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1.
Commun Biol ; 7(1): 841, 2024 Jul 10.
Article in English | MEDLINE | ID: mdl-38987396

ABSTRACT

Cereal seeds are vital for food, feed, and agricultural sustainability because they store and provide essential nutrients to human and animal food and feed systems. Unraveling molecular processes in seed development is crucial for enhancing cereal grain yield and quality. We analyze spatiotemporal transcriptome and metabolome profiles during sorghum seed development in the inbred line 'BTx623'. Morphological and molecular analyses identify the key stages of seed maturation, specifying starch biosynthesis onset at 5 days post-anthesis (dpa) and protein at 10 dpa. Transcriptome profiling from 1 to 25 dpa reveal dynamic gene expression pathways, shifting from cellular growth and embryo development (1-5 dpa) to cell division, fatty acid biosynthesis (5-25 dpa), and seed storage compounds synthesis in the endosperm (5-25 dpa). Network analysis identifies 361 and 207 hub genes linked to starch and protein synthesis in the endosperm, respectively, which will help breeders enhance sorghum grain quality. The availability of this data in the sorghum reference genome line establishes a baseline for future studies as new pangenomes emerge, which will consider copy number and presence-absence variation in functional food traits.


Subject(s)
Gene Expression Regulation, Plant , Metabolome , Seeds , Sorghum , Transcriptome , Sorghum/genetics , Sorghum/metabolism , Seeds/metabolism , Seeds/genetics , Seeds/growth & development , Gene Regulatory Networks , Gene Expression Profiling , Endosperm/metabolism , Endosperm/genetics , Starch/biosynthesis , Starch/metabolism , Edible Grain/genetics , Edible Grain/metabolism
2.
Methods Mol Biol ; 2827: 207-222, 2024.
Article in English | MEDLINE | ID: mdl-38985273

ABSTRACT

In this chapter, we report advances in tissue culture applied to Passiflora. We present reproducible protocols for somatic embryogenesis, endosperm-derived triploid production, and genetic transformation for such species knowledge generated by our research team and collaborators in the last 20 years. Our research group has pioneered the work on passion fruit somatic embryogenesis, and we directed efforts to characterize several aspects of this morphogenic pathway. Furthermore, we expanded the possibilities of understanding the molecular mechanism related to developmental phase transitions of Passiflora edulis Sims. and P. cincinnata Mast., and a transformation protocol is presented for the overexpression of microRNA156.


Subject(s)
Passiflora , Plant Somatic Embryogenesis Techniques , Tissue Culture Techniques , Passiflora/genetics , Passiflora/growth & development , Plant Somatic Embryogenesis Techniques/methods , Tissue Culture Techniques/methods , Transformation, Genetic , MicroRNAs/genetics , Plants, Genetically Modified/genetics , Plants, Genetically Modified/growth & development , Endosperm/genetics , Endosperm/growth & development , Gene Expression Regulation, Plant
3.
New Phytol ; 243(5): 1855-1869, 2024 Sep.
Article in English | MEDLINE | ID: mdl-38962989

ABSTRACT

Grain filling in maize (Zea mays) is intricately linked to cell development, involving the regulation of genes responsible for the biosynthesis of storage reserves (starch, proteins, and lipids) and phytohormones. However, the regulatory network coordinating these biological functions remains unclear. In this study, we identified 1744 high-confidence target genes co-regulated by the transcription factors (TFs) ZmNAC128 and ZmNAC130 (ZmNAC128/130) through chromatin immunoprecipitation sequencing coupled with RNA-seq analysis in the zmnac128/130 loss-of-function mutants. We further constructed a hierarchical regulatory network using DNA affinity purification sequencing analysis of downstream TFs regulated by ZmNAC128/130. In addition to target genes involved in the biosynthesis of starch and zeins, we discovered novel target genes of ZmNAC128/130 involved in the biosynthesis of lipids and indole-3-acetic acid (IAA). Consistently, the number of oil bodies, as well as the contents of triacylglycerol, and IAA were significantly reduced in zmnac128/130. The hierarchical regulatory network centered by ZmNAC128/130 revealed a significant overlap between the direct target genes of ZmNAC128/130 and their downstream TFs, particularly in regulating the biosynthesis of storage reserves and IAA. Our results indicated that the biosynthesis of storage reserves and IAA is coordinated by a multi-TFs hierarchical regulatory network in maize endosperm.


Subject(s)
Endosperm , Gene Expression Regulation, Plant , Gene Regulatory Networks , Indoleacetic Acids , Plant Proteins , Transcription Factors , Zea mays , Zea mays/genetics , Zea mays/metabolism , Indoleacetic Acids/metabolism , Endosperm/metabolism , Endosperm/genetics , Plant Proteins/metabolism , Plant Proteins/genetics , Transcription Factors/metabolism , Transcription Factors/genetics , Genes, Plant , Mutation/genetics , Starch/metabolism , Starch/biosynthesis
4.
Mol Plant ; 17(7): 1110-1128, 2024 Jul 01.
Article in English | MEDLINE | ID: mdl-38825830

ABSTRACT

Spatiotemporal regulation of gene expression by polycomb repressive complex 2 (PRC2) is critical for animal and plant development. The Arabidopsis fertilization independent seed (FIS)-PRC2 complex functions specifically during plant reproduction from gametogenesis to seed development. After a double fertilization event, triploid endosperm proliferates early, followed by the growth of a diploid embryo, which replaces the endosperm in Arabidopsis and many dicots. Key genes critical for endosperm proliferation such as IKU2 and MINI3 are activated after fertilization. Here we report that two MADS-box AGAMOUS-LIKE (AGL) proteins associate with the key endosperm proliferation loci and recruit the FIS-PRC2 repressive complex at 4-5 days after pollination (DAP). Interestingly, AGL9 and AGL15 only accumulate toward the end of endosperm proliferation at 4-5 DAP and promote the deposition of H3K27me3 marks at key endosperm proliferation loci. Disruption of AGL9 and AGL15 or overexpression of AGL9 or AGL15 significantly influence endosperm proliferation and cellularization. Genome-wide analysis with cleavage Under Targets and tagmentation (CUT&Tag) sequencing and RNA sequencing revealed the landscape of endosperm H3K27me3 marks and gene expression profiles in Col-0 and agl9 agl15. CUT&Tag qPCR also demonstrated the occupancy of the two MADS-box proteins and FIS-PRC2 on a few representative target loci. Our studies suggest that MADS-box proteins could potentially recruit PRC2 to regulate many other developmental processes in plants or even in fungi and animals.


Subject(s)
Arabidopsis Proteins , Arabidopsis , Endosperm , Gene Expression Regulation, Plant , MADS Domain Proteins , Arabidopsis/metabolism , Arabidopsis/genetics , Arabidopsis/growth & development , Arabidopsis Proteins/metabolism , Arabidopsis Proteins/genetics , Endosperm/metabolism , Endosperm/growth & development , Endosperm/genetics , MADS Domain Proteins/metabolism , MADS Domain Proteins/genetics , Polycomb Repressive Complex 2/metabolism , Polycomb Repressive Complex 2/genetics , Seeds/metabolism , Seeds/growth & development , Seeds/genetics , Cell Proliferation
5.
Plant Sci ; 346: 112151, 2024 Sep.
Article in English | MEDLINE | ID: mdl-38848768

ABSTRACT

Endosperm, the major storage organ in cereal grains, determines the grain yield and quality. Mitochondria provide the energy for dry matter accumulation, in the endosperm development. Although mitochondrial single-stranded DNA-binding proteins (mtSSBs) play a canonical role in the maintenance of single-stranded mitochondrial DNA, their molecular functions in RNA processing and endosperm development remain obscure. Here, we report a defective rice endosperm mutant, floury endosperm26 (flo26), which develops abnormal starch grains in the endosperm. Map-based cloning and complementation experiments showed that FLO26 allele encodes a mitochondrial single-stranded DNA-binding protein, named as mtSSB1.1. Loss of function of mtSSB1.1 affects the transcriptional level of many mitochondrially-encoded genes and RNA splicing of nad1, a core component of respiratory chain complex I in mitochondria. As a result, dysfunctional mature nad1 led to dramatically decreased complex I activity, thereby reducing ATP production. Our results reveal that mtSSB1.1 plays an important role in the maintenance of mitochondrial function and endosperm development by stabilizing the splicing of mitochondrial RNA in rice.


Subject(s)
Endosperm , Oryza , Plant Proteins , RNA Splicing , Oryza/genetics , Oryza/metabolism , Oryza/growth & development , Endosperm/genetics , Endosperm/metabolism , Endosperm/growth & development , Plant Proteins/genetics , Plant Proteins/metabolism , DNA-Binding Proteins/genetics , DNA-Binding Proteins/metabolism , Genes, Mitochondrial , Mitochondria/metabolism , Mitochondria/genetics , Gene Expression Regulation, Plant
6.
Planta ; 260(1): 19, 2024 Jun 05.
Article in English | MEDLINE | ID: mdl-38839605

ABSTRACT

MAIN CONCLUSION: A mutation was first found to cause the great generation of glutelin precursors (proglutelins) in rice (Oryza sativa L.) endosperm, and thus referred to as GPGG1. The GPGG1 was involved in synthesis and compartmentation of storage proteins. The PPR-like gene in GPGG1-mapped region was determined as its candidate gene. In the wild type rice, glutelins and prolamins are synthesized on respective subdomains of rough endoplasmic reticulum (ER) and intracellularly compartmentalized into different storage protein bodies. In this study, a storage protein mutant was obtained and characterized by the great generation of proglutelins combining with the lacking of 13 kD prolamins. A dominant genic-mutation, referred to as GPGG1, was clarified to result in the proteinous alteration. Novel saccular composite-ER was shown to act in the synthesis of proglutelins and 14 kD prolamins in the mutant. Additionally, a series of organelles including newly occurring several compartments were shown to function in the transfer, trans-plasmalemmal transport, delivery, deposition and degradation of storage proteins in the mutant. The GPGG1 gene was mapped to a 67.256 kb region of chromosome 12, the pentatricopeptide repeat (PPR)-like gene in this region was detected to contain mutational sites.


Subject(s)
Endosperm , Glutens , Mutation , Oryza , Oryza/genetics , Oryza/metabolism , Endosperm/genetics , Endosperm/metabolism , Glutens/genetics , Glutens/metabolism , Plant Proteins/genetics , Plant Proteins/metabolism , Prolamins/genetics , Prolamins/metabolism , Seed Storage Proteins/genetics , Seed Storage Proteins/metabolism , Endoplasmic Reticulum/metabolism , Chromosome Mapping , Genome, Plant/genetics
7.
Plant J ; 119(3): 1449-1464, 2024 Aug.
Article in English | MEDLINE | ID: mdl-38837713

ABSTRACT

The aleurone layer in cereal grains acts as a major reservoir of essential mineral nutrients, significantly influencing seed germination. However, the molecular mechanism underlying the redistribution of nutrients from the aleurone layer in the germinating seed is still not well understood. Here, in rice, we identified a plasma membrane (PM) localized magnesium transporter, MAGNESIUM RELEASE TRANSPORTER 3 (MGR3), is critical for seed germination. OsMGR3 is predominantly expressed in the aleurone layer cells of endosperm, facilitating magnesium remobilization during germination. Non-invasive Micro-test Technology assay data demonstrated that the loss-of-function of OsMGR3 restrained magnesium efflux from the aleurone layer. In the embryo/endosperm grafting experiment, we observed that the mutation of OsMGR3 in the aleurone layer suppressed the growth and differentiation of the embryo during germination. Furthermore, magnesium fluorescence imaging revealed the osmgr3 mutant seeds showed impaired exportation of aleurone layer-stored magnesium to the embryo, consequently delaying germination. Importantly, we discovered that disrupting OsMGR3 could inhibit pre-harvest sprouting without affecting rice yield and quality. Therefore, the magnesium efflux transporter OsMGR3 in the aleurone layer represents a promising genetic target for future agronomic trait improvement.


Subject(s)
Cell Membrane , Germination , Magnesium , Oryza , Plant Proteins , Seeds , Oryza/genetics , Oryza/metabolism , Oryza/growth & development , Oryza/physiology , Magnesium/metabolism , Plant Proteins/metabolism , Plant Proteins/genetics , Seeds/genetics , Seeds/metabolism , Seeds/growth & development , Cell Membrane/metabolism , Gene Expression Regulation, Plant , Endosperm/metabolism , Endosperm/genetics , Mutation
8.
New Phytol ; 243(1): 213-228, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38715414

ABSTRACT

Arabidopsis lamin analogs CROWDED NUCLEIs (CRWNs) are necessary to maintain nuclear structure, genome function, and proper plant growth. However, whether and how CRWNs impact reproduction and genome-wide epigenetic modifications is unknown. Here, we investigate the role of CRWNs during the development of gametophytes, seeds, and endosperm, using genomic and epigenomic profiling methods. We observed defects in crwn mutant seeds including seed abortion and reduced germination rate. Quadruple crwn null genotypes were rarely transmitted through gametophytes. Because defects in seeds often stem from abnormal endosperm development, we focused on crwn1 crwn2 (crwn1/2) endosperm. These mutant seeds exhibited enlarged chalazal endosperm cysts and increased expression of stress-related genes and the MADS-box transcription factor PHERES1 and its targets. Previously, it was shown that PHERES1 expression is regulated by H3K27me3 and that CRWN1 interacts with the PRC2 interactor PWO1. Thus, we tested whether crwn1/2 alters H3K27me3 patterns. We observed a mild loss of H3K27me3 at several hundred loci, which differed between endosperm and leaves. These data indicate that CRWNs are necessary to maintain the H3K27me3 landscape, with tissue-specific chromatin and transcriptional consequences.


Subject(s)
Arabidopsis Proteins , Arabidopsis , Endosperm , Gene Expression Regulation, Plant , Histones , Mutation , Reproduction , Arabidopsis/genetics , Arabidopsis/physiology , Arabidopsis Proteins/metabolism , Arabidopsis Proteins/genetics , Histones/metabolism , Endosperm/genetics , Endosperm/metabolism , Mutation/genetics , Seeds/genetics , Seeds/growth & development , Cell Nucleus/metabolism , Methylation
9.
BMC Plant Biol ; 24(1): 458, 2024 May 27.
Article in English | MEDLINE | ID: mdl-38797860

ABSTRACT

BACKGROUND: The endosperm serves as the primary source of nutrients for maize (Zea mays L.) kernel embryo development and germination. Positioned at the base of the endosperm, the transfer cells (TCs) of the basal endosperm transfer layer (BETL) generate cell wall ingrowths, which enhance the connectivity between the maternal plant and the developing kernels. These TCs play a crucial role in nutrient transport and defense against pathogens. The molecular mechanism underlying BETL development in maize remains unraveled. RESULTS: This study demonstrated that the MYB-related transcription factor ZmMYBR29, exhibited specific expression in the basal cellularized endosperm, as evidenced by in situ hybridization analysis. Utilizing the CRISPR/Cas9 system, we successfully generated a loss-of-function homozygous zmmybr29 mutant, which presented with smaller kernel size. Observation of histological sections revealed abnormal development and disrupted morphology of the cell wall ingrowths in the BETL. The average grain filling rate decreased significantly by 26.7% in zmmybr29 mutant in comparison to the wild type, which impacted the dry matter accumulation within the kernels and ultimately led to a decrease in grain weight. Analysis of RNA-seq data revealed downregulated expression of genes associated with starch synthesis and carbohydrate metabolism in the mutant. Furthermore, transcriptomic profiling identified 23 genes that expressed specifically in BETL, and the majority of these genes exhibited altered expression patterns in zmmybr29 mutant. CONCLUSIONS: In summary, ZmMYBR29 encodes a MYB-related transcription factor that is expressed specifically in BETL, resulting in the downregulation of genes associated with kernel development. Furthermore, ZmMYBR29 influences kernels weight by affecting the grain filling rate, providing a new perspective for the complementation of the molecular regulatory network in maize endosperm development.


Subject(s)
Edible Grain , Endosperm , Gene Expression Regulation, Plant , Plant Proteins , Transcription Factors , Zea mays , Zea mays/genetics , Zea mays/growth & development , Zea mays/metabolism , Transcription Factors/genetics , Transcription Factors/metabolism , Plant Proteins/genetics , Plant Proteins/metabolism , Edible Grain/genetics , Edible Grain/growth & development , Edible Grain/metabolism , Endosperm/genetics , Endosperm/growth & development , Endosperm/metabolism , Cell Wall/metabolism , Cell Wall/genetics , Seeds/genetics , Seeds/growth & development , Seeds/metabolism , CRISPR-Cas Systems
10.
Plant J ; 119(2): 1134-1157, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38709819

ABSTRACT

The evolutionary and ecological success of spermatophytes is intrinsically linked to the seed habit, which provides a protective environment for the initial development of the new generation. This environment includes an ephemeral nourishing tissue that supports embryo growth. In gymnosperms this tissue originates from the asexual proliferation of the maternal megagametophyte, while in angiosperms it is a product of fertilization, and is called the endosperm. The emergence of these nourishing tissues is of profound evolutionary value, and they are also food staples for most of the world's population. Here, using Orthofinder to infer orthologue genes among newly generated and previously published datasets, we provide a comparative transcriptomic analysis of seed nourishing tissues from species of several angiosperm clades, including those of early diverging lineages, as well as of one gymnosperm. Our results show that, although the structure and composition of seed nourishing tissues has seen significant divergence along evolution, there are signatures that are conserved throughout the phylogeny. Conversely, we identified processes that are specific to species within the clades studied, and thus illustrate their functional divergence. With this, we aimed to provide a foundation for future studies on the evolutionary history of seed nourishing structures, as well as a resource for gene discovery in future functional studies.


Subject(s)
Cycadopsida , Magnoliopsida , Phylogeny , Seeds , Transcriptome , Seeds/genetics , Seeds/metabolism , Magnoliopsida/genetics , Magnoliopsida/metabolism , Cycadopsida/genetics , Gene Expression Regulation, Plant , Endosperm/genetics , Endosperm/metabolism , Gene Expression Profiling , Biological Evolution
12.
Nat Plants ; 10(6): 1018-1026, 2024 06.
Article in English | MEDLINE | ID: mdl-38806655

ABSTRACT

The endosperm is a reproductive tissue supporting embryo development. In most flowering plants, the initial divisions of endosperm nuclei are not succeeded by cellularization; this process occurs only after a specific number of mitotic cycles have taken place. The timing of cellularization significantly influences seed viability and size. Previous research implicated auxin as a key factor in initiating nuclear divisions and determining the timing of cellularization. Here we uncover the involvement of a family of clustered auxin response factors (cARFs) as dosage-sensitive regulators of endosperm cellularization. cARFs, maternally expressed and paternally silenced, are shown to induce cellularization, thereby restricting seed growth. Our findings align with the predictions of the parental conflict theory, suggesting that cARFs represent major molecular targets in this conflict. We further demonstrate a recurring amplification of cARFs in the Brassicaceae, suggesting an evolutionary response to parental conflict by reinforcing maternal control over endosperm cellularization. Our study highlights that antagonistic parental control on endosperm cellularization converges on auxin biosynthesis and signalling.


Subject(s)
Arabidopsis , Endosperm , Gene Expression Regulation, Plant , Indoleacetic Acids , Endosperm/metabolism , Endosperm/genetics , Indoleacetic Acids/metabolism , Arabidopsis/genetics , Arabidopsis/metabolism , Arabidopsis Proteins/metabolism , Arabidopsis Proteins/genetics , Brassicaceae/genetics , Brassicaceae/metabolism , Brassicaceae/physiology , Plant Growth Regulators/metabolism
13.
Plant Cell ; 36(7): 2512-2530, 2024 Jul 02.
Article in English | MEDLINE | ID: mdl-38635902

ABSTRACT

Cereal grains are an important source of food and feed. To provide comprehensive spatiotemporal information about biological processes in developing seeds of cultivated barley (Hordeum vulgare L. subsp. vulgare), we performed a transcriptomic study of the embryo, endosperm, and seed maternal tissues collected from grains 4-32 days after pollination. Weighted gene co-expression network and motif enrichment analyses identified specific groups of genes and transcription factors (TFs) potentially regulating barley seed tissue development. We defined a set of tissue-specific marker genes and families of TFs for functional studies of the pathways controlling barley grain development. Assessing selected groups of chromatin regulators revealed that epigenetic processes are highly dynamic and likely play a major role during barley endosperm development. The repressive H3K27me3 modification is globally reduced in endosperm tissues and at specific genes related to development and storage compounds. Altogether, this atlas uncovers the complexity of developmentally regulated gene expression in developing barley grains.


Subject(s)
Endosperm , Gene Expression Regulation, Plant , Hordeum , Seeds , Transcriptome , Hordeum/genetics , Hordeum/growth & development , Hordeum/metabolism , Seeds/genetics , Seeds/growth & development , Seeds/metabolism , Transcriptome/genetics , Endosperm/genetics , Endosperm/metabolism , Endosperm/growth & development , Transcription Factors/genetics , Transcription Factors/metabolism , Plant Proteins/genetics , Plant Proteins/metabolism , Gene Expression Profiling , Gene Regulatory Networks , Gene Expression Regulation, Developmental , Epigenesis, Genetic , Histones/metabolism , Histones/genetics
14.
J Genet Genomics ; 51(8): 855-865, 2024 Aug.
Article in English | MEDLINE | ID: mdl-38599515

ABSTRACT

The early development of the endosperm is crucial for balancing the allocation of maternal nutrients to offspring. This process is believed to be evolutionarily associated with genomic imprinting, resulting in parentally biased allelic gene expression. Beyond FertilizationIndependentSeed (FIS) genes, the number of imprinted genes involved in early endosperm development and seed size determination remains limited. This study introduces early endosperm-expressed HAIKU (IKU) downstream Candidate F-box 1 (ICF1) and ICF2 as maternally expressed imprinted genes (MEGs) in Arabidopsis thaliana. Although these genes are also demethylated by DEMETER (DME) in the central cell, their activation differs from the direct DME-mediated activation seen in classical MEGs such as the FIS genes. Instead, ICF maternal alleles carry pre-established hypomethylation in their promoters, priming them for activation by the WRKY10 transcription factor in the endosperm. On the contrary, paternal alleles are predominantly suppressed by CG methylation. Furthermore, we find that ICF genes partially contribute to the small seed size observed in iku mutants. Our discovery reveals a two-step regulatory mechanism that highlights the important role of conventional transcription factors in the activation of imprinted genes, which was previously not fully recognized. Therefore, the mechanism provides a new dimension to understand the transcriptional regulation of imprinting in plant reproduction and development.


Subject(s)
Arabidopsis Proteins , Arabidopsis , DNA Methylation , Endosperm , Gene Expression Regulation, Plant , Genomic Imprinting , Transcription Factors , Endosperm/genetics , Genomic Imprinting/genetics , Arabidopsis/genetics , Transcription Factors/genetics , Transcription Factors/metabolism , Arabidopsis Proteins/genetics , Arabidopsis Proteins/metabolism , Gene Expression Regulation, Plant/genetics , DNA Methylation/genetics , Alleles , Seeds/genetics , Seeds/growth & development , N-Glycosyl Hydrolases , Trans-Activators
15.
New Phytol ; 242(6): 2635-2651, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38634187

ABSTRACT

Endosperm is the main storage organ in cereal grain and determines grain yield and quality. The molecular mechanisms of heat shock proteins in regulating starch biosynthesis and endosperm development remain obscure. Here, we report a rice floury endosperm mutant flo24 that develops abnormal starch grains in the central starchy endosperm cells. Map-based cloning and complementation test showed that FLO24 encodes a heat shock protein HSP101, which is localized in plastids. The mutated protein FLO24T296I dramatically lost its ability to hydrolyze ATP and to rescue the thermotolerance defects of the yeast hsp104 mutant. The flo24 mutant develops more severe floury endosperm when grown under high-temperature conditions than normal conditions. And the FLO24 protein was dramatically induced at high temperature. FLO24 physically interacts with several key enzymes required for starch biosynthesis, including AGPL1, AGPL3 and PHO1. Combined biochemical and genetic evidence suggests that FLO24 acts cooperatively with HSP70cp-2 to regulate starch biosynthesis and endosperm development in rice. Our results reveal that FLO24 acts as an important regulator of endosperm development, which might function in maintaining the activities of enzymes involved in starch biosynthesis in rice.


Subject(s)
Endosperm , Oryza , Plant Proteins , Starch , Adenosine Triphosphate/metabolism , Adenosine Triphosphate/biosynthesis , Endosperm/genetics , Endosperm/growth & development , Endosperm/metabolism , Gene Expression Regulation, Plant , Genetic Complementation Test , Mutation/genetics , Oryza/genetics , Oryza/metabolism , Oryza/growth & development , Plant Proteins/metabolism , Plant Proteins/genetics , Plastids/metabolism , Protein Binding , Starch/biosynthesis , Starch/genetics , Thermotolerance , Transcription Factors
16.
Plant J ; 118(6): 2124-2140, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38551088

ABSTRACT

The basal region of maize (Zea mays) kernels, which includes the pedicel, placenta-chalazal, and basal endosperm transfer layers, serves as the maternal/filial interface for nutrient transfer from the mother plant to the developing seed. However, transcriptome dynamics of this maternal/filial interface remain largely unexplored. To address this gap, we conducted high-temporal-resolution RNA sequencing of the basal and upper kernel regions between 4 and 32 days after pollination and deeply analyzed transcriptome dynamics of the maternal/filial interface. Utilizing 790 specifically and highly expressed genes in the basal region, we performed the gene ontology (GO) term and weighted gene co-expression network analyses. In the early-stage basal region, we identified five MADS-box transcription factors (TFs) as hubs. Their homologs have been demonstrated as pivotal regulators at the maternal/filial interface of rice or Arabidopsis, suggesting their potential roles in maize kernel development. In the filling-stage basal region, numerous GO terms associated with transcriptional regulation and transporters are significantly enriched. Furthermore, we investigated the molecular function of three hub TFs. Through genome-wide DNA affinity purification sequencing combined with promoter transactivation assays, we suggested that these three TFs act as regulators of 10 basal-specific transporter genes involved in the transfer of sugars, amino acids, and ions. This study provides insights into transcriptomic dynamic and regulatory modules of the maternal/filial interface. In the future, genetic investigation of these hub regulators must advance our understanding of maternal/filial interface development and function.


Subject(s)
Gene Expression Regulation, Plant , Plant Proteins , Seeds , Transcriptome , Zea mays , Zea mays/genetics , Zea mays/growth & development , Zea mays/metabolism , Plant Proteins/genetics , Plant Proteins/metabolism , Seeds/genetics , Seeds/growth & development , Seeds/metabolism , Transcription Factors/genetics , Transcription Factors/metabolism , Endosperm/genetics , Endosperm/growth & development , Endosperm/metabolism , Gene Regulatory Networks , Gene Expression Profiling
17.
Plant Physiol ; 195(2): 1365-1381, 2024 May 31.
Article in English | MEDLINE | ID: mdl-38471799

ABSTRACT

Several starch synthesis regulators have been identified, but these regulators are situated in the terminus of the regulatory network. Their upstream regulators and the complex regulatory network formed between these regulators remain largely unknown. A previous study demonstrated that NAM, ATAF, and CUC (NAC) transcription factors, OsNAC20 and OsNAC26 (OsNAC20/26), redundantly and positively regulate the accumulation of storage material in rice (Oryza sativa) endosperm. In this study, we detected OsNAC25 as an upstream regulator and interacting protein of OsNAC20/26. Both OsNAC25 mutation and OE resulted in a chalky seed phenotype, decreased starch content, and reduced expression of starch synthesis-related genes, but the mechanisms were different. In the osnac25 mutant, decreased expression of OsNAC20/26 resulted in reduced starch synthesis; however, in OsNAC25-overexpressing plants, the OsNAC25-OsNAC20/26 complex inhibited OsNAC20/26 binding to the promoter of starch synthesis-related genes. In addition, OsNAC20/26 positively regulated OsNAC25. Therefore, the mutual regulation between OsNAC25 and OsNAC20/26 forms a positive regulatory loop to stimulate the expression of starch synthesis-related genes and meet the great demand for starch accumulation in the grain filling stage. Simultaneously, a negative regulatory loop forms among the 3 proteins to avoid the excessive expression of starch synthesis-related genes. Collectively, our findings demonstrate that both promotion and inhibition mechanisms between OsNAC25 and OsNAC20/26 are essential for maintaining stable expression of starch synthesis-related genes and normal starch accumulation.


Subject(s)
Gene Expression Regulation, Plant , Oryza , Plant Proteins , Starch , Transcription Factors , Oryza/genetics , Oryza/metabolism , Starch/metabolism , Starch/biosynthesis , Plant Proteins/genetics , Plant Proteins/metabolism , Transcription Factors/metabolism , Transcription Factors/genetics , Endosperm/metabolism , Endosperm/genetics
18.
Transgenic Res ; 33(1-2): 47-57, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38451380

ABSTRACT

Cellobiohydrolase II (CBH II) is an exo-glucanase that is part of a fungal mixture of enzymes from a wood-rot fungus, Trichoderma reesei. It is therefore difficult to purify and to establish a specific activity assay. The gene for this enzyme, driven by the rice Os glutelin promoter, was transformed into High II tissue culture competent corn, and the enzyme accumulated in the endosperm of the seed. The transgenic line recovered from tissue culture was bred into male and female elite Stine inbred corn lines, stiff stalk 16083-025 (female) and Lancaster MSO411 (male), for future production in their hybrid. The enzyme increases its accumulation throughout its 6 generations of back crosses, 27-266-fold between T1 and T2, and 2-10-fold between T2 and T3 generations with lesser increases in T4-T6. The germplasm of the inbred lines replaces the tissue culture corn variety germplasm with each generation, with the ultimate goal of producing a high-yielding hybrid with the transgene. The CBH II enzyme was purified from T5 inbred male grain 10-fold to homogeneity with 47.5% recovery. The specific activity was determined to be 1.544 units per µg protein. The corn-derived CBH II works in biopolishing of cotton by removing surface fibers to improve dyeability and increasing glucose from corn flour for increasing ethanol yield from starch-based first-generation processes.


Subject(s)
Cellulase , Trichoderma , Cellulose 1,4-beta-Cellobiosidase/genetics , Cellulose 1,4-beta-Cellobiosidase/metabolism , Zea mays/genetics , Zea mays/metabolism , Endosperm/genetics , Endosperm/metabolism , Trichoderma/genetics , Trichoderma/metabolism , Plant Breeding , Cellulase/genetics
19.
J Mol Graph Model ; 129: 108761, 2024 06.
Article in English | MEDLINE | ID: mdl-38552302

ABSTRACT

ADP-glucose pyrophosphorylase plays a pivotal role as an allosteric enzyme, essential for starch biosynthesis in plants. The higher plant AGPase comparises of a pair of large and a pair of small subunits to form a heterotetrameric complex. Growing evidence indicates that each subunit plays a distinct role in regulating the underlying mechanism of starch biosynthesis. In the rice genome, there are four large subunit genes (OsL1-L4) and three small subunit genes (OsS1, OsS2a, and OsS2b). While the structural assembly of cytosolic rice AGPase subunits (OsL2:OsS2b) has been elucidated, there is currently no such documented research available for plastidial rice AGPases (OsL1:OsS1). In this study, we employed protein modeling and MD simulation approaches to gain insights into the structural association of plastidial rice AGPase subunits. Our results demonstrate that the heterotetrameric association of OsL1:OsS1 is very similar to that of cytosolic OsL2:OsS2b and potato AGPase heterotetramer (StLS:StSS). Moreover, the yeast-two-hybrid results on OsL1:OsS1, which resemble StLS:StSS, suggest a differential protein assembly for OsL2:OsS2b. Thus, the regulatory and catalytic mechanisms for plastidial AGPases (OsL1:OsS1) could be different in rice culm and developing endosperm compared to those of OsL2:OsS2b, which are predominantly found in rice endosperm.


Subject(s)
Oryza , Glucose-1-Phosphate Adenylyltransferase/genetics , Glucose-1-Phosphate Adenylyltransferase/chemistry , Glucose-1-Phosphate Adenylyltransferase/metabolism , Oryza/genetics , Endosperm/genetics , Endosperm/metabolism , Computer Simulation , Starch/metabolism , Protein Subunits/metabolism
20.
Proc Natl Acad Sci U S A ; 121(14): e2321612121, 2024 Apr 02.
Article in English | MEDLINE | ID: mdl-38530890

ABSTRACT

To preserve germination ability, plant seeds must be protected from environmental stresses during the storage period. Here, we demonstrate that autophagy, an intracellular degradation system, maintains seed germination ability in Arabidopsis thaliana. The germination ability of long-term (>5 years) stored dry seeds of autophagy-defective (atg) mutant and wild-type (WT) plants was compared. Long-term stored (old) seeds of atg mutants showed lower germination ability than WT seeds, although short-term stored (new) seeds of atg mutants did not show such a phenotype. After removal of the seed coat and endosperm from old atg mutant seeds, the embryos developed into seedlings. Autophagic flux was maintained in endosperm cells during the storage period, and autophagy defect resulted in the accumulation of oxidized proteins and accelerated endosperm cell death. Consistent with these findings, the transcripts of genes, ENDO-ß-MANNANASE 7 and EXPANSIN 2, which are responsible for degradation/remodeling of the endosperm cell wall during germination, were reduced in old atg mutant seeds. We conclude that autophagy maintains endosperm quality during seed storage by suppressing aging-dependent oxidative damage and cell death, which allows the endosperm to perform optimal functions during germination, i.e., cell wall degradation/remodeling, even after long-term storage.


Subject(s)
Arabidopsis Proteins , Arabidopsis , Arabidopsis/genetics , Endosperm/genetics , Germination/physiology , Seeds/genetics , Arabidopsis Proteins/metabolism , Autophagy , Gene Expression Regulation, Plant
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