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. 2012 Aug;159(4):1309-18.
doi: 10.1104/pp.112.199737. Epub 2012 Jun 15.

Reliable transient transformation of intact maize leaf cells for functional genomics and experimental study

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Reliable transient transformation of intact maize leaf cells for functional genomics and experimental study

Daniel R Kirienko et al. Plant Physiol. 2012 Aug.

Abstract

Maize (Zea mays) transformation routinely produces stable transgenic lines essential for functional genomics; however, transient expression of target proteins in maize cells is not yet routine. Such techniques are critical for rapid testing of transgene constructs and for experimental studies. Here, we report bombardment methods that depend on leaf developmental stage and result in successful expression with broad applications. Fluorescent marker genes were constructed and bombarded into five developmental regions in a growing maize leaf. Expression efficiency was highest in the basal-most 3 cm above the ligule of an approximately 50-cm growing adult leaf. Straightforward dissection procedures provide access to the receptive leaf regions, increasing efficiency from less than one transformant per cm(2) to over 21 transformants per cm(2). Successful expression was routine for proteins from full genomic sequences driven by native regulatory regions and from complementary DNA sequences driven by the constitutive maize polyubiquitin promoter and a heterologous terminator. Four tested fusion proteins, maize PROTEIN DISULFIDE ISOMERASE-Yellow Fluorescent Protein, GLOSSY8a-monomeric Red Fluorescent Protein and maize XYLOSYLTRANSFERASE, and maize Rho-of-Plants7-monomeric Teal Fluorescent Protein, localized as predicted in the endoplasmic reticulum, Golgi, and plasma membrane, respectively. Localization patterns were similar between transient and stable modes of expression, and cotransformation was equally successful. Coexpression was also demonstrated by transiently transforming cells in a stable line expressing a second marker protein, thus increasing the utility of a single stable transformant. Given the ease of dissection procedures, this method replaces heterologous expression assays with a more direct, native, and informative system, and the techniques will be useful for localization, colocalization, and functional studies.

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Figures

Figure 1.
Figure 1.
Developmental gradients in a maize leaf. A maize leaf (at left; not to scale) was divided into five regions: two adjacent regions in the base, a middle region, and two nonadjacent regions at the tip. The distances from the ligule for each region represent different stages in the developmental gradient of the leaf (at right), including a site of cell division immediately above the ligule (left triangle), a gradient of cell expansion (middle triangle), and a gradient of cell differentiation (right triangle).
Figure 2.
Figure 2.
Transformation efficiency in tissue samples from each leaf region. A, Box plot indicating transformation efficiency per cm2 of tissue. Leaf region refers to the distance from the ligule, as indicated in Figure 1. Averages were calculated from two replicates with five tissue samples per region per replicate. Medians are indicated by thick bars. The circle above the data represents an outlier data point with a value more than 1.5 times the inner quartile range. The asterisk indicates a statistically significant difference from the other groups, as determined by Student’s t test (P < 0.01). B, Scatterplot graphing the number of transformants for each piece of tissue versus mean cell area. Each point represents a single tissue sample. The key indicates the source of each tissue sample, as described in Figure 1. Arithmetic mean cell area was calculated from cell sizes from four fields of cells per tissue sample.
Figure 3.
Figure 3.
Transient and stable expression patterns of FPs. Confocal laser scanning microscopy images show transient expression of ZmXYLT-mRFP (A), transient expression of ZmROP7-mTFP (B), and stable (C) and transient (D–F) expression of ZmPDI-YFP in adaxial epidermal cells. Maximum intensity projections of confocal stacks (A, C, and E) show all confocal sections collected from a cell. In A, cell wall autofluorescence is blue and the merge of chlorophyll and cell wall autofluorescence in guard cells appears pink. A single transformed cell (d–F) has been separated into only cortical planes (D), a maximum projection (E), and a merge of cortical and medial sections (F). In F, differential pseudocoloring of medial ZmPDI-YFP (magenta) and cortical ZmPDI-YFP (green) are used to enhance visualization. Bars = 10 μm.
Figure 4.
Figure 4.
A to C, Examples of transient coexpression. ZmPDI-YFP (green; A) and ZmXylT-mRFP (magenta; B) show minimal colocalization in the merged image (C). In this example, only cortical expression of ZmPDI-YFP is shown. D to F, Transient coexpression of ZmPDI-YFP (green; D) in a cell that is also stably expressing GL8a-mRFP (magenta; E) identifies partial colocalization in the merged image (F). Bars = 10 μm.

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