Literature DB >> 28101670

Recombination correlates with synaptonemal complex length and chromatin loop size in bovids-insights into mammalian meiotic chromosomal organization.

Aurora Ruiz-Herrera1,2, Miluse Vozdova3, Jonathan Fernández4, Hana Sebestova3, Laia Capilla4, Jan Frohlich3, Covadonga Vara4,5, Adrià Hernández-Marsal4, Jaroslav Sipek3, Terence J Robinson6, Jiri Rubes3.   

Abstract

Homologous chromosomes exchange genetic information through recombination during meiosis, a process that increases genetic diversity, and is fundamental to sexual reproduction. In an attempt to shed light on the dynamics of mammalian recombination and its implications for genome organization, we have studied the recombination characteristics of 112 individuals belonging to 28 different species in the family Bovidae. In particular, we analyzed the distribution of RAD51 and MLH1 foci during the meiotic prophase I that serve, respectively, as proxies for double-strand breaks (DSBs) which form in early stages of meiosis and for crossovers. In addition, synaptonemal complex length and meiotic DNA loop size were estimated to explore how genome organization determines DSBs and crossover patterns. We show that although the number of meiotic DSBs per cell and recombination rates observed vary between individuals of the same species, these are correlated with diploid number as well as with synaptonemal complex and DNA loop sizes. Our results illustrate that genome packaging, DSB frequencies, and crossover rates tend to be correlated, while meiotic chromosomal axis length and DNA loop size are inversely correlated in mammals. Moreover, axis length, DSB frequency, and crossover frequencies all covary, suggesting that these correlations are established in the early stages of meiosis.

Entities:  

Keywords:  Bovidae; Crossovers; MLH1; Meiosis; RAD51; Recombination

Mesh:

Substances:

Year:  2017        PMID: 28101670     DOI: 10.1007/s00412-016-0624-3

Source DB:  PubMed          Journal:  Chromosoma        ISSN: 0009-5915            Impact factor:   4.316


  72 in total

1.  Recombination is proportional to the number of chromosome arms in mammals.

Authors:  F Pardo-Manuel de Villena; C Sapienza
Journal:  Mamm Genome       Date:  2001-04       Impact factor: 2.957

2.  Genetic linkage map of a wild genome: genomic structure, recombination and sexual dimorphism in bighorn sheep.

Authors:  Jocelyn Poissant; John T Hogg; Corey S Davis; Joshua M Miller; Jillian F Maddox; David W Coltman
Journal:  BMC Genomics       Date:  2010-09-28       Impact factor: 3.969

3.  Regulating the formation of DNA double-strand breaks in meiosis.

Authors:  Hajime Murakami; Scott Keeney
Journal:  Genes Dev       Date:  2008-02-01       Impact factor: 11.361

4.  Molecular insights into X;BTA5 chromosome rearrangements in the tribe Antilopini (Bovidae).

Authors:  H Cernohorska; S Kubickova; J Vahala; J Rubes
Journal:  Cytogenet Genome Res       Date:  2012-02-11       Impact factor: 1.636

5.  Numerical constraints and feedback control of double-strand breaks in mouse meiosis.

Authors:  Liisa Kauppi; Marco Barchi; Julian Lange; Frédéric Baudat; Maria Jasin; Scott Keeney
Journal:  Genes Dev       Date:  2013-04-18       Impact factor: 11.361

6.  Variation of Meiotic Recombination Rates and MLH1 Foci Distribution in Spermatocytes of Cattle, Sheep and Goats.

Authors:  Jan Fröhlich; Miluse Vozdova; Svatava Kubickova; Halina Cernohorska; Hana Sebestova; Jiri Rubes
Journal:  Cytogenet Genome Res       Date:  2015-09-26       Impact factor: 1.636

7.  Comparison of RBG-banded karyotypes of cattle, sheep, and goats.

Authors:  H Hayes; E Petit; B Dutrillaux
Journal:  Cytogenet Cell Genet       Date:  1991

Review 8.  Maternal origin of the human aneuploidies. Are homolog synapsis and recombination to blame? Notes (learned) from the underbelly.

Authors:  R Garcia-Cruz; I Roig; M Garcia Caldés
Journal:  Genome Dyn       Date:  2009

9.  RecA homologs Dmc1 and Rad51 interact to form multiple nuclear complexes prior to meiotic chromosome synapsis.

Authors:  D K Bishop
Journal:  Cell       Date:  1994-12-16       Impact factor: 41.582

10.  Meiotic recombination analyses of individual chromosomes in male domestic pigs (Sus scrofa domestica).

Authors:  Nicolas Mary; Harmonie Barasc; Stéphane Ferchaud; Yvon Billon; Frédéric Meslier; David Robelin; Anne Calgaro; Anne-Marie Loustau-Dudez; Nathalie Bonnet; Martine Yerle; Hervé Acloque; Alain Ducos; Alain Pinton
Journal:  PLoS One       Date:  2014-06-11       Impact factor: 3.240

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  22 in total

Review 1.  Crossover Interference, Crossover Maturation, and Human Aneuploidy.

Authors:  Shunxin Wang; Yanlei Liu; Yongliang Shang; Binyuan Zhai; Xiao Yang; Nancy Kleckner; Liangran Zhang
Journal:  Bioessays       Date:  2019-08-19       Impact factor: 4.345

2.  Modelling Sex-Specific Crossover Patterning in Arabidopsis.

Authors:  Andrew Lloyd; Eric Jenczewski
Journal:  Genetics       Date:  2019-01-22       Impact factor: 4.562

3.  Per-Nucleus Crossover Covariation and Implications for Evolution.

Authors:  Shunxin Wang; Carl Veller; Fei Sun; Aurora Ruiz-Herrera; Yongliang Shang; Hongbin Liu; Denise Zickler; Zijiang Chen; Nancy Kleckner; Liangran Zhang
Journal:  Cell       Date:  2019-03-14       Impact factor: 41.582

Review 4.  Learning to tango with four (or more): the molecular basis of adaptation to polyploid meiosis.

Authors:  Kirsten Bomblies
Journal:  Plant Reprod       Date:  2022-09-23       Impact factor: 4.217

5.  Fragile, unfaithful and persistent Ys-on how meiosis can shape sex chromosome evolution.

Authors:  Aurora Ruiz-Herrera; Paul D Waters
Journal:  Heredity (Edinb)       Date:  2022-04-22       Impact factor: 3.832

6.  Molecular evolution of the meiotic recombination pathway in mammals.

Authors:  Amy L Dapper; Bret A Payseur
Journal:  Evolution       Date:  2019-11-07       Impact factor: 3.694

7.  The impact of chromosomal fusions on 3D genome folding and recombination in the germ line.

Authors:  Covadonga Vara; Andreu Paytuví-Gallart; Yasmina Cuartero; Lucía Álvarez-González; Laia Marín-Gual; Francisca Garcia; Beatriu Florit-Sabater; Laia Capilla; Rosa Ana Sanchéz-Guillén; Zaida Sarrate; Riccardo Aiese Cigliano; Walter Sanseverino; Jeremy B Searle; Jacint Ventura; Marc A Marti-Renom; François Le Dily; Aurora Ruiz-Herrera
Journal:  Nat Commun       Date:  2021-05-20       Impact factor: 14.919

8.  ATM controls meiotic DNA double-strand break formation and recombination and affects synaptonemal complex organization in plants.

Authors:  Marie-Therese Kurzbauer; Michael Peter Janisiw; Luis F Paulin; Ignacio Prusén Mota; Konstantin Tomanov; Ondrej Krsicka; Arndt von Haeseler; Veit Schubert; Peter Schlögelhofer
Journal:  Plant Cell       Date:  2021-07-02       Impact factor: 11.277

9.  Male meiotic recombination rate varies with seasonal temperature fluctuations in wild populations of autotetraploid Arabidopsis arenosa.

Authors:  Andrew P Weitz; Marinela Dukic; Leo Zeitler; Kirsten Bomblies
Journal:  Mol Ecol       Date:  2021-07-29       Impact factor: 6.622

Review 10.  Crossover Interference: Shedding Light on the Evolution of Recombination.

Authors:  Sarah P Otto; Bret A Payseur
Journal:  Annu Rev Genet       Date:  2019-08-20       Impact factor: 16.830

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