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Use of chromosome microdissection, the polymerase chain reaction, and dot blot hybridization to analyze double minute chromosomes.

The potential usefulness of chromosome microdissection, the polymerase chain reaction (PCR), and dot blot hybridization as a quick screening method for determining the genetic composition of double minute chromosomes (DMs) was evaluated. DMs or abnormally banding regions (ABRs) were microdissected from multidrug-resistant hamster cell lines and amplified with PCR using primers specific for the hamster multidrug-resistance (MDR) gene, pgp 1. The microdissected-PCR-amplified products were shown to (a) hybridize to a 32P-labeled pCHP1 probe for the hamster MDR gene by using dot blot or Southern blot analysis and also (b) hybridize back to the chromosome region from which they were originally dissected by using fluorescent in situ hybridization. Microdissected/PCR-amplified DMs were also shown to hybridize to ABRs. When microdissected DMs and ABRs were amplified using hamster specific Alu primers, the resulting material was shown to hybridize with probes for hamster MDR and Alu. These results suggest that the DMs contained in these MDR hamster cell lines contain Alu-like sequences and the chromosome microdissection-PCR-hybridization approach might be used as a quick screening method for identifying genes amplified in DMs and ABRs in cell lines and human tumor samples.

Animals↗

A new method for histological microdissection utilizing an ultrasonically oscillating needle: demonstrated by differential mRNA expression in human lung carcinoma tissue.

Molecular analysis of microdissected tissue samples is used for analyzing tissue heterogeneity of histological specimens. We have developed a rapid one-step microdissection technique, which was applied for the selective procurement of tissue areas down to a minimum of 10 cell profiles. The special features of our microdissection system consist of an ultrasonically oscillating needle and a piezo-driven micropipette. The validity of this technique is demonstrated in human lung large-cell carcinoma by real-time quantitative reverse transcriptase-polymerase chain reaction assays of vimentin, cyclin D1, and carcinoembryonic antigen after linear RNA amplification. mRNA expression values of microdissected samples scattered around those of bulk tumor tissue and showed differential mRNA expression between samples of tumor parenchyma and supportive stromal cells for vimentin and carcinoembryonic antigen as confirmed by immunohistochemistry. In conclusion, this procedure requires simple equipment, is easily performed, and delivers microdissected tissue samples of oligocellular clusters suitable for further molecular analysis.

Carcinoembryonic Antigen↗

Immuno-LCM: laser capture microdissection of immunostained frozen sections for mRNA analysis.

Microdissection of routinely stained or unstained frozen sections has been used successfully to obtain purified cell populations for the analysis of cell-specific gene expression patterns in primary tissues with a complex mixture of cell types. However, the precision and usefulness of microdissection is frequently limited by the difficulty to identify different cell types and structures by morphology alone. We therefore developed a rapid immunostaining procedure for frozen sections followed by laser capture microdissection (LCM) and RNA extraction, which allows targeted mRNA analysis of immunophenotypically defined cell populations. After fixation, frozen sections are immunostained under RNAse-free conditions using a rapid three-step streptavidin-biotin technique, dehydrated and immediately subjected to LCM. RNA is extracted from captured tissue, DNAse I treated, and reverse transcribed. Acetone-, methanol-, or ethanol/acetone-fixed sections give excellent immunostaining after 12 to 25 minutes total processing time. Specificity, precision, and speed of microdissection is markedly increased due to improved identification of desired (or undesired) cell types. The mRNA recovered from immunostained tissue is of high quality. Single-step PCR is able to amplify fragments of more than 600 bp from both housekeeping genes such as beta-actin as well as cell-specific messages such as CD4 or CD19, using cDNA derived from less than 500 immunostained, microdissected cells. Immuno-LCM allows specific mRNA analysis of cell populations isolated according to their immunophenotype or expression of function-related antigens and significantly expands our ability to investigate gene expression in heterogeneous tissues.

Cells↗

Laser-assisted microdissection of the zona pellucida facilitates polar body biopsy.

OBJECTIVE: To investigate whether polar body biopsy can be performed after laser microdissection of the zona pellucida (ZP). DESIGN: Mouse zygotes were allocated randomly to three groups. The zygotes were subjected to laser microdissection of the ZP and polar body biopsy (group 1), laser microdissection alone (group 2), or no treatment (group 3). SETTING: University-based IVF program. PATIENT(S): Animal study. INTERVENTION(S): A hole was drilled in the ZP of mouse zygotes using a 1.48-micron noncontact diode laser. A microneedle was inserted and the polar body was aspirated. MAIN OUTCOME MEASURE(S): The efficacy of polar body biopsy after laser microdissection of the ZP was evaluated. RESULT(S): The laser diode beam allowed for precise drilling of a 14- to 18-micron hole in the ZP. Polar bodies could be aspirated without damaging the zygote and did not disintegrate during the biopsy. Zygotes developed to blastocysts and underwent the same hatching as control zygotes. Lower hatching rates were observed in untreated zygotes. CONCLUSION(S): Laser microdissection of the ZP with a noncontact laser system facilitates subsequent polar body biopsy. The use of blunt-ended micropipettes greatly reduces the risk of damage to the zygote or the polar body. This procedure makes polar body biopsy more accurate and effective for preimplantation genetic diagnosis.

Animals↗

Use of laser microdissection in complex tissue.

Concomitant with the rapid development in biomedical knowledge, including the methods of molecular biology and proteomics, and the manufacture of ever more precise optical instruments, powerful lasers, and sophisticated microcomputing hardware and software, laser microdissection systems have emerged which are now entering the field of routine research. Today, several devices are commercially available, congresses devoted to the latest advances in laser microdissection are now held on regular occasions, and the number of publications based on the use of these techniques has risen to over 250. With laser microdissection, histological treatment, such as chemical or immunological fixation and staining, can readily be combined with methods suitable for molecular biology or proteomics. As the optical, technical, and methodological resolution of polymerase chain reaction (PCR) and microdissection increases, genetic and phenotypic studies of biological material are possible even at the level of single cells and subcellular elements. Moreover, questions such as the paracrine interaction of cells within complex tissues, the development of cancer, and the role of single cells in tissue remodeling or development on the microscopic and molecular level can now be addressed precisely at the molecular level. This chapter reviewed the development of laser microdissection platforms, its potential impact on the future of research, and how, in particular, these technologies can be successfully integrated into modern research and routine histopathological studies of complex tissue.

Animals↗

Molecular strategies to define HLA haplotype loss in microdissected tumor cells.

Loss of heterozygosity (LOH) of chromosome 6p21 is an important mechanism that generates HLA haplotype loss in various human tumors. This mechanism produces non-reversible HLA-deficient tumor cells that can escape T cell immune responses in peptide-vaccinated cancer patients. However, the exact frequency of this mechanism is still unknown, because contaminating stroma in solid tumor tissues masks the tumor DNA obtained from solid samples. A microdissection technique was applied to 4-8 microm sections of cryopreserved tumor tissues from a group of colorectal and laryngeal carcinomas. Fifteen patients were analyzed for the presence of LOH associated with the beta(2)-microglobulin gene in chromosome 15, and five patients for LOH associated with HLA genes in chromosome 6. In two cases, autologous metastasis tissue samples were also available. The patients were selected for showing an altered HLA class I tumor phenotype as determined by immunohistological techniques. DNA was obtained from this microdissected material and amplified in order to detect the presence or absence of nine previously selected microsatellite markers. HLA sequence based typing (SBT) was also applied to these microdissected DNA samples to define the HLA genotype. Microdissection greatly improved the definition of LOH, with nearly 100% signal reduction in one of the alleles. In addition, this procedure allowed us to detect beta(2)-microglobulin LOH in tumors that expressed some HLA molecules. Our data indicate that this procedure can be successfully applied to microdissected samples from solid tumors, thus enhancing the power and sensitivity of LOH detection.

Colorectal Neoplasms↗

Generation of band-specific painting probes from a single microdissected chromosome.

We have developed a modified strategy for the generation of regional probes for human chromosomes by microdissection and degenerate oligonucleotide primed PCR. This modification dramatically increases the efficiency of amplification by pretreatment of the dissected chromatin with topoisomerase I (Topo I) before PCR. This protocol has enabled us to construct region-specific probes for fluorescence in situ hybridization (FISH) from a single microdissected chromosome. Results are presented which convincingly demonstrate that this new method generates high intensity region-specific FISH probes, while at the same time significantly decreasing the time-consuming and labor-intensive aspects of microdissection. The reduction of the number of copies required to generate a useful probe also significantly decreases the risk of contamination during the microdissection process. We believe this advance will allow microdissection to be more widely used in the cytogenetic analysis of chromosome rearrangements in both cancer and hereditary diseases. In addition, this method now makes it possible to construct a series of non-overlapping band-specific DNA microclone libraries to provide complete coverage of individual chromosomes for physical mapping.

Base Sequence↗

Comparison of genetic changes in frozen biopsies and microdissected archival material from the same colorectal liver metastases.

Microdissection of tissue sections from formalin-fixed, paraffin-embedded tumor material allows separation of microscopic sites within a sample. DNA can easily be extracted, and polymerase chain reaction (PCR) technology makes it possible to perform different molecular biologic analyses on small cell populations. The presence of normal cells or tumor heterogeneity may cause false negatives in allelic imbalance (AI) studies. Microdissected well-defined cell populations from a tumor section are assumed to increase the sensitivity of AI analyses. The present study has evaluated this in colorectal liver metastases by comparing genotypes in frozen biopsies with genotypes in microdissected archival samples from the same patients. Constitutional genotypes were obtained from corresponding peripheral blood leukocytes as well as normal liver tissue. Archival samples (n = 43) from 16 patients were analyzed after microdissection with 2-5 of 10 selected microsatellite markers. Frozen biopsies from one metastasis of each patient had previously been investigated at numerous microsatellite loci. From those results we selected, for the comparable analysis of archival samples, 41 tumor genotypes at 10 loci representing 11 heterozygotes, 13 AI, 7 losses of heterozygosity (LOHs), 8 homozygotes, and 2 microsatellite unstable cases. The microdissected samples revealed AI or a complete loss of one allele (LOH) in 5 of 11 (45%) genotypes that were previously evaluated as unchanged (retained heterozygosity) in the frozen biopsies, and LOH in 8 of 13 (62%) genotypes at loci known to exhibit AI in the frozen biopsies. Microsatellite instability, LOH, and homozygosity found in the frozen samples were all confirmed by analyses of the archival material. Intertumoral genetic heterogeneity was found in samples from two patients. The same allelic intensities were seen in DNA from tumor-close liver tissue as in blood DNA from the same patient except in one sample. The present study shows a 54% increase in sensitivity of genetic alterations if pure tumor cell components are used (five "new" AIs and LOHs and eight "new" LOHs among previously scored heterozygotes [n = 11] and AI [n = 13], respectively). In total, a 93% success rate (108/115 analyses) was obtained using standard PCR conditions for the 10 selected markers. The fact that standard PCR conditions and 5-micron tumor sections are used shows how easy these analyses are to perform, and that only minor amounts of valuable archival material is used.

Colorectal Neoplasms↗

Alteration with dietary state of the activity and zonal distribution of adenylate cyclase stimulated by glucagon, fluoride and forskolin in microdissected rat liver tissue.

Adenylate cyclase activated by glucagon, fluoride and forskolin was measured in liver homogenates and microdissected periportal and perivenous tissue of fed and fasted rats. A radiochemical microtest, more sensitive by 2-3 orders of magnitude as compared with the usual assay, was established for the determination of the activity in liver samples corresponding to 200-600 ng dry weight. In liver homogenates from fasted as compared to fed animals the glucagon-stimulated and fluoride-stimulated activity was increased by 1.65-fold, while the basal and the forskolin-stimulated activity remained the same. In microdissected tissue of both fed and fasted animals the activity was stimulated in about 60% of the samples by glucagon, fluoride and forskolin (responsive samples). However, in about 40% of the microdissected tissue samples the activity could not be stimulated by any of the above activators (non-responsive samples). In responsive microdissected tissue of fasted as compared to fed animals, the glucagon-stimulated and fluoride stimulated activity but not the basal and the forskolin-activated activity was increased by 2-3-fold. In responsive microdissected samples of fed animals neither the basal nor the stimulated activities showed a significant periportal to perivenous gradient. In samples of fasted animals, however, a zonal gradient was observed for the glucagon-stimulated activity exhibiting a 1.5-fold higher rate in the perivenous zone.

Adenylyl Cyclases↗

Chromosome microdissection: a brief overview.

Chromosome microdissection arose as a means of facilitating long range physical mapping of chromosome regions involved in either a genetic or malignant disorder. However, with the rapid development of improved techniques for mapping and sequencing the human genome, microdissection is considered by many investigators to be a cumbersome and time consuming procedure. Nonetheless, based on the impressive number of informative diagnostic DNA markers that are now available as a result of this technology, microdissection still must be considered one of the most rapid and direct methods available for generating new DNA markers from any chromosome region, irrespective of its sequence composition. In addition, it remains an important means to dissect DNA markers from any organism, eukaryotic and prokaryotic, and has resulted in generating disease associated DNA sequences from both human and animal genomes. Recently, microdissection of single cells has emerged as a viable alternative for isolating pure populations of specific cell types, especially tumor cells, which can then be studied without background contamination from any other cellular constituents. This overview will provide a glimpse into the present applications of the microdissection technology, as well as the importance this technology will have for future exploration into the human genome.

Animals↗

Gene transcript assay by real-time RT-PCR in epithelial breast cancer cells selected by laser microdissection.

The cell type heterogeneity within clinical cancer tissue samples may affect the accuracy of gene expression analysis. In order to validate our laser microdissection (LMD) method using the Leica AS LMD system (LEICA Microsystems), we compared the mRNA levels of three major genes involved in breast cancer (ERalpha, PR, HER2), measured by means of real-time quantitative RT-PCR, in 5000 microdissected malignant epithelial cells and in corresponding bulk tumor homogenates from 14 patients. We also compared the mRNA level results to protein expression measured by immunohistochemistry (IHC) on the same tumors. For the three genes, significant correlations were found between mRNA results obtained on microdissected cells and IHC. Comparison between IHC and mRNA results obtained on microdissected cells and bulk tumors showed that in all cases microdissection enhanced the sensitivity of assessing target gene transcript levels and was essential for their accurate evaluation in heterogeneous tumors.

Adult↗

Microdissection and the study of cancer pathways.

Abstract: The study of genetic alterations in tumors and their precursor lesions is often hampered by the presence of a heterogeneous background of non-neoplastic elements such as stromal cells, inflammatory cells, and angiogenic elements. Microdissection involves the extraction of specific populations of cells under direct visualization. In this article, we will discuss the currently available techniques of microdissection, and briefly review how this material is being utilized in the study of cancer pathways. Microdissected tissue is amenable for the study of cancer genomics, expression analysis and most recently, cancer proteomics. The purity of reagents obtained from microdissected material has resulted in the successful identification of tumor suppressor genes as well as novel transcripts and proteins that are altered in neoplastic cells. Improved techniques of tissue fixation and microdissection, supplemented with ancillary technology such as pre-amplification, have permitted the use of increasingly smaller quantities of material for the study of cancer pathways. Importantly, it is now possible to analyze many of the genetic changes that precede cancer, thereby identifying populations "at risk" for developing malignancies in the future.

Cell Separation↗

DNA content and cell number determination in microdissected samples of breast carcinoma in situ.

Paraffin-embedded tissue (PET) is the specimen of choice for the histopathological diagnosis of cancer. PET has become a valuable resource for correlating cellular phenotype and genotype in microdissected lesions. A definitive improvement in this field has been the development of infra-red laser capture microdissection (LCM), which yields homogeneous populations of cells for DNA extraction and in vitro amplification by polymerase chain reaction (PCR). We report here a photographic and fluorescent technique for determining the number of nuclei and concentration of DNA obtained respectively by laser capture microdissection from paraffin-embedded breast cancer tissue. Breast biopsies containing carcinoma in situ were serially sectioned, mounted on plain glass slides and tumor cells were microdissected using a laser capture microscope. The DNA was extracted in digestion buffer and used directly as a template for PCR. In our protocols, each capture contained 21+/-5.4 nuclei with a DNA concentration of 115+/-5.3 pg. Also, a linear relationship was found between number of captures and DNA content (R2=0.9995). These results represent a novel contribution for a more precise correlation between phenotypic and genotypic diversity in cancer cells studied from microdissected paraffin-embedded tissue.

Breast Neoplasms↗

Application of sensitive fluorescent dyes in linkage of laser microdissection and two-dimensional gel electrophoresis as a cancer proteomic study tool.

The combination of laser microdissection and two-dimensional gel electrophoresis (2-D PAGE) has been developed to perform proteomic analysis on specific populations of cells in cancer tissues. However, as conventional low sensitivity silver staining was used for spot detection, the microdissection required to obtain an adequate amount of protein for 2-D PAGE is laborious and only a restricted number of protein spots could be visualized. As a consequence, this technology was impractical for direct clinical applications and had a limited impact on cancer studies. To solve these problems, we developed an application in which fluorescent dyes label the proteins extracted from microdissected tissues prior to 2-D PAGE separation. In this application, a small amount of protein, less than 6.6 microg, was enough to generate a 2-D profile with approximately 1500 protein spots. This technique was applied to compare the proteome of normal intestinal epithelium with that of adenoma in Min mice. Thirty-seven protein spots reproducibly showed significant differences in intensities. Mass spectrometric analysis and Western blotting identified eight of them, including prohibitin, 14-3-3zeta, tropomyosin 3 and Hsp84. These results indicate that fluorescence labeling of proteins from microdissected tissues prior to 2-D PAGE is a powerful cancer proteomic study tool.

Adenoma↗

Microdissection and molecular manipulation of single chromosomes in woody fruit trees with small chromosomes using pomelo (Citrus grandis) as a model. I. Construction of single chromosomal DNA libraries.

Construction of single chromosomal DNA libraries by means of chromosome microdissection and microcloning will be useful for genomic research, especially for those species that have not been extensively studied genetically. Application of the technology of microdissection and microcloning to woody fruit plants has not been reported hitherto, largely due to the generally small sizes of metaphase chromosomes and the difficulty of chromosome preparation. The present study was performed to establish a method for single chromosome microdissection and microcloning in woody fruit species using pomelo as a model. The standard karyotype of a pomelo cultivar ( Citrus grandis cv. Guanxi) was established based on 20 prometaphase photomicrographs. According to the standard karyotype, chromosome 1 was identified and isolated with fine glass microneedles controlled by a micromanipulator. DNA fragments ranging from 0.3 kb to 2 kb were acquired from the isolated single chromosome 1 via two rounds of PCR mediated by Sau3A linker adaptors and then cloned into T-easy vectors to generate a DNA library of chromosome 1. Approximately 30,000 recombinant clones were obtained. Evaluation based on 108 randomly selected clones showed that the sizes of the cloned inserts varied from 0.5 kb to 1.5 kb with an average of 860 bp. Our research suggests that microdissection and microcloning of single small chromosomes in woody plants is feasible.

Blotting, Southern↗

Laser microdissection of immunolabeled astrocytes allows quantification of astrocytic gene expression.

Astrocytes represent the major glial cell population within the central nervous system. In order to elucidate the function of astrocytes under physiological conditions and during the course of neurological disease, astrocytic gene expression profiling is necessary. However, since astrocytes form an intimately connected network with neurons and other cell types in the brain, gene expression analysis of astrocytes with a sufficient degree of cellular specificity is difficult. Here we are presenting a rapid and, thus, RNA preserving immunostaining protocol for the detection of astrocytes in rodent brain. This protocol can readily be combined with laser microdissection (Leica AS LMD platform) and quantitative RT-PCR (qPCR). Employing this method, we studied changes in glial fibrillary acidic protein (GFAP) expression in astrocytes of mouse entorhinal cortex following entorhinal cortex lesion. Using laser microdissection, astrocytes (n = 60) were collected in the tissue surrounding the lesion, the entorhinal cortex contralateral to the lesion, and in unlesioned control animals. Changes in GFAP mRNA were quantified using qPCR. GFAP mRNA levels were 82-fold higher in astrocytes of lesioned animals at the site of the lesion compared to GFAP mRNA levels in entorhinal cortex astrocytes of control mice. GFAP mRNA levels were only slightly elevated at the contralateral side (lesioned animals). This optimized protocol for immunolabeling and laser microdissection of astrocytes followed by qPCR allows quantification of astrocytic gene expression levels with a high degree of cellular specificity. It may similarly be employed in different settings where other cell types need to be identified and microdissected for gene expression profiling.

Animals↗

Construction of a micro-library enriched with genomic replication origins of carrot somatic embryos by laser microdissection.

In this paper, we describe an effective method for constructing a micro-library enriched with chromosomal DNA replication origins. Carrot (Daucus carota L.) somatic embryos at early globular stage were incubated for 15 min in the presence of bromodeoxyuridine (BrdU) to pulse label newly synthesized DNA strands. Nuclei were isolated from the cells, and the DNA was extracted on microscopic slides. DNA fibers spread on slides were visualized using anti-BrdU and FITC-conjugated secondary antibodies. DNA regions where BrdU was incorporated were clearly visualized under a fluorescent microscope as dots on DNA fibers. Regions of DNA fiber containing many fluorescent dots should contain replicons in them. DNA fibers showing many fluorescence dots, or replicons were easily cut and collected using a laser microdissection system equipped with a pulse laser beam. DNA fragments containing many replicons were able to be collected with an efficiency of 20-30 DNA fragments per 1 h. Using degenerate oligonucleotide primed PCR, fragments were randomly amplified from the microdissected fragments, and subcloned to construct a micro-library. This is the first report of the application of a laser microdissection technique for constructing a micro-library enriched with replication origins of chromosomal DNA, although there were some reports on laser microdissection of chromosomes. The simple procedure established here should open up a new application of laser optics.

Cells, Cultured↗

Quantification of layer-specific gene expression in the hippocampus: effective use of laser microdissection in combination with quantitative RT-PCR.

Laser microdissection in combination with quantitative RT-PCR is now widely appreciated as an excellent tool for quantifying mRNA levels in defined cell populations. It may be particularly useful in the hippocampal formation, where principal cells form distinct and readily identifiable cell layers. Here we are presenting an optimized protocol for labeling hippocampal principal cells on foil-mounted sections for microdissection with the Leica AS LMD system and discuss potential further applications and pitfalls. Employing this optimized method, we studied changes in brain-derived neurotrophic factor (BDNF) mRNA expression in granule cells of the mouse dentate gyrus following unilateral entorhinal cortex lesion. In this lesioning paradigm, changes in BDNF mRNA expression have previously been reported in the rat. Using laser microdissection, the granule cell layers ipsi- and contralateral to the lesion were collected and changes in BDNF levels were quantified using quantitative RT-PCR. BDNF mRNA levels were five-fold higher on the ipsilateral side compared to levels found on the contralateral side or in controls. The development of this optimized method for laser microdissection and subsequent quantitative RT-PCR allows layer-specific quantification of gene expression levels in the hippocampus and may be similarly employed in other brain areas or tissues with a laminar arrangement or high density of cells.

Animals↗