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Dive into the research topics where Laurence Cromer is active.

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Featured researches published by Laurence Cromer.


PLOS Genetics | 2010

The CYCLIN-A CYCA1;2/TAM Is Required for the Meiosis I to Meiosis II Transition and Cooperates with OSD1 for the Prophase to First Meiotic Division Transition

Isabelle D'Erfurth; Laurence Cromer; Sylvie Jolivet; Chloe Girard; Christine Horlow; Yujin Sun; Jennifer P.C. To; Luke E. Berchowitz; Gregory P. Copenhaver; Raphael Mercier

Meiosis halves the chromosome number because its two divisions follow a single round of DNA replication. This process involves two cell transitions, the transition from prophase to the first meiotic division (meiosis I) and the unique meiosis I to meiosis II transition. We show here that the A-type cyclin CYCA1;2/TAM plays a major role in both transitions in Arabidopsis. A series of tam mutants failed to enter meiosis II and thus produced diploid spores and functional diploid gametes. These diploid gametes had a recombined genotype produced through the single meiosis I division. In addition, by combining the tam-2 mutation with AtSpo11-1 and Atrec8, we obtained plants producing diploid gametes through a mitotic-like division that were genetically identical to their parents. Thus tam alleles displayed phenotypes very similar to that of the previously described osd1 mutant. Combining tam and osd1 mutations leads to a failure in the prophase to meiosis I transition during male meiosis and to the production of tetraploid spores and gametes. This suggests that TAM and OSD1 are involved in the control of both meiotic transitions.


Science | 2011

Synthetic Clonal Reproduction Through Seeds

Mohan P. A. Marimuthu; Sylvie Jolivet; Maruthachalam Ravi; Lucie Pereira; Jayeshkumar N. Davda; Laurence Cromer; Lili Wang; Fabien Nogué; Simon W. L. Chan; Imran Siddiqi; Raphael Mercier

Clonal reproduction is engineered in a sexual plant by manipulating conserved genes controlling meiosis. Cloning through seeds has potential revolutionary applications in agriculture, because it would allow vigorous hybrids to be propagated indefinitely. However, asexual seed formation or apomixis, avoiding meiosis and fertilization, is not found in the major food crops. To develop de novo synthesis of apomixis, we crossed Arabidopsis MiMe and dyad mutants that produce diploid clonal gametes to a strain whose chromosomes are engineered to be eliminated after fertilization. Up to 34% of the progeny were clones of their parent, demonstrating the conversion of clonal female or male gametes into seeds. We also show that first-generation cloned plants can be cloned again. Clonal reproduction through seeds can therefore be achieved in a sexual plant by manipulating two to four conserved genes.


Proceedings of the National Academy of Sciences of the United States of America | 2012

SAMBA, a plant-specific anaphase-promoting complex/cyclosome regulator is involved in early development and A-type cyclin stabilization

Nubia Barbosa Eloy; Nathalie Gonzalez; Jelle Van Leene; Katrien Maleux; Hannes Vanhaeren; Liesbeth De Milde; Stijn Dhondt; Leen Vercruysse; Erwin Witters; Raphael Mercier; Laurence Cromer; Gerrit T.S. Beemster; Han Remaut; Marc Van Montagu; Geert De Jaeger; Paulo Cavalcanti Gomes Ferreira; Dirk Inzé

The anaphase-promoting complex/cyclosome (APC/C) is a large multiprotein E3 ubiquitin ligase involved in ubiquitin-dependent proteolysis of key cell cycle regulatory proteins, including the destruction of mitotic cyclins at the metaphase-to-anaphase transition. Despite its importance, the role of the APC/C in plant cells and the regulation of its activity during cell division remain poorly understood. Here, we describe the identification of a plant-specific negative regulator of the APC/C complex, designated SAMBA. In Arabidopsis thaliana, SAMBA is expressed during embryogenesis and early plant development and plays a key role in organ size control. Samba mutants produced larger seeds, leaves, and roots, which resulted from enlarged root and shoot apical meristems, and, additionally, they had a reduced fertility attributable to a hampered male gametogenesis. Inactivation of SAMBA stabilized A2-type cyclins during early development. Our data suggest that SAMBA regulates cell proliferation during early development by targeting CYCLIN A2 for APC/C-mediated proteolysis.


PLOS Genetics | 2012

OSD1 promotes meiotic progression via APC/C inhibition and forms a regulatory network with TDM and CYCA1;2/TAM

Laurence Cromer; Jefri Heyman; Sandra A. Touati; Hirofumi Harashima; Emilie Araou; Chloe Girard; Christine Horlow; Katja Wassmann; Arp Schnittger; Lieven De Veylder; Raphael Mercier

Cell cycle control is modified at meiosis compared to mitosis, because two divisions follow a single DNA replication event. Cyclin-dependent kinases (CDKs) promote progression through both meiosis and mitosis, and a central regulator of their activity is the APC/C (Anaphase Promoting Complex/Cyclosome) that is especially required for exit from mitosis. We have shown previously that OSD1 is involved in entry into both meiosis I and meiosis II in Arabidopsis thaliana; however, the molecular mechanism by which OSD1 controls these transitions has remained unclear. Here we show that OSD1 promotes meiotic progression through APC/C inhibition. Next, we explored the functional relationships between OSD1 and the genes known to control meiotic cell cycle transitions in Arabidopsis. Like osd1, cyca1;2/tam mutation leads to a premature exit from meiosis after the first division, while tdm mutants perform an aberrant third meiotic division after normal meiosis I and II. Remarkably, while tdm is epistatic to tam, osd1 is epistatic to tdm. We further show that the expression of a non-destructible CYCA1;2/TAM provokes, like tdm, the entry into a third meiotic division. Finally, we show that CYCA1;2/TAM forms an active complex with CDKA;1 that can phosphorylate OSD1 in vitro. We thus propose that a functional network composed of OSD1, CYCA1;2/TAM, and TDM controls three key steps of meiotic progression, in which OSD1 is a meiotic APC/C inhibitor.


Cell Research | 2016

Turning rice meiosis into mitosis

Delphine Mieulet; Sylvie Jolivet; Maud Rivard; Laurence Cromer; Aurore Vernet; Pauline Mayonove; Lucie Pereira; Gaëtan Droc; Brigitte Courtois; Emmanuel Guiderdoni; Raphael Mercier

Introduction of clonal reproduction through seeds (apomixis) in crops has the potential to revolutionize agriculture by allowing self-propagation of any elite variety, in particular F1 hybrids. In the sexual model plant Arabidopsis thaliana synthetic clonal reproduction through seeds can be artificially implemented by (i) combining three mutations to turn meiosis into mitosis (MiMe) and (ii) crossing the obtained clonal gametes with a line expressing modified CENH3 and whose genome is eliminated in the zygote. Here we show that additional combinations of mutations can turn Arabidopsis meiosis into mitosis and that a combination of three mutations in rice (Oryza sativa) efficiently turns meiosis into mitosis, leading to the production of male and female clonal diploid gametes in this major crop. Successful implementation of the MiMe technology in the phylogenetically distant eudicot Arabidopsis and monocot rice opens doors for its application to any flowering plant and paves the way for introducing apomixis in crop species.


Frontiers in Plant Science | 2018

FANCM Limits Meiotic Crossovers in Brassica Crops

Aurélien Blary; Adrián Gonzalo; Frédérique Eber; Aurélie Bérard; Hélène Bergès; Nadia Bessoltane; Delphine Charif; Catherine Charpentier; Laurence Cromer; Joëlle Fourment; Camille Genevriez; Marie-Christine Le Paslier; Maryse Lodé; Marie-Odile Lucas; Nathalie Nesi; Andrew Lloyd; Anne-Marie Chèvre; Eric Jenczewski

Meiotic crossovers (COs) are essential for proper chromosome segregation and the reshuffling of alleles during meiosis. In WT plants, the number of COs is usually small, which limits the genetic variation that can be captured by plant breeding programs. Part of this limitation is imposed by proteins like FANCM, the inactivation of which results in a 3-fold increase in COs in Arabidopsis thaliana. Whether the same holds true in crops needed to be established. In this study, we identified EMS induced mutations in FANCM in two species of economic relevance within the genus Brassica. We showed that CO frequencies were increased in fancm mutants in both diploid and tetraploid Brassicas, Brassica rapa and Brassica napus respectively. In B. rapa, we observed a 3-fold increase in the number of COs, equal to the increase observed previously in Arabidopsis. In B. napus we observed a lesser but consistent increase (1.3-fold) in both euploid (AACC) and allohaploid (AC) plants. Complementation tests in A. thaliana suggest that the smaller increase in crossover frequency observed in B. napus reflects residual activity of the mutant C copy of FANCM. Altogether our results indicate that the anti-CO activity of FANCM is conserved across the Brassica, opening new avenues to make a wider range of genetic diversity accessible to crop improvement.


PLOS Genetics | 2016

TDM1 Regulation Determines the Number of Meiotic Divisions

Marta Cifuentes; Sylvie Jolivet; Laurence Cromer; Hirofumi Harashima; Petra Bulankova; Charlotte Renne; Wayne Crismani; Yuko Nomura; Hirofumi Nakagami; Keiko Sugimoto; Arp Schnittger; Karel Riha; Raphael Mercier

Cell cycle control must be modified at meiosis to allow two divisions to follow a single round of DNA replication, resulting in ploidy reduction. The mechanisms that ensure meiosis termination at the end of the second and not at the end of first division are poorly understood. We show here that Arabidopsis thaliana TDM1, which has been previously shown to be essential for meiotic termination, interacts directly with the Anaphase-Promoting Complex. Further, mutations in TDM1 in a conserved putative Cyclin-Dependant Kinase (CDK) phosphorylation site (T16-P17) dominantly provoked premature meiosis termination after the first division, and the production of diploid spores and gametes. The CDKA;1-CYCA1.2/TAM complex, which is required to prevent premature meiotic exit, phosphorylated TDM1 at T16 in vitro. Finally, while CYCA1;2/TAM was previously shown to be expressed only at meiosis I, TDM1 is present throughout meiosis. These data, together with epistasis analysis, lead us to propose that TDM1 is an APC/C component whose function is to ensure meiosis termination at the end of meiosis II, and whose activity is inhibited at meiosis I by CDKA;1-TAM-mediated phosphorylation to prevent premature meiotic exit. This provides a molecular mechanism for the differential decision of performing an additional round of division, or not, at the end of meiosis I and II, respectively.


Frontiers in Plant Science | 2018

The HEM lines: A new library of homozygous Arabidopsis thaliana EMS mutants and its potential to detect meiotic phenotypes

Laia Capilla-Perez; Victor Solier; Virginie Portemer; Aurélie Chambon; Aurelie Hurel; Alexia Guillebaux; Daniel Vezon; Laurence Cromer; Mathilde Grelon; Raphael Mercier

Genetic screens have been crucial for deciphering many important biological processes, including meiosis. In Arabidopsis thaliana, previous forward screens have likely identified almost all the meiotic genes that when mutated lead to a pronounced decrease in fertility. However, the increasing number of genes identified in reverse genetics studies that play crucial roles in meiosis, but do not exhibit strong phenotypes when mutated, suggests that there are still many genes with meiotic function waiting to be discovered. In this study, we produced 897 A. thaliana homozygous mutant lines using Ethyl Methyl Sulfonate (EMS) mutagenesis followed by either single seed descent or haploid doubling. Whole genome sequencing of a subset of lines showed an average of 696 homozygous mutations per line, 195 of which (28%) modify a protein sequence. To test the power of this library, we carried out a forward screen looking for meiotic defects by observing chromosomes at metaphase I of male meiosis. Among the 649 lines analyzed, we identified 43 lines with meiotic defects. Of these, 21 lines had an obvious candidate causal mutation, namely a STOP or splicing site mutation in a gene previously shown to play a role in meiosis (ATM, MLH3, MLH1, MER3, HEI10, FLIP, ASY4, FLIP, PRD2, REC8, FANCL, and PSS1). Interestingly, this was the first time that six of these genes were identified in a forward screen in Arabidopsis (MLH3, MLH1, SGO1, PSS1, FANCL, and ASY4). These results illustrate the potential of this mutant population for screening for any qualitative or quantitative phenotype. Thus, this new mutant library is a powerful tool for functional genomics in A. thaliana. The HEM (Homozygote EMS Mutants) lines are available at the Versailles Arabidopsis stock center.


Current Biology | 2013

Centromeric Cohesion Is Protected Twice at Meiosis, by SHUGOSHINs at Anaphase 1 and by PATRONUS at Interkinesis

Laurence Cromer; Sylvie Jolivet; Christine Horlow; Liudmila Chelysheva; Jefri Heyman; Geert De Jaeger; Csaba Koncz; Lieven De Veylder; Raphael Mercier


Archive | 2009

Lipochito-Oligosaccharides Stimulating Arbuscular Mycorrhizal Symbiosis

Jean Denarie; Fabienne Maillet; Véréna Poinsot; Olivier André; Guillaume Becard; Monique Gueunier; Laurence Cromer; Alexandra Haouy; Delphine Giraudet

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Raphael Mercier

Institut national de la recherche agronomique

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Christine Horlow

Institut national de la recherche agronomique

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Sylvie Jolivet

Institut national de la recherche agronomique

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Hirofumi Harashima

Centre national de la recherche scientifique

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Lucie Pereira

Institut national de la recherche agronomique

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Marta Cifuentes

Institut national de la recherche agronomique

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