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Characterization of cis-prenyltransferase complexes in guayule (Parthenium argentatum), an alternative natural rubber-producing plant

Guayule (Parthenium argentatum) is a perennial shrub in the Asteraceae family and synthesizes a high quality, hypoallergenic cis-1,4-polyisoprene (or natural rubber; NR). Despite its potential to be an alternative NR supplier, the enzymes for cis-polyisoprene biosynthesis have not been comprehensively studied in guayule. Recently, implications of the protein complex involving cis-prenyltransferases (CPTs) and CPT-binding proteins (CBPs) in NR biosynthesis were shown in lettuce and dandelion, but such protein complexes have yet to be examined in guayule. Here we identified four guayule genes - three PaCPTs (PaCPT1-3) and one PaCBP, whose protein products form PaCPT/PaCBP complexes. Co-expression of both PaCBP and each of the PaCPTs could complemented the dolichol (a short cis-polyisoprene)-deficient yeast, whereas the individual expressions could not. Microsomes from the PaCPT/PaCBP-expressing yeast efficiently incorporated 14C-isopentenyl diphosphate into dehydrodolichyl diphosphates. Furthermore, co-immunoprecipitation and split-ubiquitin yeast 2-hybrid assays using PaCPTs and PaCBP confirmed the formation of protein complexes. Of the three PaCPTs, transcriptomics analysis indicated that the protein complex formed by PaCPT3 and PaCBP is likely to be the key component in guayule NR biosynthesis. The comprehensive analyses of these PaCPTs and PaCBP here provide the foundational knowledge to generate a high NR-yielding guayule.

plant biology

KATANIN-dependent mechanical properties of the stigmatic cell wall regulate pollen tube pathfinding

Successful fertilization in angiosperms depends on the proper trajectory of pollen tubes through the pistil tissues to reach the ovules. Pollen tubes first grow within the cell wall of the papilla cells, applying pressure to the cell. Mechanical forces are known to play a major role in plant cell shape by controlling the orientation of cortical microtubules (CMTs), which in turn mediate deposition of cellulose microfibrils (CMFs). Here, by combining cell imaging and genetic approaches, we show that isotropic reorientation of CMTs and CMFs in aged and katanin1-5 (ktn1-5) papilla cells is accompanied by a tendency of pollen tubes to coil around the papillae. Furthermore, we uncover that aged and ktn1-5 papilla cells have a softer cell wall and provide less resistance to pollen tube growth. Our results reveal an unexpected role for KTN1 in pollen tube guidance by ensuring mechanical anisotropy of the papilla cell wall.

plant biology

An automated, high-throughput image analysis pipeline enables genetic studies of shoot and root morphology in carrot (Daucus carota L.)

Carrot is a globally important crop, yet efficient and accurate methods for quantifying its most important agronomic traits are lacking. To address this problem, we developed an automated analysis platform that extracts components of size and shape for carrot shoots and roots, which are necessary to advance carrot breeding and genetics. This method reliably measured variation in shoot size and shape, leaf number, petiole length, and petiole width as evidenced by high correlations with hundreds of manual measurements. Similarly, root length and biomass were accurately measured from the images. This platform quantified shoot and root shapes in terms of principal components, which do not have traditional, manually-measurable equivalents. We applied the pipeline in a study of a six-parent diallel population and an F2 mapping population consisting of 316 individuals. We found high levels of repeatability within a growing environment, with low to moderate repeatability across environments. We also observed co-localization of quantitative trait loci for shoot and root characteristics on chromosomes 1, 2, and 7, suggesting these traits are controlled by genetic linkage and/or pleiotropy. By increasing the number of individuals and phenotypes that can be reliably quantified, the development of a high-throughput image analysis pipeline to measure carrot shoot and root morphology will expand the scope and scale of breeding and genetic studies.

plant biology

The RopGEF KARAPPO is Essential for the Initiation of Vegetative Reproduction in Marchantia

Many plants can reproduce vegetatively, producing clonal progeny from vegetative cells; however, little is known about the molecular mechanisms underlying this process. Liverwort (Marchantia polymorpha), a basal land plant, propagates asexually via gemmae, which are clonal plantlets formed in gemma cups on the dorsal side of the vegetative thallus [1]. The initial stage of gemma development involves elongation and asymmetric divisions of a specific type of epidermal cell, called a gemma initial, which forms on the floor of the gemma cup [2, 3]. To investigate the regulatory mechanism underlying gemma development, we focused on two allelic mutants in which no gemma initial formed; these mutants were named karappo, meaning \"empty\". We used whole-genome sequencing of both mutants, and molecular genetic analyses to identify the causal gene, KARAPPO (KAR), which encodes a Rop guanine nucleotide exchange factor (RopGEF) carrying a PRONE catalytic domain. In vitro GEF assays showed that the full-length KAR protein and the PRONE domain have significant GEF activity toward MpRop, the only Rop GTPase in M. polymorpha. Moreover, genetic complementation experiments showed a significant role for the N- and C-terminal variable regions in gemma development. Our investigation demonstrated an essential role for KAR/RopGEF in the initiation of plantlet development from a differentiated cell, which may involve cell polarity formation and subsequent asymmetric cell division via activation of Rop signaling, implying a similar developmental mechanism in vegetative reproduction of various land plants.

plant biology

Development of plant regeneration and Agrobacterium tumefaciens-mediated transformation methodology for Physalis pruinosa

Physalis pruinosa, also known as groundcherry, produces a small, yellow, highly nutritious edible fruit that is enveloped by a papery husk. In order for the potential of large-scale production of P. pruinosa fruit to be realized, undesirable characteristics, such as an unmanageable, sprawling growth habit and extensive fruit drop, need to be improved by exploiting approaches available through plant breeding, genetic engineering, and gene editing. In this study, we established plant regeneration and Agrobacterium tumefaciens-mediated methods to allow application of genetic engineering and gene editing of P. pruinosa. Cotyledon and hypocotyl explants from 7 - 8-day-old in vitro-grown seedlings were assessed for plant regeneration. Explants were cultured for 2 weeks on a Murashige and Skoog salts-based medium that contained 2 mg/L zeatin followed by transfer to medium containing 1 mg/L zeatin. Only hypocotyl explants regenerated shoots. Hypocotyl explants were infected with Agrobacterium tumefaciens strain AGL1 containing the pJL33 binary vector that has the green fluorescent protein (GFP) reporter and neomycin phosphotransferase II (nptII) selectable marker genes. After cocultivation, explants were cultured on selective plant regeneration medium that contained 50, 100, 200, 250, and 300 mg/L kanamycin to determine the most effective level for efficient recovery of transgenic lines. Based on rooting of regenerated shoots on selective medium, GFP visualization, and PCR analysis for the presence of the nptII gene, medium containing 200 mg/L kanamycin resulted in the highest transformation efficiency at 24%. This study sets the foundation for future genetic engineering and gene editing approaches for improvement of P. pruinosa.

plant biology

Biochemical mechanisms driving rapid fluxes in C4 photosynthesis

Biochemical mechanisms driving rapid fluxes in C4 photosynthesis Biochemical mechanisms driving... Modeling Plant growth RNA-seq Enzyme measurements Quantum yield measurements Data availability Material and Methods References Sufficient flux through pathways is critical to their function within the metabolic network. A high flux cycle called C4 photosynthesis evolved in some plants to combat the slow speed and low specificity of the plants carbon fixation enzyme Rubisco1. In these plants, flux through the C4 photosynthetic cycle eclipses flux through Rubisco making it the highest flux in planta2,3. Engineering efforts are underway ...

plant biology

Molecular bases for the constitutive photomorphogenic phenotypes in Arabidopsis

Summary statementStrikingly similar morphological and gene expression phenotypes among cop1, spaQ and pifQ mutants suggest that the cop phenotype of the cop1 and spaQ mutants might be due in part to a reduced level of PIFs\n\nAbstractThe transition from skotomorphogenesis to photomorphogenesis is regulated in part by COP1/SPA complex and PIFs in Arabidopsis. The constitutive photomorphogenic (cop) phenotypes of the cop1 and spaQ mutants were shown to be due to a high abundance of the positively acting transcription factors. Here we show that the four major PIF proteins are unstable in cop1 mutant, and an overexpression of P1F1, P1F3, P1F4 and P1F5 suppresses the cop1 phenotypes in the dark. A comparison of the transcriptome data among cop1, spaQ and pifQ reveals remarkably overlapping gene expression profiles with a preferential regulation of the PIF direct target genes. Additionally, HFR1 strongly inhibits the in vivo binding and transcriptional activation activity of PIF1 in the dark. Taken together, these data suggest that the cop phenotypes of the cop1 and spaQ mutants might be due to a combination of the reduced level of PIFs, increased level of the positive factors (e.g., HY5/HFR1 and others), and the HFR1-mediated inhibition of PIF targeted gene expression in the dark.

plant biology

The genetics and genome-wide screening of perennialism loci in Zea diploperennis

Perennialism is common among the higher plants, yet we know little about its inheritance. To address this, six hybrids were made by reciprocally crossing perennial Zea diploperennis Iltis, Doebley & R. Guzman with three varieties/inbred lines of annual maize (Z. mays L. spp. mays). We specifically focused on the plants ability to regrow after flowering and senescence. All the F1 plants demonstrated senescence and regrowth for several cycles, indicating a dominant effect of the Z. diploperennis alleles. The regrowth ability was stably transmitted to progeny of the hybrids in segregation ratios that suggested the trait was controlled by two dominant, complementary loci. Genome-wide screening with genotyping-by-sequencing (GBS) identified two major regrowth loci reg1 and reg2 on chromosomes 2 and 7, respectively. GBS results were validated using a larger F2 population and PCR markers derived from the single nucleotide polymorphisms within the locus intervals. These markers will be employed to select near-isogenic lines for the two loci and to identify candidate genes in the loci in Z. diploperennis.\n\nSignificance StatementOur study contributes to our general understanding of inheritance of perennialism in the higher plants. Previous genetic studies of the perennialism in Zea have yielded contradictory results. We take a reductionist approach by specifically focusing on the plants ability to regenerate new shoots after senescence without regard to associated traits, such as rhizome formation, tillering or environmental impacts. Using this criterion, inheritance of perennialism in Zea appears to be dominantly and qualitatively inherited. Importantly, our data indicate that there is no major barrier to transferring this trait into maize or other grass crops for perennial crop development, which enhances sustainability of grain crop production in an environmentally friendly way.

plant biology

Maize EHD1 is Required for Kernel Development and Vegetative Growth through Regulating Auxin Homeostasis

The roles of EHDs in clathrin-mediated endocytosis (CME) in plants are poorly understood. Here, we isolated a maize mutant, designated as ehd1, which showed defects in kernel development and vegetative growth. Positional cloning and transgenic analysis revealed that ehd1 encodes an EHD protein. Internalization of the endocytic tracer FM4-64 was significantly reduced in ehd1 mutant and ZmEHD1 knock-out mutants. We further demonstrated that ZmEHD1 and ZmAP2 {sigma} subunit physically interact in the plasma membranes. Cellular IAA levels were significantly lower in ehd1 mutant than in wild-type maize. Auxin distribution and ZmPIN1a-YFP localization were altered in ehd1 mutant. Exogenous application of 1-NAA but not GA3 rescued the seed germination and seedling emergency phenotypic defects of ehd1 mutants. Taken together, these results indicate that ZmEHD1 regulates auxin homeostasis by mediating CME through its interaction with the ZmAP2 {sigma} subunit, which is crucial for kernel development and vegetative growth of maize.

plant biology

Transcriptomic response in symptomless roots of clubroot infected kohlrabi mirrors resistant plants

BackgroundClubroot disease caused by Plasmodiophora brassicae (Phytomyxea, Rhizaria) is one of the economically most important diseases of Brassica crops. The formation of hypertrophied roots accompanied by altered metabolism and hormone homeostasis is typical for infected plants. Not all roots of infected plants show the same phenotypic changes. While some roots remain uninfected, others develop galls of diverse size. The aim of this study was to analyse and compare the intra-plant heterogeneity of P. brassicae root galls and symptomless roots of the same host plants (Brassica oleracea var. gongylodes) collected from a commercial field in Austria using transcriptome analyses.\n\nResultsTranscriptomes were markedly different between symptomless roots and gall tissue. Symptomless roots showed transcriptomic traits previously described for resistant plants. Genes involved in host cell wall synthesis and reinforcement were up-regulated in symptomless roots indicating elevated tolerance against P. brassicae. By contrast, genes involved in cell wall degradation and modification processes like expansion were up-regulated in root galls. Hormone metabolism differed between symptomless roots and galls. Brassinosteroid-synthesis was down-regulated in root galls, whereas jasmonic acid synthesis was down-regulated in symptomless roots. Cytokinin metabolism and signalling were up-regulated in symptomless roots with the exception of one CKX6 homolog, which was strongly down-regulated. Salicylic acid (SA) mediated defence response was up-regulated in symptomless roots, compared with root gall tissue. This is probably caused by a secreted benzoic acid salicylic acid methyl transferase from the pathogen (PbBSMT), which was one of the highest expressed pathogen genes in gall tissue. The PbBSMT derived Methyl-SA potentially leads to increased pathogen tolerance in uninfected roots.\n\nConclusionsInfected and uninfected roots of clubroot infected plants showed transcriptomic differences similar to those previously described between clubroot resistant and susceptible hosts. The here described intra-plant heterogeneity suggests, that for a better understanding of clubroot disease targeted, spatial analyses of clubroot infected plants will be vital in understanding this economically important disease.

plant biology

Key to identification of starch grains used as foods

The description of starch grains is important in different areas, such as bromatological, taxonomic, or archaeobotanic analyzes, among others. Although there are data on the microscopic description of starches used as foods, this work has proposed the development of a key to identify the starch grains in 13 raw materials obtained in specialized stores, markets and fairs to facilitate its identification. For optical microscopy, the material was deposited on a slide, being sealed with a coverslip in 50% glycerin. The samples were also mounted on double-sided tape and colloidal graphite on aluminum stubs and analyzed in scanning electron microscopy (SEM). Therefore, an unpublished starch identification key is proposed, together with the update of important data for its morphological description.

plant biology

Functional dissection of the ARGONAUTE7 promoter

ARGONAUTES are the central effector proteins of RNA silencing which bind target transcripts in a small RNA-guided manner. Arabidopsis thaliana has ten ARGONAUTE (AGO) genes, with specialized roles in RNA-directed DNA methylation, post-transcriptional gene silencing, and antiviral defense. To better understand specialization among AGO genes at the level of transcriptional regulation we tested a library of 1497 transcription factors for binding to the promoters of AGO1, AGO10, and AGO7 using yeast 1-hybrid assays. A ranked list of candidate DNA-binding TFs revealed binding of the AGO7 promoter by a number of proteins in two families: the miR156-regulated SPL family and the miR319-regulated TCP family, both of which have roles in developmental timing and leaf morphology. Possible functions for SPL and TCP binding are unclear: we showed that these binding sites are not required for the polar expression pattern of AGO7, nor for the function of AGO7 in leaf shape. Normal AGO7 transcription levels and function appear to depend instead on an adjacent 124-bp region. Progress in understanding the structure of this promoter may aid efforts to understand how the conserved AGO7-triggered TAS3 pathway functions in timing and polarity.

plant biology

The SUMO conjugation complex self-assembles into nuclear bodies independent of SIZ1 and COP1

One sentence SummarySUMO conjugation activity causes formation of SUMO nuclear bodies, which strongly overlap with COP1 bodies thanks to a substrate-binding (VP) motif in the E3 ligase SIZ1 that acts as bridge protein.\n\nAbstractAttachment of the small ubiquitin-like modifier SUMO to substrate proteins modulates their turnover, activity or interaction partners. An unresolved question is how this SUMO conjugation activity concentrates the enzymes involved and the substrates into uncharacterized nuclear bodies (NBs). We here define the requirements for the formation of SUMO NBs and for their subsequent co-localisation with the master regulator of growth, the E3 ubiquitin ligase COP1. COP1 activity results in degradation of transcription factors, which primes the transcriptional response that underlies elongation growth induced by night-time and high ambient temperatures (skoto- and thermomorphogenesis, respectively). SUMO conjugation activity itself is sufficient to target the SUMO machinery into NBs. Co-localization of these bodies with COP1 requires besides SUMO conjugation activity, a SUMO acceptor site in COP1 and the SUMO E3 ligase SIZ1. We find that SIZ1 docks in the substrate-binding pocket of COP1 via two VP motifs - a known peptide motif of COP1 substrates. The data reveal that SIZ1 physically connects COP1 and SUMO conjugation activity in the same NBs that can also contain the blue-light receptors CRY1 and CRY2. Our findings thus suggest that sumoylation apparently coordinates COP1 activity inside these NBs; a mechanism that potentially explains how SIZ1 and SUMO both control the timing and amplitude of the high-temperature growth response. The strong co-localization of COP1 and SUMO in these NBs might also explain why many COP1 substrates are sumoylated.\n\nFunding informationThe Netherlands Scientific Organisation (ALW-VIDI grant 864.10.004 to HvdB) and the Topsector T&U program Better Plants for Demands (grant 1409-036 to HvdB), including the partnering breeding companies, supported this work; FM is financially supported by Keygene N.V. (The Netherlands).

plant biology

Optimized Cas9 expression systems for highly efficient Arabidopsis genome editing facilitate isolation of complex alleles in a single generation

Genetic resources for the model plant Arabidopsis comprise mutant lines defective in almost any single gene in reference accession Columbia. However, gene redundancy and/or close linkage often render it extremely laborious or even impossible to isolate a desired line lacking a specific function or set of genes from segregating populations. Therefore, we here evaluated strategies and efficiencies for the inactivation of multiple genes by Cas9-based nucleases and multiplexing. In first attempts, we succeeded in isolating a mutant line carrying a 70 kb deletion, which occurred at a frequency of ~1.6% in the T2 generation, through PCR-based screening of numerous individuals. However, we failed to isolate a line lacking Lhcb1 genes, which are present in five copies organized at two loci in the Arabidopsis genome. To improve efficiency of our Cas9-based nuclease system, regulatory sequences controlling Cas9 expression levels and timing were systematically compared. Indeed, use of DD45 and RPS5a promoters improved efficiency of our genome editing system by approximately 25-30-fold in comparison to the previous ubiquitin promoter. Using an optimized genome editing system with RPS5a promoter-driven Cas9, putatively quintuple mutant lines lacking detectable amounts of Lhcb1 protein represented approximately 30% of T1 transformants. These results show how improved genome editing systems facilitate the isolation of complex mutant alleles, previously considered impossible to generate, at high frequency even in a single (T1) generation.

plant biology

Dual RNA-seq reveals large-scale non-conserved genotype x genotype specific genetic reprograming and molecular crosstalk in the mycorrhizal symbiosis

Arbuscular mycorrhizal fungi (AMF) impact plant growth and are a major driver of plant diversity and productivity. We quantified the contribution of intra-specific genetic variability in cassava (Manihot esculenta) and Rhizophagus irregularis to gene reprogramming in symbioses using dual RNA-sequencing. A large number of cassava genes exhibited altered transcriptional responses to the fungus but transcription of most of these plant genes (72%) responded in a different direction or magnitude depending on the plant genotype. Two AMF isolates displayed large differences in their transcription, but the direction and magnitude of the transcriptional responses for a large number of these genes was also strongly influenced by the genotype of the plant host. This indicates that unlike the highly conserved plant genes necessary for the symbiosis establishment, plant and fungal gene transcriptional responses are not conserved and are greatly influenced by plant and fungal genetic differences, even at the within-species level. The transcriptional variability detected allowed us to identify an extensive gene network showing the interplay in plant-fungal reprogramming in the symbiosis. Key genes illustrated that the two organisms jointly program their cytoskeleton organisation during growth of the fungus inside roots. Our study reveals that plant and fungal genetic variation plays a strong role in shaping the genetic reprograming in response to symbiosis, indicating considerable genotype x genotype interactions in the mycorrhizal symbiosis. Such variation needs to be considered in order to understand the molecular mechanisms between AMF and their plant hosts in natural communities.

plant biology

Maize YABBY drooping leaf genes regulate floret development and floral meristem determinacy

Floret units in cereals produce grain, directly impacting yield. Here we report mutations in the maize CRABS CLAW (CRC) co-orthologs drooping leaf1 (drl1) and drl2 alter the development of ear and tassel florets. Pistillate florets of drl1 ears appear sterile and display ectopic unfused carpels that fail to enclose an expanded nucellus. Staminate florets of drl1 tassels have extra stamens and retain fertile anthers. Natural variation and transposon alleles of drl2 enhance drl1 floret phenotypes by reducing floral meristem (FM) determinacy. The drl paralogs are co-expressed in lateral floral organ primordia, but not within the FM. Together, the expression patterns and indeterminate mutant FMs suggest that the drl genes regulate FM activity and impose meristem determinacy by a non-cell autonomous signal. Genetic interaction analyses of drl mutants with maize floral mutants indicate that the drl genes are required throughout floret development, illustrating their importance for proper floret patterning in maize.

plant biology

Transcriptome Analysis of Distinct Cold Tolerance Strategies in the Rubber Tree (Hevea brasiliensis)

Natural rubber is an indispensable commodity used in approximately 40,000 products and is fundamental to the tire industry. Among the species that produce latex, the rubber tree [Hevea brasiliensis (Willd. ex Adr. de Juss.) Muell-Arg.], a species native to the Amazon rainforest, is the major producer of latex used worldwide. The Amazon Basin presents optimal conditions for rubber tree growth, but the occurrence of South American leaf blight, which is caused by the fungus Microcyclus ulei (P. Henn) v. Arx, limits rubber tree production. Currently, rubber tree plantations are located in scape regions that exhibit suboptimal conditions such as high winds and cold temperatures. Rubber tree breeding programs aim to identify clones that are adapted to these stress conditions. However, rubber tree breeding is time-consuming, taking more than 20 years to develop a new variety. It is also expensive and requires large field areas. Thus, genetic studies could optimize field evaluations, thereby reducing the time and area required for these experiments. Transcriptome sequencing using next-generation sequencing (RNA-seq) is a powerful tool to identify a full set of transcripts and for evaluating gene expression in model and non-model species. In this study, we constructed a comprehensive transcriptome to evaluate the cold response strategies of the RRIM600 (cold-resistant) and GT1 (cold-tolerant) genotypes. Furthermore, we identified putative microsatellite (SSR) and single-nucleotide polymorphism (SNP) markers. Alternative splicing, which is an important mechanism for plant adaptation under abiotic stress, was further identified, providing an important database for further studies of cold tolerance.

plant biology

The fungal root endophyte Serendipita indica modifies extracellular nucleotides to subvert plant immunity

One sentence abstractImmune modulation by metabolites in plant fungus interaction\n\nAbstractExtracellular adenosine 5'-triphosphate (eATP) is an essential signaling molecule that mediates different cellular processes through its interaction with membrane-associated receptor proteins in animals and plants. eATP regulates plant growth, development and responses to biotic and abiotic stresses. Its accumulation in the apoplast induces ROS production and cytoplasmic calcium increase mediating a defense response to invading microbes. We demonstrate that perception of eATP is important in plant-fungus interaction and that during colonization by the beneficial root endophyte Serendipita indica accumulation of eATP in the apoplast occurs at early symbiotic stages. We show by liquid chromatography-tandem mass spectrometry, cytological and functional analysis that S. indica subvert eATP host response by secreting SiE5NT, an enzymatically active ecto-5'nucleotidase capable of hydrolyzing eATP to adenosine. A. thaliana lines producing extracellular SiE5NT are signi?cantly better colonized and have reduced eATP levels and defense signaling, indicating that SiE5NT functions as a compatibility factor. Our data show that extracellular bioactive nucleotides play an important role in fungus-root interactions and that fungi can modify plant derived metabolites in the apoplast to modulate host immunity.

plant biology