Search bioRxiv⌕ Search

Biology subjects

Kozenkov, I. I.

Publications and source records attributed to Kozenkov, I. I..

2 recordsLinked to original sources

Improving genome quality through artificial truncating purifying selection using heat shock: case of carps

The process of domestication is associated with decrease in effective population size, which in turn leads to accumulation of slightly-deleterious mutations due to genetic drift. To maintain genome quality at a high level, we propose to use a stress-induced strong purifying selection, which based on negative epistasis, can effectively eliminate organisms with an excess of deleterious variants. Here, to identify stress factors, which interact with the effect of deleterious mutations we performed a proof-of-principle experiment with several regimes of a heat shock. We observed that fitness of mutated versus wild-type carp lines drops stronger after heat shock, which is a signature of a negative epistasis. Although the observed trend is promising, the effect of the epistasis is weak and unstable from family to family. Thus, more deep tuning of heat shock regimes is needed to uncover the most efficient combination of factors (absolute temperature, duration, stage of the embryo development) aggravating the burden of deleterious mutations and thus exposing them to the selection.

evolutionary biology↗

Isolation of highly purified genomic material from mitochondria of muscle tissue cells

In this work, we adapted a method for isolation of a highly purified fraction of mitochondrial DNA from muscle tissues suitable for further sample preparation of libraries without an amplification step for sequencing tasks on various NGS platforms and a method for evaluating the purity of DNA from contamination by nuclear genome regions. We optimized several techniques7,8 for enrichment of the mitochondrial fractions and purifying mtDNA. Here, we describe a protocol that allows getting from 80-100 mg of muscle tissues up to 1000 ng mtDNA, almost free from impurities of RNA and fragments of the nuclear genome.To assess the degree of purity of human mtDNA fraction from impurities of the nuclear genome, we adapted the PCR-screening technique7 for the beta-actin gene region and AluSx-repeats in the human genome. This methodology avoids false-heteroplasmy calls (PCR biases or NUMT contamination) that occur when long-range PCR amplification is used for mtDNA enrichment.

molecular biology↗