[Update on current care guidelines. Examination and treatment of heavy menstrual bleeding].
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Biomedical subjects
Publications and source records attributed to Juha Tapanainen.
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In the present study we determined whether genetic variability in the gene encoding adiponectin is associated with polycystic ovary syndrome (PCOS). Altogether 143 Caucasian women with PCOS and 245 healthy controls were genotyped for two single nucleotide polymorphisms (SNPs) in exon 2 and intron 2 in the adiponectin gene. Single-point analysis was expanded to pair-of-loci haplotype analysis to examine the estimated haplotype frequencies of the two SNPs, of unknown phase, in the PCOS and control groups. Estimated haplotype frequencies were assessed using the maximum-likelihood method, employing an expectation-maximization algorithm. A significantly different allele distribution in intron 2 SNP was observed between the groups, with the T allele being significantly reduced in the PCOS group (25.9%) compared with the control group (32.7%) ( p = 0.047), at an odds ratio of 0.72 (95% confidence interval 0.52-0.99). Otherwise, the allele and genotype distributions in either SNP were not statistically different between the groups. In haplotype estimation analysis, there was a lower frequency of the haplotype T-T in the PCOS group (25.9%) than in the control group (32.7%) ( p = 0.058). We conclude that polymorphisms of the adiponectin gene may be implicated in individual susceptibility to PCOS.
OBJECTIVE: The structure and distribution of type I and type III collagens in the extracellular matrix of malignant endometrium was evaluated for their roles in the development and progression of this neoplasm. STUDY DESIGN: Collagen synthesis and deposition in endometrial adenocarcinomas was determined by immunohistochemical analysis of type I and type III procollagen and verified by computer-assisted morphometry and in situ hybridization. RESULTS: In the stroma of well-differentiated adenocarcinomas increased intracellular collagen synthesis was observed in fibroblastic cells as well as increased extracellular formation of newly synthesized type I and type III procollagen. Collagen maturation was also rapid. In moderately differentiated tumors, destruction and dissolution occurred around invading islets, concomitantly with decreased deposits of both collagens, despite increases in corresponding mRNAs. In poorly differentiated neoplasms, solid epithelial islets coexisted with sparse and distinctly collagen-positive stroma. Poorly differentiated neoplasms also contained tumor cells exhibiting intracellular collagen staining as well as in situ hybridization signals. In highly malignant papillary adenocarcinomas, the tumor cells induced distinctly increased collagen synthesis and deposition of newly synthesized collagen but not the mature cross-linked protein. CONCLUSIONS: In malignancy, compression of surrounding stroma and a fibroproliferative response with increased collagen synthesis and deposition may prevent tumor growth. In more advanced lesions, stromal dissolution may permit tumor spread and in highly malignant lesions an abnormal stroma may promote neoplasm progression.
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