Recombination in a sterile polyploid hybrid yeast upon meiotic Return-To-Growth

被引:4
作者
Serero, Alexandre [1 ,2 ]
Bedrat, Amina [1 ,2 ]
Baulande, Sylvain [3 ]
Bastianelli, Giacomo [2 ]
Colavizza, Didier [4 ]
Desfougeres, Thomas [4 ]
Pignede, Georges [4 ]
Quipourt-Isnard, Anne-Dominique [4 ]
Nicolas, Alain [1 ,2 ]
机构
[1] PSL Res Univ, CNRS UMR3244, Inst Curie, Ctr Rech, 26 Rue Ulm, F-75248 Paris 05, France
[2] Meiogenix, 38 Rue Servan, F-75544 Paris 11, France
[3] Inst Curie, ICGEX NGS Platform, 26 Rue Ulm, F-75248 Paris 05, France
[4] Lesaffre Int, Direct R&D, Serv Genet, 147 Rue Gabriel Peri, F-59700 Marcq En Baroeul, France
关键词
Saccharomyces; Polyploid; Sterility; Meiosis; Return-To-Growth; Recombination; DOUBLE-STRAND BREAKS; SACCHAROMYCES-CEREVISIAE; SPORULATION; PROPHASE; MEIOSIS; STRAINS; GENOME;
D O I
10.1016/j.micres.2021.126789
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
The sustainable future of food industry and consumer demands meet the need to generate out-performing new yeast variants. This is addressed by using the natural yeast diversity and breeding via sexual reproduction but the recovery of recombined spores in many industrial strains is limited. To circumvent this drawback, we examined whether or not the process of meiotic Return to Growth (RTG) that allows S. cerevisiae diploid cells to initiate meiotic recombination genome-wide and then re-enter into mitosis, will be effective to generate recombinants in a sterile and polyploid baking yeast strain (CNCM). We proceeded in four steps. First, whole genome sequencing of the CNCM strain revealed that it was an unbalanced polymorphic triploid. Second, we annotated a panel of genes likely involved in the success of the RTG process. Third, we examined the strain progression into sporulation and fourth, we developed an elutriation and reiterative RTG protocol that allowed to generate extensive libraries of recombinant RTGs, enriched up to 70 %. Altogether, the genome analysis of 122 RTG cells demonstrated that they were bona fide RTG recombinants since the vast majority retained the parental ploidy and exhibited allelic variations involving 1-60 recombined regions per cell with a length of similar to 0.4-400 kb. Thus, beyond diploid laboratory strains, we demonstrated the proficiency of this natural non-GM and marker-free process to recombine a sterile and polyploid hybrid yeast, thus providing an unprecedented resource to screen improved traits.
引用
收藏
页数:9
相关论文
共 37 条
  • [21] McKee AHZ, 1997, GENETICS, V146, P797
  • [22] Murakami H, 2009, METHODS MOL BIOL, V557, P117, DOI 10.1007/978-1-59745-527-5_9
  • [23] Locally, Meiotic Double-Strand Breaks Targeted by Gal4BD-Spo11 Occur at Discrete Sites with a Sequence Preference
    Murakami, Hajime
    Nicolas, Alain
    [J]. MOLECULAR AND CELLULAR BIOLOGY, 2009, 29 (13) : 3500 - 3516
  • [24] TOLERANCE OF ANEUPLOIDY IN YEAST
    PARRY, EM
    COX, BS
    [J]. GENETICAL RESEARCH, 1970, 16 (03) : 333 - &
  • [25] Prinz S, 1997, GENETICS, V146, P781
  • [26] Spore-autonomous fluorescent protein expression identifies meiotic chromosome mis-segregation as the principal cause of hybrid sterility in yeast
    Rogers, David W.
    McConnell, Ellen
    Ono, Jasmine
    Greig, Duncan
    [J]. PLOS BIOLOGY, 2018, 16 (11)
  • [27] Programming sites of meiotic crossovers using Spo11 fusion proteins
    Sarno, Roberta
    Vicq, Yoan
    Uematsu, Norio
    Luka, Marine
    Lapierre, Clement
    Carroll, Dana
    Bastianelli, Giacomo
    Serero, Alexandre
    Nicolas, Alain
    [J]. NUCLEIC ACIDS RESEARCH, 2017, 45 (19)
  • [28] Mutational landscape of yeast mutator strains
    Serero, Alexandre
    Jubin, Claire
    Loeillet, Sophie
    Legoix-Ne, Patricia
    Nicolas, Alain G.
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2014, 111 (05) : 1897 - 1902
  • [29] SHERMAN F, 1963, GENETICS, V48, P255
  • [30] SIFT web server: predicting effects of amino acid substitutions on proteins
    Sim, Ngak-Leng
    Kumar, Prateek
    Hu, Jing
    Henikoff, Steven
    Schneider, Georg
    Ng, Pauline C.
    [J]. NUCLEIC ACIDS RESEARCH, 2012, 40 (W1) : W452 - W457