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Biomedical subjects

A Kar

Publications and source records attributed to A Kar.

At least 37 records · Page 2Linked to original sources

Temperature-induced alteration of the polytene X chromosome structure in male larvae of the strain In(1)BM2 (reinverted) of Drosophila melanogaster.

In Drosophila melanogaster, the polytene X chromosome of male third instar larva appears twice as wide as an unpaired female X chromosome or an autosome. This characteristic morphology of the male X chromosome is correlated with the increased rate of transcription of the sex-linked genes, which ensures gene dosage compensation. In male third instar larvae of the strain In(1)BM2 (reinverted), polytene nuclei manifest unusually puffy X chromosomes at 18 +/- 1 degrees C. Such 'puffy X' chromosomes are pompons, that is, despite the increased width of the chromosome, transcription remains at the wild-type level. This characteristic is a caveat to the invariable correlation between polytene chromosome puffs and transcription, and suggests that the mutant X chromosomes arise due to perturbation of a pathway that controls the structure but not the transcription of the polytene X chromosome. In this report we present evidence that the pompons of In(1)BM2 (reinverted) arise due to spiralization of the male X chromosome, which results in condensing of the chromosome. This unusual structural alteration can be induced only in male larvae of this strain, at the third instar larval stage, through temperature shifts from 24 +/- 1 degrees C to 18 +/- 1 degrees C and during recovery from cold shock. Furthermore, extract from male adult, pupae and third instar larvae can induce chromosome condensation in wild-type larvae in vitro. This new evidence not only explains the absence of correlation between chromosome width and transcription of the pompons of In(1)BM2 (reinverted), but also suggests that the chromosomal rearrangement perturbs a pathway that regulates the condensation of chromosomes.

Animals↗

Withania somnifera and Bauhinia purpurea in the regulation of circulating thyroid hormone concentrations in female mice.

The effects of daily administration of Withania somnifera root extract (1.4 g/kg body wt.) and Bauhinia purpurea bark extract (2.5 mg/kg body wt.) for 20 days on thyroid function in female mice were investigated. While serum triiodothyronine (T3) and thyroxine (T4) concentrations were increased significantly by Bauhinia, Withania could enhance only serum T4 concentration. Both the plant extracts showed an increase in hepatic glucose-6-phosphatase (G-6-Pase) activity and antiperoxidative effects as indicated either by a decrease in hepatic lipid peroxidation (LPO) and/or by an increase in the activity of antioxidant enzyme(s). It appears that these plant extracts are capable of stimulating thyroid function in female mice.

Animals↗

Inhibition of triiodothyronine production by fenugreek seed extract in mice and rats.

The effects of fenugreek seed extract on the alterations in serum thyroid hormone concentrations were studied in adult male mice and rats. Simultaneously, hepatic lipid peroxidation (LPO) and the activities of the antioxidant enzymes, viz superoxide dismutase (SOD) and catalase (CAT) were examined. Administration of methi seed extract (0.11 g kg body wt.(-1) day(-1) for 15 days) to both mice and rats significantly decreases serum triiodothyronine (T(3)) concentration and T(3)/T(4) ratio, but increases thyroxine (T(4)) levels and body weight. While hepatic LPO and CAT activities were not altered, a significant decrease in SOD activity was observed in both the animal models. These findings suggest that fenugreek seed extract induced inhibition in T(4)to T(3) conversion is not peroxidation-mediated and the inhibition in SOD activity could be the result of a decrease in the protein anabolic hormone, T3.

Animals↗

Gugulu (Commiphora mukul) induces triiodothyronine production: possible involvement of lipid peroxidation.

An investigation was made to find out the importance of gugulu (Commiphora mukul) in thyroid function of mice and to reveal the possible involvement of lipid peroxidation (LPO), if any. While no marked change in the concentrations of serum thyroxine (T4) was observed, triiodoth yronine (T3) concentration and T3/T4 ratio were enhanced following the administration of gugulu extract (0.2 g/kg b. wt./d for 15 days). A concomitant decrease in LPO was also noticed in liver, the principal site of T3 generation, suggesting that gugulu induced increase in T3 concentration is LPO mediated.

Animals↗

Preliminary studies on the inorganic constituents of some indigenous hypoglycaemic herbs on oral glucose tolerance test.

Medicinal herbs used in indigenous medicines in crude forms for the management of diabetes mellitus, contain both the organic and inorganic constituents. It is known that certain inorganic mineral elements (potassium, zinc, calcium, traces of chromium, etc.) play an important role in the maintenance of normal glucose-tolerance and in the release of insulin from beta cells of islets of Langerhans. In the present study, 30 hypoglycaemic herbs were selected from indigenous folk medicines, Ayurvedic, Unani and Siddha systems of medicines. Special emphasis was given to their inorganic parts by carefully preparing ash (which contains mainly mineral elements) of the specific parts of the herbal samples under study. Next, the single dose effect on the oral glucose tolerance test (GTT) was studied using previously fasted albino rats. Similar effects were also compared with their organic parts of the concerned herbal samples in the form of 95% ethanolic extracts. In certain inorganic samples, more pronounced action (as glucose tolerance factor) were noticed than their corresponding organic parts.

Administration, Oral↗

Cadmium induced thyroid dysfunction in chicken: hepatic type I iodothyronine 5'-monodeiodinase activity and role of lipid peroxidation.

Administration of cadmium chloride (2.5 mg/kg body weight/day) to chickens daily for 15 days decreased serum triiodothyronine (T3) concentration (by 68.75%) without altering the levels of serum thyroxine (T4). Hepatic 5'-monodeiodinase (5'D-I) and superoxide dismutase (SOD) activities were also decreased (by 90.47% and 20.81% respectively) with a concomitant increase in lipid peroxidation (LPO, by 206.25%). Administration of the antioxidant vitamin E (alpha-tocopherol, 5 mg/kg body weight on alternate days) to cadmium intoxicated chickens restored thyroid function by maintaining normal hepatic 5'D-I activity and serum thyroid hormone concentrations. It also prevented cadmium-induced increase in LPO. We conclude that the metal-induced inhibition in hepatic 5'D-I activity is mediated through LPO.

Animals↗

Ocimum sanctum leaf extract in the regulation of thyroid function in the male mouse.

The effects of Ocimum sanctum leaf extract on the changes in the concentrations of serum triiodothyronine (T3), thyroxine (T4) and serum cholesterol; in the activities of hepatic glucose-6-phosphatase (G-6-P), superoxide dismutase (SOD) and catalase (CAT); hepatic lipid peroxidation (LPO) and on the changes in the weight of the sex organs were investigated. While the plant extract at the dose of 0.5 g kg-1 body wt. for 15 days significantly decreased serum T4 concentrations, hepatic LPO and G-6-P activity, the activities of endogenous antioxidant enzymes, SOD and CAT were increased by the drug. However, no marked changes were observed in serum T3 level, T3/T4 ratio and in the concentration of serum cholesterol. It appears that Ocimum sanctum leaf extract is antithyroidic as well as antioxidative in nature.

Animals↗

Dual role of betel leaf extract on thyroid function in male mice.

The effects of betel leaf extract (0.10, 0.40, 0.80 and 2.0 g kg-1 day-1 for 15 days) on the alterations in thyroid hormone concentrations. lipid peroxidation (LPO) and on the activities of superoxide dismutase (SOD) and catalase (CAT) were investigated in male Swiss mice. Administration of betel leaf extract exhibited a dual role, depending on the different doses. While the lowest dose decreased thyroxine (T4) and increased serum triiodothyronine (T3) concentrations, reverse effects were observed at two higher doses. Higher doses also increased LPO with a concomitant decrease in SOD and CAT activities. However, with the lowest dose most of these effects were reversed. These findings suggest that betel leaf can be both stimulatory and inhibitory to thyroid function, particularly for T3 generation and lipid peroxidation in male mice, depending on the amount consumed.

Animals↗

Changes in thyroid hormone concentrations after administration of ashwagandha root extract to adult male mice.

The importance of ashwagandha root extract in the regulation of thyroid function with special reference to type-I iodothyronine 5'-monodeiodinase activity in mice liver has been investigated. Although the root extract (1.4 g kg(-1)) administered daily for 20 days by gastric intubation increased serum 3,3',5-triiodothyronine (T3) and tetraiodothyronine (T4) concentrations and hepatic glucose-6-phosphatase activity, hepatic iodothyronine 5'-monodeiodinase activity did not change significantly. Furthermore, ashwagandha root extract significantly reduced hepatic lipid peroxidation, whereas the activity of antioxidant enzymes such as superoxide dismutase and catalase were increased. These findings reveal that the ashwagandha root extract stimulates thyroidal activity and also enhances the antiperoxidation of hepatic tissue.

Animals↗

Protective effects of vitamin E against lead-induced deterioration of membrane associated type-I iodothyronine 5'-monodeiodinase (5'D-I) activity in male mice.

The protective role of vitamin E (vit E) on lead-induced thyroid dysfunction with special reference to type-I iodothyronine 5'-monodeiodinase (5'D-I) activity in mice liver was investigated. Daily intraperitoneal (i.p.) injection of lead acetate (0.5 mg/kg body weight) for 30 days significantly decreased serum 3,3',5-triiodothyronine (T3) concentration and hepatic 5'D-I activity. Furthermore, lead significantly increased peroxidative reactions involving membrane components (lipid peroxidation, LPO) while the activities of antioxidant enzymes such as superoxide dismutase (SOD) and catalase (CAT) were decreased in mouse liver. Simultaneous administration of vit E (5 mg/kg body weight) and 0.5 mg/kg body weight of lead restored thyroid function in mice by maintaining normal hepatic 5'D-I activity and serum thyroid hormone concentrations. It also prevented increase in LPO and inhibition of SOD and CAT activities in liver. We suggest that the intact membrane structure is a must for 5'D-I activity and the administration of vit E may prevent the lead induced thyroid dysfunction by maintaining membrane architecture.

Animals↗

Dimethoate inhibits extrathyroidal 5'-monodeiodination of thyroxine to 3,3',5-triiodothyronine in mice: the possible involvement of the lipid peroxidative process.

The effects of daily administration of dimethoate (2, 4 and 8 mg/kg body weight for 30 days) on thyroid function in mice were investigated. While serum triiodothyronine (T3) concentration was decreased significantly, serum thyroxine (T4) was increased in the medium and highest dose treated groups. However, the serum concentration of thyrotropin was unaltered. Hepatic type-I iodothyronine 5'-monodeiodinase (5'-D) enzyme activity was depressed by the two higher doses of dimethoate. These observations suggest that dimethoate-induced alterations in thyroid function are not mediated through the hypophyseal thyroid axis, but through the changes in extrathyroidal conversion of T4 to T3. To correlate the lipid peroxidation (LPO) with 5'-D activity, hepatic LPO and the activity of antioxidant enzymes, i.e. superoxide dismutase (SOD) and catalase (CAT), were studied. The pesticide increased the activity of SOD and CAT along with hepatic lipid peroxidation. The possible involvement of the lipoperoxidative process in the inhibition of 5'-D activity has been suggested.

Animals↗

Evidence for free radical scavenging activity of Ashwagandha root powder in mice.

The effects of Ashwagandha root powder (0.7 and 1.4 g/kg body weight/day), administered for 15 and 30 days, was investigated on lipid peroxidation (LPO), superoxide dismutase (SOD) and catalase (CAT) activities in mice. While 15 days treatment with Ashwagandha root powder did not produce any significant change, 30 days treatment produced a significant decrease in LPO, and an increase in both SOD and CAT. Our findings indicate that Ashwagandha root powder possesses free radical scavenging activity, which may be responsible for its pharmacological effects.

Animals↗