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Aging, The Molecular Concepts
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Chapter 7 References
- Castanet J, Ortonne JR Pigmentary changes in aged and photoaged skin. Arch Dermatol 1997: 133: 1296-9.
- Haddad MM, Liao F, Xu W, Medrano EE. Loss of E2F binding activity and increased association to p27 and p4 to CDKs are linked to accumulation of brown/black melanin and terminal differentiation of human melanocytes. 1998: Submitted.
- Ber Rahman S, Bhawan J. Lentigo. Int J Dermatol 1996: 35: 229-39.
- Ortonne JP. Pigmentary changes of the ageing skin. Br J Dermatol 122 Suppl. 1990: 35: 21-8.
- Medrano EE, Yang F, Boissy R, et al. Terminal differentiation and senescence in the human melanocyte: repression of tyrosine-phosphorylation of the extracellular signal-regulated kinase 2 selectively defines the two phenotypes. Mol Biol Cell 1994: 5: 497-509.
- Abdel-MaIek Z, Swope, VB, Nordlund JJ, Medrano EE. Proliferation and propagation of human melanocytes in vitro are affected by donor age and anatomical site. Pigment Cell Res 1994: 7: 116-22.
- Gilchrest BA, Vrabel MA, Flynn E, Szabo G. Selective cultivation of human melanocytes from newborn and adult epidermis. J Invest Dermatol 1984: 83: 370-6.
- Luger TA, Scholzen T, Grabbe S. The role of a-melanocyte-stimulating hormone in cutaneous biology J Invest Dermatol 1997: 2: 87-93.
- Wintzen M, Glichrest BA. Proopiomelanocorrtin, its derived peptides, and the skin. J Invest Dermatol 1996: 106: 3-10.
- Halaban R. Langdon R, Birchall N, et al. Basic fibroblast growth factor from human keratinocytes is a natural mitogen for melanocytes. J Cell Biol 1988: 107: 1611-9.
- Herlyn M, Mancianti ML, Jambrosic J, Bolen JB, Koprowski H. Regulatory factors that determine growth and phenotype of normal human melanocytes. Exp Cell Res 1988: 179: 322-31.
- Abdel-MaIek Z, Swope VB, Pallas J, Krug K, Nordlund JJ. Mitogenic, melanogenic, and cAMP responses of cultured neonatal human melanocytes to commonly used mitogens. J Cell Physiol 1992: 150: 416-25.
- Abdel-MaIek Z, Swope VB, Susuki I, et al. Mitogenic and melanogenic stimulation of normal human melanocytes by melanotropic peptides. Proc Nati Acad Sci USA 1995: 92: 1789-93.
- Hunt, G, Todd C, Thody AJ. Unresponsiveness of human epidermal melanocytes to melanocyte-stimulating hormone and its association with red hair. Mol Cell Endocrinol 1996: 116: 131-6.
- Yasumoto K-I, Mahalingam H, Suzuki H, Yoshizawa M, Yokoyama K, Shibahara S. Transcriptional activation of the melanocyte-specific genes by the human homolog of the mouse Microphthalmia protein. J Biochem 1995: 118: 874-81.
- Bertolotto C, Bille K, Ortonne JP, Ballotti R. Regulation oftyrosinase gene expression by cAMP in B16 melanoma cells involves two CATGTG motifs surrounding the TATA box: implication of the microphthalmia gene product. J Cell Biol 1996: 134: 747-55.
- Bertolotto C, Busca R, Abbe P, et al. Different cis-acting elements are involved in the regulation of TRP1 and TRP2 promoter activities by cyclic AMP: pivotal role ofM boxes (GTCATGTGCT) and of microphthalmia. Mol Cell Biol 1998: 18: 694-702.
- Xu W, Haddad MM, BischofO, Campisi J, Medrano EE. Degradation of Microphtalmia-associated transcription factor MITF by association with the ubiquitin-conjugating enzyme hUBC9. 1998: Submitted.
- Haddad MM, Xu W, Medrano EE. Aging in epidermal melanocytes: cell cycle genes and melanins. J Invest Dermatol Sympo Proc 1998: 3: 36-40.
- Smith EJ, Leone G, DeGregori J, Jakoi L, Nevins JR. The accumulation of an E2F-pl30 transcriptional represser distinguishes a GO cell state from a Gl cell state. Mol Cell Biol 1996: 16: 6965-76.
- Sears R, Ohtani K, Nevins JR. Identification of positively and negatively acting elements regulating expression of the E2F2 gene in response to cell growth signals. Mol Cell Biol 1997: 17: 5227-35.
- Medrano EE, Nordlund JJ. Successful culture of adult human melanocytes obtained from normal and vitiligo donors. J Invest Dermatol 1990: 95: 441-5.
- Failla G. The aging process and cancerogenesis. Ann NY Acad Sci 1958: 71: 1124-35.
- Szilard L. On the nature of aging process. Proc Nati Acad Sci USA 1959: 45: 30-5.
- Alexander P. The role of DNA lesions in processes leading to aging in mice. Symp Soc Exp Biol 1967: 21: 29-51.
- Bohr VA, Anson RM. DNA damage, mutation and fine structure DNA repair in aging. Mut Res 1995: 338: 25-34.
- Warner HR, Price AR. Involvement of DNA repair in cancer and aging. J Gerontol 1989: 44: 45-54.
- McCay CM, Crowell MF, Maynard LA. The effect of retarded growth upon the length of lifespan and upon the ultimate body size. J Nutr 1935: 10: 63-79.
- Masoro EJ. Dietary restriction and aging. J Am Geriatr Soc 1993: 41: 994-9.
- Yu BP How diet influences the aging process of the rat. Proc Soc Exp Biol Med 1994: 205: 97-105.
- Richardson A, McCarter RJ. Mechanism of food restriction: change of rate or change of set point? In: Ingram DK, Baker GT, Shock NW, eds. The potential for nutritional modulation of the aging processes. Trumbull, CT: Food & Nutirition Press, Inc., 1991: 177-272.
- Dempsey JL, Pfeiffer M, Morley AA. Effect of dietary restriction on in vivo somatic mutation in mice. Mutation Res 1993: 291: 141-5.
- Casciano DA, Chou M, Lyn-Cook LE, Aidoo A. Calorie restriction modulates chemically induced in vivo somatic mutation frequency. Environ Mol Mutagen 1996: 27: 162-4.
- Chung MH, Kasai H, Nishimura S, Yu BP. Protection of DNA damage by dietary restriction. Free Radic Biol Med 1992: 12: 523-5.
- Djuric Z, Lu MH, Lewis SM, et al. Oxidative DNA damage levels in rats fed low-fat, high fat, or calorie-restricted diets. Toxicol ApplPharmacol 1992: 115: 156-60.
- Sohal RS, Agarwal S, Candas M, Forster MJ, Lal H. Effect of age and caloric restriction on DNA oxidative damage in different tissues of C57BL/6 mice. Mech Ageing Dev 1994: 76: 215-24.
- Weraarchakul N, Strong R, Wood WG, Richardson A. The effect of aging and dietary restriction on DNA repair. Exp Cell Res 1989: 181: 197-204.
- Licastro F, Weindruch R, Davis LJ, Walford RL. Effect of dietary restriction upon the age-associated decline oflymphocyte DNA repair activity in mice. Age 1988: 11: 48-52.
- Lipman JM, Turturro A, Hart RW. The influence of dietary restriction on DNA repair in rodents: a preliminary study. Mech Ageing Dev 1989: 48: 135-43.
- Srivastava VK, Busbee DL. Decreased fidelity of DNA polymerases and decreased DNA excision repair in aging mice: Effects of caloric restriction. Biochem Biophys Res Commun 1992: 182: 712- 21.
- Tilley R, Miller S, Srivastava V, Busbee D. Enhanced unscheduled DNA synthesis by secondary cultures of lung cells established from calorically restricted aged rats. Mech Ageing Dev 1992: 63: 165-76.
- Bohr VA, Okumoto DS, Hanawalt PC. Survival of UV-irradiated mammalian cells correlates with efficient DNA repair in an essential gene. Proc Nati Acad Sci USA 1986: 83: 3830-3.
- Liu SC, Meagher K, Hanawalt PC. Role of solar conditioning in DNA repair response and survival of human epidermal keratinocytes following UV irradiation. J Invest Dermatol 1985: 85: 93-7.
- Zolan ME, Cortopassi GA, Smith CA, Hanawalt PC. Deficient repair of chemical adducts in alpha DNA of monkey cells. Cell 1982: 28: 613-9.
- Bohr VA, Smith CA, Okumoto DS, Hanawalt PC. DNA repair in an active gene: removal of pyrimidine dimers from the DHFR gene of CHO cells is much more efficient than in the genome overall. Cell 1985: 40: 359-69.
- Guo Z, Heydari AR, Wu W-T, Yang H, Sabia MR, Richardson A. Thecharacterization of gene specific DNA repair by primary cultures of rat hepatocytes. J Cell Physiol 1998: In press.
- Friedberg EC. Relationships between DNA repair and transcription. Ann Rev Biochem 1996: 65: 15^2.
- Medvedev ZA. Age changes ofchromatin. Mech Ageing Dev 1984: 28: 139-54.
- Mozzhukhina TG, Chabanny VN, Levitsky EL, Litoshenko AY. Age-related changes of supranucleosomal structures and DNA- synthesizing properties of rat liver chromatin. Gerontology 1991: 37: 181-6.
- Gaubatz JW, Tan BH. Age-related studies on the removal of 7-methylguanine from DNA of mouse kidney tissue following A^-methyl-^V-nitrosourea treatment. Mutation Res 1993: 295: 81-91.
- Venema J, Mullenders LHF, Natarajan AT, van Zeeland AA, Mayne LV. The genetic defect in Cockayne syndrome is associated with a defect in repair of UV-induced DNA damage in transcriptionally active DNA. Proc Nati Acad Sci USA 1990: 87: 4707-11.
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