Your browser doesn't support javascript.
loading
Show: 20 | 50 | 100
Results 1 - 6 de 6
Filter
Add more filters










Language
Publication year range
1.
Psychoneuroendocrinology ; 50: 252-63, 2014 Dec.
Article in English | MEDLINE | ID: mdl-25244639

ABSTRACT

Sex differences exist for stress reactivity as well as for the prevalence of depression, which is more frequent in women of reproductive age and often precipitated by stressful events. In animals, the differential effect of stress on male's and female's emotional behavior has been well documented. Crosstalk between the gonadal and stress hormones, in particular between estrogens and glucocorticoids, underlie these sex differences on stress vulnerability. We have previously shown that corticosteroid binding globulin (CBG) deficiency in a mouse model (Cbg k.o.) leads, in males, to an increased despair-like behavior caused by suboptimal corticosterone stress response. Because CBG displays a sexual dimorphism and is regulated by estrogens, we have now investigated whether it plays a role in the sex differences observed for emotional reactivity in mice. By analyzing Cbg k.o. and wild-type (WT) animals of both sexes, we detected sex differences in despair-like behavior in WT mice but not in Cbg k.o. animals. We showed through ovariectomy and estradiol (E2) replacement that E2 levels explain the sex differences found in WT animals. However, the manipulation of E2 levels did not affect the emotional behavior of Cbg k.o. females. As Cbg k.o. males, Cbg k.o. females have markedly reduced corticosterone levels across the circadian cycle and also after stress. Plasma free corticosterone levels in Cbg k.o. mice measured immediately after stress were blunted in both sexes compared to WT mice. A trend for higher mean levels of ACTH in Cbg k.o. mice was found for both sexes. The turnover of a corticosterone bolus was increased in Cbg k.o. Finally, the glucocorticoid-regulated immediate early gene early growth response 1 (Egr1) showed a blunted mRNA expression in the hippocampus of Cbg k.o. mutants while mineralocorticoid and glucocorticoid receptors presented sex differences but equivalent mRNA expression between genotypes. Thus, in our experimental conditions, sex differences for despair-like behavior in WT mice are explained by estrogens levels. Also, in both sexes, the presence of CBG is required to attain optimal glucocorticoid concentrations and normal emotional reactivity, although in females this is apparent only under low E2 concentrations. These findings suggest a complex interaction of CBG and E2 on emotional reactivity in females.


Subject(s)
Corticosterone/blood , Emotions/physiology , Sex Characteristics , Stress, Psychological/physiopathology , Transcortin/metabolism , Animals , Circadian Rhythm/physiology , Disease Models, Animal , Female , Hypothalamo-Hypophyseal System/metabolism , Hypothalamo-Hypophyseal System/physiopathology , Male , Mice , Mice, Knockout , Pituitary-Adrenal System/metabolism , Pituitary-Adrenal System/physiopathology , Stress, Psychological/metabolism , Transcortin/genetics
2.
Braz. j. med. biol. res ; 34(6): 699-709, Jun. 2001. ilus, tab, graf
Article in English | LILACS | ID: lil-285842

ABSTRACT

The anticlotting and antithrombotic activities of heparin, heparan sulfate, low molecular weight heparins, heparin and heparin-like compounds from various sources used in clinical practice or under development are briefly reviewed. Heparin isolated from shrimp mimics the pharmacological activities of low molecular weight heparins. A heparan sulfate from Artemia franciscana and a dermatan sulfate from tuna fish show a potent heparin cofactor II activity. A heparan sulfate derived from bovine pancreas has a potent antithrombotic activity in an arterial and venous thrombosis model with a negligible activity upon the serine proteases of the coagulation cascade. It is suggested that the antithrombotic activity of heparin and other antithrombotic agents is due at least in part to their action on endothelial cells stimulating the synthesis of an antithrombotic heparan sulfate.


Subject(s)
Humans , Animals , Cattle , Anticoagulants/pharmacology , Endothelium, Vascular/cytology , Fibrinolytic Agents/pharmacology , Heparin/pharmacology , Heparitin Sulfate/pharmacology , Anticoagulants/chemistry , Anticoagulants/metabolism , Crustacea , Fibrinolytic Agents/chemistry , Fibrinolytic Agents/metabolism , Glycosaminoglycans/metabolism , Glycosaminoglycans/pharmacology , Heparin, Low-Molecular-Weight/chemistry , Heparin, Low-Molecular-Weight/metabolism , Heparin, Low-Molecular-Weight/pharmacology , Heparin/metabolism , Heparitin Sulfate/biosynthesis , Tuna
3.
Braz J Med Biol Res ; 34(6): 699-709, 2001 Jun.
Article in English | MEDLINE | ID: mdl-11378657

ABSTRACT

The anticlotting and antithrombotic activities of heparin, heparan sulfate, low molecular weight heparins, heparin and heparin-like compounds from various sources used in clinical practice or under development are briefly reviewed. Heparin isolated from shrimp mimics the pharmacological activities of low molecular weight heparins. A heparan sulfate from Artemia franciscana and a dermatan sulfate from tuna fish show a potent heparin cofactor II activity. A heparan sulfate derived from bovine pancreas has a potent antithrombotic activity in an arterial and venous thrombosis model with a negligible activity upon the serine proteases of the coagulation cascade. It is suggested that the antithrombotic activity of heparin and other antithrombotic agents is due at least in part to their action on endothelial cells stimulating the synthesis of an antithrombotic heparan sulfate.


Subject(s)
Anticoagulants/pharmacology , Endothelium, Vascular/drug effects , Fibrinolytic Agents/pharmacology , Heparin/pharmacology , Heparitin Sulfate/pharmacology , Animals , Anticoagulants/chemistry , Anticoagulants/metabolism , Cattle , Crustacea , Endothelium, Vascular/cytology , Fibrinolytic Agents/chemistry , Fibrinolytic Agents/metabolism , Glycosaminoglycans/metabolism , Glycosaminoglycans/pharmacology , Heparin/chemistry , Heparin/metabolism , Heparin, Low-Molecular-Weight/chemistry , Heparin, Low-Molecular-Weight/metabolism , Heparin, Low-Molecular-Weight/pharmacology , Heparitin Sulfate/biosynthesis , Humans , Structure-Activity Relationship , Tuna
4.
Biochim Biophys Acta ; 1475(3): 287-94, 2000 Jul 26.
Article in English | MEDLINE | ID: mdl-10913828

ABSTRACT

Sulfated glycosaminoglycans were isolated from 23 species of 13 phyla of invertebrates and characterized by their electrophoretic migration in three different buffer systems coupled with enzymatic degradation using bacterial heparinase, heparitinases and chondroitinase AC. Heparan sulfate is a ubiquitous compound present in all species analyzed whereas chondroitin sulfate was present in 20 species and heparin-like compounds in 12 species of the invertebrates. The heparin-like compounds were purified from the echinoderm Mellita quinquisperforata (sand dollar) and the crustacean Ucides cordatus (crab) with anticoagulant activities of 60 and 52 IU/mg, respectively. Degradation of these heparins with heparinase produced significant amounts of the trisulfated disaccharide typical of mammalian heparins. This was confirmed by 13C-NMR spectroscopy of the crab heparin. An updated phylogenetic tree of the distribution of sulfated glycosaminoglycans in the animal kingdom is also presented.


Subject(s)
Glycosaminoglycans/analysis , Invertebrates/chemistry , Animals , Anticoagulants/analysis , Chondroitin Lyases , Chondroitin Sulfates/analysis , Crustacea/chemistry , Echinodermata/chemistry , Electrophoresis, Agar Gel , Glycosaminoglycans/chemistry , Glycosaminoglycans/isolation & purification , Heparin/analysis , Heparin Lyase , Heparitin Sulfate/analysis , Magnetic Resonance Spectroscopy , Polysaccharide-Lyases , Sulfates/analysis
5.
Braz J Med Biol Res ; 32(5): 529-38, 1999 May.
Article in English | MEDLINE | ID: mdl-10412563

ABSTRACT

The distribution and structure of heparan sulfate and heparin are briefly reviewed. Heparan sulfate is a ubiquitous compound of animal cells whose structure has been maintained throughout evolution, showing an enormous variability regarding the relative amounts of its disaccharide units. Heparin, on the other hand, is present only in a few tissues and species of the animal kingdom and in the form of granules inside organelles in the cytoplasm of special cells. Thus, the distribution as well as the main structural features of the molecule, including its main disaccharide unit, have been maintained through evolution. These and other studies led to the proposal that heparan sulfate may be involved in the cell-cell recognition phenomena and control of cell growth, whereas heparin may be involved in defense mechanisms against bacteria and other foreign materials. All indications obtained thus far suggest that these molecules perform the same functions in vertebrates and invertebrates.


Subject(s)
Cell Physiological Phenomena , Heparin , Heparitin Sulfate , Animals , Glycosaminoglycans , Heparin/physiology , Heparitin Sulfate/biosynthesis , Heparitin Sulfate/physiology , Invertebrates , Mollusca , Vertebrates
6.
Braz. j. med. biol. res ; 32(5): 529-38, May 1999.
Article in English | LILACS | ID: lil-233471

ABSTRACT

The distribution and structure of heparan sulfate and heparin are briefly reviewed. Heparan sulfate is a ubiquitous compound of animal cells whose structure has been maintained throughout evolution, showing an enormous variability regarding the relative amounts of its disaccharide units. Heparin, on the other hand, is present only in a few tissues and species of the animal kingdom and in the form of granules inside organelles in the cytoplasm of special cells. Thus, the distribution as well as the main structural features of the molecule, including its main disaccharide unit, have been maintained through evolution. These and other studies led to the proposal that heparan sulfate may be involved in the cell-cell recognition phenomena and control of cell growth, whereas heparin may be involved in defense mechanisms against bacteria and other foreign materials. All indications obtained thus far suggest that these molecules perform the same functions in vertebrates and invertebrates


Subject(s)
Animals , Cell Physiological Phenomena , Heparin , Heparitin Sulfate , Glycosaminoglycans , Heparin/physiology , Heparitin Sulfate/biosynthesis , Heparitin Sulfate/physiology , Invertebrates , Mollusca , Vertebrates
SELECTION OF CITATIONS
SEARCH DETAIL
...