A Model for Fatty Acid Transport into the Brain (original) (raw)
References
Black, P. N., & DiRusso, C. C. (2003). Transmembrane movement of exogenous long-chain fatty acids: Proteins, enzymes, and vectorial esterification. Microbiology and Molecular Biology Reviews, 67, 454–472. ArticlePubMedCAS Google Scholar
Boylan, J. G., & Hamilton, J. A. (1992). Interactions of acyl-coenzyme A with phosphatidylcholine bilayers and serum albumin. Biochemistry, 31, 557–567. ArticlePubMedCAS Google Scholar
Drewes, L. R. (2001). Molecular architecture of the brain microvasculature: Perspective on blood–brain transport. Journal of Molecular Neuroscience, 16, 93–98, discussion 151–157. ArticlePubMedCAS Google Scholar
Edmond, J. (2001). Essential polyunsaturated fatty acids and the barrier to the brain: The components of a model for transport. Journal of Molecular Neuroscience, 16, 181–193, discussion 215-121. ArticlePubMedCAS Google Scholar
Fischer, H., Gottschlich, R., & Seelig, A. (1998). Blood–brain barrier permeation: Molecular parameters governing passive diffusion. Journal of Membrane Biology, 165, 201–211. ArticlePubMedCAS Google Scholar
Gnaedinger, J. M., Miller, J. C., Latker, C. H., & Rapoport, S. I. (1988). Cerebral metabolism of plasma [14C]palmitate in awake, adult rat: Subcellular localization. Neurochemical Research, 13, 21–29. ArticlePubMedCAS Google Scholar
Guo, W., Huang, N., Cai, J., Xie, W., & Hamilton, J. A. (2006). Fatty acid transport and metabolism in HepG2 cells. American Journal of Physiology: Gastrointestinal and Liver Physiology, 290, G528–G534. ArticlePubMedCAS Google Scholar
Hajri, T., & Abumrad, N. A. (2002). Fatty acid transport across membranes: Relevance to nutrition and metabolic pathology. Annual Review of Nutrition, 22, 383–415. ArticlePubMedCAS Google Scholar
Hamilton, J. A. (2004). Fatty acid interactions with proteins: What X-ray crystal structures tell us. Progress in Lipid Research, 43, 177–199. Google Scholar
Hamilton, J. A., Johnson, R. A., Corkey, B., & Kamp, F. (2001). Fatty acid transport: The diffusion mechanism in model and biological membranes. Journal of molecular neuroscience, 16, 99–108, discussion 151–107. ArticlePubMedCAS Google Scholar
Kamp, F., Guo, W., Souto, R., Pilch, P. F., Corkey, B. E., & Hamilton, J. A. (2003). Rapid flip-flop of oleic acid across the plasma membrane of adipocytes. Journal of Biological Chemistry, 278, 7988–7995. ArticlePubMedCAS Google Scholar
Kamp, F., & Hamilton, J. A. (1992). pH gradients across phospholipid membranes caused by fast flip-flop of un-ionized fatty acids. Proceedings of the National Academy of Sciences of the United States of America, 89, 11367–11370. ArticlePubMedCAS Google Scholar
Kamp, F., Hamilton, J. A., Kamp, F., Westerhoff, H. V., & Hamilton, J. A. (1993). Movement of fatty acids, fatty acid analogues, and bile acids across phospholipid bilayers. Biochemistry, 32, 11074–11086. ArticlePubMedCAS Google Scholar
Kamp, F., Zakim, D., Zhang, F., Noy, N., & Hamilton, J. A. (1995). Fatty acid flip-flop in phospholipid bilayers is extremely fast. Biochemistry, 34, 11928–11937. ArticlePubMedCAS Google Scholar
Lam, T. K., Schwartz, G. J., & Rossetti, L. (2005). Hypothalamic sensing of fatty acids. Nature Neuroscience, 8, 579–584. ArticlePubMedCAS Google Scholar
Lewis, S. E., Listenberger, L. L., Ory, D. S., & Schaffer, J. E. (2001). Membrane topology of the murine fatty acid transport protein 1. Journal of Biological Chemistry, 276, 37042–37050. ArticlePubMedCAS Google Scholar
Marszalek, J. R., & Lodish, H. F. (2005). Docosahexaenoic acid, fatty acid-interacting proteins, and neuronal function: breastmilk and fish are good for you. Annual Review of Cell and Developmental Biology, 21, 633–657. ArticlePubMedCAS Google Scholar
Mashek, D. G., Bornfeldt, K. E., Coleman, R. A., Berger, J., Bernlohr, D. A., Black, P., et al. (2004). Revised nomenclature for the mammalian long-chain acyl-CoA synthetase gene family. Journal of Lipid Research, 45, 1958–1961. ArticlePubMedCAS Google Scholar
Mashek, D. G., & Coleman, R. A. (2006). Cellular fatty acid uptake: The contribution of metabolism. Current Opinion in Lipidology, 17, 274–278. ArticlePubMedCAS Google Scholar
Massey, J. B., Bick, D. H., & Pownall, H. J. (1997). Spontaneous transfer of monoacyl amphiphiles between lipid and protein surfaces. Biophysical Journal, 72, 1732–1743. ArticlePubMedCAS Google Scholar
Meshulam, T., Simard, J. R., Wharton, J., Hamilton, J. A., & Pilch, P. F. (2006). Role of caveolin-1 and cholesterol in transmembrane fatty acid movement. Biochemistry, 45, 2882–2893. ArticlePubMedCAS Google Scholar
Miller, J. C., Gnaedinger, J. M., & Rapoport, S. I. (1987). Utilization of plasma fatty acid in rat brain: Distribution of [14C]palmitate between oxidative and synthetic pathways. Journal of Neurochemistry, 49, 1507–1514. ArticlePubMedCAS Google Scholar
Pardridge, W. M., & Mietus, L. J. (1980). Palmitate and cholesterol transport through the blood–brain barrier. Journal of Neurochemistry, 34, 463–466. ArticlePubMedCAS Google Scholar
Pohl, J., Ring, A., Hermann, T., & Stremmel, W. (2004). Role of FATP in parenchymal cell fatty acid uptake. Biochimica and Biophysica Acta. Molecular and Cell Biology of Lipids, 1686, 1–6. ArticleCAS Google Scholar
Purdon, D., Arai, T., & Rapoport, S. (1997). No evidence for direct incorporation of esterified palmitic acid from plasma into brain lipids of awake adult rat. Journal of Lipid Research, 38, 526–530. PubMedCAS Google Scholar
Purdon, A. D., Rosenberger, T. A., Shetty, H. U., & Rapoport, S. I. (2002). Energy consumption by phospholipid metabolism in mammalian brain. Neurochemical Research, 27, 1641–1647. ArticlePubMedCAS Google Scholar
Rapoport, S. I. (2001). In vivo fatty acid incorporation into brain phosholipids in relation to plasma availability, signal transduction and membrane remodeling. Journal of Molecular Neuroscience, 16, 243–261, discussion 279–284. ArticlePubMedCAS Google Scholar
Rapoport, S. I., Purdon, D., Shetty, H. U., Grange, E., Smith, Q., Jones, C., et al. (1997). In vivo imaging of fatty acid incorporation into brain to examine signal transduction and neuroplasticity involving phospholipids. Annals of the New York Academy of Sciences, 820, 56–73, discussion 73–74. ArticlePubMedCAS Google Scholar
Schmelter, T., Trigatti, B. L., Gerber, G. E., & Mangroo, D. (2004). Biochemical demonstration of the involvement of fatty acyl-CoA synthetase in fatty acid translocation across the plasma membrane. Journal of Biological Chemistry, 279, 24163–24170. ArticlePubMedCAS Google Scholar
Smith, Q. R., & Nagura, H. (2001). Fatty acid uptake and incorporation in brain: Studies with the perfusion model. Journal of Molecular Neuroscience, 16, 167–172, discussion 215–121. ArticlePubMedCAS Google Scholar
Spector, A. A. (2001). Plasma free fatty acid and lipoproteins as sources of polyunsaturated fatty acid for the brain. Journal of Molecular Neuroscience, 16, 159–165 discussion 215–121. ArticlePubMedCAS Google Scholar
Wu, M. L., Chan, C. C., & Su, M. J. (2000). Possible mechanism(s) of arachidonic acid-induced intracellular acidosis in rat cardiac myocytes. Circulation Research, 86, E55–E62. PubMedCAS Google Scholar
Zhang, F., Kamp, F., & Hamilton, J. A. (1996). Dissociation of long and very long chain fatty acids from phospholipid bilayers. Biochemistry, 35, 16055–16060. ArticlePubMedCAS Google Scholar