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C Sparrow

Publications and source records attributed to C Sparrow.

6 recordsLinked to original sources

Intestinal absorption of cholesterol is mediated by a saturable, inhibitable transporter.

Although the mechanism by which dietary cholesterol is absorbed from the intestine is poorly understood, it is generally accepted that cholesterol is absorbed from bile acid micelles in the jejunum. Once inside the enterocytes, cholesterol is esterified by the action of acyl-coenzyme A:cholesterol acyltransferase (ACAT), assembled into chylomicrons, and secreted into the lymph. In this work, mechanistic aspects of cholesterol absorption were probed using compounds that block cholesterol absorption in hamsters. Sterol glycoside cholesterol absorption inhibitors, exemplified by L-166,143, (3 beta, 5 alpha,25R)-3-[(4", 6"-bis[2-fluoro-phenylcarbamoyl]-B-D-cellobiosyl)oxy]-spirostan -11-on e, potently blocked absorption of radioactive cholesterol, and the potencies of several analogs correlated with their ability to lower plasma cholesterol. Each molecule of L-166,143 blocked the uptake of 500 molecules of cholesterol, rendering it unlikely that the inhibitor interacts directly with the cholesterol or bile acid. Radiolabeled L-166,143 bound to the mucosa and binding was blocked by active, but not inactive, cholesterol absorption inhibitors. Subtle changes in the structure of sterol glycosides yielded large changes in their ability to block both cholesterol absorption and binding of radiolabeled L-166,143. Large species-to-species variation in potency was also observed. These lines of evidence support the interpretation that dietary cholesterol is absorbed via a specific transporter found in the intestinal mucosa.

Animals↗

A target for cholesterol absorption inhibitors in the enterocyte brush border membrane.

Uptake of cholesterol by the intestinal absorptive epithelium can be selectively blocked by specific small molecules, like the sterol glycoside, L-166,143. Furthermore, (3)H-labeled L-166,143 administered orally to hamsters binds specifically to the intestinal mucosa, suggesting the existence of a cholesterol transporter. Using autoradiography, the binding site of (3)H-L-166,143 in the hamster small intestine was localized to the very apical aspect of the absorptive epithelial cells. Label was competed by non-radioactive L-166,143 and two structurally distinct cholesterol absorption inhibitors, suggesting a common site of action for these compounds. L-166,143 blocked uptake of (3)H-cholesterol into enterocytes in vivo, as demonstrated by autoradiography, suggesting that it inhibits a very early step of cholesterol absorption, incorporation into the brush border membrane. This conclusion was confirmed by studies in which intestinal brush borders were isolated from hamsters dosed with (3)H-cholesterol in the presence or absence of L-166,143. Uptake of (3)H-cholesterol into the membranes was substantially inhibited by the compound. In contrast, an inhibitor of acyl CoA:cholesterol acyltransferase, did not affect uptake of (3)H-cholesterol into the brush border membranes. These results strongly support the existence of a specific transporter that facilitates the movement of cholesterol from bile acid micelles into the brush border membranes of enterocytes.

Animals↗

Treatment of non-small cell lung cancer with ifosfamide (IFO)+ 4'-epiadriamycin (EPI)+platinum vs. IFO+EPI: a GETLAC Study. Grupo de Estudio y Tratamiento Latinoamericano del Cáncer Study.

203 patients with inoperable non-small cell lung cancer (NSCLC) were randomized to receive ifosfamide (IFO) 2.5 g/m2 days 1-2 + epirubicin (EPI) 70 mg/m2 day 1 with cisplatin (DDP) 70 mg/m2 day 1 (arm IEP), or without cisplatin (arm IE). For uroprophylaxis, mesna i.v. 20% of IFO dose, hour 0 and 3, and oral, 40% of IFO dose, hour 6 and 9, days 1-2 was given. Cycles were repeated every 28 days. Four cycles were required for evaluation purposes. After completion of chemotherapy, external beam irradiation 40 Gy was given over 4 weeks for stage III B responders. Most of the patients with stable disease, partial response or complete response (CR) received 6 cycles. The median follow-up of the trial is 30 months. There were no differences in overall response rates: arm IEP: 52% (2% CR); arm IE: 51% (13.5% CR). Median time to progression was 6 months (arm IEP) and 4 months (arm IE) (p = 0.4844). Toxicity ranged from mild to moderate. Nephrotoxicity was not seen; only 6 patients had neurotoxic side effects of short duration. Median survival according to treatment was 12 months for IEP arm (12% at 2 years) and 10 months for IE arm (21% at 2 years). IFO/mesna+EPI or IFO/mesna, EPI plus DDP appeared to be an active and well tolerated combination for the treatment of NSCLC, with a good survival time.

Adult↗