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PubMed · 6922522

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H Ballard. 1982-09-15. No control.. https://pubmed.ncbi.nlm.nih.gov/6922522/

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Expression of platelet-derived growth factor B-chain and the platelet-derived growth factor receptor beta subunit in human breast tissue and breast carcinoma.

Breast carcinomas are known to express platelet-derived growth factor (PDGF), a known connective tissue mitogen. In order to further evaluate the potential role of PDGF in these epithelial tumors, expression of the PDGF B chain (PDGF-B) and the PDGF receptor beta subunit (PDGFR) was analyzed by immunocytochemistry and in situ hybridization in 49 benign and malignant breast tissues. PDGF-B expression was analyzed with respect to the expression of the proliferating cell nuclear antigen, as well as tumor grade, p53 overexpression, estrogen receptor, progesterone receptor, and c-erbB-2 expression. Expression of PDGF-B protein and mRNA was restricted to the breast epithelium and tumor cells except for scattered tissue macrophages. A strong correlation was found between increasing proliferating cell nuclear antigen indices and PDGF-B expression in both nonmalignant (P = 0.01) and malignant (P = 0.02) breast specimens. Decreased PDGF-B expression was found in postmenopausal atrophic breast tissue compared with normal breast tissue (P = 0.04). Within the subgroup of malignant tumors, no correlations were found between PDGF-B expression and tumor grade or p53 overexpression. In 16 of the malignant tumors evaluated for estrogen/progesterone receptor status and c-erbB-2 overexpression, no correlations with PDGF-B expression were found. Membranous PDGFR immunostaining was present within the fibroblastic cell population in all of the tissues examined but not in the nonmalignant breast epithelium. Six malignant specimens had detectable cytoplasmic expression of PDGFR. There was no correlation between this PDGFR expression and proliferating cell nuclear antigen indices, but a correlation was noted between increasing estrogen receptor expression and PDGFR cytoplasmic expression (P = 0.04). The results support a paracrine role for PDGF-B in malignant and benign breast epithelial cell proliferation.

Atrophy

Clinical/metabolic correlations in multiple system atrophy. A fludeoxyglucose F 18 positron emission tomographic study.

OBJECTIVE: To evaluate the regional cerebral metabolic involvement; the relationships among regional brain metabolism, clinical features, and quantitative measures of disease severity; and the patterns of brain involvement that can be related to the different types of onset: striatonigral degeneration vs olivopontocerebellar atrophy. DESIGN: Fludeoxyglucose F 18 positron emission tomography (PET) studies performed in patients with multiple system atrophy (MSA) were evaluated for their clinical features at the onset of the disease and at the time of the PET study. CASES: Seventeen patients diagnosed as having probable MSA and 10 age-matched controls. RESULTS: The hypometabolism in the putamen-pallidum complex and in the cerebellum was the best discriminant for disease classification. The efficacy of levodopa treatment was positively correlated with the metabolic activity of the putamen-pallidum complex. The patients with olivopontocerebellar atrophy type (N = 8) had a prevalent hypometabolism in the cerebellum, while the patients with striatonigral degeneration type (N = 9) had a prevalent impairment in the pallidum-putamen complex. We demonstrated a negative correlation between (1) severity of parkinsonism and metabolic values of putamen and caudate; (2) severity of cerebellar signs and metabolism in the cerebellum; and (3) autonomic dysfunction and metabolic activity in the thalamus, frontal, and temporal regions, bilaterally. CONCLUSIONS: These findings support the selective metabolic reduction in the putamen and cerebellum as a marker of MSA. The clinical/metabolic correlations, demonstrating the expected dependence of extrapyramidal and cerebellar signs by dysfunction of basal ganglia and cerebellum, also support a possible involvement of central nervous system structures in autonomic control.

Atrophy