficient in detecting and repairing small indels in eukaryotes relative to prokaryotes.

evolutionary biology↗

Global Gene Expression Divergence in Spontaneous Mutation Accumulation Lines of Caenorhabditis elegans under Varying Efficiency of Selection

To ascertain the effect of relaxation of selection on global gene expression, Caenorhabditis elegans mutation accumulation (MA) lines were propagated under varying degrees of efficiency of selection determined by their different population sizes (N = 1, 10 and 100). Both the mutational variance (Vm), and the residual variance (Vr) were greatest in MA lines with the lowest efficiency of natural selection. The results suggest that gene expression is under strong balancing selection. Furthermore, mutations resulting in increased transcriptional noise or sensitivity to microenvironmental variation accumulate most under extreme genetic drift. In contrast, the Vm/Vr ratio was lowest in the N =1 lines. Chromatin domains associated with broad gene silencing and active transcription exhibited the greatest and the smallest increase in transcriptional variation, respectively. Furthermore, the preponderance of overexpressed genes was especially pronounced in mitochondrial respiration, stress response, and immune system pathways, especially in low fitness N = 1 lines.

evolutionary biology↗