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1.
Cell ; 173(4): 839-850.e18, 2018 05 03.
Artículo en Inglés | MEDLINE | ID: mdl-29628142

RESUMEN

Maize abnormal chromosome 10 (Ab10) encodes a classic example of true meiotic drive that converts heterochromatic regions called knobs into motile neocentromeres that are preferentially transmitted to egg cells. Here, we identify a cluster of eight genes on Ab10, called the Kinesin driver (Kindr) complex, that are required for both neocentromere motility and preferential transmission. Two meiotic drive mutants that lack neocentromere activity proved to be kindr epimutants with increased DNA methylation across the entire gene cluster. RNAi of Kindr induced a third epimutant and corresponding loss of meiotic drive. Kinesin gliding assays and immunolocalization revealed that KINDR is a functional minus-end-directed kinesin that localizes specifically to knobs containing 180 bp repeats. Sequence comparisons suggest that Kindr diverged from a Kinesin-14A ancestor ∼12 mya and has driven the accumulation of > 500 Mb of knob repeats and affected the segregation of thousands of genes linked to knobs on all 10 chromosomes.


Asunto(s)
Centrómero/metabolismo , Cinesinas/metabolismo , Meiosis , Proteínas de Plantas/metabolismo , Zea mays/metabolismo , Centrómero/genética , Cromosomas de las Plantas , Evolución Molecular , Haplotipos , Hibridación Fluorescente in Situ , Cinesinas/antagonistas & inhibidores , Cinesinas/clasificación , Cinesinas/genética , Modelos Genéticos , Mutagénesis , Filogenia , Proteínas de Plantas/antagonistas & inhibidores , Proteínas de Plantas/clasificación , Proteínas de Plantas/genética , Interferencia de ARN , ARN Interferente Pequeño/metabolismo , Secuenciación Completa del Genoma , Zea mays/genética
2.
Genes Dev ; 34(17-18): 1239-1251, 2020 09 01.
Artículo en Inglés | MEDLINE | ID: mdl-32820038

RESUMEN

A maize chromosome variant called abnormal chromosome 10 (Ab10) converts knobs on chromosome arms into neocentromeres, causing their preferential segregation to egg cells in a process known as meiotic drive. We previously demonstrated that the gene Kinesin driver (Kindr) on Ab10 encodes a kinesin-14 required to mobilize neocentromeres made up of the major tandem repeat knob180. Here we describe a second kinesin-14 gene, TR-1 kinesin (Trkin), that is required to mobilize neocentromeres made up of the minor tandem repeat TR-1. Trkin lies in a 4-Mb region of Ab10 that is not syntenic with any other region of the maize genome and shows extraordinary sequence divergence from Kindr and other kinesins in plants. Despite its unusual structure, Trkin encodes a functional minus end-directed kinesin that specifically colocalizes with TR-1 in meiosis, forming long drawn out neocentromeres. TRKIN contains a nuclear localization signal and localizes to knobs earlier in prophase than KINDR. The fact that TR-1 repeats often co-occur with knob180 repeats suggests that the current role of the TRKIN/TR-1 system is to facilitate the meiotic drive of the KINDR/knob180 system.


Asunto(s)
Centrómero/genética , Centrómero/metabolismo , Cinesinas/genética , Cinesinas/metabolismo , Zea mays/genética , Zea mays/metabolismo , Cromosomas de las Plantas/genética , Genes de Plantas/genética , Meiosis , Modelos Genéticos , Transporte de Proteínas/genética
3.
Genome Res ; 33(3): 359-370, 2023 03.
Artículo en Inglés | MEDLINE | ID: mdl-36854668

RESUMEN

The genomes of maize and other eukaryotes contain stable haplotypes in regions of low recombination. These regions, including centromeres, long heterochromatic blocks, and rDNA arrays, have been difficult to analyze with respect to their diversity and origin. Greatly improved genome assemblies are now available that enable comparative genomics over these and other nongenic spaces. Using 26 complete maize genomes, we developed methods to align intergenic sequences while excluding genes and regulatory regions. The centromere haplotypes (cenhaps) extend for megabases on either side of the functional centromere regions and appear as evolutionary strata, with haplotype divergence/coalescence times dating as far back as 450 thousand years ago (kya). Application of the same methods to other low recombination regions (heterochromatic knobs and rDNA) and all intergenic spaces revealed that deep coalescence times are ubiquitous across the maize pan-genome. Divergence estimates vary over a broad timescale with peaks at ∼16 and 300 kya, reflecting a complex history of gene flow among diverging populations and changes in population size associated with domestication. Cenhaps and other long haplotypes provide vivid displays of this ancient diversity.


Asunto(s)
Centrómero , Zea mays , Haplotipos , Zea mays/genética , Centrómero/genética , Genoma de Planta , Genómica/métodos
4.
Plant Cell ; 34(10): 3685-3701, 2022 09 27.
Artículo en Inglés | MEDLINE | ID: mdl-35775949

RESUMEN

Demethylation of transposons can activate the expression of nearby genes and cause imprinted gene expression in the endosperm; this demethylation is hypothesized to lead to expression of transposon small interfering RNAs (siRNAs) that reinforce silencing in the next generation through transfer either into egg or embryo. Here we describe maize (Zea mays) maternal derepression of r1 (mdr1), which encodes a DNA glycosylase with homology to Arabidopsis thaliana DEMETER and which is partially responsible for demethylation of thousands of regions in endosperm. Instead of promoting siRNA expression in endosperm, MDR1 activity inhibits it. Methylation of most repetitive DNA elements in endosperm is not significantly affected by MDR1, with an exception of Helitrons. While maternally-expressed imprinted genes preferentially overlap with MDR1 demethylated regions, the majority of genes that overlap demethylated regions are not imprinted. Double mutant megagametophytes lacking both MDR1 and its close homolog DNG102 result in early seed failure, and double mutant microgametophytes fail pre-fertilization. These data establish DNA demethylation by glycosylases as essential in maize endosperm and pollen and suggest that neither transposon repression nor genomic imprinting is its main function in endosperm.


Asunto(s)
Arabidopsis , ADN Glicosilasas , Arabidopsis/genética , ADN/metabolismo , ADN Glicosilasas/genética , ADN Glicosilasas/metabolismo , Metilación de ADN/genética , Endospermo/genética , Endospermo/metabolismo , Regulación de la Expresión Génica de las Plantas/genética , Impresión Genómica/genética , ARN Interferente Pequeño/genética , Zea mays/genética , Zea mays/metabolismo
5.
Plant J ; 116(4): 1003-1017, 2023 Nov.
Artículo en Inglés | MEDLINE | ID: mdl-37675609

RESUMEN

Populus species play a foundational role in diverse ecosystems and are important renewable feedstocks for bioenergy and bioproducts. Hybrid aspen Populus tremula × P. alba INRA 717-1B4 is a widely used transformation model in tree functional genomics and biotechnology research. As an outcrossing interspecific hybrid, its genome is riddled with sequence polymorphisms which present a challenge for sequence-sensitive analyses. Here we report a telomere-to-telomere genome for this hybrid aspen with two chromosome-scale, haplotype-resolved assemblies. We performed a comprehensive analysis of the repetitive landscape and identified both tandem repeat array-based and array-less centromeres. Unexpectedly, the most abundant satellite repeats in both haplotypes lie outside of the centromeres, consist of a 147 bp monomer PtaM147, frequently span >1 megabases, and form heterochromatic knobs. PtaM147 repeats are detected exclusively in aspens (section Populus) but PtaM147-like sequences occur in LTR-retrotransposons of closely related species, suggesting their origin from the retrotransposons. The genomic resource generated for this transformation model genotype has greatly improved the design and analysis of genome editing experiments that are highly sensitive to sequence polymorphisms. The work should motivate future hypothesis-driven research to probe into the function of the abundant and aspen-specific PtaM147 satellite DNA.


Asunto(s)
ADN Satélite , Populus , ADN Satélite/genética , Haplotipos/genética , Populus/genética , Ecosistema , Retroelementos , Centrómero/genética
6.
Proc Natl Acad Sci U S A ; 118(23)2021 06 08.
Artículo en Inglés | MEDLINE | ID: mdl-34088847

RESUMEN

B chromosomes are enigmatic elements in thousands of plant and animal genomes that persist in populations despite being nonessential. They circumvent the laws of Mendelian inheritance but the molecular mechanisms underlying this behavior remain unknown. Here we present the sequence, annotation, and analysis of the maize B chromosome providing insight into its drive mechanism. The sequence assembly reveals detailed locations of the elements involved with the cis and trans functions of its drive mechanism, consisting of nondisjunction at the second pollen mitosis and preferential fertilization of the egg by the B-containing sperm. We identified 758 protein-coding genes in 125.9 Mb of B chromosome sequence, of which at least 88 are expressed. Our results demonstrate that transposable elements in the B chromosome are shared with the standard A chromosome set but multiple lines of evidence fail to detect a syntenic genic region in the A chromosomes, suggesting a distant origin. The current gene content is a result of continuous transfer from the A chromosomal complement over an extended evolutionary time with subsequent degradation but with selection for maintenance of this nonvital chromosome.


Asunto(s)
Cromosomas de las Plantas/genética , Evolución Molecular , Polen/genética , Proteínas Gestacionales/genética , Zea mays/genética , Meiosis/genética , Mitosis/genética
7.
Chromosome Res ; 30(2-3): 205-216, 2022 09.
Artículo en Inglés | MEDLINE | ID: mdl-35652970

RESUMEN

The maize abnormal chromosome 10 (Ab10) haplotype encodes a meiotic drive system that converts heterochromatic knobs into centromere-like bodies that are preferentially segregated through female meiosis. Ab10 was first described in the 1940s and has been intensively studied. Here I provide a comprehensive review of the literature, starting from the discovery of knobs and Ab10, preceding through the classic literature, and finishing with molecular structure and mechanisms. The defining features of the Ab10 haplotype are its two specialized kinesins, Kinesin driver and TR-1 kinesin, that activate neocentromeres at knobs containing different classes of the tandem repeat. In most Ab10 haplotypes, the two kinesin/knob systems cooperate to promote maximum meiotic drive. However, recent interpretations suggest that each kinesin/knob system can function as an independent meiotic driver and that in some cases they compete with each other. Ab10 is present at low frequencies throughout the genus Zea and has significantly expanded genome size by promoting the formation of knobs throughout the genome.


Asunto(s)
Cinesinas , Zea mays , Centrómero/genética , Cromosomas Humanos Par 10 , Haplotipos , Humanos , Meiosis/genética , Zea mays/genética
8.
Nature ; 546(7659): 524-527, 2017 06 22.
Artículo en Inglés | MEDLINE | ID: mdl-28605751

RESUMEN

Complete and accurate reference genomes and annotations provide fundamental tools for characterization of genetic and functional variation. These resources facilitate the determination of biological processes and support translation of research findings into improved and sustainable agricultural technologies. Many reference genomes for crop plants have been generated over the past decade, but these genomes are often fragmented and missing complex repeat regions. Here we report the assembly and annotation of a reference genome of maize, a genetic and agricultural model species, using single-molecule real-time sequencing and high-resolution optical mapping. Relative to the previous reference genome, our assembly features a 52-fold increase in contig length and notable improvements in the assembly of intergenic spaces and centromeres. Characterization of the repetitive portion of the genome revealed more than 130,000 intact transposable elements, allowing us to identify transposable element lineage expansions that are unique to maize. Gene annotations were updated using 111,000 full-length transcripts obtained by single-molecule real-time sequencing. In addition, comparative optical mapping of two other inbred maize lines revealed a prevalence of deletions in regions of low gene density and maize lineage-specific genes.


Asunto(s)
Genoma de Planta/genética , Secuenciación de Nucleótidos de Alto Rendimiento/métodos , Imagen Individual de Molécula/métodos , Zea mays/genética , Centrómero/genética , Cromosomas de las Plantas/genética , Mapeo Contig , Productos Agrícolas/genética , Elementos Transponibles de ADN/genética , ADN Intergénico/genética , Genes de Plantas/genética , Anotación de Secuencia Molecular , Óptica y Fotónica , Filogenia , ARN Mensajero/análisis , ARN Mensajero/genética , Estándares de Referencia , Sorghum/genética
9.
Plant Cell ; 31(2): 368-383, 2019 02.
Artículo en Inglés | MEDLINE | ID: mdl-30651345

RESUMEN

Biolistic transformation delivers nucleic acids into plant cells by bombarding the cells with microprojectiles, which are micron-scale, typically gold particles. Despite the wide use of this technique, little is known about its effect on the cell's genome. We biolistically transformed linear 48-kb phage lambda and two different circular plasmids into rice (Oryza sativa) and maize (Zea mays) and analyzed the results by whole genome sequencing and optical mapping. Although some transgenic events showed simple insertions, others showed extreme genome damage in the form of chromosome truncations, large deletions, partial trisomy, and evidence of chromothripsis and breakage-fusion bridge cycling. Several transgenic events contained megabase-scale arrays of introduced DNA mixed with genomic fragments assembled by nonhomologous or microhomology-mediated joining. Damaged regions of the genome, assayed by the presence of small fragments displaced elsewhere, were often repaired without a trace, presumably by homology-dependent repair (HDR). The results suggest a model whereby successful biolistic transformation relies on a combination of end joining to insert foreign DNA and HDR to repair collateral damage caused by the microprojectiles. The differing levels of genome damage observed among transgenic events may reflect the stage of the cell cycle and the availability of templates for HDR.


Asunto(s)
ADN de Plantas/genética , Genoma de Planta/genética , Oryza/genética , Zea mays/genética , Biolística
10.
Int J Mol Sci ; 23(8)2022 Apr 13.
Artículo en Inglés | MEDLINE | ID: mdl-35457112

RESUMEN

The success of an organism is contingent upon its ability to faithfully pass on its genetic material. In the meiosis of many species, the process of chromosome segregation requires that bipolar spindles be formed without the aid of dedicated microtubule organizing centers, such as centrosomes. Here, we describe detailed analyses of acentrosomal spindle assembly and disassembly in time-lapse images, from live meiotic cells of Zea mays. Microtubules organized on the nuclear envelope with a perinuclear ring structure until nuclear envelope breakdown, at which point microtubules began bundling into a bipolar form. However, the process and timing of spindle assembly was highly variable, with frequent assembly errors in both meiosis I and II. Approximately 61% of cells formed incorrect spindle morphologies, with the most prevalent being tripolar spindles. The erroneous spindles were actively rearranged to bipolar through a coalescence of poles before proceeding to anaphase. Spindle disassembly occurred as a two-state process with a slow depolymerization, followed by a quick collapse. The results demonstrate that maize meiosis I and II spindle assembly is remarkably fluid in the early assembly stages, but otherwise proceeds through a predictable series of events.


Asunto(s)
Huso Acromático , Zea mays , Aberraciones Cromosómicas , Segregación Cromosómica , Meiosis , Microtúbulos/metabolismo , Oocitos/metabolismo , Huso Acromático/metabolismo , Zea mays/genética
11.
Plant Cell ; 30(1): 7-14, 2018 01.
Artículo en Inglés | MEDLINE | ID: mdl-29263086

RESUMEN

Long-read single-molecule sequencing, Hi-C sequencing, and improved bioinformatic tools are ushering in an era where complete genome assembly will become common for species with few or no classical genetic resources. There are no guidelines for how to proceed in such cases. Ideally, such genomes would be sequenced by two different methods so that one assembly serves as confirmation of the other; however, cost constraints make this approach unlikely. Overreliance on synteny as a means of confirming and ordering contigs will lead to compounded errors. Optical mapping is an accessible and relatively mature technology that can be used for genome assembly validation. We discuss how optical mapping can be used as a validation tool for genome assemblies and how to interpret the results. In addition, we discuss methods for using optical map data to enhance genome assemblies derived from both traditional sequence contigs and Hi-C pseudomolecules.


Asunto(s)
Mapeo Cromosómico/métodos , Genoma de Planta , Optogenética/métodos , Análisis de Secuencia de ADN/métodos , Reproducibilidad de los Resultados
12.
Plant Cell ; 30(7): 1617-1627, 2018 07.
Artículo en Inglés | MEDLINE | ID: mdl-29884624

RESUMEN

Plants make use of distinct types of DNA methylation characterized by their DNA methyltransferases and modes of regulation. One type, RNA-directed DNA methylation (RdDM), is guided by small interfering RNAs (siRNAs) to the edges of transposons that are close to genes, areas called mCHH islands in maize (Zea mays). Another type, chromomethylation, is guided by histone H3 lysine 9 methylation to heterochromatin across the genome. We examined DNA methylation and small RNA expression in plant tissues that were mutant for both copies of the genes encoding chromomethylases as well as mutants for both copies of the genes encoding DECREASED DNA METHYLATION1 (DDM1)-type nucleosome remodelers, which facilitate chromomethylation. Both sets of double mutants were nonviable but produced embryos and endosperm. RdDM was severely compromised in the double mutant embryos, both in terms of DNA methylation and siRNAs. Loss of 24-nucleotide siRNA from mCHH islands was coupled with a gain of 21-, 22-, and 24-nucleotide siRNAs in heterochromatin. These results reveal a requirement for both chromomethylation and DDM1-type nucleosome remodeling for RdDM in mCHH islands, which we hypothesize is due to dilution of RdDM components across the genome when heterochromatin is compromised.


Asunto(s)
ADN (Citosina-5-)-Metiltransferasas/metabolismo , Regulación de la Expresión Génica de las Plantas/fisiología , Proteínas de Plantas/metabolismo , Zea mays/metabolismo , ADN (Citosina-5-)-Metiltransferasas/genética , Metilación de ADN/genética , Metilación de ADN/fisiología , Regulación de la Expresión Génica de las Plantas/genética , Mutación/genética , Proteínas de Plantas/genética , Zea mays/genética
13.
Exp Cell Res ; 390(1): 111951, 2020 05 01.
Artículo en Inglés | MEDLINE | ID: mdl-32151492

RESUMEN

The concepts of synthetic biology have the potential to transform plant genetics, both in how we analyze genetic pathways and how we transfer that knowledge into useful applications. While synthetic biology can be applied at the level of the single gene or small groups of genes, this commentary focuses on the ultimate challenge of designing fully synthetic plant chromosomes. Engineering at this scale will allow us to manipulate whole genome architecture and to modify multiple pathways and traits simultaneously. Advances in genome synthesis make it likely that the initial phases of plant chromosome construction will occur in bacteria and yeast. Here I discuss the next steps, including specific ways of overcoming technical barriers associated with plant transformation, functional centromere design, and ensuring accurate meiotic transmission.


Asunto(s)
Cromosomas Artificiales/genética , Cromosomas de las Plantas/genética , Ingeniería Genética/métodos , Fitomejoramiento/métodos , Segregación Cromosómica
14.
Annu Rev Genet ; 46: 443-53, 2012.
Artículo en Inglés | MEDLINE | ID: mdl-22974300

RESUMEN

Despite many challenges, great progress has been made in identifying kinetochore proteins and understanding their overall functions relative to spindles and centromeric DNA. In contrast, less is known about the specialized centromeric chromatin environment and how it may be involved in regulating the assembly of kinetochore proteins. Multiple independent lines of evidence have implicated transcription and the resulting RNA as an important part of this process. Here, we summarize recent literature demonstrating the roles of centromeric RNA in regulating kinetochore assembly and maintenance. We also review literature suggesting that the process of centromeric transcription may be as important as the resulting RNA and that such transcription may be involved in recruiting the centromeric histone variant CENH3.


Asunto(s)
Centrómero/genética , ARN de Hongos/genética , Secuencias Reguladoras de Ácido Ribonucleico , Nucléolo Celular/genética , Nucléolo Celular/metabolismo , Centrómero/metabolismo , Cromatina/genética , Cromatina/metabolismo , Ensamble y Desensamble de Cromatina , Proteínas Cromosómicas no Histona/genética , Proteínas Cromosómicas no Histona/metabolismo , Cromosomas Fúngicos/genética , Cromosomas Fúngicos/metabolismo , Histonas/genética , Histonas/metabolismo , Mitosis , ARN Polimerasa II/genética , ARN Polimerasa II/metabolismo , ARN de Hongos/metabolismo , ARN Interferente Pequeño/genética , ARN Interferente Pequeño/metabolismo , Schizosaccharomyces/genética , Schizosaccharomyces/metabolismo , Proteínas de Schizosaccharomyces pombe/genética , Proteínas de Schizosaccharomyces pombe/metabolismo , Transcripción Genética
15.
J Cell Sci ; 129(21): 4014-4024, 2016 11 01.
Artículo en Inglés | MEDLINE | ID: mdl-27609836

RESUMEN

The success of an organism is contingent upon its ability to transmit genetic material through meiotic cell division. In plant meiosis I, the process begins in a large spherical cell without physical cues to guide the process. Yet, two microtubule-based structures, the spindle and phragmoplast, divide the chromosomes and the cell with extraordinary accuracy. Using a live-cell system and fluorescently labeled spindles and chromosomes, we found that the process self- corrects as meiosis proceeds. Metaphase spindles frequently initiate division off-center, and in these cases anaphase progression is asymmetric with the two masses of chromosomes traveling unequal distances on the spindle. The asymmetry is compensatory, such that the chromosomes on the side of the spindle that is farthest from the cell cortex travel a longer distance at a faster rate. The phragmoplast forms at an equidistant point between the telophase nuclei rather than at the original spindle mid-zone. This asymmetry in chromosome movement implies a structural difference between the two halves of a bipolar spindle and could allow meiotic cells to dynamically adapt to errors in metaphase and accurately divide the cell volume.


Asunto(s)
Anafase , Meiosis , Zea mays/citología , Segregación Cromosómica , Cromosomas de las Plantas/metabolismo , Imagenología Tridimensional , Huso Acromático/metabolismo
16.
Proc Natl Acad Sci U S A ; 112(47): 14728-33, 2015 Nov 24.
Artículo en Inglés | MEDLINE | ID: mdl-26553984

RESUMEN

The maize genome is relatively large (∼ 2.3 Gb) and has a complex organization of interspersed genes and transposable elements, which necessitates frequent boundaries between different types of chromatin. The examination of maize genes and conserved noncoding sequences revealed that many of these are flanked by regions of elevated asymmetric CHH (where H is A, C, or T) methylation (termed mCHH islands). These mCHH islands are quite short (∼ 100 bp), are enriched near active genes, and often occur at the edge of the transposon that is located nearest to genes. The analysis of DNA methylation in other sequence contexts and several chromatin modifications revealed that mCHH islands mark the transition from heterochromatin-associated modifications to euchromatin-associated modifications. The presence of an mCHH island is fairly consistent in several distinct tissues that were surveyed but shows some variation among different haplotypes. The presence of insertion/deletions in promoters often influences the presence and position of an mCHH island. The mCHH islands are dependent upon RNA-directed DNA methylation activities and are lost in mop1 and mop3 mutants, but the nearby genes rarely exhibit altered expression levels. Instead, loss of an mCHH island is often accompanied by additional loss of DNA methylation in CG and CHG contexts associated with heterochromatin in nearby transposons. This suggests that mCHH islands and RNA-directed DNA methylation near maize genes may act to preserve the silencing of transposons from activity of nearby genes.


Asunto(s)
Metilación de ADN/genética , Eucromatina/genética , Genoma de Planta , Heterocromatina/genética , ARN de Planta/metabolismo , Zea mays/genética , Secuencia Conservada/genética , Islas de CpG/genética , ADN Intergénico/genética , Perfilación de la Expresión Génica , Regulación de la Expresión Génica de las Plantas , Genes de Plantas , Genotipo , Mutación INDEL/genética , Secuencias Invertidas Repetidas/genética , Sitio de Iniciación de la Transcripción
17.
Genome Res ; 24(1): 107-16, 2014 Jan.
Artículo en Inglés | MEDLINE | ID: mdl-24100079

RESUMEN

Most existing centromeres may have originated as neocentromeres that activated de novo from noncentromeric regions. However, the evolutionary path from a neocentromere to a mature centromere has been elusive. Here we analyzed the centromeres of nine chromosomes that were transferred from maize into oat as the result of an inter-species cross. Centromere size and location were assayed by chromatin immunoprecipitation for the histone variant CENH3, which is a defining feature of functional centromeres. Two isolates of maize chromosome 3 proved to contain neocentromeres in the sense that they had moved from the original site, whereas the remaining seven centromeres (1, 2, 5, 6, 8, 9, and 10) were retained in the same area in both species. In all cases, the CENH3-binding domains were dramatically expanded to encompass a larger area in the oat background (∼3.6 Mb) than the average centromere size in maize (∼1.8 Mb). The expansion of maize centromeres appeared to be restricted by the transcription of genes located in regions flanking the original centromeres. These results provide evidence that (1) centromere size is regulated; (2) centromere sizes tend to be uniform within a species regardless of chromosome size or origin of the centromere; and (3) neocentromeres emerge and expand preferentially in gene-poor regions. Our results suggest that centromere size expansion may be a key factor in the survival of neocentric chromosomes in natural populations.


Asunto(s)
Avena/genética , Centrómero/fisiología , Proteínas Cromosómicas no Histona/metabolismo , Cromosomas de las Plantas/genética , Zea mays/genética , Adaptación Fisiológica/genética , Avena/fisiología , Sitios de Unión , Evolución Molecular , Hibridación Fluorescente in Situ , Isocromosomas , Proteínas de Plantas/metabolismo , Plantas Modificadas Genéticamente , Zea mays/fisiología
18.
Plant Cell ; 26(12): 4903-17, 2014 Dec.
Artículo en Inglés | MEDLINE | ID: mdl-25465407

RESUMEN

RNA-directed DNA methylation (RdDM) in plants is a well-characterized example of RNA interference-related transcriptional gene silencing. To determine the relationships between RdDM and heterochromatin in the repeat-rich maize (Zea mays) genome, we performed whole-genome analyses of several heterochromatic features: dimethylation of lysine 9 and lysine 27 (H3K9me2 and H3K27me2), chromatin accessibility, DNA methylation, and small RNAs; we also analyzed two mutants that affect these processes, mediator of paramutation1 and zea methyltransferase2. The data revealed that the majority of the genome exists in a heterochromatic state defined by inaccessible chromatin that is marked by H3K9me2 and H3K27me2 but that lacks RdDM. The minority of the genome marked by RdDM was predominantly near genes, and its overall chromatin structure appeared more similar to euchromatin than to heterochromatin. These and other data indicate that the densely staining chromatin defined as heterochromatin differs fundamentally from RdDM-targeted chromatin. We propose that small interfering RNAs perform a specialized role in repressing transposons in accessible chromatin environments and that the bulk of heterochromatin is incompatible with small RNA production.


Asunto(s)
Metilación de ADN , ADN de Plantas/química , Zea mays/genética , Centrómero/metabolismo , Cromatina/metabolismo , Eucromatina/metabolismo , Silenciador del Gen , Genoma de Planta , Heterocromatina/metabolismo , Histonas/metabolismo , ARN Interferente Pequeño/fisiología
19.
Chromosoma ; 124(1): 57-65, 2015 Mar.
Artículo en Inglés | MEDLINE | ID: mdl-25190528

RESUMEN

Centromere repeats are found in most eukaryotes and play a critical role in kinetochore formation. Though centromere repeats exhibit considerable diversity both within and among species, little is understood about the mechanisms that drive centromere repeat evolution. Here, we use maize as a model to investigate how a complex history involving polyploidy, fractionation, and recent domestication has impacted the diversity of the maize centromeric repeat CentC. We first validate the existence of long tandem arrays of repeats in maize and other taxa in the genus Zea. Although we find considerable sequence diversity among CentC copies genome-wide, genetic similarity among repeats is highest within these arrays, suggesting that tandem duplications are the primary mechanism for the generation of new copies. Nonetheless, clustering analyses identify similar sequences among distant repeats, and simulations suggest that this pattern may be due to homoplasious mutation. Although the two ancestral subgenomes of maize have contributed nearly equal numbers of centromeres, our analysis shows that the majority of all CentC repeats derive from one of the parental genomes, with an even stronger bias when examining the largest assembled contiguous clusters. Finally, by comparing maize with its wild progenitor teosinte, we find that the abundance of CentC likely decreased after domestication, while the pericentromeric repeat Cent4 has drastically increased.


Asunto(s)
Centrómero/química , Evolución Molecular , Genoma de Planta , Secuencias Repetidas en Tándem , Zea mays/genética , Variación Genética
20.
Genome Res ; 23(4): 628-37, 2013 Apr.
Artículo en Inglés | MEDLINE | ID: mdl-23269663

RESUMEN

Small RNA-mediated regulation of chromatin structure is an important means of suppressing unwanted genetic activity in diverse plants, fungi, and animals. In plants specifically, 24-nt siRNAs direct de novo methylation to repetitive DNA, both foreign and endogenous, in a process known as RNA-directed DNA methylation (RdDM). Many components of the de novo methylation machinery have been identified recently, including multiple RNA polymerases, but specific genetic features that trigger methylation remain poorly understood. By applying whole-genome bisulfite sequencing to maize, we found that transposons close to cellular genes (particularly within 1 kb of either a gene start or end) are strongly associated with de novo methylation, as evidenced both by 24-nt siRNAs and by methylation specifically in the CHH sequence context. In addition, we found that the major classes of transposons exhibited a gradient of CHH methylation determined by proximity to genes. Our results further indicate that intergenic chromatin in maize exists in two major forms that are distinguished based on proximity to genes-one form marked by dense CG and CHG methylation and lack of transcription, and one marked by CHH methylation and activity of multiple forms of RNA polymerase. The existence of the latter, which we call CHH islands, may have implications for how cellular gene expression could be coordinated with immediately adjacent transposon repression in a large genome with a complex organization of genes interspersed in a landscape of transposons.


Asunto(s)
Cromatina/genética , Metilación de ADN , Componentes Genómicos , Zea mays/genética , Cromatina/metabolismo , Elementos Transponibles de ADN , Genoma de Planta , ARN Interferente Pequeño/genética , Zea mays/metabolismo
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