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Two tobacco proline dehydrogenases are differentially regulated and play a role in early plant development.

Proline dehydrogenase is the rate-limiting enzyme in proline degradation and serves important functions in the stress responses and development of plants. We isolated two tobacco proline dehydrogenases, NtPDH1 and NtPDH2, in the course of screening for genes upregulated in stressed tobacco (Nicotiana tabacum) microspores. Expression analysis revealed that the two genes are differentially regulated. Under unstressed conditions, their steady-state transcript levels were similar in mature pollen and apical meristems, whereas NtPDH2 was expressed predominantly in vegetative organs, styles, and ovules. The expression of NtPDH1 was maintained at a constant low level during 24 h of dehydration, whereas NtPDH2 was upregulated within 1 h after the onset of stress and subsequently downregulated to undetectable levels. Differential and sustained expression was also found for the two enzymatic isoforms of Arabidopsis thaliana AtPDH. Silencing of the NtPDH genes by RNA interference using the CaMV 35S promoter led to increased proline contents, decreased seed set, delayed seed germination and retarded seedling development pointing towards an important function of at least one of the two NtPDH genes during plant reproductive development.

Amino Acid Sequence↗

Posttranscriptional control of plant development.

Genetic studies have provided increasing evidence that proteins involved in all aspects of RNA metabolism, such as RNA processing, transport, stability, and translation, are required for plant development and for plants' responses to the environment. Such proteins act in floral transition, floral patterning, and signaling by abscisic acid, low temperature and circadian rhythms. Although some of these proteins belong to core RNA metabolic machineries, others may have more specialized cellular functions. Despite the limited knowledge of the underlying molecular mechanisms, posttranscriptional regulation is known to play a key role in the control of plant development.

Flowers↗

Signs of change: hormone receptors that regulate plant development.

Hormonal signalling plays a pivotal role in almost every aspect of plant development, and of high priority has been to identify the receptors that perceive these hormones. In the past seven months, the receptors for the plant hormones auxin, gibberellins and abscisic acid have been identified. These join the receptors that have previously been identified for ethylene, brassinosteroids and cytokinins. This review therefore comes at an exciting time for plant developmental biology, as the new findings shed light on our current understanding of the structure and function of the various hormone receptors, their related signalling pathways and their role in regulating plant development.

Models, Biological↗

Remembrance of things past: chromatin remodeling in plant development.

Chromatin remodeling in plants has usually been discussed in relation to aspects of genome defense such as transgene silencing and the resetting of transposon activity. The role of remodeling in controlling development has been less emphasized, although well established in animal systems. This is because cell fate in plants is often held to be entirely specified on the basis of position, apparently excluding any significant role for cell ancestry and chromatin remodeling. We argue that chromatin remodeling is used to confer mitotically heritable cell fates at late stages in pattern formation. Several examples in which chromatin remodeling factors are used to confer a memory of transient events in plant development are discussed. Because the precise biochemical functions of most remodeling factors are obscure, and little is known of plant chromatin structure, the underlying mechanisms remain poorly understood.

Cell Differentiation↗

miSSING LINKS: miRNAs and plant development.

The discovery of hundreds of plant micro RNAs (miRNAs) has triggered much speculation about their potential roles in plant development. The search for plant genes involved in miRNA processing has revealed common factors such as DICER, and new molecules, including HEN1. Progress is also being made toward identifying miRNA target genes and understanding the mechanisms of miRNA-mediated gene regulation in plants. This work has lead to a reexamination of many previously characterized mutations that are now known to affect components or targets of miRNA-mediated pathways.

Arabidopsis Proteins↗

Cell cycle regulation in plant development.

Cell cycle regulation is of pivotal importance for plant growth and development. Although plant cell division shares basic mechanisms with all eukaryotes, plants have evolved novel molecules orchestrating the cell cycle. Some regulatory proteins, such as cyclins and inhibitors of cyclin-dependent kinases, are particularly numerous in plants, possibly reflecting the remarkable ability of plants to modulate their postembryonic development. Many plant cells also can continue DNA replication in the absence of mitosis, a process known as endoreduplication, causing polyploidy. Here, we review the molecular mechanisms that regulate cell division and endoreduplication and we discuss our understanding, albeit very limited, on how the cell cycle is integrated with plant development.

Arabidopsis Proteins↗

Plant development makes strides in Vermont.

Plants are an excellent system for studying developmental biology. Depending on the species, they can be easily transformed and mutagenized, undergo grafts, tolerate changes in chromosome number, and provide fertile offspring after wide species crosses. Most importantly, they are perpetually embryonic, and thus development unfolds throughout the life of a plant. At a recent FASEB meeting, scientists shared their discoveries about plant development, covering topics that ranged from the evolution of form to cellular differentiation. The meeting demonstrated that the genetic and cellular basis of plant development is currently an exciting and growing field of research.

Cell Differentiation↗

Epigenetic control of plant development: new layers of complexity.

Important aspects of plant development are under epigenetic control, that is, under the control of heritable changes in gene expression that are not associated with alterations in DNA sequence. It is becoming clear that RNA molecules play a key role in epigenetic gene regulation by providing sequence specificity for the targeting of developmentally important genes. RNA-based control of gene expression can be exerted posttranscriptionally by interfering with transcript stability or translation. Moreover, RNA molecules also appear to direct developmentally relevant gene regulation at the transcriptional level by modifying chromatin structure and/or DNA methylation.

Base Sequence↗

The central role of PhEIN2 in ethylene responses throughout plant development in petunia.

The plant hormone ethylene regulates many aspects of growth and development. Loss-of-function mutations in ETHYLENE INSENSITIVE2 (EIN2) result in ethylene insensitivity in Arabidopsis, indicating an essential role of EIN2 in ethylene signaling. However, little is known about the role of EIN2 in species other than Arabidopsis. To gain a better understanding of EIN2, a petunia (Petunia x hybrida cv Mitchell Diploid [MD]) homolog of the Arabidopsis EIN2 gene (PhEIN2) was isolated, and the role of PhEIN2 was analyzed in a wide range of plant responses to ethylene, many that do not occur in Arabidopsis. PhEIN2 mRNA was present at varying levels in tissues examined, and the PhEIN2 expression decreased after ethylene treatment in petals. These results indicate that expression of PhEIN2 mRNA is spatially and temporally regulated in petunia during plant development. Transgenic petunia plants with reduced PhEIN2 expression were compared to wild-type MD and ethylene-insensitive petunia plants expressing the Arabidopsis etr1-1 gene for several physiological processes. Both PhEIN2 and etr1-1 transgenic plants exhibited significant delays in flower senescence and fruit ripening, inhibited adventitious root and seedling root hair formation, premature death, and increased hypocotyl length in seedling ethylene response assays compared to MD. Moderate or strong levels of reduction in ethylene sensitivity were achieved with expression of both etr1-1 and PhEIN2 transgenes, as measured by downstream expression of PhEIL1. These results demonstrate that PhEIN2 mediates ethylene signals in a wide range of physiological processes and also indicate the central role of EIN2 in ethylene signal transduction.

Amino Acid Sequence↗

Cell lineage in plant development.

Lineage analyses in several plant species demonstrate that meristematic cells proliferate in a predictable manner to form the differentiated tissues of the mature shoot system. These studies also demonstrate, however, that the fates of meristematic cells are not absolutely dependent on their lineage. This variability indicates that interactions between cells must play a role in morphogenesis.

Cell Differentiation↗

Transcriptional regulation of Arabidopsis thaliana phytochelatin synthase (AtPCS1) by cadmium during early stages of plant development.

Transcriptional regulation of Arabidopsis thaliana (L.) Heynh. phytochelatin synthase (AtPCS1) by cadmium (Cd) was analyzed at various stages of plant development using transgenic Arabidopsis and wild-type plants. Histochemical analysis of beta-glucuronidase (GUS) activity in transgenic lines carrying a uidA gene driven by a 2.0-kb AtPCS1 promoter revealed higher GUS activities in 5-day-old seedlings subjected to 50 microM Cd treatment for 5 days, beginning at seed germination, than in non-treated plants. This high level of GUS activity gradually decreased as plants continued their growth until no differences were observed between Cd-treated and non-treated transgenic plants. The observed GUS activity due to Cd treatment during the early stage of plant development corresponded with induction of AtPCS1 mRNA as confirmed by RNA blot analysis of wild-type Arabidopsis. The steady-state level of AtPCS1 mRNA increased by 2-fold in 5-day-old Cd-treated wild-type Arabidopsis compared to non-treated seedlings. Moreover, AtPCS1 protein levels increased following Cd treatment as observed in western blot analysis of transgenic Arabidopsis lines carrying a C-terminal FLAG-tagged AtPCS1 genomic DNA driven by a 2.0-kb AtPCS1 promoter. The transcriptional regulation of AtPCS1 by Cd during the early stage of seedling development seemed to be correlated with a higher Cd sensitivity in cad2, an Arabidopsis mutant deficient in phytochelatin synthesis, during early stages of plant development. This was supported by our finding that Cd sensitivity in cad2 was reduced as plants continued their growth, and was comparable to that of wild-type plants.

Aminoacyltransferases↗

Effects of host plant development and genetic determinants on the long-distance movement of cauliflower mosaic virus in Arabidopsis.

During systemic infections, viruses move long distances through the plant vascular system. The long-distance movement of cauliflower mosaic virus (CaMV) in Arabidopsis has been examined using a whole plant in situ hybridization technique called plant skeleton hybridization. CaMV moves long distance through the phloem largely following the flow of photoassimilates from source to sink leaves. During the course of plant development, sink-source relationships change and the region of the plant that CaMV can invade is progressively reduced. In Arabidopsis, we have found that conditions that influence the rate of plant development dramatically impact the long-distance movement of CaMV, because under normal conditions the rate of plant development is closely matched to the kinetics of virus movement. Ecotypes and mutants of Arabidopsis that flower early show a form of resistance to systemic CaMV infection, which we call "developmental resistance." Developmental resistance results from the fact that the rosette leaves mature early in the life of an early flowering plant and become inaccessible to virus. On the other hand, if the development of early flowering plants is retarded by suboptimal growth conditions, inoculated plants appear more susceptible to the virus and systemic infections become more widespread. We have found that other Arabidopsis ecotypes, such as Enkheim-2 (En-2), show another form of resistance to virus movement that is not based on developmental or growth conditions. The virus resistance in ecotype En-2 is largely conditioned by a dominant trait at a single locus.

Arabidopsis↗

From phenotypic to molecular polymorphisms involved in naturally occurring variation of plant development.

An enormous amount of naturally occurring genetic variation affecting development is found within wild and domesticated plant species. This diversity is presumably involved in plant adaptation to different natural environments or in human preferences. In addition, such intraspecific variation provides the basis for the evolution of plant development at larger evolutionary scales. Natural phenotypic differences are now amenable to genetic dissection up to the identification of causal DNA polymorphisms. Here we describe 30 genes and their functional nucleotide polymorphisms currently found as underlying allelic variation accounting for plant intraspecific developmental diversity. These studies provide molecular and cellular mechanisms that determine natural variation for quantitative and qualitative traits such as: fruit and seed morphology, colour and composition; flowering time; seedling emergence; plant architecture and inflorescence or flower morphology. Besides, analyses of flowering time variation within several distant species allow molecular comparisons between species, which are detecting homologous genes with partly different functions and unrelated genes with analogous functions. Thus, considerable gene function differences are being revealed also among species. Inspection of a catalogue of intraspecific nucleotide functional polymorphisms shows that transcriptional regulators are the main class of genes involved. Furthermore, barely more than half of the polymorphisms described are located in coding regions and affect protein structure, while the rest are regulatory changes altering gene expression. These limited analyses of intraspecific developmental variation support Doebley and Lukens's proposition (1998) that modifications in cis -regulatory regions of transcriptional regulators represent a predominant mode for the evolution of novel forms, but await more detailed studies in wild plant species.

Adaptation, Physiological↗

The comet assay: a tool to study alteration of DNA integrity in developing plant leaves.

DNA integrity of Nicotiana tabacum L. and Vicia faba L. leaves in different stages of growth was analysed with the single cell gel electrophoresis (comet) assay. With this test DNA of individual cells is stretched by electrophoresis and the migration is measured, which gives an image of the nuclear DNA organisation. Nuclei were sampled when the plants had developed an apical bud, five true leaves and cotyledons. To get an idea of the kind of lesions observed, three different comet protocols were used. The neutral protocol with electrophoresis in a neutral buffer and the semi-alkaline or alkaline assay with alkaline unwinding followed by electrophoresis in neutral alkaline buffer, respectively. For V. faba there was a successive increased cellular DNA mobility with age of the leaves. The percentage DNA migration in control cells of fully developed leaves from N. tabacum almost reached the same level than after irradiation of not fully developed leaves with 50 Gy X-rays. The increased stretching of DNA with leaf age was most obvious if the DNA duplex was converted to single strands by alkali treatment before electrophoresis. Therefore, it could be concluded that with the ageing of leaves there is a decrease in DNA integrity, which could be the result of rising amounts of DNA single-strand breaks and 'alkali-vulnerable sites'.

Comet Assay↗

From seed germination to flowering, light controls plant development via the pigment phytochrome.

Plant growth and development are regulated by interactions between the environment and endogenous developmental programs. Of the various environmental factors controlling plant development, light plays an especially important role, in photosynthesis, in seasonal and diurnal time sensing, and as a cue for altering developmental pattern. Recently, several laboratories have devised a variety of genetic screens using Arabidopsis thaliana to dissect the signal transduction pathways of the various photoreceptor systems. Genetic analysis demonstrates that light responses are not simply endpoints of linear signal transduction pathways but are the result of the integration of information from a variety of photoreceptors through a complex network of interacting signaling components. These signaling components include the red/far-red light receptors, phytochromes, at least one blue light receptor, and negative regulatory genes (DET, COP, and FUS) that act downstream from the photoreceptors in the nucleus. In addition, a steroid hormone, brassinolide, also plays a role in light-regulated development and gene expression in Arabidopsis. These molecular and genetic data are allowing us to construct models of the mechanisms by which light controls development and gene expression in Arabidopsis. In the future, this knowledge can be used as a framework for understanding how all land plants respond to changes in their environment.

Germination↗

The evolution of plant development.

There has been much recent interest in the evolution of plant development and especially in trying to understand the developmental genetic basis of morphological evolution. Significant progress has been made in understanding the evolution of floral organization and the mechanisms that might underlie the evolution of compound leaves and inflorescence morphology. These advances are reinforcing the idea that phenotypic evolution can proceed via changes at few loci of large effect and that promoter evolution may be an important and frequent mechanism.

Evolution, Molecular↗

Constitutive arginine-dependent nitric oxide synthase activity in different organs of pea seedlings during plant development.

Nitric oxide (NO) is an important signalling molecule in different animal and plant physiological processes. Little is known about its biological function in plants and on the enzymatic source or site of NO production during plant development. The endogenous NO production from L-arginine (NO synthase activity) was analyzed in leaves, stems and roots during plant development, using pea seedlings as a model. NOS activity was analyzed using a novel chemiluminescence-based assay which is more sensitive and specific than previous methods used in plant tissues. In parallel, NO accumulation was analyzed by confocal laser scanning microscopy using as fluorescent probes either DAF-2 DA or DAF-FM DA. A strong increase in NOS activity was detected in stems after 11 days growth, coinciding with the maximum stem elongation. The arginine-dependent NOS activity was constitutive and sensitive to aminoguanidine, a well-known irreversible inhibitor of animal NOS, and this NOS activity was differentially modulated depending on the plant organ and seedling developmental stage. In all tissues studied, NO was localized mainly in the vascular tissue (xylem) and epidermal cells and in root hairs. These loci of NO generation and accumulation suggest novel functions for NO in these cell types.

Arginine↗