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One-step RT-PCR without initial RNA isolation sStep for laser-microdissected tissue sample.

One-step RT-PCR procedure without initial RNA extraction step is tested for laser microdissected tissue sample. Unfixed cryosections of liver and kidney tissue of male SD rats were cut using laser microdissection system and directly used as templates for RT-PCR study. To check the sensitivity, 5, 25, 125, and 625 hepatocytes were cut and put in PCR-tube. After DNase treatment and cDNA synthesis with pd(N)6 random primer, glyceraldehyde-3-phosphate dehydrogenase (GAPDH) cDNAs were amplified by 60 thermal cycles. GAPDH-specific bands were observed at as few as 25 hepatocytes. Specificity of this procedure was tested for hepatocytes, renal tubular epithelium and glomerular tissue using albumin PCR primers. Approximately 250 cells were cut and albumin cDNA was amplified as described above. Albumin specific band was observed only in hepatocytes sample. To apply this approach to quantitative PCR, various numbers of hepatocytes were cut and put in 0.2 mL PCR tube. After reverse transcription and 10 cycles of GAPDH cDNA amplification by regular thermal-cycler, PCR solution was transferred to 96-well plate designed for real-time PCR system, and further 40 cycles were performed. As a result, GAPDH cDNAs were successfully amplified with a good correlation between the number of template hepatocytes and the intensity of PCR signal. From these results, we concluded this approach would be very useful for the expression analysis of microdissected pathology samples.

Animals↗

Microdissection is essential for gene expression profiling of clinically resected cancer tissues.

The gene expression array method enables us to achieve expression profiling with thousands of genes. Clinically resected bulk cancer tissues, however, contain not only cancer cells but also stromal cells, which may affect gene expression profiling and hamper accurate analysis of the cancer cells per se. Therefore, a procedure for dissecting specific cells, such as laser capture microdissection, is neededfor the clinical application of a gene expression array. There has been no study actually comparing 2 gene expression profiles, one obtained using RNA extractedfrom cancer cells by laser capture microdissection and one obtained using RNA extractedfrom bulk cancer tissues. Wefirst demonstrated the difference in expression patterns between them, without any amplification procedures. In addition, differential expression analysis between tumor and nontumor tissue yielded quite different patterns between the 2 methods. We conclude that microdissection is essential for gene expression profiling of clinical specimens.

Dissection↗

Promoter methylation analysis on microdissected paraffin-embedded tissues using bisulfite treatment and PCR-SSCP.

Methylation-sensitive single-strand conformation analysis (MS-SSCA) is a new method of screening for DNA methylation changes. The combination of bisulfite modification and PCR results in the conversion of unmethylated cytosines to thymines, whereas methylated cytosines remain unchanged. This sequence conversion can lead to methylation-dependent alterations of single-strand conformation, which can be detected by SSCA. An analysis of mixtures of methylated and unmethylated DNA at known ratios revealed that the relative intensities of the corresponding bands following MS-SSCA were maintained. MS-SSCA was applied for methylation analysis of human p16 promoter region using genomic DNA obtained from either frozen, fixed, or microdissected fixed tissue sections. MS-SSCA is a rapid, specific, and semiquantitative approach that allows the detection of methylation of the p16 gene promoter. In reconstruction experiments, the method permits the detection of 10% or less of cells harboring a methylated p16 promoter. We have been successful in analyzing by MS-SSCA almost all (96%) tumor samples microdissected from archival paraffin-embedded fixed tissue sections and obtaining reproducible results. In addition, when microdissection was performed, the clonality of this genetic alteration could be identified.

DNA↗

Use of microdissected airways to define metabolism and cytotoxicity in murine bronchiolar epithelium.

The use of the mouse for carcinogenesis bioassays has raised questions regarding the cell of origin of lung tumors. Since a feature of chronic lung injury from aromatic hydrocarbons is an apparent alteration in target cell susceptibility, the present study was designed to test the feasibility of using microdissected pulmonary airways to evaluate the metabolism and cytotoxic response of one of the potential targets of pulmonary carcinogens, the bronchiolar Clara cell. Airways were microdissected from mouse lungs that had been filled by injection of agarose (1%) into the trachea. Ultrastructural integrity of the explants has been maintained for up to 8 h in culture. The cytotoxic response of bronchiolar epithelium in explants incubated with naphthalene (0.5 mM) was identical to the vacuolation and exfoliation observed in bronchioles of mice 24 h after intraperitoneal administration of naphthalene (100 or 300 mg/kg). Pre-incubation of the explants with piperonyl butoxide, a cytochrome P-450 monooxygenase inhibitor, prevented naphthalene-induced cytotoxicity. Naphthalene monooxygenase activity was easily measurable in all levels of airway, including trachea, lobar bronchi, major and minor daughter pathways, and distal bronchioles. No metabolism was detected in lung parenchyma or large vessels. Dihydrodiol and a glutathione adduct derived from 1R, 2S-naphthalene oxide were the sole metabolites detected by HPLC in incubations of airway explants. Formation of a single diastereomeric glutathione conjugate indicated that the metabolic epoxidation of naphthalene was highly stereoselective. Glutathione S-transferase activity was measured in all compartments, with the highest activities in trachea and lowest in distal bronchiole and pulmonary vein. Explants maintained pools of reduced glutathione for up to 4 h in culture. We conclude that microdissected airways have excellent potential for: (1) defining the capability of bronchiolar epithelium to catalyze xenobiotic biotransformation, (2) comparing activity in target and nontarget lung compartments as a means of identifying specific metabolic pathways associated with the cytotoxic response, and (3) use with a variety of species, including nonhuman primates and humans, as a means of providing appropriate data for extrapolation of effects in the intact animal to the human, where bioassay is not possible.

Animals↗

Microdissection by ultrasonication: application to early chick embryos.

A technique utilizing microdissection by ultrasonication was applied to scanning electron microscopy of chick embryos during the first three days of incubation. Using a tank cleaner operating at 80 kHz, whole embryos immersed in pure acetone were sonicated until fragmentation became evident. At 12 hr incubation disintegration occurred by one second or less. At 18 hr, three sonic bursts of one second each produced only partial fragmentation. All three germ layers retained their original relationships to each other. During the second day of incubation, large pieces of integument were removed and somites began to microdissect after 10-20 seconds of sonication. Late in the third day of incubation, sonication for 1 min or more was required to produce significant microdissection. Living embryos exposed to 0.1% collagenase for 10 min prior to standard fixation fragmented in a different manner. Lamellipodia and filopodia were most sensitive and were largely destroyed. The three major germ layers (ectoderm, endoderm, mesoderm), however, retained their structural integrity and original relationships to each other. Factors contributing to the results reported here include: 1) extracellular fibrils of varying chemical composition, 2) primitive cell junctions, 3) biomechanical stability in the nonfibrillar portions of the extracellular matrix, and 4) effects of technical procedures performed prior to sonication. Sonicated tissues of early embryos reveal features that are difficult to demonstrate in other ways and may be unrecognized in conventional preparations.

Animals↗

Gene mapping by chromosome microdissection and microisolation in the chicken.

A chromosome microdissection and microisolation technique in combination with filter hybridization was developed for chromosomal localization of cloned chicken genes. The DNA was obtained from microdissected chromosome regions of metaphase spreads. Dissected DNA was amplified by polymerase chain reaction (PCR). The chicken MHC gene located on the nucleolar chromosome and beta-actin gene located on chromosome 2q were chosen as tests for the procedure and then detected by dot blot analysis using amplified chromosomal DNA probed with biotinylated DNA. The study establishes the technique of using chromosome microdissection and microisolation for localization of cloned genes as a complementary or alternative approach to both in situ DNA/chromosome hybridization and fluorescent in situ hybridization.

Actins↗

Gene-expression analysis of single cells-nested polymerase chain reaction after laser microdissection.

AIM: The structural and functional characteristics of cells are dependent on the specific gene expression profile. The ability to study and compare gene expression at the cellular level will therefore provide valuable insights into cell physiology and pathophysiology. METHODS: Individual cells were isolated from frozen colon tissue sections using laser microdissection. DNA as well as RNA were extracted, and total RNA was reversely transcribed to complementary DNA (cDNA). Both DNA and cDNA were analyzed by nested polymerase chain reaction (PCR). The quality of isolated DNA and RNA was satisfactory. RESULTS: Single cells were successfully microdissected using an ultraviolet laser micromanipulator. Nested PCR amplification products of DNA and cDNA of single cells could clearly be visualized by agarose gel electrophoresis. CONCLUSION: The combined use of laser microdissection and nested-PCR provides an opportunity to analyze gene expression in single cells. This method allows the analysis and identification of specific genes which are involved in physiological and pathophysiological processes in a complex of variable cell phenotypes.

Colon↗

Effects of fixation on RNA extraction and amplification from laser capture microdissected tissue.

One of the key end points for understanding the molecular basis of carcinogenesis is the quantitation of gene expression in specific cell populations. Microdissection techniques allow extraction of morphologically distinct cells for molecular analysis. A recent advance in microdissection uses the PixCell laser capture microdissection (LCM) system, which allows for precise removal of pure cell populations from morphologically preserved tissue sections. The objective of this study was to determine the optimal fixation protocol for analyzing RNA from tissue samples using LCM. Optimal fixation must provide acceptable morphology, allow proper laser capture of selected cells, and preserve the integrity of mRNA. We evaluated the effects of both cross-linking and precipitive-type fixatives on frozen and paraffin-embedded mouse liver tissue. For assessment of the quality of the mRNA in LCM samples generated from various fixed tissues, reverse transcription-polymerase chain reaction (RT-PCR)-amplified mouse liver beta2-microglobulin mRNA was detected with ethidium bromide. We also examined mouse glyceraldehyde-3-phosphate-dehydrogenase by using the fluorogenic TaqMan system for real-time quantitative detection of RT-PCR products. Frozen tissues yielded more RT-PCR product than did paraffin-embedded tissues. In both frozen and paraffin-embedded tissues, differences were observed between the fixatives. Precipitive fixatives, such as ethanol and acetone, consistently produced more RT-PCR amplification product than did cross-linking fixatives such as formalin. Optimal fixation protocols for LCM analysis will facilitate the examination of gene expression in specific cell populations, accelerating investigations of the molecular differences responsible for the phenotypic changes observed during carcinogenesis.

Animals↗

[Microdissection--an important tool in molecular biology].

Our knowledge of cell biology is increasing rapidly through the introduction of new molecular biology techniques. Pathological processes always involve a number of cell types; obviously, there is a critical need to know exactly what is being examined. This can be achieved by applying in situ techniques (immunohistochemistry, in situ hybridization, and in situ PCR) on the light microscopical and electron microscopical levels. Microdissection of cells/tissues is an alternative approach. This can be done manually or with the help of a laser, which allows the dissection of single cells. The methods can be used on frozen tissues as well as on paraffin embedded material. Although the ensuing DNA material is not always optimal for further analysis, it is possible to apply special techniques to approve the situation, such as whole genome amplification PCR. Microdissection of cell clones allows us to analyse interactions between tumour cells and stromal cells. Microdissection is based on a simple principle and has proved to be very important in molecular biology analysis of histological material.

Clone Cells↗

[Methods for microdissection-PCR-silver stain technique in paraffin-embedded tissue sections].

OBJECTIVE: To use the microdissection-PCR-silver stain technique in the paraffin- embedded tissue sections and analyze the microsatellite instability in colorectal cancer. METHODS: By microdissection technique, the lymphocytes and mesenchymal cells, normal mucous epithelial cells, displasia, adenoma, and carcinoma cells were recovered from paraffin-embedded tissue sections. The cells were digested by protinase K; the cell lysates were used as PCR template and the PCR products were analysed by denatured polyacrylamide gel electrophoresis and silver stain. Four microsatellite loci, TGF-betaRII(A)(10), hMSH(2)(A)(26)-Bat-26, hMSH(3)(A)(8), hMSH(6)(C)(8), were analyzed. RESULTS: In all 28 specimens, hMSH(3)(A)(8) and hMSH(6)(C) 8) loci were amplified successfully. TGF-betaRII(A)10), Bat-26 had consistent amplification in 23/28, 22/28 specimens, respectively. And Bat-26 microsatellite instability was found in carcinoma cells in 5 specimens, and in adenoma cells in one of the 5 specimens. CONCLUSION: Microdissection-PCR silver stain technique can be used in paraffin-embedded tissue sections with satisfactory results. This method can be employed in analyzing microsatellite instability in colorectal carcinoma.

Colorectal Neoplasms↗

Loss of heterozygosity in primary lung cancer using laser capture microdissection and WAVE DNA fragment analysis techniques.

BACKGROUND: A number of molecular changes observed by varied conventional methods, including loss of heterozygosity (LOH) on chromosome 3, have been associated with primary lung cancer. To further define the locus of chromosome 3p allele loss in lung cancer, we performed LOH study by using innovative laser capture microdissection and WAVE DNA Fragment Analysis. MATERIAL/METHODS: Thirty-eight paired specimens from patients with adenocarcinoma of the lung were used for this study. Formalin-fixed, paraffin-embedded tissue from normal stromal cells or lymphocytes and adenocarcinoma were collected using laser capture microdissection. DNA was extracted and amplified by PCR using six polymorphic DNA markers for chromosome 3. PCR products were analyzed by both gel electrophoresis and WAVE DNA Fragment Analysis. RESULTS: LOH at 3p22-24 was found in tumor cells from twelve out of thirty-eight patients (32%) when analyzed by WAVE DNA Fragment Analysis and LOH was found in tumor cells from nine out of thirty-eight patients (23%) when analyzed by gel electrophoresis. LOH was found in normal control from one out of thirty-eight patients. CONCLUSIONS: 1. Our results suggest putative tumor suppressor gene(s) is present in a region at 3p22-24, which may play a role in carcinogenesis of lung cancer. 2. Laser capture microdissection is essential tool for defined LOH studies. 3. WAVE DNA Fragment Analysis is an accurate, sensitive and automated tool for analysis of DNA fragments.

Adenocarcinoma↗

Microdissection based high resolution multicolor banding for all 24 human chromosomes.

The multicolor-banding (MCB) approach allows the differentiation of chromosome region specific areas at the band and sub-band level and is based on region-specific microdissection libraries producing changing fluorescence intensity ratios along the chromosomes. The latter are used to assign different pseudocolors to specific chromosomal regions. We present the complete set of 138 region-specific microdissection libraries for the entire human genome and the resulting MCB patterns for all human chromosomes at the 450-550 band level. In the present work, the creation and handling of the microdissection libraries is detailed for the first time. Additionally, the unique possibilities of the MCB technique to adjust the pseudocolor bands according to the necessities of the studied case is presented in exemplarity. In conclusion, the MCB-technique is a high resolution alternative to other FISH based chromosome banding approaches and suited to clarify, which changes appeared in complex chromosomal rearrangements.

Chromosome Banding↗

Clonality analysis of follicular lymphoma using laser capture microdissection method.

Whether a common and a single clone present, or not, among follicles of follicular lymphoma (FL) was examined in 12 cases with FL. Histologic grade was I in 6 cases, II in 3, and III in 3. DNA was selectively extracted from the neoplastic follicles of paraffin-embedded samples with use of laser capture microdissection method, and used for PCR-based analysis of rearrangement of immunoglobulin heavy chain variable region gene. Three different follicles in each case of FL were microdissected. Semi-nested PCR was performed using two sets of primers (Fr2A and Fr3A). In PCR with Fr2A primers, nine of 12 cases showed a common band among neoplastic follicles. The remaining three cases showed no PCR products. With Fr3A primers, eight of 12 cases showed a common band among follicles of the same case. The other four cases showed oligoclonal bands, among them presence of a common band was difficult to assess. Oligoclonal bands were more frequently observed in PCR with Fr3A than that with Fr2A and in grade I or II than in grade III cases. In total, 11 of 12 cases showed a common band in PCR with either Fr2A or Fr3A primers. In two cases, DNA extracted from whole section was amplified with both Fr2A and Fr3A or only Fr3A primers, showing smear or oligoclonal bands. These results showed the presence of a single clone of cells in neoplastic follicles of FL and the usefulness of PCR-based rearrangement analysis of immunoglobulin heavy chain gene combined with microdissection methods for differential diagnosis of FL from follicular hyperplasia.

Adult↗

[Pathological observation of the anterior eye segment following isolation of the vessels in the rectus by microdissection].

OBJECTIVE: To investigate the impact of simultaneously isolating the vessels in 4 recti of one eye by means of microdissection on the anterior segment. METHODS: Among the 16 dogs, 8 received coupling of the recti (with Jensen procedure) and the others received rectus displacement (with Hummelsheim procedure). Microdissection of the anterior ciliary arteries (ACAs) were performed and 3 months later, the anterior segment tissues were observed with both light and electron microscopes. RESULTS: Most of the ACAs were successfully isolated and preserved which were thicker in the vertical recti than in the horizontal recti. No signs of anterior segment ischemia (ASI) were observed in the 16 eyes with the operation postoperatively. CONCLUSION: Vascular microdissection in strabismus surgery that involves 3 or 4 recti might avoid the risk of ASI, during which the ACAs of the vertical rectus should be carefully preserved.

Animals↗

[Gene expression analysis in liver tissue at a single cell level by nested polymerase chain reaction and laser microdissection].

OBJECTIVE: To investigate the measurements of gene expressing at a single hepatocyte level. METHODS: Individual hepatocyte was isolated from cryostat tissue section using laser microdissection technique. To detect the mRNA expressed by single hepatocyte, RNA was extracted, reversely transcribed to cDNA and amplified by nested polymerase chain reaction (PCR). RESULTS: Single cell was microdissected from cryostat tissue using an ultraviolet laser micromanipulator. The RNA could be extracted from the isolated cell(s), and the RT-PCR production could be observed after electrophoresis, whose quantitation was compatible with the number of cells. CONCLUSION: Combining laser microdissection and nested RT-PCR can monitor gene expression at a single cell level in vivo.

Dissection↗

Influence of histochemical stains on quantitative gene expression analysis after laser-assisted microdissection.

Laser-assisted microdissection (LAM) allows isolation of specific cell populations for molecular studies. The combination of LAM and of real-time quantitative reverse transcriptase-polymerase chain reaction (RT-PCR) enables generation of quantitative cell-specific gene expression data. Histochemical stains used to identify cells desired for LAM should provide acceptable morphology and not interfere with RNA or with subsequent molecular analysis techniques. To determine a reliable stain for analysing RNA, using the housekeeping gene, RPL13A, we performed quantitative gene expression analysis of laser microdissected cells from prostatic frozen tissues. The frozen sections were histochemically stained with hematoxylin, methyl green, toluidine blue O and May-Grunwald. After laser microdissection real-time quantitative RT-PCR was performed. Methyl green yielded more RT-PCR product than did the other dyes. The lowest yield of amplification was obtained after May-Grunwald staining. Therefore we recommend methyl green for general use in gene expression analysis, especially when handling small amounts of RNA.

Ethidium↗

Proteomic profiling in microdissected hepatocellular carcinoma tissue using ProteinChip technology.

At present, the molecular mechanisms of hepatocellular carcinogenesis are not well understood. It is known, however, that cancer development and progression are accompanied by profound changes at the cellular and subcellular level, involving RNA/DNA and protein structure and function. Therefore, high-throughput, proteomic techniques targeting these biological molecules may provide novel insights into HCC genesis and prognosis. We characterized tissue protein profiles from 10 HCC patients using ProteinChip technology (SELDI) which is able to detect minute amounts of proteins and moreover to analyze complex protein pattern. Therefore, after histopathological examination, proteins from kryostat sections of non-tumorous hepatic tissue as well as from central and peripheral tumor areas were isolated from complete histological sections or from selected and microdissected tissue areas. Analysis on the SAX and WCX ProteinChip Arrays revealed 14-26, and 25-29 differentially expressed peaks respectively, which characterized non-tumorous and tumor tissue (p< or =0.05). One feature which allows differentiation between central tumor and peripheral tumor regions could only be detected in microdissected tissue. Using ProteinChip technology in combination with tissue microdissection it is possible to investigate complex changes at the protein level in hepatocellular cancer associated with tumor development and progression.

Biomarkers, Tumor↗

Microdissection of the fragile X region.

We have microdissected and cloned the region around the fragile site at Xq27.3 on the human X chromosome. All of the clones tested map to the Xq27-Xq28 region, and detailed mapping on a panel of somatic cell hybrids indicates that the microdissected library contains sequences derived from both sides of the fragile X mutation. Some of these clones give signals in rodent DNA. This library demonstrates the power of microdissection for the identification of potential coding sequences near a disease locus and provides a promising resource for the identification of the fragile X mutation.

Animals↗