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1.
Proc Natl Acad Sci U S A ; 111(46): 16514-9, 2014 Nov 18.
Article in English | MEDLINE | ID: mdl-25368192

ABSTRACT

It recently has been recognized that men develop colonic adenomas and carcinomas at an earlier age and at a higher rate than women. In the Apc(Pirc/+) (Pirc) rat model of early colonic cancer, this sex susceptibility was recapitulated, with male Pirc rats developing twice as many adenomas as females. Analysis of large datasets revealed that the Apc(Min/+) mouse also shows enhanced male susceptibility to adenomagenesis, but only in the colon. In addition, WT mice treated with injections of the carcinogen azoxymethane (AOM) showed increased numbers of colonic adenomas in males. The mechanism underlying these observations was investigated by manipulation of hormonal status. The preponderance of colonic adenomas in the Pirc rat model allowed a statistically significant investigation in vivo of the mechanism of sex hormone action on the development of colonic adenomas. Females depleted of endogenous hormones by ovariectomy did not exhibit a change in prevalence of adenomas, nor was any effect observed with replacement of one or a combination of female hormones. In contrast, depletion of male hormones by orchidectomy (castration) markedly protected the Pirc rat from adenoma development, whereas supplementation with testosterone reversed that effect. These observations were recapitulated in the AOM mouse model. Androgen receptor was undetectable in the colon or adenomas, making it likely that testosterone acts indirectly on the tumor lineage. Our findings suggest that indirect tumor-promoting effects of testosterone likely explain the disparity between the sexes in the development of colonic adenomas.


Subject(s)
Adenoma/epidemiology , Carcinogens/toxicity , Colonic Neoplasms/epidemiology , Dihydrotestosterone/toxicity , Gonadal Steroid Hormones/physiology , Neoplasms, Hormone-Dependent/epidemiology , Adenoma/chemically induced , Adenoma/physiopathology , Adenoma/prevention & control , Adenomatous Polyposis Coli/epidemiology , Adenomatous Polyposis Coli/genetics , Adenomatous Polyposis Coli/physiopathology , Animals , Animals, Congenic , Azoxymethane/toxicity , Colonic Neoplasms/chemically induced , Colonic Neoplasms/physiopathology , Colonic Neoplasms/prevention & control , Disease Models, Animal , Estradiol/administration & dosage , Estradiol/pharmacology , Female , Genes, APC , Hormone Replacement Therapy , Humans , Male , Medroxyprogesterone Acetate/administration & dosage , Medroxyprogesterone Acetate/pharmacology , Mice , Mice, Inbred C57BL , Mutation , Neoplasms, Hormone-Dependent/physiopathology , Neoplasms, Hormone-Dependent/prevention & control , Orchiectomy , Organ Specificity , Ovariectomy , Postmenopause , RNA, Messenger/analysis , Random Allocation , Rats , Rats, Inbred F344 , Rats, Mutant Strains , Receptors, Androgen/biosynthesis , Receptors, Androgen/genetics , Sex Distribution , Species Specificity
3.
G3 (Bethesda) ; 4(6): 1113-21, 2014 Apr 17.
Article in English | MEDLINE | ID: mdl-24747760

ABSTRACT

A central goal in the analysis of complex traits is to identify genes that modify a phenotype. Modifiers of a cancer phenotype may act either intrinsically or extrinsically on the salient cell lineage. Germline point mutagenesis by ethylnitrosourea can provide alleles for a gene of interest that include loss-, gain-, or alteration-of-function. Unlike strain polymorphisms, point mutations with heterozygous quantitative phenotypes are detectable in both essential and nonessential genes and are unlinked from other variants that might confound their identification and analysis. This report analyzes strategies seeking quantitative mutational modifiers of Apc(Min) in the mouse. To identify a quantitative modifier of a phenotype of interest, a cluster of test progeny is needed. The cluster size can be increased as necessary for statistical significance if the founder is a male whose sperm is cryopreserved. A second critical element in this identification is a mapping panel free of polymorphic modifiers of the phenotype, to enable low-resolution mapping followed by targeted resequencing to identify the causative mutation. Here, we describe the development of a panel of six "isogenic mapping partner lines" for C57BL/6J, carrying single-nucleotide markers introduced by mutagenesis. One such derivative, B6.SNVg, shown to be phenotypically neutral in combination with Apc(Min), is an appropriate mapping partner to locate induced mutant modifiers of the Apc(Min) phenotype. The evolved strategy can complement four current major initiatives in the genetic analysis of complex systems: the Genome-wide Association Study; the Collaborative Cross; the Knockout Mouse Project; and The Cancer Genome Atlas.


Subject(s)
Genes, Dominant , Point Mutation , Quantitative Trait, Heritable , Animals , Breeding , Chromosome Mapping , Crosses, Genetic , Female , Gene Frequency , Genes, APC , Genome , Genome-Wide Association Study , Heterozygote , Life Expectancy , Male , Mice , Mice, Knockout , Phenotype , Polymorphism, Single Nucleotide
4.
Genetics ; 176(2): 1237-44, 2007 Jun.
Article in English | MEDLINE | ID: mdl-17435219

ABSTRACT

The Apc(Min) mouse model of colorectal cancer provides a discrete, quantitative measurement of tumor multiplicity, allowing for robust quantitative trait locus analysis. This advantage has previously been used to uncover polymorphic modifiers of the Min phenotype: Mom1, which is partly explained by Pla2g2a; Mom2, a spontaneous mutant modifier; and Mom3, which was discovered in an outbred cross. Here, we describe the localization of a novel modifier, Mom7, to the pericentromeric region of chromosome 18. Mom7 was mapped in crosses involving four inbred strains: C57BL/6J (B6), BTBR/Pas (BTBR), AKR/J (AKR), and A/J. There are at least two distinct alleles of Mom7: the recessive, enhancing BTBR, AKR, and A/J alleles and the dominant, suppressive B6 allele. Homozygosity for the enhancing alleles increases tumor number by approximately threefold in the small intestine on both inbred and F(1) backgrounds. Congenic line analysis has narrowed the Mom7 region to within 7.4 Mb of the centromere, 28 Mb proximal to Apc. Analysis of SNP data from various genotyping projects suggests that the region could be as small as 4.4 Mb and that there may be five or more alleles of Mom7 segregating among the many strains of inbred mice. This has implications for experiments involving Apc(Min) and comparisons between different or mixed genetic backgrounds.


Subject(s)
Chromosome Mapping , Proteins/genetics , Animals , Colorectal Neoplasms/genetics , Crosses, Genetic , Female , Genes, APC , Genes, Recessive , Loss of Heterozygosity , Male , Mice , Mice, Inbred AKR , Mice, Inbred C57BL , Mutation , Polymorphism, Single Nucleotide
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