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J L Tsao

Publications and source records attributed to J L Tsao.

14 recordsLinked to original sources

Extensive somatic microsatellite mutations in normal human tissue.

Microsatellite (MS) instability occurs in tumors with DNA mismatch repair (MMR) deficiencies but is typically absent in adjacent normal tissue. However, MS mutations have been observed in normal tissues from rare individuals with congenital MMR deficiencies. Autopsy tissues from a 4-year-old with congenital MMR deficiency (MLH1-/-) were examined for MS mutations. Insertions and deletions were observed in CA-repeat MS loci. Approximately 0.26 to 1.4 mutations per MS locus per cell were estimated to be present in normal heart, lymph node, kidney, and bladder epithelium. These findings illustrate that phenotypically normal MMR-deficient cells commonly accumulate MS mutations. Loss of MMR and the accumulation of some MS mutations may occur early in MMR-deficient tumor progression, even before a gatekeeper mutation.

Adaptor Proteins, Signal Transducing↗

Stepwise deletions of polyA sequences in mismatch repair-deficient colorectal cancers.

PolyA simple repeat sequence deletions are common in tumors with microsatellite instability (MSI+). Such deletions occur one base at a time in DNA mismatch repair (MMR)-deficient yeast suggesting larger deletions in human MSI+ tumors represent multiple sequential stepwise losses. Sum total deletions in four polyA repeats were variable (between -17 to -45 bp) in 20 sporadic MSI+ colorectal cancers. Progressive but less extensive total deletions (maximum of -12 bp) occurred in similar polyA sequences in MMR-deficient mice (mlh1-/-) up to 478 days old. PolyA repeat lengths were relatively stable but already shortened in the MMR-deficient cell line HCT116. A transgene with 26 A's transfected into HCT116 shortened an average of 3.8 bases pairs after 469 days in culture, less than average deletions of BAT25 (-5.3) or BAT26 (-9.0) in MSI+ cancers. These findings further suggest that extensive polyA deletions common in MSI+ tumors likely reflect multiple stepwise smaller deletions that accumulate more than hundreds of divisions after loss of MMR.

Adaptor Proteins, Signal Transducing↗

Mismatch repair deficiency and CpG island hypermethylation in sporadic colon adenocarcinomas.

Many studies have documented CpG island hypermethylation in human colon adenocarcinomas. Several of these reports have additionally found such CpG island hypermethylation to be more extensive in tumors with a mismatch-repair deficiency, as revealed by microsatellite instability (MSI+). Because the source of samples used in these prior studies may not have been representative of the general population, we have reinvestigated this issue using samples from a population-based study. A total of 15 MSI+ tumors were identified, and they were compared with 47 MSI- tumors that were similar in distribution by age, sex, and race. Microdissected tumor and normal adjacent mucosal DNA samples from each patient were subjected to a quantitative DNA methylation analysis at 13 separate CpG dinucleotides located in five CpG islands in four different genes [APC, ESR1 (ER), CDKN2A (p16; promoter and exon 2), and MLH1]. Four of five CpG islands showed a statistically significantly increased level of methylation in tumor tissue compared with adjacent normal mucosa. In contrast to previous studies, we did not find any statistically significant correlations between MSI status and methylation levels of any of the CpG islands other than MLH1. Furthermore, we observed a positive correlation between MLH1 methylation and CDKN2A methylation (P = 0.03), whereas no association was noted between MSI positivity and CDKN2A methylation (P = 0.95). The latter results suggest a possible defect in the protection against CpG island hypermethylation shared between CDKN2A and MLH1 and do not support the notion of a functional association between CDKN2A methylation and the phenotype of mismatch repair deficiency.

Adenocarcinoma↗

Genetic reconstruction of individual colorectal tumor histories.

It is difficult to observe human tumor progression as precursor lesions are systematically removed. Alternatives to direct observations, commonly used to reveal the hidden past of species and populations, are sequence comparisons or molecular clocks. Noncoding microsatellite (MS) loci were employed as molecular tumor clocks in 13 human mutator phenotype (MSI(+)) colorectal tumors. Quantitative analysis revealed that specific patterns of somatic MS mutations accumulate with division after loss of mismatch repair (MMR). Tumors had unique patterns of MS mutation, and, therefore, based on this model, each tumor had its own unique history. Loss of MMR occurred very early relative to terminal clonal expansion, with an estimated average of 2,300 divisions since loss of MMR and 280 divisions since expansion. Contrary to the classical adenoma-cancer sequence, MSI(+) adenomas were nearly as old as cancers (2,000 versus 2,400 divisions since loss of MMR). Negative clinical examinations preceded six tumors, independently documenting an absence of visible precursors during early MSI(+) adenoma or cancer progression. These findings further extend a window beyond visible progression since loss of MMR appears to start a genetic phase involving clone sizes or phenotypes below a threshold of clinical detection. This previously occult prologue before visible neoplasia is longer and therefore likely more important than generally appreciated.

Adenocarcinoma↗

Bladder cancer genotype stability during clinical progression.

Genomic instability is manifested by the accumulation of large numbers of mutations. The rate at which mutations accumulate has been difficult to estimate because serial comparisons are required. For further insight into how quickly mutations accumulate during clinical progression, cell lines sequentially isolated 6 or 11 months apart from two patients with metastatic bladder cancer were compared for loss of heterozygosity (LOH). The genomes were scanned at approximately 200 polymorphic microsatellite loci to increase the resolution and sensitivity for losses. The cell lines from both patients had evidence of genomic instability, with aneuploidy, chromosomal instability, and fractional allelic losses of 0.15 and 0. 48, respectively. However, additional changes were relatively infrequent, with more than 90% identity between the initial and recurrent cell lines. Allelic losses were not randomly scattered, but clustered on specific chromosomes. Therefore, the numbers of loci with further LOH during the clinical progression of some bladder cancers are small relative to the total number of loci with LOH, suggesting that most allelic losses accumulate before clinical presentation.

Alleles↗

Colorectal adenoma and cancer divergence. Evidence of multilineage progression.

Colorectal cancer progression involves changes in phenotype and genotype. Although usually illustrated as a linear process, more complex underlying pathways have not been excluded. The object of this paper is to apply modern quantitative principles of molecular evolution to multistep tumor progression. To reconstruct progression lineages, the genotypes of two adjacent adenoma-cancer pairs were determined by serial dilution and polymerase chain reaction at 28-30 microsatellite (MS) loci and then traced back to their most recent common ancestor. The tumors were mismatch repair deficient, and therefore relatively large numbers of MS mutations should accumulate during progression. As expected, the MS genotypes were similar (correlation coefficients >0.9) between different parts of the same adenoma or cancer, but very different (correlation coefficients <0. 2) between unrelated metachronous adenoma-cancer pairs. Unexpectedly, the genotypes of the adjacent adenoma-cancer pairs were also very different (correlation coefficients of 0.30 and 0.36), consistent with early adenoma-cancer divergence rather than direct linear progression. More than 60% of the divisions occurred after this early adenoma-cancer divergence. Therefore, the tumor phylogenies were not consistent with sequential stepwise selection along a single most "fit" and frequent lineage from adenoma to cancer. Instead, one effective early progression strategy creates and maintains multiple evolving candidate lineages, which are subsequently selected for terminal clonal expansion.

Adenoma↗

Enhanced intestinal adenomatous polyp formation in Pms2-/-;Min mice.

Analysis of two human familial cancer syndromes, hereditary nonpolyposis colorectal cancer and familial adenomatous polyposis, indicates that mutations in either one of four DNA mismatch repair gene homologues or the adenomatous polyposis coli (APC) gene, respectively, are important for the development of colorectal cancer. To further investigate the role of DNA mismatch repair in intestinal tumorigenesis, we generated mice with mutations in both Apc and the DNA mismatch repair gene, Pms2. Whereas Pms2-deficient mice do not develop intestinal tumors, mice deficient in Pms2 and heterozygous for Min, an allele of Apc, develop approximately three times the number of small intestinal adenomas and four times the number of colon adenomas relative to Min and Pms2+/-;Min mice. Although Pms2 deficiency clearly increases adenoma formation in the Min background, histological analysis indicated no clear evidence for progression to carcinoma.

Adenoma↗

Tracing cell fates in human colorectal tumors from somatic microsatellite mutations: evidence of adenomas with stem cell architecture.

Occult aspects of tumor proliferation are likely recorded genetically as their microsatellite (MS) loci become polymorphic. However, MS mutations generated by division may also be eliminated with death as noncoding MS loci lack selective value. Therefore, highly polymorphic MS loci cannot exist unless mutation rates are high, or unless mutation losses are inherently minimized. Mutations accumulate differently when cell fates are determined intrinsically before or extrinsically after division. Stem cell (asymmetrical division as in intestinal crypts) and random (asymmetrical and symmetrical division) proliferation, respectively, represent simulated cell fates determined before or after division. Whereas mutations regardless of selection systematically persist once inherited with stem cell proliferation, mutations are eliminated by the symmetrical losses of both daughter cells with random proliferation. Therefore, greater genetic diversity or MS variance accumulate with stem cell compared with random proliferation. MS loci in normal murine intestinal mucosa and xenografts of cancer cell lines accumulated mutations, respectively, consistent with stem cell and random proliferation. Tumors from patients with hereditary nonpolyposis colorectal cancer (HNPCC) demonstrated polymorphic MS loci. Overall, three of five adenomas and one of six cancers exhibited high MS variances. Assuming mutation rates are not significantly greater in adenomas than in cancers, these studies suggest the stem cell proliferation and hierarchy of normal intestines persists in many HNPCC adenomas and some cancers. An adenoma stem cell architecture can explain the complex polymorphic MS loci observed in HNPCC adenomas and account for many adenoma features. In contrast, cancers may lose intrinsic control of cell fate. These studies illustrate a feasible phylogenetic approach to unravel and describe occult aspects of human tumor proliferation. The switch from predominantly stem cell to random proliferation may be a critical and defining characteristic of malignancy.

Adenoma↗

Tumour susceptibility and spontaneous mutation in mice deficient in Mlh1, Pms1 and Pms2 DNA mismatch repair.

Germline mutations in the human MSH2, MLH1, PMS2 and PMS1 DNA mismatch repair (MMR) gene homologues appear to be responsible for most cases of hereditary non-polyposis colorectal cancer (HNPCC; refs 1-5). An important role for DNA replication errors in colorectal tumorigenesis has been suggested by the finding of frequent alterations in the length of specific mononucleotide tracts within genes controlling cell growth, including TGF-beta receptor type II (ref. 6), BAX (ref. 7) and APC (ref. 8). A broader role for MMR deficiency in human tumorigenesis is implicated by microsatellite instability in a fraction of sporadic tumours, including gastric, endometrial and colorectal malignancies. To better define the role of individual MMR genes in cancer susceptibility and MMR functions, we have generated mice deficient for the murine homologues of the human genes MLH1, PMS1 and PMS2. Surprisingly, we find that these mice show different tumour susceptibilities, most notably, to intestinal adenomas and adenocarcinomas, and different mutational spectra. Our results suggest that a general increase in replication errors may not be sufficient for intestinal tumour formation and that these genes share overlapping, but not identical functions.

Adaptor Proteins, Signal Transducing↗

Intestinal stem cell division and genetic diversity. A computer and experimental analysis.

Somatic mutations are expected to arise with age. This process is accelerated in mice lacking the DNA mismatch repair gene Pms2. The distributions of microsatellite alleles present in small patches of normal Pms2 -/- intestines revealed a general increase in genetic diversity or the number of mutations with age. However, the patterns were complex with different distributions and variances present within a single mouse. Computer simulations indicate that the experimental data are consistent with mutation rates between 0.0020 and 0.0025 mutations per division, nonrandom cell death, and an effective population size of 20 or fewer cells. Small numbers of cells exacerbate the random accumulation of mutations expected of a stochastic mutation process. The computer simulations and experimental data are consistent with known patterns of intestinal development and renewal by small numbers of stem cells and demonstrate relatively high mutation rates in histologically normal epithelium. These findings provide background for the analysis of microsatellite mutations in normal and tumor tissue lacking mismatch repair and further support the hypothesis that microsatellite loci can function as molecular tumor clocks.

Adenosine Triphosphatases↗

Early mutational activation of the c-Ki-ras oncogene in endometrial carcinoma.

Endometrial carcinoma is theorized to arise from a series of somatic mutations which alter benign endometrium to progressively less differentiated histological lesions. One genetic alteration implicated in the carcinogenesis of endometrial cancer is the mutational activation of the c-Ki-ras oncogene. This study characterizes the frequency and the topographical distribution of activated c-Ki-ras alleles in endometrial carcinoma. Sixty formalin-fixed, paraffin-embedded endometrial cancer specimens were screened for point mutations at codons 12 and 13 of the c-Ki-ras oncogene by polymerase chain reaction and allelic specific oligomer dot-blot hybridization. c-Ki-ras mutations were identified in nine of 60 (15%) tumor specimens. Five cases resulted in G to A transitions, three in G to T transversions, and one in a G to C transversion. These nine mutant tumors were analyzed by selective UV radiation fractionation and polymerase chain reaction for the presence of activated c-Ki-ras alleles in cell populations of various histological phenotype. In eight tumors, c-Ki-ras mutations were uniformly present in the carcinoma cells. One tumor exhibited heterogeneous mutational activation, with mutant c-Ki-ras alleles detected in only grade 2 carcinoma cells but not grade 1 carcinoma cells. c-Ki-ras mutations were present in adjacent hyperplasia with atypia but absent from hyperplasia without atypia. With rare exception, c-Ki-ras activation appears to be an early oncogenic event since it is homogeneously present in premalignant and malignant endometrial tissues.

Adenocarcinoma↗

Internally standardized amino acid analysis for determining peptide/carrier protein coupling ratio.

A method based on amino acid analysis has been developed for monitoring the covalent conjugation of synthetic peptide haptens to carrier proteins. The marker amino acid, alpha-aminobutyric acid, is included in the sequence during peptide synthesis. Following reaction, the carrier protein-conjugate is freed of excess peptide by two successive rounds of gel filtration chromatography. Amino acid analysis of a hydrolysate of the conjugate allows the calculation of the coupling ratio of the peptide to the carrier protein. Two typical procedures for conjugation, carbodiimide cross-linking and cysteine-thiol reaction with maleimidyl-proteins, have been evaluated.

Amino Acid Sequence↗

A 3 kb sequence from the mouse cellular retinoic-acid-binding protein gene upstream region mediates spatial and temporal LacZ expression in transgenic mouse embryos.

A 3233 base pair (bp) sequence of the 5'-flanking region of the mouse cellular retinoic-acid-binding protein (CRABP) gene is determined. From this region, a 3 kb fragment located 150 bp upstream from the transcriptional initiation site is isolated and fused to a LacZ reporter sequence. Transgenic mouse embryos of this fusion gene show spatially and temporally specific expression of LacZ protein and the expression of this fusion gene at the RNA level is confirmed by RNAase protection assays, which detect specific fusion transcripts in RNA samples from tissues of transgenic mouse embryos. In contrast, transgenic mouse embryos of a shorter fusion gene containing only 583 bp from the same upstream region of the mouse CRABP gene fused to the same reporter sequence show no LacZ activities. Thus, it is concluded that the 3 kb sequence, but not the 583 bp sequence, of the mouse CRABP gene contains information for its temporally and spatially specific expression in mouse embryos.

Animals↗

Molecular cloning and transcriptional mapping of the mouse cellular retinoic acid-binding protein gene.

The gene encoding the mouse cellular retinoic acid-binding protein (CRABP) has been isolated from a mouse genomic library and its structure has been determined. This gene spans approximately 10.5 kb and consists of four exons encoding 24, 59, 38, and 16 amino acid residues, respectively. This gene structure is very similar to the structures of other related genes belonging to the same protein family such as the human cellular retinol-binding protein, the rat cellular retinol-binding protein II, the rat fatty acid-binding protein, and the mouse adipocyte P2 protein. The site for transcription initiation has been mapped to the 93rd nucleotide upstream from the translation initiation codon ATG using both primer extension and RNase protection assays. From the DNA sequence, the promoter of the CRABP gene resembles those found in the "housekeeping" genes in that it is very G/C rich, lacks a TATA box, and contains multiple copies of the sequence GGGCGG. The deduced amino acid sequence of the translated region is identical to the amino acid sequence of the known bovine CRABP, and the DNA sequence of the transcribed region from the mouse gene shows approximately 78% homology to that of the bovine cDNA.

Amino Acid Sequence↗