Your browser doesn't support javascript.
loading
Mostrar: 20 | 50 | 100
Resultados 1 - 20 de 775
Filtrar
Mais filtros

Intervalo de ano de publicação
1.
Nature ; 617(7962): 785-791, 2023 May.
Artigo em Inglês | MEDLINE | ID: mdl-37165193

RESUMO

Different plant species within the grasses were parallel targets of domestication, giving rise to crops with distinct evolutionary histories and traits1. Key traits that distinguish these species are mediated by specialized cell types2. Here we compare the transcriptomes of root cells in three grass species-Zea mays, Sorghum bicolor and Setaria viridis. We show that single-cell and single-nucleus RNA sequencing provide complementary readouts of cell identity in dicots and monocots, warranting a combined analysis. Cell types were mapped across species to identify robust, orthologous marker genes. The comparative cellular analysis shows that the transcriptomes of some cell types diverged more rapidly than those of others-driven, in part, by recruitment of gene modules from other cell types. The data also show that a recent whole-genome duplication provides a rich source of new, highly localized gene expression domains that favour fast-evolving cell types. Together, the cell-by-cell comparative analysis shows how fine-scale cellular profiling can extract conserved modules from a pan transcriptome and provide insight on the evolution of cells that mediate key functions in crops.


Assuntos
Produtos Agrícolas , Setaria (Planta) , Sorghum , Transcriptoma , Zea mays , Sequência de Bases , Regulação da Expressão Gênica de Plantas/genética , Sorghum/citologia , Sorghum/genética , Transcriptoma/genética , Zea mays/citologia , Zea mays/genética , Setaria (Planta)/citologia , Setaria (Planta)/genética , Raízes de Plantas/citologia , Análise da Expressão Gênica de Célula Única , Análise de Sequência de RNA , Produtos Agrícolas/citologia , Produtos Agrícolas/genética , Evolução Molecular
2.
Plant J ; 118(5): 1343-1357, 2024 Jun.
Artigo em Inglês | MEDLINE | ID: mdl-38340035

RESUMO

It has been hypothesized that vacuolar occupancy in mature root cortical parenchyma cells regulates root metabolic cost and thereby plant fitness under conditions of drought, suboptimal nutrient availability, and increased soil mechanical impedance. However, the mechanistic role of vacuoles in reducing root metabolic cost was unproven. Here we provide evidence to support this hypothesis. We first show that root cortical cell size is determined by both cortical cell diameter and cell length. Significant genotypic variation for both cortical cell diameter (~1.1- to 1.5-fold) and cortical cell length (~ 1.3- to 7-fold) was observed in maize and wheat. GWAS and QTL analyses indicate cortical cell diameter and length are heritable and under independent genetic control. We identify candidate genes for both phenes. Empirical results from isophenic lines contrasting for cortical cell diameter and length show that increased cell size, due to either diameter or length, is associated with reduced root respiration, nitrogen content, and phosphorus content. RootSlice, a functional-structural model of root anatomy, predicts that an increased vacuolar: cytoplasmic ratio per unit cortical volume causes reduced root respiration and nutrient content. Ultrastructural imaging of cortical parenchyma cells with varying cortical diameter and cortical cell length confirms the in silico predictions and shows that an increase in cell size is correlated with increased vacuolar volume and reduced cytoplasmic volume. Vacuolar occupancy and its relationship with cell size merits further investigation as a phene for improving crop adaptation to edaphic stress.


Assuntos
Tamanho Celular , Raízes de Plantas , Locos de Características Quantitativas , Vacúolos , Zea mays , Raízes de Plantas/genética , Raízes de Plantas/metabolismo , Raízes de Plantas/citologia , Zea mays/genética , Zea mays/metabolismo , Zea mays/fisiologia , Zea mays/citologia , Vacúolos/metabolismo , Locos de Características Quantitativas/genética , Triticum/genética , Triticum/metabolismo , Triticum/fisiologia , Estudo de Associação Genômica Ampla , Genótipo , Nitrogênio/metabolismo
3.
Plant Cell ; 33(8): 2662-2684, 2021 08 31.
Artigo em Inglês | MEDLINE | ID: mdl-34086963

RESUMO

The ataxia-telangiectasia mutated (ATM) and ATM and Rad3-related (ATR) kinases coordinate the DNA damage response. The roles described for Arabidopsis thaliana ATR and ATM are assumed to be conserved over other plant species, but molecular evidence is scarce. Here, we demonstrate that the functions of ATR and ATM are only partially conserved between Arabidopsis and maize (Zea mays). In both species, ATR and ATM play a key role in DNA repair and cell cycle checkpoint activation, but whereas Arabidopsis plants do not suffer from the absence of ATR under control growth conditions, maize mutant plants accumulate replication defects, likely due to their large genome size. Moreover, contrarily to Arabidopsis, maize ATM deficiency does not trigger meiotic defects, whereas the ATR kinase appears to be crucial for the maternal fertility. Strikingly, ATR is required to repress premature endocycle onset and cell death in the maize endosperm. Its absence results in a reduction of kernel size, protein and starch content, and a stochastic death of kernels, a process being counteracted by ATM. Additionally, while Arabidopsis atr atm double mutants are viable, no such mutants could be obtained for maize. Therefore, our data highlight that the mechanisms maintaining genome integrity may be more important for vegetative and reproductive development than previously anticipated.


Assuntos
Reparo do DNA/genética , Endosperma/genética , Proteínas de Plantas/genética , Zea mays/genética , Arabidopsis/genética , Proteínas de Arabidopsis/genética , Proteínas Mutadas de Ataxia Telangiectasia/genética , Sistemas CRISPR-Cas , Morte Celular/genética , Quebras de DNA de Cadeia Dupla , Replicação do DNA/genética , Endosperma/citologia , Instabilidade Genômica , Mutação , Células Vegetais , Proteínas de Plantas/metabolismo , Plantas Geneticamente Modificadas , Sementes/citologia , Sementes/genética , Sementes/crescimento & desenvolvimento , Zea mays/citologia , Zea mays/crescimento & desenvolvimento
4.
Plant Cell ; 32(9): 2699-2724, 2020 09.
Artigo em Inglês | MEDLINE | ID: mdl-32616663

RESUMO

Autophagic recycling of proteins, lipids, nucleic acids, carbohydrates, and organelles is essential for cellular homeostasis and optimal health, especially under nutrient-limiting conditions. To better understand how this turnover affects plant growth, development, and survival upon nutrient stress, we applied an integrated multiomics approach to study maize (Zea mays) autophagy mutants subjected to fixed-carbon starvation induced by darkness. Broad metabolic alterations were evident in leaves missing the core autophagy component ATG12 under normal growth conditions (e.g., lipids and secondary metabolism), while changes in amino acid-, carbohydrate-, and nucleotide-related metabolites selectively emerged during fixed-carbon starvation. Through combined proteomic and transcriptomic analyses, we identified numerous autophagy-responsive proteins, which revealed processes underpinning the various metabolic changes seen during carbon stress as well as potential autophagic cargo. Strikingly, a strong upregulation of various catabolic processes was observed in the absence of autophagy, including increases in simple carbohydrate levels with a commensurate drop in starch levels, elevated free amino acid levels with a corresponding reduction in intact protein levels, and a strong increase in the abundance of several nitrogen-rich nucleotide catabolites. Altogether, this analysis showed that fixed-carbon starvation in the absence of autophagy adjusts the choice of respiratory substrates, promotes the transition of peroxisomes to glyoxysomes, and enhances the retention of assimilated nitrogen.


Assuntos
Aminoácidos/metabolismo , Autofagia/fisiologia , Carbono/metabolismo , Zea mays/citologia , Zea mays/metabolismo , Metabolismo dos Carboidratos/genética , Metabolismo dos Carboidratos/fisiologia , Escuridão , Regulação da Expressão Gênica de Plantas , Metabolismo dos Lipídeos/genética , Metabolismo dos Lipídeos/fisiologia , Mutação , Folhas de Planta/metabolismo , Proteínas de Plantas/genética , Zea mays/genética
5.
Plant Cell ; 32(4): 1323-1336, 2020 04.
Artigo em Inglês | MEDLINE | ID: mdl-31996400

RESUMO

Meiosis consists of two highly conserved nuclear divisions, which allow eukaryotes to maintain their chromosome number through sexual reproduction. The successful completion of meiosis depends on homologous chromosome pairing. Centromere interactions during early meiotic prophase I facilitate homologous chromosome pairing, but the underlying mechanism is unclear. Here, we performed chromatin immunoprecipitation-mass spectrometry analysis of maize (Zea mays) anthers during early meiotic prophase I using anti-centromeric histone H3 (CENH3) antibodies and determined that the cohesin subunit Structural Maintenance of Chromosome3 (SMC3) interacts with CENH3 during this period. SMC3 is enriched at centromeres and along chromosome arms in threads from leptotene to pachytene and might promote interactions between homologous centromeres. We observed dysfunctional SMC3 assembly in meiotic-specific maize mutants with defective centromere pairing. In SMC3 RNAi meiocytes, centromere pairing defects were observed during early meiotic prophase I, SMC3 was weakly associated with centromeres, and SMC3 did not localize to the chromosome arms. In wild-type mitosis, SMC3 is associated with chromatin and is enriched at centromeres from prophase to anaphase. CRISPR-Cas9-induced Zmsmc3 mutants showed premature loss of sister chromatid cohesion and mis-segregation of chromosomes in mitotic spreads. Our findings suggest that in addition to sister chromatid cohesion, ZmSMC3 participates in meiotic centromere pairing.


Assuntos
Proteínas de Ciclo Celular/metabolismo , Centrômero/metabolismo , Proteínas Cromossômicas não Histona/metabolismo , Pareamento Cromossômico , Meiose , Proteínas de Plantas/metabolismo , Subunidades Proteicas/metabolismo , Zea mays/citologia , Zea mays/metabolismo , Cromátides/metabolismo , Cromossomos de Plantas/genética , Prófase Meiótica I , Mitose , Mutação/genética , Fenótipo , Ligação Proteica , Recombinação Genética/genética , Fuso Acromático/metabolismo , Coesinas
6.
Nature ; 542(7639): 105-109, 2017 02 02.
Artigo em Inglês | MEDLINE | ID: mdl-28114299

RESUMO

Sexual reproduction in flowering plants involves double fertilization, the union of two sperm from pollen with two sex cells in the female embryo sac. Modern plant breeders increasingly seek to circumvent this process to produce doubled haploid individuals, which derive from the chromosome-doubled cells of the haploid gametophyte. Doubled haploid production fixes recombinant haploid genomes in inbred lines, shaving years off the breeding process. Costly, genotype-dependent tissue culture methods are used in many crops, while seed-based in vivo doubled haploid systems are rare in nature and difficult to manage in breeding programmes. The multi-billion-dollar maize hybrid seed business, however, is supported by industrial doubled haploid pipelines using intraspecific crosses to in vivo haploid inducer males derived from Stock 6, first reported in 1959 (ref. 5), followed by colchicine treatment. Despite decades of use, the mode of action remains controversial. Here we establish, through fine mapping, genome sequencing, genetic complementation, and gene editing, that haploid induction in maize (Zea mays) is triggered by a frame-shift mutation in MATRILINEAL (MTL), a pollen-specific phospholipase, and that novel edits in MTL lead to a 6.7% haploid induction rate (the percentage of haploid progeny versus total progeny). Wild-type MTL protein localizes exclusively to sperm cytoplasm, and pollen RNA-sequence profiling identifies a suite of pollen-specific genes overexpressed during haploid induction, some of which may mediate the formation of haploid seed. These findings highlight the importance of male gamete cytoplasmic components to reproductive success and male genome transmittance. Given the conservation of MTL in the cereals, this discovery may enable development of in vivo haploid induction systems to accelerate breeding in crop plants.


Assuntos
Mutação da Fase de Leitura , Haploidia , Fosfolipases/genética , Fosfolipases/metabolismo , Pólen/enzimologia , Zea mays/enzimologia , Zea mays/genética , Alelos , Cruzamento/métodos , Citoplasma/enzimologia , Fertilização , Edição de Genes , Regulação da Expressão Gênica de Plantas , Genes de Plantas/genética , Teste de Complementação Genética , Fenótipo , Proteínas de Plantas/metabolismo , Pólen/citologia , Pólen/genética , Sementes/genética , Análise de Sequência de RNA , Zea mays/citologia
7.
Proc Natl Acad Sci U S A ; 117(52): 33689-33699, 2020 12 29.
Artigo em Inglês | MEDLINE | ID: mdl-33318187

RESUMO

Plants maintain populations of pluripotent stem cells in shoot apical meristems (SAMs), which continuously produce new aboveground organs. We used single-cell RNA sequencing (scRNA-seq) to achieve an unbiased characterization of the transcriptional landscape of the maize shoot stem-cell niche and its differentiating cellular descendants. Stem cells housed in the SAM tip are engaged in genome integrity maintenance and exhibit a low rate of cell division, consistent with their contributions to germline and somatic cell fates. Surprisingly, we find no evidence for a canonical stem-cell organizing center subtending these cells. In addition, trajectory inference was used to trace the gene expression changes that accompany cell differentiation, revealing that ectopic expression of KNOTTED1 (KN1) accelerates cell differentiation and promotes development of the sheathing maize leaf base. These single-cell transcriptomic analyses of the shoot apex yield insight into the processes of stem-cell function and cell-fate acquisition in the maize seedling and provide a valuable scaffold on which to better dissect the genetic control of plant shoot morphogenesis at the cellular level.


Assuntos
Diferenciação Celular , Análise de Célula Única , Células-Tronco/citologia , Zea mays/citologia , Divisão Celular , Regulação da Expressão Gênica de Plantas , Genoma de Planta , Meristema , Folhas de Planta/genética , Proteínas de Plantas/genética , Proteínas de Plantas/metabolismo , Transcrição Gênica , Transcriptoma/genética , Zea mays/genética
8.
PLoS Genet ; 16(4): e1007881, 2020 04.
Artigo em Inglês | MEDLINE | ID: mdl-32310948

RESUMO

Meiotic double-strand breaks (DSBs) are generated by the evolutionarily conserved SPO11 complex in the context of chromatin loops that are organized along axial elements (AEs) of chromosomes. However, how DSBs are formed with respect to chromosome axes and the SPO11 complex remains unclear in plants. Here, we confirm that DSB and bivalent formation are defective in maize spo11-1 mutants. Super-resolution microscopy demonstrates dynamic localization of SPO11-1 during recombination initiation, with variable numbers of SPO11-1 foci being distributed in nuclei but similar numbers of SPO11-1 foci being found on AEs. Notably, cytological analysis of spo11-1 meiocytes revealed an aberrant AE structure. At leptotene, AEs of wild-type and spo11-1 meiocytes were similarly curly and discontinuous. However, during early zygotene, wild-type AEs become uniform and exhibit shortened axes, whereas the elongated and curly AEs persisted in spo11-1 mutants, suggesting that loss of SPO11-1 compromised AE structural maturation. Our results reveal an interesting relationship between SPO11-1 loading onto AEs and the conformational remodeling of AEs during recombination initiation.


Assuntos
Endodesoxirribonucleases/metabolismo , Recombinação Homóloga , Meiose , Zea mays/citologia , Zea mays/metabolismo , Núcleo Celular/genética , Núcleo Celular/metabolismo , Pareamento Cromossômico , Quebras de DNA de Cadeia Dupla , Endodesoxirribonucleases/genética , Genes de Plantas/genética , Meiose/genética , Mutação , Fenótipo , Zea mays/genética
9.
PLoS Genet ; 16(4): e1008462, 2020 04.
Artigo em Inglês | MEDLINE | ID: mdl-32236090

RESUMO

In flowering plants, gene expression in the haploid male gametophyte (pollen) is essential for sperm delivery and double fertilization. Pollen also undergoes dynamic epigenetic regulation of expression from transposable elements (TEs), but how this process interacts with gene expression is not clearly understood. To explore relationships among these processes, we quantified transcript levels in four male reproductive stages of maize (tassel primordia, microspores, mature pollen, and sperm cells) via RNA-seq. We found that, in contrast with vegetative cell-limited TE expression in Arabidopsis pollen, TE transcripts in maize accumulate as early as the microspore stage and are also present in sperm cells. Intriguingly, coordinate expression was observed between highly expressed protein-coding genes and their neighboring TEs, specifically in mature pollen and sperm cells. To investigate a potential relationship between elevated gene transcript level and pollen function, we measured the fitness cost (male-specific transmission defect) of GFP-tagged coding sequence insertion mutations in over 50 genes identified as highly expressed in the pollen vegetative cell, sperm cell, or seedling (as a sporophytic control). Insertions in seedling genes or sperm cell genes (with one exception) exhibited no difference from the expected 1:1 transmission ratio. In contrast, insertions in over 20% of vegetative cell genes were associated with significant reductions in fitness, showing a positive correlation of transcript level with non-Mendelian segregation when mutant. Insertions in maize gamete expressed2 (Zm gex2), the sole sperm cell gene with measured contributions to fitness, also triggered seed defects when crossed as a male, indicating a conserved role in double fertilization, given the similar phenotype previously demonstrated for the Arabidopsis ortholog GEX2. Overall, our study demonstrates a developmentally programmed and coordinated transcriptional activation of TEs and genes in pollen, and further identifies maize pollen as a model in which transcriptomic data have predictive value for quantitative phenotypes.


Assuntos
Elementos de DNA Transponíveis/genética , Regulação da Expressão Gênica de Plantas , Aptidão Genética , Pólen/genética , Transcrição Gênica , Zea mays/genética , Linhagem da Célula , Perfilação da Expressão Gênica , Genes de Plantas/genética , Genoma de Planta/genética , Meiose , Mutagênese Insercional , Mutação , Polinização , Reprodutibilidade dos Testes , Reprodução , Sementes/genética , Sementes/crescimento & desenvolvimento , Regulação para Cima , Zea mays/citologia , Zea mays/crescimento & desenvolvimento
10.
Plant J ; 108(6): 1597-1608, 2021 12.
Artigo em Inglês | MEDLINE | ID: mdl-34612535

RESUMO

Maize leaf angle (LA) is a complex quantitative trait that is controlled by developmental signals, hormones, and environmental factors. However, the connection between histone methylation and LAs in maize remains unclear. Here, we reported that SET domain protein 128 (SDG128) is involved in leaf inclination in maize. Knockdown of SDG128 using an RNA interference approach resulted in an expanded architecture, less large vascular bundles, more small vascular bundles, and larger spacing of large vascular bundles in the auricles. SDG128 interacts with ZmGID2 both in vitro and in vivo. Knockdown of ZmGID2 also showed a larger LA with less large vascular bundles and larger spacing of vascular bundles. In addition, the transcription level of cell wall expansion family genes ZmEXPA1, ZmEXPB2, and GRMZM2G005887; transcriptional factor genes Lg1, ZmTAC1, and ZmCLA4; and auxin pathway genes ZmYUCCA7, ZmYUCCA8, and ZmARF22 was reduced in SDG128 and ZmGID2 knockdown plants. SDG128 directly targets ZmEXPA1, ZmEXPB2, LG1, and ZmTAC1 and is required for H3K4me3 deposition at these genes. Together, the results of the present study suggest that SDG128 and ZmGID2 are involved in the maize leaf inclination.


Assuntos
Folhas de Planta/fisiologia , Proteínas de Plantas/genética , Zea mays/fisiologia , Proteínas F-Box/genética , Proteínas F-Box/metabolismo , Regulação da Expressão Gênica de Plantas , Histonas , Ácidos Indolacéticos/metabolismo , Mutação , Folhas de Planta/citologia , Proteínas de Plantas/metabolismo , Plantas Geneticamente Modificadas , Interferência de RNA , Zea mays/citologia
11.
Development ; 146(14)2019 07 19.
Artigo em Inglês | MEDLINE | ID: mdl-31235633

RESUMO

The highly efficient C4 photosynthetic pathway is facilitated by 'Kranz' leaf anatomy. In Kranz leaves, closely spaced veins are encircled by concentric layers of photosynthetic bundle sheath (inner) and mesophyll (outer) cells. Here, we demonstrate that, in the C4 monocot maize, Kranz patterning is regulated by redundant function of SCARECROW 1 (ZmSCR1) and a previously uncharacterized homeologue: ZmSCR1h. ZmSCR1 and ZmSCR1h transcripts accumulate in ground meristem cells of developing leaf primordia and in Zmscr1;Zmscr1h mutant leaves, most veins are separated by one rather than two mesophyll cells; many veins have sclerenchyma above and/or below instead of mesophyll cells; and supernumerary bundle sheath cells develop. The mutant defects are unified by compromised mesophyll cell development. In addition to Kranz defects, Zmscr1;Zmscr1h mutants fail to form an organized endodermal layer in the root. Collectively, these data indicate that ZmSCR1 and ZmSCR1h redundantly regulate cell-type patterning in both the leaves and roots of maize. Leaf and root pathways are distinguished, however, by the cell layer in which they operate - mesophyll at a two-cell distance from leaf veins versus endodermis immediately adjacent to root vasculature.


Assuntos
Proteínas de Ligação a DNA/genética , Dosagem de Genes/fisiologia , Folhas de Planta/embriologia , Raízes de Plantas/embriologia , Zea mays/embriologia , Zea mays/genética , Proteínas de Arabidopsis/genética , Duplicação Gênica/fisiologia , Regulação da Expressão Gênica no Desenvolvimento , Regulação da Expressão Gênica de Plantas , Zíper de Leucina/genética , Família Multigênica/genética , Filogenia , Folhas de Planta/citologia , Folhas de Planta/genética , Raízes de Plantas/citologia , Raízes de Plantas/genética , Plantas Geneticamente Modificadas , Homologia de Sequência , Zea mays/citologia , Zea mays/crescimento & desenvolvimento
12.
Plant Cell ; 31(6): 1238-1256, 2019 06.
Artigo em Inglês | MEDLINE | ID: mdl-30962394

RESUMO

Cell number is a critical factor that determines kernel size in maize (Zea mays). Rapid mitotic divisions in early endosperm development produce most of the cells that make up the starchy endosperm; however, the mechanisms underlying early endosperm development remain largely unknown. We isolated a maize mutant that shows a varied-kernel-size phenotype (vks1). Vks1 encodes ZmKIN11, which belongs to the kinesin-14 subfamily and is predominantly expressed in early endosperm development. VKS1 dynamically localizes to the nucleus and microtubules and plays key roles in the migration of free nuclei in the coenocyte as well as in mitosis and cytokinesis in early mitotic divisions. Absence of VKS1 has relatively minor effects on plants but causes deformities in spindle assembly, sister chromatid separation, and phragmoplast formation in early endosperm development, thereby resulting in reduced cell proliferation. Severities of aberrant mitosis and cytokinesis within individual vks1 endosperms differ, thereby resulting in varied kernel sizes. Our discovery highlights VKS1 as a central regulator of mitosis in early maize endosperm development and provides a potential approach for future yield improvement.


Assuntos
Citocinese/fisiologia , Endosperma/metabolismo , Mitose/fisiologia , Zea mays/citologia , Zea mays/metabolismo , Citocinese/genética , Endosperma/citologia , Mitose/genética , Proteínas de Plantas/genética , Proteínas de Plantas/metabolismo
13.
Plant Physiol ; 184(2): 960-972, 2020 10.
Artigo em Inglês | MEDLINE | ID: mdl-32737073

RESUMO

Maize (Zea mays) thick aleurone1 (thk1-R) mutants form multiple aleurone layers in the endosperm and have arrested embryogenesis. Prior studies suggest that thk1 functions downstream of defective kernel1 (dek1) in a regulatory pathway that controls aleurone cell fate and other endosperm traits. The original thk1-R mutant contained an ∼2-Mb multigene deletion, which precluded identification of the causal gene. Here, ethyl methanesulfonate mutagenesis produced additional alleles, and RNA sequencing from developing endosperm was used to identify a candidate gene based on differential expression compared with the wild-type progenitor. Gene editing confirmed the gene identity by producing mutant alleles that failed to complement existing thk1 mutants and that produced multiple-aleurone homozygous phenotypes. Thk1 encodes a homolog of NEGATIVE ON TATA-LESS1, a protein that acts as a scaffold for the CARBON CATABOLITE REPRESSION4-NEGATIVE ON TATA-LESS complex. This complex is highly conserved and essential in all eukaryotes for regulating a wide array of gene expression and cellular activities. Maize also harbors a duplicate locus, thick aleurone-like1, which likely accounts for the ability of thk1 mutants to form viable cells. Transcriptomic analysis indicated that THK1 regulates activities involving cell division, signaling, differentiation, and metabolism. Identification of thk1 provides an important new component of the DEK1 regulatory system that patterns cell fate in endosperm.


Assuntos
Diferenciação Celular/genética , Endosperma/citologia , Endosperma/crescimento & desenvolvimento , Endosperma/genética , Zea mays/citologia , Zea mays/crescimento & desenvolvimento , Zea mays/genética , Produtos Agrícolas/citologia , Produtos Agrícolas/genética , Produtos Agrícolas/crescimento & desenvolvimento , Perfilação da Expressão Gênica , Regulação da Expressão Gênica de Plantas , Genes de Plantas , Variação Genética , Genótipo , Mutação , Fenótipo
14.
Plant Cell ; 30(10): 2425-2446, 2018 10.
Artigo em Inglês | MEDLINE | ID: mdl-30262552

RESUMO

Development of the cereal endosperm involves cell differentiation processes that enable nutrient uptake from the maternal plant, accumulation of storage products, and their utilization during germination. However, little is known about the regulatory mechanisms that link cell differentiation processes with those controlling storage product synthesis and deposition, including the activation of zein genes by the maize (Zea mays) bZIP transcription factor Opaque-2 (O2). Here, we mapped in vivo binding sites of O2 in B73 endosperm and compared the results with genes differentially expressed in B73 and B73o2 We identified 186 putative direct O2 targets and 1677 indirect targets, encoding a broad set of gene functionalities. Examination of the temporal expression patterns of O2 targets revealed at least two distinct modes of O2-mediated gene activation. Two O2-activated genes, bZIP17 and NAKED ENDOSPERM2 (NKD2), encode transcription factors, which can in turn coactivate other O2 network genes with O2. NKD2 (with its paralog NKD1) was previously shown to be involved in regulation of aleurone development. Collectively, our results provide insights into the complexity of the O2-regulated network and its role in regulation of endosperm cell differentiation and function.


Assuntos
Endosperma/citologia , Redes Reguladoras de Genes , Proteínas de Plantas/genética , Zea mays/genética , Sítios de Ligação , Diferenciação Celular , Imunoprecipitação da Cromatina , Endosperma/genética , Regulação da Expressão Gênica de Plantas , Mutação , Células Vegetais/fisiologia , Proteínas de Plantas/metabolismo , Zea mays/citologia
15.
Plant Cell ; 30(6): 1220-1242, 2018 06.
Artigo em Inglês | MEDLINE | ID: mdl-29802214

RESUMO

The unfolded protein response (UPR) is a highly conserved response that protects plants from adverse environmental conditions. The UPR is elicited by endoplasmic reticulum (ER) stress, in which unfolded and misfolded proteins accumulate within the ER. Here, we induced the UPR in maize (Zea mays) seedlings to characterize the molecular events that occur over time during persistent ER stress. We found that a multiphasic program of gene expression was interwoven among other cellular events, including the induction of autophagy. One of the earliest phases involved the degradation by regulated IRE1-dependent RNA degradation (RIDD) of RNA transcripts derived from a family of peroxidase genes. RIDD resulted from the activation of the promiscuous ribonuclease activity of ZmIRE1 that attacks the mRNAs of secreted proteins. This was followed by an upsurge in expression of the canonical UPR genes indirectly driven by ZmIRE1 due to its splicing of Zmbzip60 mRNA to make an active transcription factor that directly upregulates many of the UPR genes. At the peak of UPR gene expression, a global wave of RNA processing led to the production of many aberrant UPR gene transcripts, likely tempering the ER stress response. During later stages of ER stress, ZmIRE1's activity declined, as did the expression of survival modulating genes, Bax inhibitor1 and Bcl-2-associated athanogene7, amid a rising tide of cell death. Thus, in response to persistent ER stress, maize seedlings embark on a course of gene expression and cellular events progressing from adaptive responses to cell death.


Assuntos
Morte Celular/fisiologia , Estresse do Retículo Endoplasmático/fisiologia , Resposta a Proteínas não Dobradas/fisiologia , Zea mays/citologia , Zea mays/metabolismo , Morte Celular/genética , Estresse do Retículo Endoplasmático/genética , RNA Mensageiro/genética , RNA Mensageiro/metabolismo , Resposta a Proteínas não Dobradas/genética , Zea mays/genética
16.
Plant Cell ; 30(10): 2255-2266, 2018 10.
Artigo em Inglês | MEDLINE | ID: mdl-30150312

RESUMO

One key aspect of cell division in multicellular organisms is the orientation of the division plane. Proper division plane establishment contributes to normal plant body organization. To determine the importance of cell geometry in division plane orientation, we designed a three-dimensional probabilistic mathematical model to directly test the century-old hypothesis that cell divisions mimic soap-film minima. According to this hypothesis, daughter cells have equal volume and the division plane occurs where the surface area is at a minimum. We compared predicted division planes to a plant microtubule array that marks the division site, the preprophase band (PPB). PPB location typically matched one of the predicted divisions. Predicted divisions offset from the PPB occurred when a neighboring cell wall or PPB was directly adjacent to the predicted division site to avoid creating a potentially structurally unfavorable four-way junction. By comparing divisions of differently shaped plant cells (maize [Zea mays] epidermal cells and developing ligule cells and Arabidopsis thaliana guard cells) and animal cells (Caenorhabditis elegans embryonic cells) to divisions simulated in silico, we demonstrate the generality of this model to accurately predict in vivo division. This powerful model can be used to separate the contribution of geometry from mechanical stresses or developmental regulation in predicting division plane orientation.


Assuntos
Arabidopsis/citologia , Modelos Biológicos , Células Vegetais/fisiologia , Zea mays/citologia , Animais , Proteínas de Bactérias/genética , Proteínas de Bactérias/metabolismo , Caenorhabditis elegans/citologia , Caenorhabditis elegans/embriologia , Divisão Celular , Embrião não Mamífero/citologia , Proteínas Luminescentes/genética , Proteínas Luminescentes/metabolismo , Microtúbulos/metabolismo , Microtúbulos/ultraestrutura , Folhas de Planta/citologia , Proteínas Recombinantes/genética , Proteínas Recombinantes/metabolismo , Sabões/química , Imagem com Lapso de Tempo
17.
Plant Cell Rep ; 40(10): 1957-1970, 2021 Oct.
Artigo em Inglês | MEDLINE | ID: mdl-34319484

RESUMO

KEY MESSAGE: A novel genic male-sterile mutant ms40 was obtained from EMS treated RP125. The key candidate gene ZmbHLH51 located on chromosome 4 was identified by map-based cloning. This study further enriched the male sterile gene resources for both production applications and theoretical studies of abortion mechanisms. Maize male-sterile mutant 40 (ms40) was obtained from the progeny of the ethyl methanesulfonate (EMS) treated inbred line RP125. Genetic analysis indicated that the sterility was controlled by a single recessive nuclear gene. Cytological observation of anthers revealed that the cuticles of ms40 anthers were abnormal, and no Ubisch bodies were observed on the inner surface of ms40 anthers through scanning electron microscopy(SEM). Moreover, its tapetum exhibited delayed degradation and then blocked the formation of normal microspores. Using map-based cloning strategy, the ms40 locus was found to locate in a 282-kb interval on chromosome 4, and five annotated genes were predicted within this region. PCR-based sequencing detected a single non-synonymous SNP (G > A) that changed glycine (G) to arginine (A) in the seventh exon of Zm00001d053895, while no sequence difference between ms40 and RP125 was found for the other four genes. Zm00001d053895 encodes the bHLH transcription factor ZmbHLH51 which is localized in the nucleus. Phylogenetic analysis showed that ZmbHLH51 had the highest homology with Sb04g001650, a tapetum degeneration retardation (TDR) bHLH transcription factor in Sorghum bicolor. Co-expression analysis revealed a total of 1192 genes co-expressed with ZmbHLH51 in maize, 647 of which were anther-specific genes. qRT-PCR results suggested the expression levels of some known genes related to anther development were affected in ms40. In summary, these findings revealed the abortion characteristics of ms40 anthers and lay a foundation for further studies on the mechanisms of male fertility.


Assuntos
Flores/crescimento & desenvolvimento , Flores/genética , Infertilidade das Plantas/genética , Proteínas de Plantas/genética , Zea mays/genética , Fatores de Transcrição Hélice-Alça-Hélice Básicos/genética , Fatores de Transcrição Hélice-Alça-Hélice Básicos/metabolismo , Cromossomos de Plantas , Regulação da Expressão Gênica de Plantas , Genes Recessivos , Mutação , Filogenia , Proteínas de Plantas/metabolismo , Pólen/genética , Zea mays/citologia
18.
BMC Plant Biol ; 20(1): 17, 2020 Jan 09.
Artigo em Inglês | MEDLINE | ID: mdl-31918680

RESUMO

BACKGROUND: Maize bsd2 (bundle sheath defective2) is a classical C4 mutant with defective C4 photosynthesis, accompanied with reduced accumulation of Rubisco (ribulose bisphosphate carboxylase oxygenase) and aberrant mature chloroplast morphology in the bundle sheath (BS) cells. However, as a hypothetical chloroplast chaperone, the effects of BSD2 on C4 chloroplast development have not been fully examined yet, which precludes a full appreciation of BSD2 function in C4 photosynthesis. The aims of our study are to find out the role ofBSD2 in regulating chloroplasts development in maize leaves, and to add new insights into our understanding of C4 biology. RESULTS: We found that at the chloroplast maturation stage, the thylakoid membranes of chloroplasts in the BS and mesophyll (M) cells became significantly looser, and the granaof chloroplasts in the M cells became thinner stacking in the bsd2 mutant when compared with the wildtype plant. Moreover, at the early chloroplast development stage, the number of dividing chloroplasts and the chloroplast division rate are both reduced in the bsd2 mutant, compared with wild type. Quantitative reverse transcriptase-PCR analysis revealed that the expression of both thylakoid formation-related genesand chloroplast division-related genes is significantly reduced in the bsd2 mutants. Further, we showed that BSD2 interacts physically with the large submit of Rubisco (LS) in Bimolecular Fluorescence Complementation assay. CONCLUSIONS: Our combined results suggest that BSD2 plays an essential role in regulating the division and differentiation of the dimorphic BS and M chloroplasts, and that it acts at a post-transcriptional level to regulate LS stability or assembly of Rubisco.


Assuntos
Cloroplastos/ultraestrutura , Folhas de Planta/citologia , Proteínas de Plantas/genética , Zea mays , Cloroplastos/metabolismo , Mutação , Folhas de Planta/metabolismo , Proteínas de Plantas/metabolismo , Ribulose-Bifosfato Carboxilase/metabolismo , Zea mays/citologia , Zea mays/genética , Zea mays/metabolismo , Zea mays/ultraestrutura
19.
Plant Cell Environ ; 43(9): 2254-2271, 2020 09.
Artigo em Inglês | MEDLINE | ID: mdl-32488892

RESUMO

To understand the growth response to drought, we performed a proteomics study in the leaf growth zone of maize (Zea mays L.) seedlings and functionally characterized the role of starch biosynthesis in the regulation of growth, photosynthesis and antioxidant capacity, using the shrunken-2 mutant (sh2), defective in ADP-glucose pyrophosphorylase. Drought altered the abundance of 284 proteins overrepresented for photosynthesis, amino acid, sugar and starch metabolism, and redox-regulation. Changes in protein levels correlated with enzyme activities (increased ATP synthase, cysteine synthase, starch synthase, RuBisCo, peroxiredoxin, glutaredoxin, thioredoxin and decreased triosephosphate isomerase, ferredoxin, cellulose synthase activities, respectively) and metabolite concentrations (increased ATP, cysteine, glycine, serine, starch, proline and decreased cellulose levels). The sh2 mutant showed a reduced increase of starch levels under drought conditions, leading to soluble sugar starvation at the end of the night and correlating with an inhibition of leaf growth rates. Increased RuBisCo activity and pigment concentrations observed in WT, in response to drought, were lacking in the mutant, which suffered more oxidative damage and recovered more slowly after re-watering. These results demonstrate that starch biosynthesis contributes to maintaining leaf growth under drought stress and facilitates enhanced carbon acquisition upon recovery.


Assuntos
Secas , Folhas de Planta/crescimento & desenvolvimento , Proteínas de Plantas/metabolismo , Amido/metabolismo , Zea mays/fisiologia , Aminoácidos/metabolismo , Antioxidantes/metabolismo , Divisão Celular , Desidratação , Regulação da Expressão Gênica de Plantas , Mutação , Fotossíntese/fisiologia , Folhas de Planta/fisiologia , Proteínas de Plantas/genética , Estômatos de Plantas/fisiologia , Amido/biossíntese , Zea mays/citologia
20.
Plant Cell Environ ; 43(9): 2172-2191, 2020 09.
Artigo em Inglês | MEDLINE | ID: mdl-32441772

RESUMO

Although cell wall polymers play important roles in the tolerance of plants to abiotic stress, the effects of salinity on cell wall composition and metabolism in grasses remain largely unexplored. Here, we conducted an in-depth study of changes in cell wall composition and phenolic metabolism induced upon salinity in maize seedlings and plants. Cell wall characterization revealed that salt stress modulated the deposition of cellulose, matrix polysaccharides and lignin in seedling roots, plant roots and stems. The extraction and analysis of arabinoxylans by size-exclusion chromatography, 2D-NMR spectroscopy and carbohydrate gel electrophoresis showed a reduction of arabinoxylan content in salt-stressed roots. Saponification and mild acid hydrolysis revealed that salinity also reduced the feruloylation of arabinoxylans in roots of seedlings and plants. Determination of lignin content and composition by nitrobenzene oxidation and 2D-NMR confirmed the increased incorporation of syringyl units in lignin of maize roots. Salt stress also induced the expression of genes and the activity of enzymes enrolled in phenylpropanoid biosynthesis. The UHPLC-MS-based metabolite profiling confirmed the modulation of phenolic profiling by salinity and the accumulation of ferulate and its derivatives 3- and 4-O-feruloyl quinate. In conclusion, we present a model for explaining cell wall remodeling in response to salinity.


Assuntos
Parede Celular/química , Fenóis/metabolismo , Polissacarídeos/metabolismo , Zea mays/citologia , Zea mays/metabolismo , Parede Celular/metabolismo , Celulose/análise , Celulose/química , Ácidos Cumáricos/metabolismo , Regulação da Expressão Gênica de Plantas , Lignina/metabolismo , Monossacarídeos/análise , Células Vegetais/metabolismo , Raízes de Plantas/metabolismo , Polissacarídeos/química , Estresse Salino/fisiologia , Plântula/citologia , Plântula/metabolismo , Xilanos/análise , Xilanos/química , Xilanos/metabolismo , Zea mays/crescimento & desenvolvimento
SELEÇÃO DE REFERÊNCIAS
DETALHE DA PESQUISA