Search PubMed⌕ Search

SEARCH · Search PubMed

Results for “Tissue microdissection”

Search indexed PubMed citations on genomics, clinical trials, systematic reviews and public health. Explore titles, authors and supplied subject terms, then open the PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 361 records · Page 20Linked to original sources

Using DSP, a reversible cross-linker, to fix tissue sections for immunostaining, microdissection and expression profiling.

Mammalian organs are typically comprised of several cell populations. Some (e.g. brain) are very heterogeneous, and this cellular complexity makes it difficult, if not impossible, to interpret expression profiles obtained with microarrays. Instruments, such as those manufactured by Leica or Arcturus, that permit laser capture microdissection of specific cells or cell groups from tissues were developed to solve this problem. To take full advantage of these instruments, however, one must be able to recognize cell populations of interest and, after they are harvested, to extract intact, unmodified RNA from them. Here we describe a novel, fast and simple method to fix and immunostain tissue sections that permits this to be done.

Animals↗

[Distinction between benign and malignant pheochromocytomas].

OBJECTIVES: To investigate the differences in morphology, immunohistochemistry, DNA ploidy status, LOH and MSI of 11q13 and 1p between benign and malignant pheochromocytomas, and to find the marker or markers useful in distinction between benign and malignant pheochromocytoma or for predicting the malignant potential of this tumor. METHODS: Twenty-two cases of clinically documented benign and malignant pheochromocytomas from the files of Peking Union Medical College Hospital were analyzed. Aside from histological study, Ki-67, p53, CgA, S-100, PCNA and survivin immunohistochemistry studies were performed. DNA ploidy status was assessed by flow cytometry on cell suspensions prepared from formalin-fixed, paraffin-embedded sections. Twelve tumors (7 benign and 5 malignant) with paired normal tissues were microdissected. Tumor and normal tissue DNA were extracted. The obtained DNAs and 8 microsatellite markers related to 11q13 and 1q were subjected to PCR amplification for analysis of LOH and MSI. RESULTS: None of the tumors showed atypical mitosis, only 1 malignant tumor had a mitotic count > 1/10 HPF (2.3/10 HPF). Two malignant tumors exhibited confluent necrosis. Ki-67 index was low in benign tumors (average 0.73%), and high in malignant tumors (average 2.4%). The difference of Ki-67 index between benign and malignant tumors was statistically significant. DNA ploidy status did not correlate with malignancy. Although LOH and/or MSI of 11q13 and 1p were observed in several tumors, a statistically significant difference could not be reached due to the small number of tumors analyzed. CONCLUSION: Only Ki-67 index (> 3%) is an useful marker for distinguishing benign from malignant or for predicting the malignant potential of pheochromocytoma.

Adrenal Gland Neoplasms↗

Analysis of gene expression in mineralized skeletal tissues by laser capture microdissection and RT-PCR.

The analysis of gene expression by growth plate chondrocytes in vivo has been hampered by the inherent difficulty in performing in situ hybridization on mineralized tissues. The combination of laser capture microdissection and reverse transcription-polymerase chain reaction (RT-PCR) allows analysis of gene expression by cells selectively removed from histologic sections by laser ablation. In order to apply this method to mineralized tissues, a decalcification process is required. The object of this study was to determine the optimal method for tissue decalcification prior to laser capture microdissection RT-PCR that will preserve integrity of the mRNA population. Acetone, 10% formalin, and methacarn were evaluated as fixatives, while Surgipath Decalicifier I, 10% ethylenediaminetetraacetic acid (EDTA), and 20% EDTA were evaluated as decalcifying reagents. Our results demonstrate that the optimal RNA quality was preserved by a decalcification protocol consisting of 20% EDTA for decalcification followed by fixation in methacarn, although this method is also associated with a reduction in RNA quantity.

Animals↗

Demonstration of local clonality of mucosal T cells in human colon using DNA obtained by microdissection of immunohistochemically stained tissue sections.

Intraepithelial lymphocytes have been shown to be oligoclonal and to be disseminated widely along the human intestine. However, studies using monoclonal antibodies have suggested that superimposed on the widespread clones, there is local variability in the mucosal T cell population. We have investigated the possibility that local dominant clones of T cells are present in the colonic mucosa by polymerase chain reaction (PCR) amplification of T cell receptor beta chain junctional regions using DNA extracted from microdissected fragments of tissue sections. Colon from two right hemicolectomy specimens was sampled at 7-cm intervals. Adjacent areas of mucosa were microdissected from sections from each colon sample. When the PCR products were separated according to size on polyacrylamide gels, bands of identical size were often observed when DNA extracted from adjacent fragments of mucosa had been used. Different bands were present when the different samples of colon had been studied. Sequencing of the PCR products confirmed that clonally related T cells were present in adjacent areas of mucosa, whereas different clones dominated at distant sites. DNA extracted from cells microdissected from the T cell zone of Peyer's patch was treated identically. The sequences obtained from the Peyer's patch, as expected, were diverse. However, one of the sequences identified was identical to that of one of the clones in the colon, implying that this clone was either trafficking through the Peyer's patch or possibly originated from the Peyer's patch. In this study, we also identified the Peyer's patches as a site of proliferation of CD4+ T cells. No T cell division was observed in the lamina propria. The molecular and immunohistochemical observations together support the hypothesis that the Peyer's patches are a source of mucosal T cells.

Adenocarcinoma↗

A fluid cover medium provides superior morphology and preserves RNA integrity in tissue sections for laser microdissection and pressure catapulting.

Laser microdissection and pressure catapulting has become a powerful tool to obtain homogeneous cell populations from tissue samples in nearly all fields of biomedical research. The isolated cells can be subsequently used for the analysis of proteins, DNA or RNA. However, the method requires physical access to the tissue surface and the sections therefore need to be air-dried and uncovered. The consequence is poor morphology, which severely reduces the potential of the technique, especially in non-homogeneous tissues or tissues with infiltrating immune cells. To overcome this limitation, a fluid cover medium was developed and the effects on frozen and paraffin wax-embedded tissue morphology were evaluated. The cover medium improved the morphology such that it was almost comparable to sections overlaid with glass coverslips. Moreover, the laser microdissection procedure was facilitated, since the medium allowed larger areas of tissues to be laser pressure-catapulted. Neither the isolation of proteins nor the extraction of genomic DNA was adversely affected by the use of the fluid cover medium. No significant differences in RNA quantity and integrity were detected by TaqMan real-time PCR for GAPDH, and microchip electrophoresis, between covered and uncovered tissue sections. In conclusion, this method provides considerably improved morphology for laser microdissection and pressure catapulting techniques without affecting RNA-dependent downstream applications. This not only facilitates established procedures, but will also extend the application to tissues that require superior morphological resolution.

Basal Cell Carcinoma↗

Gene expression analysis of distinct populations of cells isolated from mouse and human inner ear FFPE tissue using laser capture microdissection--a technical report based on preliminary findings.

Laser Capture Microdissection (LCM) allows microscopic procurement of specific cell types from tissue sections that can then be used for gene expression analysis. We first tested this method with sections of adult mouse inner ears and subsequently applied it to human inner ear sections. The morphology of the various cell types within the inner ear is well preserved in formalin fixed paraffin embedded (FFPE) sections, making it easier to identify cell types and their boundaries. Recovery of good quality RNA from FFPE sections can be challenging, however, recent studies in cancer research demonstrated that it is possible to carry out gene expression analysis of FFPE material. Thus, a method developed using mouse FFPE tissue can be applied to human archival temporal bones. This is important because the majority of human temporal bone banks have specimens preserved in formalin and a technique for retrospective analysis of human archival ear tissue is needed. We used mouse FFPE inner ear sections to procure distinct populations of cells from the various functional domains (organ of Corti, spiral ganglion, etc.) by LCM. RNA was extracted from captured cells, amplified, and assessed for quality. Expression of selected genes was tested by RT-PCR. In addition to housekeeping genes, we were able to detect cell type specific markers, such as Myosin 7a, p27(kip1) and neurofilament gene transcripts that confirmed the likely composition of cells in the sample. We also tested the method described above on FFPE sections from human crista ampullaris. These sections were approximately a year old. Populations of cells from the epithelium and stroma were collected and analyzed independently for gene expression. The method described here has potential use in many areas of hearing research. For example, following exposure to noise, ototoxic drugs or age, it would be highly desirable to analyze gene expression profiles of selected populations of cells within the organ of Corti or spiral ganglion cells rather than a mixed population of cells from whole inner ear tissue. Also, this method can be applied for analysis of human archival ear tissue.

Animals↗

Optimal molecular profiling of tissue and tissue components: defining the best processing and microdissection methods for biomedical applications.

Isolation of well-preserved pure cell populations is a prerequisite for sound studies of the molecular basis of any tissue-based biological phenomenon. This article reviews current methods for obtaining anatomically specific signals from molecules isolated from tissues, a basic requirement for productive linking of phenotype and genotype. The quality of samples isolated from tissue and used for molecular analysis is often glossed over or omitted from publications, making interpretation and replication of data difficult or impossible. Fortunately, recently developed techniques allow life scientists to better document and control the quality of samples used for a given assay, creating a foundation for improvement in this area. Tissue processing for molecular studies usually involves some or all of the following steps: tissue collection, gross dissection/identification, fixation, processing/embedding, storage/archiving, sectioning, staining, microdissection/annotation, and pure analyte labeling/identification and quantification. We provide a detailed comparison of some current tissue microdissection technologies, and provide detailed example protocols for tissue component handling upstream and downstream from microdissection. We also discuss some of the physical and chemical issues related to optimal tissue processing, and include methods specific to cytology specimens. We encourage each laboratory to use these as a starting point for optimization of their overall process of moving from collected tissue to high quality, appropriately anatomically tagged scientific results. In optimized protocols is a source of inefficiency in current life science research. Improvement in this area will significantly increase life science quality and productivity. The article is divided into introduction, materials, protocols, and notes sections. Because many protocols are covered in each of these sections, information relating to a single protocol is not contiguous. To get the greatest benefit from this article, readers are advised to read through the entire article first, identify protocols appropriate to their laboratory for each step in their workflow, and then reread entries in each section pertaining to each of these single protocols.

Biomarkers↗

Identification of DNA copy number changes in microdissected serous ovarian cancer tissue using a cDNA microarray platform.

We have established a method for using a cDNA array platform in combination with degenerate oligonucleotide primer polymerase chain reaction (DOP-PCR) and taramide signal amplification (TSA) to identify DNA copy number abnormalities (CNA) in cancer cell lines and cancer cells procured with laser-based microdissection. To determine the sensitivity and specificity for detecting single-copy gain and loss, receiver-operator curve analysis was performed on hybridization signal ratios generated from non-DOP and DOP amplified female and male DNA using a 10,816-element cDNA microarray. A cutoff value of 1.12 and 1.07 average signal ratio for X-chromosomal genes versus autosomal genes provided a sensitivity and specificity of 50 and 79%, respectively, for non-DOP amplified DNA and a sensitivity and specificity of 50 and 72%, respectively, for DOP amplified DNA. We used this approach to identify DNA copy number abnormalities in the ovarian cancer cell line OVCA633, which has previously been shown to have 12p amplification. Transcription profiling of OVCA633 was also performed. Two amplified and overexpressed genes located on 12p11, KRAS2 and LRMP, were identified; these were validated with quantitative real-time PCR. Subsequently, the same approach was used to identify CNAs and gene expression alterations in 11 microdissected serous ovarian adenocarcinoma cases. Validated data revealed amplification and overexpression of ERBB3 and FOS and deletion and underexpression of KRT6 and APXL in more than 50% of the tissue samples. These results show the feasibility of using the cDNA array platform to identify changes in DNA and mRNA copy number simultaneously in microdissected tumor tissues.

Adenocarcinoma↗

Analysis of connective tissues by laser capture microdissection and reverse transcriptase-polymerase chain reaction.

Studies of gene expression from bone, cartilage, and other tissues are complicated by the fact that their RNA, collected and pooled for analysis, often represents a wide variety of composite cells distinct in individual phenotype, age, and state of maturation. Laser capture microdissection (LCM) is a technique that allows specific cells to be isolated according to their phenotype, condition, or other marker from within such heterogeneity. As a result, this approach can yield RNA that is particular to a subset of cells comprising the total cell population of the tissue. This study reports the application of LCM to the gene expression analysis of the cartilaginous epiphyseal growth plate of normal newborn mice. The methodology utilized for this purpose has been coupled with real-time quantitative reverse transcriptase-polymerase chain reaction (QRT-PCR) to quantitate the expression of certain genes involved in growth plate development and calcification. In this paper, the approaches used for isolating and purifying RNA from phenotypically specific chondrocyte populations of the murine growth plate are detailed and illustrate and compare both qualitative and quantitative RT-PCR results. The technique will hopefully serve as a guide for the further analysis of this and other connective tissues by LCM and RT-PCR.

Animals↗

Differential radioactive proteomic analysis of microdissected renal cell carcinoma tissue by 54 cm isoelectric focusing in serial immobilized pH gradient gels.

We present a proof of principle study, using laser microdissection and pressure catapulting (LMPC) of two clinical tissue samples, each containing approximately 3.8 microg renal cell carcinoma protein and 3.8 microg normal kidney protein respectively from one patient. The study involved separate radio-iodination of each sample with both (125)I and (131)I, dual inverse replicate sample loading to high resolution 54 cm "daisy chain" serial immobilized pH gradient isoelectric focusing (IPG-IEF) 2D-PAGE gels, co-electrophoretic separation of cross-labeled proteins from different samples, and precision multiplex differential radioactive imaging to obtain signals specific for each sample coelectrophoresed within single gels but labeled with different isotopes of iodine, providing extremely precise intra-gel estimates of the abundance ratio for protein spots from both samples. Twelve multiplexed analytical radioactive SDS-gels from 4 serial IPG-IEF gels provided 24 individual radioactive images for a comprehensive analytical protein multiplex quantification study. A further 12 SDS gels containing (125)I-labeled sample were coelectrophoresed with preparative protein amounts obtained from whole tissue sections for the mass spectrometric identification of comigrating proteins. This consumed <40% of the (125)I-labeled sample, and <20% of the (131)I-labeled sample from the respective original 3.8 microg samples. Twenty-nine proteins were identified by mass spectrometry with PMF scores >70 that were >2-fold differentially abundant between the samples and t-test probabilities <0.05. We conclude that this combination of technologies provides excellent quality protein multiplex data for the differential abundance analysis of large numbers of proteins from extremely small samples, and is applicable to a broad range of clinical and related applications.

Carcinoma, Renal Cell↗

Expression of NASG gene and its role in human nasopharyngeal homogenous tissue cells.

BACKGROUND: The NASG gene has been confirmed as a tumor-suppressor gene candidate related to nasopharyngeal carcinoma (NPC) by previous studies. We further investigated the expression and the role of NASG in the homogeneous tissue cells by microdissecting the samples of tissue from human NPC, and introduced a new way to study the expression of specific genes in tumor tissue. METHODS: The RNAlater reagent was used to preserve the samples of tissue from the nasopharynx of NPC patients. The samples were microdissected to harvest the homogeneous tissue cells and then total RNA was isolated from them. The antisense RNA (aRNA) was amplified from the total RNA by "in vitro transcription (IVT)". We investigated NASG expression in the homogeneous tumor cells of NPC (22 samples) and compared it with that in the pure epithelial pillar cells of normal nasopharyngeal (10 samples) by semi-quantitative reverse transcription-polymerase chain reaction (sqRT-PCR). RESULTS: The high quality total RNA could be harvested from the microdissected homogeneous tissue cells of the nasopharynx, then sufficient aRNA was derived from it. NASG gene expression was identified using aRNA by sqRT-PCR and showed that there was significant difference between the average value of case groups and that of control group (t = -5.275, df = 30, P < 0.001). The NASG gene in the subgroups WHOII tended to express lower levels than those in the subgroup WHOIII although this difference was not statistically significant (t = -1.584, df = 20, P = 0.129 > 0.05). CONCLUSIONS: Microdissection was an effective method to obtain the homogeneous tissue cells of nasopharyngeal tissue (including the samples of NPC and non-NPC) in our study. Sufficient aRNA from amplifying total RNA could be used in sqRT-PCR to analyse the expression of NASG in the pure tissue cells. NASG should be a tumor-suppression gene candidate regarding to NPC.

Adult↗

[Detection of hepatitis C virus RNA in the tissue of hepatocellular carcinoma by multiple detection system].

OBJECTIVE: Detection of hepatic HCV RNA in hepatocellular carcinoma (HCC) is difficult, since its expression is very low. Several techniques have been established. However, false positive and negative rates still exist. In this study, we applied several conventional and recently developed detection systems to determine the exact effect of HCV RNA on the development of RCC. METHODS: Immunohistochemistry for HCV core antigen and in situ hybridization for HCV RNA had been performed in 39 cases of HCC. IS-RT-PCR was applied for detection and localization of HCV RNA. We extracted microdissected liver tissues to detect HCV RNA separately in cancerous and pericancerous tissues so that the microscopic origin of the amplicons could be controlled. The serological tests including ELISA and RT-PCR for HCV also were performed in all cases. RESULTS: The positive rate by ELISA (30.8%) was not always consistent with that by RT-PCR(43.6%)from serum samples. The latter was much more sensitive and accurate to reflect existence of HCV RNA. Immunohistochemistry showed expression of RCV core antigen in 15 of 39 HCC cases. In pericancerous tissues, the signals were mainly localized in the cytoplasm of hepatocytes. However, translocated expression of HCV core protein was observed in the nuclei of tumor cells, the translocated rate was 73.3%. According to IS-RT-PCR, the positive signals were located mainly in the cytoplasm of cancer cells, the positive rate in HCC was 53.8%, expression of HCV RNA, serum HCV RNA level was detected to be low or negative. This suggested that serum HCV RNA was not always a good reflection of hepatic HCV RNA in HCC tissues. The microdissection RT-PCR described here gave an equal positive rate (59.0%) of HCV RNA in cancerous and pericancerous tissues. CONCLUSIONS: The high detection rate of HCV RNA in HCC specimens even from seronegative patients confirms the important role of HCV RNA during malignant transformation. IS-RT-PCR is a good detection and localization method to visualize HCV RNA in HCC tissues. The microdissection RT-PCR method has a distinct advantage and we anticipate this method will provide an important evidence to determine whether HCV play a direct or indirect role in hepatocarcinogenesis.

Adult↗

Use of laser capture microdissection, cDNA microarrays, and tissue microarrays in advancing our understanding of prostate cancer.

One difficulty in studying epithelial tumors has been the inability to isolate pure samples for DNA and RNA analysis. Prostate cancer, with its infiltrative nature, is particularly challenging. The Combination of several new technologies should help overcome these hurdles. Laser capture microdissection uses a laser beam to achieve transfer of pure cell populations for isolation of DNA, RNA, and protein. High-throughput analysis of these samples can be achieved by using cDNA expression microarrays. High-density tissue microarrays should allow for validation of differentially expressed genes. This review will concentrate on the application of laser capture microdissection, cDNA microarrays, and tissue microarrays in the area of prostate cancer research.

Breast Neoplasms↗

Trichloroethylene exposure and specific somatic mutations in patients with renal cell carcinoma.

BACKGROUND: The development of renal cell carcinoma (RCC) has been associated with both genetic and environmental factors-with mutations in the von Hippel-Lindau (VHL) tumor suppressor gene for clear-cell RCC specifically and with long-term exposure to high doses of trichloroethylene (TRI), an industrially important solvent, for RCC generally. We investigated whether TRI exposure produces RCC through a specific mutational effect on the VHL gene by analyzing VHL sequences in the RCCs of patients exposed to high, cumulative doses of TRI. METHODS: The level of exposure for each of 44 patients with RCC who had known industrial exposure to TRI was classified according to the duration, frequency, and mode of exposure. Samples of normal and cancerous tissues were microdissected from paraffin-embedded tissue. DNA was isolated from these samples, and somatic VHL mutations were identified by polymerase chain reaction analysis, single-strand conformation polymorphism analysis, DNA sequencing, and restriction enzyme digestion. Control samples included RCC DNA from 107 patients without known TRI exposure and lymphocyte DNA from 97 healthy subjects. RESULTS: RCCs of TRI-exposed patients showed somatic VHL mutations in 33 (75%) of 44 cases. The mutations were frequently multiple and accompanied by loss of heterozygosity, and there was an association between the number of mutations and the severity of TRI exposure. We observed a specific mutational hot spot at VHL nucleotide 454 in the RCCs of 13 (39%) of the patients, and this mutation was present in adjacent non-neoplastic kidney parenchyma in four of these patients. The nucleotide 454 mutation was neither detected in any of the RCCs from patients without TRI exposure nor in any of the healthy subjects. CONCLUSION: Our results suggest that RCC in patients with high, cumulative TRI exposure is associated with a unique mutation pattern in the VHL gene.

Adolescent↗

Effect of tissue processing on the ability to recover nucleic acid from specific renal tissue compartments by laser capture microdissection.

The anatomic heterogeneity of the nephron poses obstacles to microdissection of individual renal compartments for analysis of gene expression. We have systematically analyzed the effects of fixation time and nuclear staining on the ability to recover nucleic acid from individual renal compartments by laser capture microdissection (LCM). Formalin-fixed kidney sections from Wistar rats and archival human renal biopsies were used for DNA analysis. From 1 to 10 individual glomeruli and from 1 to 10 individual proximal tubules were captured sequentially onto polymer films. DNA for beta-globin could be amplified by PCR from even a single glomerulus or tubule. Optimal conditions for DNA amplification were brief (1- or 2-day) formalin fixation. Use of nuclear counterstains, including Weigert's hematoxylin, Harris's hematoxylin, Mayer's hematoxylin, or methyl green, did not adversely affect the ability to extract and amplify DNA. For RNA extraction, glomeruli and tubules were microdissected from renal cryostat sections stored for up to 6 months. By RT-PCR, mRNA expression of the glomerulus-specific gene, Wilms' tumor-1, was identified in as few as 5 microdissected glomeruli and of the tubule-specific gene, aminopeptidase N, in as few as 5 microdissected tubules, with no cross-contamination between renal compartments. Our findings indicate that the LCM method can successfully microdissect pure glomerular and tubular tissue compartments and that the optimal fixation and staining conditions are those employed routinely for renal biopsies, namely overnight formalin fixation and hematoxylin counterstain for DNA extraction, and cryostat sectioning with hematoxylin counterstain for RNA extraction. The specificity of LCM coupled with the sensitivity of RT-PCR should prove a powerful tool for the analysis of gene expression in specific renal compartments from archival human renal biopsies.

Animals↗

[BCL-XL expression and mutation in non-Hodgkin's lymphoma].

The study was aimed to investigate the BCL-XL expression and mutation, and its clinical significance in non-Hodgkin's lymphoma. Lymphoma cells were selectively isolated by laser microdissection. BCL-XL expression from lymphoma tissue and microdissected lymphoma cells was measured by using real-time quantitative reverse transcription-polymerase chain reaction. BCL-XL mutation was analyzed by using direct sequencing of PCR products. The results showed that compared to 15 patients with reactive hyperplasia, BCL-XL was overexpressed in follicular lymphoma (n = 30), both in lymphoma tissue (P = 0.0064) and in microdissected lymphoma cells (P < 0.0001). No significant rise of BCL-XL expression was observed in patients with T-cell lymphoma (n = 24) and diffuse large B cell lymphoma (n = 24). In follicular lymphoma, high BCL-XL level was associated with multiple extranodal involvement (P = 0.0004), elevated lactate dehydrogenase level (P = 0.0019), high-risk international prognostic index (P = 0.0013) and a short overall survival time (P = 0.0451). Mutation analysis revealed one synonymous mutation (Codon 109 ACA-->ACC) in one case of follicular lymphoma patient. It is concluded that BCL-XL expression is closely correlated with progress of follicular lymphoma and prognosis of patients with follicular lymphoma. The value of BCL-XL expression as a prognostic marker in follicular lymphoma should be considered.

Base Sequence↗

Microdissection of stained archival tissue.

In many tissues the preinvasive stage of neoplastic progression can be identified histologically as dysplasia or in situ disease. There is much interest in defining the molecular events associated with the early stages of neoplasia. Retrieval of histologically recognisable preinvasive neoplastic tissue uncontaminated by inflammatory or stromal cells is important for genetic studies using polymerase chain reaction (PCR) assay. A novel method for microdissection is described in which 10 microns sections are dewaxed, stained with haematoxylin and eosin, dried, covered with Sellotape, and the tissue cut out using a scalpel blade under direct visual control. The method is quick, eliminates problems of operator tremor, preserves the architecture of the micro-dissected tissue (for photographic documentation) and requires no special equipment. The presence of Sellotape and adhesive in the reaction mixture has no detrimental effect on the ability to extract DNA or to perform PCR.

Breast Neoplasms↗

Identification of multiple mRNA and DNA sequences from small tissue samples isolated by laser-assisted microdissection.

Molecular analysis of small tissue samples has become increasingly important in biomedical studies. Using a laser dissection microscope and modified nucleic acid isolation protocols, we demonstrate that multiple mRNA as well as DNA sequences can be identified from a single-cell sample. In addition, we show that the specificity of procurement of tissue samples is not compromised by smear contamination resulting from scraping of the microtome knife during sectioning of lesions. The procedures described herein thus allow for efficient RT-PCR or PCR analysis of multiple nucleic acid sequences from small tissue samples obtained by laser-assisted microdissection.

Base Sequence↗