MATERIALS AND METHODS
Materials
Animals
Total tissue cholesterol input

Tissue uptake of dietary cholesterol

Tissue isolation and processing
Determination of body water (precursor) 2H enrichment
GC/MS analyses
Cholesterol quantifications
Calculations for 2H cholesterol enrichment
Calculations for tissue cholesterol uptake and biosynthesis rates
Then, the rate of cholesterol biosynthesis was calculated based on the % uptake of systemic cholesterol and the data from a 1-week 2H2O experiment. The following equation was used:
Statistics
RESULTS
Total tissue cholesterol input
Line # | Experimental Data/Calculated Values | Serum | Retina | Brain |
---|---|---|---|---|
Mice exposure to dietary [2H7]cholesterol | ||||
1 | [2H7]cholesterol, % | 36.5 ± 1.1 | 1.3 ± 0.1 | 0.09 ± 0.01 |
2 | Cholesterol uptake per week, % | ND | 3.6 | 0.2 |
Mice exposure to deuterated water | ||||
3 | 2H cholesterol enrichment originating from uptake, % | ND | 0.29 | 0.02 |
4 | Total 2H cholesterol enrichment, % | 8.1 ± 1.0 | 9.7 ± 0.9 | 6.3 ± 0.7 |
5 | Cholesterol biosynthesis per week, % | ND | 9.4 | 6.3 |
Summary data | ||||
6 | Cholesterol content, mg/g wet tissue | ND | 1.13 ± 0.08 | 13 ± 1 |
7 | Absolute rate of cholesterol input, ¼g/g wet tissue • day | ND | 21 | 121 |
8 | Local biosynthesis | ND | 15 | 117 |
9 | Uptake from blood | ND | 6 | 4 |
10 | Relative rate of cholesterol input, %/week | ND | 13.0 (100%) | 6.5 (100%) |
11 | Local biosynthesis | ND | 9.4 (72%) | 6.3 (97%) |
12 | Uptake from blood | ND | 3.6 (28%) | 0.2 (3%) |
Tissue uptake of dietary cholesterol
Cholesterol uptake and biosynthesis rates
Cholesterol turnover times
DISCUSSION
- Klein R.
- Myers C.E.
- Buitendijk G.H.
- Rochtchina E.
- Gao X.
- de Jong P.T.
- Sivakumaran T.A.
- Burlutsky G.
- McKean-Cowdin R.
- Hofman A.
- et al.
- Chen W.
- Stambolian D.
- Edwards A.O.
- Branham K.E.
- Othman M.
- Jakobsdottir J.
- Tosakulwong N.
- Pericak-Vance M.A.
- Campochiaro P.A.
- Klein M.L.
- Complications of Age-Related Macular Degeneration Prevention Trial Research Group
- et al.
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Article info
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Footnotes
This work was supported in part by National Institutes of Health Grant R01 EY018383 (I.A.P.), a Fellowship for Summer Undergraduate Research from the American Society for Pharmacology and Experimental Therapeutics (J.B.L.), an unrestricted grant from Research to Prevent Blindness, Core Facility P30 Grant EY11373, and grants from the Swedish Research Council and Swedish Brain Power (I.B.). I.A.P. is a Carl F. Asseff Professor of Ophthalmology. Thecontents are solely the responsibility of the authors and do not necessarily represent the official views of the National Institutes of Health .
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