1995Annual Review of GeneticsRequires access

HOMOLOGOUS RECOMBINATION PROTEINS IN PROKARYOTES AND EUKARYOTES

R. Daniel Camerini‐Otero, Peggy Hsieh

Open publisher page 143 citations

Abstract

Genetic recombination is common to all forms of life and involves the exchange of DNA sequences between two chromosomes or DNA molecules. Such exchanges contribute to the generation of genetic diversity and the repair of damaged DNA. There are two major classes of recombination, site-specific recombination and general or homologous recombination. In homologous recombination the joining of the DNA duplexes exhibits a similar degree of precision or fidelity but, generally speaking, does not take place at specific sites. Since exchange can occur anywhere along the length of two homologous chromosomes, it follows that the proteins that catalyze homologous recombination are not sequence- or site-specific binding proteins. This review focuses on genetic and biochemical analyses of homologous recombination proteins that carry out conjugational recombination in E. coli and meiotic recombination in eukaryotes.

About this research paper

What this paper is about

Genetic recombination is common to all forms of life and involves the exchange of DNA sequences between two chromosomes or DNA molecules. Such exchanges contribute to the generation of genetic diversity and the repair of damaged DNA. There are two major classes of recombination, site-specific recombination and general or homologous recombination. In homologous recombination the joining of the DNA duplexes exhibits a similar degree of precision or fidelity but, generally speaking, does not take place at specific sites. Since exchange can occur anywhere along the length of two homologous chromosomes, it follows that the proteins that catalyze homologous recombination are not sequence- or site-specific binding proteins. This review focuses on genetic and biochemical analyses of homologous recombination proteins that carry out conjugational recombination in E. coli and meiotic recombination in eukaryotes.

Why it matters

OpenAlex reports 143 citations for this work. Citation counts describe recorded attention and do not establish research quality.

Key contribution

A contribution statement is not available in the OpenAlex record.

Method / approach

Method details are not available in the OpenAlex metadata.

Main findings

Findings are not separately available in the OpenAlex metadata.

Limitations

Limitations are not available in the OpenAlex metadata.

Applications

Application details are not available in the OpenAlex metadata.

Available abstract

Genetic recombination is common to all forms of life and involves the exchange of DNA sequences between two chromosomes or DNA molecules. Such exchanges contribute to the generation of genetic diversity and the repair of damaged DNA. There are two major classes of recombination, site-specific recombination and general or homologous recombination. In homologous recombination the joining of the DNA duplexes exhibits a similar degree of precision or fidelity but, generally speaking, does not take place at specific sites. Since exchange can occur anywhere along the length of two homologous chromosomes, it follows that the proteins that catalyze homologous recombination are not sequence- or site-specific binding proteins. This review focuses on genetic and biochemical analyses of homologous recombination proteins that carry out conjugational recombination in E. coli and meiotic recombination in eukaryotes.

Key concepts: Homologous recombination, Non-allelic homologous recombination, Recombination, FLP-FRT recombination, Genetic recombination, Biology, Genetics, Ectopic recombination

Related papers

Back to paper searchBrowse research topicsOriginal source
HOMOLOGOUS RECOMBINATION PROTEINS IN PROKARYOTES AND EUKARYOTES — Research Paper | ScholarLens