Rates and Patterns of Mutation in Tandem Repetitive DNA in Six Independent Lineages of Chlamydomonas reinhardtii. 2018

Jullien M Flynn, and Sarah E Lower, and Daniel A Barbash, and Andrew G Clark
Department of Molecular Biology and Genetics, Cornell University, Ithaca, New York.

The mutational patterns of large tandem arrays of short sequence repeats remain largely unknown, despite observations of their high levels of variation in sequence and genomic abundance within and between species. Many factors can influence the dynamics of tandem repeat evolution; however, their evolution has only been examined over a limited phylogenetic sample of taxa. Here, we use publicly available whole-genome sequencing data of 85 haploid mutation accumulation lines derived from six geographically diverse Chlamydomonas reinhardtii isolates to investigate genome-wide mutation rates and patterns in tandem repeats in this species. We find that tandem repeat composition differs among ancestral strains, both in genome-wide abundance and presence/absence of individual repeats. Estimated mutation rates (repeat copy number expansion and contraction) were high, averaging 4.3×10-4 per generation per single unit copy. Although orders of magnitude higher than other types of mutation previously reported in C. reinhardtii, these tandem repeat mutation rates were one order of magnitude lower than what has recently been found in Daphnia pulex, even after correcting for lower overall genome-wide satellite abundance in C. reinhardtii. Most high-abundance repeats were related to others by a single mutational step. Correlations of repeat copy number changes within genomes revealed clusters of closely related repeats that were strongly correlated positively or negatively, and similar patterns of correlation arose independently in two different mutation accumulation experiments. Together, these results paint a dynamic picture of tandem repeat evolution in this unicellular alga.

UI MeSH Term Description Entries
D009154 Mutation Any detectable and heritable change in the genetic material that causes a change in the GENOTYPE and which is transmitted to daughter cells and to succeeding generations. Mutations
D006238 Haploidy The chromosomal constitution of cells, in which each type of CHROMOSOME is represented once. Symbol: N. Haploid,Haploid Cell,Cell, Haploid,Cells, Haploid,Haploid Cells,Haploidies,Haploids
D000067552 Mutation Accumulation Concept which describes the incremental effects of MUTATION in living organisms. Spontaneous Mutation Accumulation,Accumulation, Mutation,Accumulation, Spontaneous Mutation,Accumulations, Mutation,Accumulations, Spontaneous Mutation,Mutation Accumulation, Spontaneous,Mutation Accumulations,Mutation Accumulations, Spontaneous,Spontaneous Mutation Accumulations
D001483 Base Sequence The sequence of PURINES and PYRIMIDINES in nucleic acids and polynucleotides. It is also called nucleotide sequence. DNA Sequence,Nucleotide Sequence,RNA Sequence,DNA Sequences,Base Sequences,Nucleotide Sequences,RNA Sequences,Sequence, Base,Sequence, DNA,Sequence, Nucleotide,Sequence, RNA,Sequences, Base,Sequences, DNA,Sequences, Nucleotide,Sequences, RNA
D016825 Chlamydomonas reinhardtii A species of GREEN ALGAE. Delicate, hairlike appendages arise from the flagellar surface in these organisms. Chlamydomonas reinhardii,Chlamydomonas reinhardius,Chlamydomonas reinhardtius,reinhardius, Chlamydomonas,reinhardtii, Chlamydomonas
D054628 Genome, Chloroplast The genetic complement of CHLOROPLASTS as represented in their DNA. Chloroplast Genome,Chloroplast Genomes,Genomes, Chloroplast
D059645 Mutation Rate The number of mutations that occur in a specific sequence, GENE, or GENOME over a specified period of time such as years, CELL DIVISIONS, or generations. Mutation Frequency,Frequencies, Mutation,Frequency, Mutation,Mutation Frequencies,Mutation Rates,Rate, Mutation,Rates, Mutation
D018744 DNA, Plant Deoxyribonucleic acid that makes up the genetic material of plants. Plant DNA
D018745 Genome, Plant The genetic complement of a plant (PLANTS) as represented in its DNA. Plant Genome,Genomes, Plant,Plant Genomes
D020080 Tandem Repeat Sequences Copies of DNA sequences which lie adjacent to each other in the same orientation (direct tandem repeats) or in the opposite direction to each other (INVERTED TANDEM REPEATS). Direct Tandem Repeats,Tandem Repeat,Tandem Repeats,Direct Tandem Repeat,Repeat Sequence, Tandem,Repeat Sequences, Tandem,Repeat, Direct Tandem,Repeat, Tandem,Repeats, Direct Tandem,Repeats, Tandem,Sequence, Tandem Repeat,Sequences, Tandem Repeat,Tandem Repeat Sequence,Tandem Repeat, Direct,Tandem Repeats, Direct

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