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Biomedical subjects

W Chavin

Publications and source records attributed to W Chavin.

At least 37 records · Page 2Linked to original sources

Mitochondrial redox components of human adrenocortical steroid hydroxylases under physiological conditions and in focal hyperplasia of the zone fasciculata.

Cytochrome P450, aa3 and adrenodoxin were characterized in human adrenocortical mitochondria. Human adrenodoxin demonstrated a distinctive electron paramagnetic spectrum exhibiting anisotropic g values indicative of axial symmetry. The observed g values were (formula: see text). Adrenodoxin content of crude human adrenal mitochondria was 0.65 +/- 0.01 nmol/mg of mitochondrial protein and was in a stoichiometric 1:1 molar ration with cytochrome P450. Mitochondrial cytochrome P450 (0.62 nmol/mg mitochondrial protein) and aa3 (0.19 nmol/mg mitochondrial protein) levels were determined in a normal human adrenal A patient receiving ACTH (3d) demonstrated a doubling of P450 content, while cytochrome aa3 levels remained unchanged. ACTH plus hydrocortisone therapy (3d) increased both P450 and aa3 levels, however 24 h hydrocortisone therapy alone was without effect. An area of focal hyperplasia of the zona fasciculata also demonstrated P450 and aa3 levels elevated above the contralateral and normal human adrenal levels. The possibility of hormonal control of human adrenal mitochondrial cytochromes P450 and aa3 is suggested.

Adrenal Cortex↗

In vitro temporal cAMP and cortisol responses to ACTH by the normal human adrenal gland.

The in vitro temporal cAMP and cortisol responses of normal human adrenocortical tissue to ACTH were evaluated. ACTH stimulated rapid increased in cAMP levels and cortisol output, however, significantly increased cAMP levels preceded output only at the higher ACTH doses studied. Cortisol output plateaued with ACTH (10--100 MIU/ml) while cAMP levels continued to increase. The findings indicate that the unitary role of cAMP as the second messenger of ACTH action in the human adrenal cannot be assumed from data derived from lower forms and that the mechanism of action of ACTH in the human may be modulated by additional factors.

Adrenal Glands↗

In vitro responses of focal hyperplastic tissue of the human adrenal zona fasciculata to ACTH.

The temporal cAMP, cortisol and aldosterone responses to ACTH of focal hyperplasia of the zona fasciculata and of normal human adrenocortical tissue were investigated. ACTH significantly increased cAMP levels (1 min) and cortisol output (2 min) in normal adrenal tissue but not in hyperplastic tissue. However, following ACTH treatment cortisol and aldosterone production were depressed in the abnormal adrenal tissue below the untreated or the ACTH stimulated normal adrenal tissue. In addition, basal cortisol and aldosterone production of the hyperplastic adrenal tissue was elevated above that of the normal adrenal tissue. These findings suggest that the cAMP second messenger concept may be only one of several mechanisms in the modulation of human adrenocortical function.

Adrenal Cortex↗

In vitro induction of tyrosinase activity in goldfish (Carassius auratus L.) integument by ACTH and dibutyryl-cAMP.

Tyrosinase was first detected in melanoblasts by the DOPA-oxidase reaction in the presence of catalase in explants of goldfish integument after 12 hr culture with either ACTH (1IU/ml) or DB-cAMP (0.1mM). Melanin did not appear in the new melanocytes until 24 hr. The data indicate that the release of cAMP within the melanoblast in response to ACTH treatment is rapid and the tyrosinase in the melanoblast is released from inhibition and/or activated at least 12 hr prior to melanization of premelanosomes.

Adrenocorticotropic Hormone↗

Cytochemical characterization of goldfish (Carassius auratus L.) dermis with special reference to the pigment cells.

The dermal cells in grey, xanthic, and white goldfish integuments were cytochemically characterized for the following enzymatic activities: tyrosinase, DOPA-oxidase, cytochrome oxidase, monoamine oxidase, peroxidase, non-specific esterase, cholinesterase, NAD-diaphorase, NADP-diaphorase, aryl sulfatase, nucleotide phosphodiesterase, beta-glucuronidase, acid phosphatase, alkaline phosphatase, adenosine triphosphatase, thiamine pyrophosphatase, glucose-6-phosphatase, aldolase, as well as succinate, malate, isocitrate, glutamate, glucose-6-phosphate, 6-phosphogluconate, alpha-glycerophosphate, alcohol, lactate, and beta-hydroxybutyrate dehydrogenases. It was found that the epidermis was a significant barrier to the access of cytochemical reaction substrates. Removal of the epidermal barrier provided dermal cell localizations of enzymatic activities which were reproducible. Further, alterations in reaction times and temperatures from the mammalian methodology provided conditions fe various integumental cells were compared for possible interrelationships. The basic foundations for future work with the dermis of poikilothermic vertebrates on an experimental basis were established. In addition, a previously undescribed non-pigmented dermal cell, the "x"-cell, was found to have enzymatic characteristics similar to both melanophores and lipophores. The "x"-cell may be the common precursor of both types of pigment cells.

Animals↗

Ultrastructure of the integumental melanophores of the coelacanth, Latimeria chalumnae.

The integumental melanophores of Latimeria chalumnae were studied by light and electron microscopy. The epidermal melanophore located in the mid-epidermis consists of a round perikaryon with long slender dendrites extending into epidermal cells and intercellular spaces. The dermal melanophores occur in the loose dermal matrix underlying a relatively thick layer of collagen fibers. The dermal melanophores are usually flattened and their dendrites lie parallel to the collagen layer. Both epidermal and dermal melanophores contain oval, electron-opaque melanosomes, large mitochondria, agranular vacuoles of endoplasmic reticulum and microtubules. Microfilaments and RNP particles are less conspicuous. While the peripheral cytoplasm of both dermal and epidermal melanophores is filled with a large number of melanosomes, the perinuclear cytoplasm of many dermal melanophores is occupied by premelanosomes in various stages of differentiation, and that of the epidermal melanophore contains numerous large vacuoles. Despite the scarcity of epidermal melanophores, the epidermal melanin unit is present in the form of melanosome complexes. In addition, the melanophores of Latimeria possess the basic characteristics common to other vertebrates, but they more closely resemble those of lungfish and other aquatic vertebrates.

Animals↗