Helga Fritsch, Wolfgang Kühnel: Taschenatlas der Anatomie. Band 2: Innere Organe. 11. Auflage, Georg Thieme Verlag, 2013, ISBN 3-13-150921-X, S.430. eingeschränkte Vorschauin der Google-Buchsuche
Gergely Szakács, Kenneth Kin Wah To u.a.: Multidrug Resistance Mediated by MDR-ABC Transporters. In: Kapil Metha, Zahid H. Siddik (Hrsg.): Drug Resistance in Cancer Cells. Springer Science & Business Media, 2009, ISBN 0-387-89445-4, S.1–20. eingeschränkte Vorschauin der Google-Buchsuche
Helga Fritsch, Wolfgang Kühnel: Taschenatlas der Anatomie. Band 2: Innere Organe. 11. Auflage, Georg Thieme Verlag, 2013, ISBN 3-13-150921-X, S.436. eingeschränkte Vorschauin der Google-Buchsuche
Mark A. Jobling, Edward Hollox u.a.: Human Evolutionary Genetics. 2. Auflage, Garland Science, 2013, ISBN 1-317-95226-X, S.336. eingeschränkte Vorschauin der Google-Buchsuche
Es gibt auch Studienergebnisse, die zu dem Ergebnis kommen, dass die funktionslose ABCC11-Variante Gly180Arg dennoch an der Zellmembran exprimiert wird (siehe Annette Martin, Matthias Saathoff, Fabian Kuhn, Heiner Max, Lara Terstegen, Andreas Natsch:A functional ABCC11 allele is essential in the biochemical formation of human axillary odor. In: Journal of Investigative Dermatology. Band130, Nr.2, 2010, S.529–540, doi:10.1038/jid.2009.254, PMID 19710689.).
H. Yabuuchi, H. Shimizu u.a.: Multiple splicing variants of two new human ATP-binding cassette transporters, ABCC11 and ABCC12. In: Biochemical and biophysical research communications. Band 288, Nummer 4, November 2001, ISSN0006-291X, S.933–939, doi:10.1006/bbrc.2001.5865, PMID 11688999.
N. Ono, I. Van der Heijden u.a.: Multidrug resistance-associated protein 9 (ABCC12) is present in mouse and boar sperm. In: The Biochemical journal. Band 406, Nummer 1, August 2007, ISSN1470-8728, S.31–40, doi:10.1042/BJ20070292, PMID 17472575, PMC1948986(freier Volltext).
T. Kitano, I. Yuasa u.a.: Allele frequencies of a SNP and a 27-bp deletion that are the determinant of earwax type in the ABCC11 gene. In: Legal medicine. Band 10, Nummer 2, März 2008, S.113–114, ISSN1344-6223. doi:10.1016/j.legalmed.2007.08.003. PMID 18037328.
M. Honorat, R. Terreux u.a.: Localization of putative binding sites for cyclic guanosine monophosphate and the anti-cancer drug 5-fluoro-2'-deoxyuridine-5'-monophosphate on ABCC11 in silico models. In: BMC structural biology. Band 13, 2013, S.7, ISSN1472-6807. doi:10.1186/1472-6807-13-7. PMID 23641929. PMC3668285(freier Volltext). (Open Access)
Z. S. Chen, Y. Guo u.a.: Transport of bile acids, sulfated steroids, estradiol 17-beta-D-glucuronide, and leukotriene C4 by human multidrug resistance protein 8 (ABCC11). In: Molecular pharmacology. Band 67, Nummer 2, Februar 2005, ISSN0026-895X, S.545–557, doi:10.1124/mol.104.007138, PMID 15537867.
M. Bortfeld, M. Rius u.a.: Human multidrug resistance protein 8 (MRP8/ABCC11), an apical efflux pump for steroid sulfates, is an axonal protein of the CNS and peripheral nervous system. In: Neuroscience. Band 137, Nummer 4, 2006, ISSN0306-4522, S.1247–1257, doi:10.1016/j.neuroscience.2005.10.025, PMID 16359813.
A. Martin, M. Saathoff u.a.: A functional ABCC11 allele is essential in the biochemical formation of human axillary odor. In: The Journal of investigative dermatology. Band 130, Nummer 2, Februar 2010, ISSN1523-1747, S.529–540, doi:10.1038/jid.2009.254, PMID 19710689.
T. Magdy, R. Arlanov u.a.: ABCC11/MRP8 polymorphisms affect 5-fluorouracil-induced severe toxicity and hepatic expression. In: Pharmacogenomics. Band 14, Nummer 12, September 2013, ISSN1744-8042, S.1433–1448, doi:10.2217/pgs.13.139, PMID 24024896.
I. Bièche, I. Girault u.a.: Relationship between intratumoral expression of genes coding for xenobiotic-metabolizing enzymes and benefit from adjuvant tamoxifen in estrogen receptor alpha-positive postmenopausal breast carcinoma. In: Breast cancer research. Band 6, Nummer 3, 2004, S.R252–R263, ISSN1465-542X, doi:10.1186/bcr784, PMID 15084249, PMC400681(freier Volltext).
M. Honorat, A. Mesnier u.a.: ABCC11 expression is regulated by estrogen in MCF7 cells, correlated with estrogen receptor alpha expression in postmenopausal breast tumors and overexpressed in tamoxifen-resistant breast cancer cells. In: Endocrine-related cancer. Band 15, Nummer 1, März 2008, ISSN1351-0088, S.125–138, doi:10.1677/ERC-07-0189, PMID 18310281.
H. Nakagawa, Y. Toyoda u.a.: Ubiquitin-mediated proteasomal degradation of ABC transporters: a new aspect of genetic polymorphisms and clinical impacts. In: Journal of pharmaceutical sciences. Band 100, Nummer 9, September 2011, S.3602–3619, ISSN1520-6017. doi:10.1002/jps.22615. PMID 21567408. (Review).
Y. Toyoda, A. Sakurai u.a.: Earwax, osmidrosis, and breast cancer: why does one SNP (538G>A) in the human ABC transporter ABCC11 gene determine earwax type? In: FASEB journal. Band 23, Nummer 6, Juni 2009, ISSN1530-6860, S.2001–2013, doi:10.1096/fj.09-129098, PMID 19383836.
K. Yoshiura, A. Kinoshita u.a.: A SNP in the ABCC11 gene is the determinant of human earwax type. In: Nature genetics. Band 38, Nummer 3, März 2006, ISSN1061-4036, S.324–330, doi:10.1038/ng1733, PMID 16444273.
T. K. Saxton, A. Lyndon u.a.: Evidence that androstadienone, a putative human chemosignal, modulates women's attributions of men's attractiveness. In: Hormones and behavior. Band 54, Nummer 5, November 2008, ISSN1095-6867, S.597–601, doi:10.1016/j.yhbeh.2008.06.001, PMID 18601928.
B. M. Pause, A. Ohrt u.a.: Positive emotional priming of facial affect perception in females is diminished by chemosensory anxiety signals. In: Chemical senses. Band 29, Nummer 9, November 2004, ISSN0379-864X, S.797–805, doi:10.1093/chemse/bjh245, PMID 15574815.
R. Emter, A. Natsch: The sequential action of a dipeptidase and a beta-lyase is required for the release of the human body odorant 3-methyl-3-sulfanylhexan-1-ol from a secreted Cys-Gly-(S) conjugate by Corynebacteria. In: The Journal of biological chemistry. Band 283, Nummer 30, Juli 2008, ISSN0021-9258, S.20645–20652, doi:10.1074/jbc.M800730200, PMID 18515361, PMC3258934(freier Volltext).
C. Starkenmann, Y. Niclass u.a.: Identification of the precursor of (S)-3-methyl-3-sulfanylhexan-1-ol, the sulfury malodour of human axilla sweat. In: Chemistry & biodiversity. Band 2, Nummer 6, Juni 2005, ISSN1612-1880, S.705–716, doi:10.1002/cbdv.200590048, PMID 17192014.
A. Natsch, S. Derrer u.a.: A broad diversity of volatile carboxylic acids, released by a bacterial aminoacylase from axilla secretions, as candidate molecules for the determination of human-body odor type. In: Chemistry & biodiversity. Band 3, Nummer 1, Januar 2006, ISSN1612-1880, S.1–20, doi:10.1002/cbdv.200690015, PMID 17193210.
S. Rodriguez, C. D. Steer u.a.: Dependence of deodorant usage on ABCC11 genotype: scope for personalized genetics in personal hygiene. In: The Journal of investigative dermatology. Band 133, Nummer 7, Juli 2013, S.1760–1767, ISSN1523-1747. doi:10.1038/jid.2012.480. PMID 23325016. PMC3674910(freier Volltext).
L. Marlier, B. Schaal: Human newborns prefer human milk: conspecific milk odor is attractive without postnatal exposure. In: Child development. Band 76, Nummer 1, 2005 Jan-Feb, S.155–168, ISSN0009-3920. doi:10.1111/j.1467-8624.2005.00836.x. PMID 15693764.
C. Hartmann, S. Doucet u.a.: Human sweat odour conjugates in human milk, colostrum and amniotic fluid. In: Food Chemistry. Band 135, Nummer 1, 2012, S.228–233. doi:10.1016/j.foodchem.2012.04.077
K. Miura, K. Yoshiura u.a.: A strong association between human earwax-type and apocrine colostrum secretion from the mammary gland. In: Human genetics. Band 121, Nummer 5, Juni 2007, S.631–633, ISSN0340-6717. doi:10.1007/s00439-007-0356-9. PMID 17394018.
L. L. Cavalli-Sforza: The Human Genome Diversity Project: past, present and future. In: Nature reviews. Genetics. Band 6, Nummer 4, April 2005, ISSN1471-0056, S.333–340, doi:10.1038/nrg1596, PMID 15803201. (Review).
Q. Xiao, H. Weiner, D. W. Crabb: The mutation in the mitochondrial aldehyde dehydrogenase (ALDH2) gene responsible for alcohol-induced flushing increases turnover of the enzyme tetramers in a dominant fashion. In: The Journal of clinical investigation. Band 98, Nummer 9, November 1996, ISSN0021-9738, S.2027–2032, doi:10.1172/JCI119007, PMID 8903321, PMC507646(freier Volltext).
D. H. Temple, B. M. Auerbach u.a.: Variation in limb proportions between Jomon foragers and Yayoi agriculturalists from prehistoric Japan. In: American journal of physical anthropology. Band 137, Nummer 2, Oktober 2008, S.164–174, ISSN1096-8644. doi:10.1002/ajpa.20853. PMID 18484628.
D. H. Temple: Patterns of systemic stress during the agricultural transition in prehistoric Japan. In: American journal of physical anthropology. Band 142, Nummer 1, Mai 2010, S.112–124, ISSN1096-8644. doi:10.1002/ajpa.21208. PMID 19953616.
A. Tajima, M. Hayami u.a.: Genetic origins of the Ainu inferred from combined DNA analyses of maternal and paternal lineages. In: Journal of human genetics. Band 49, Nummer 4, 2004, S.187–193, ISSN1434-5161. doi:10.1007/s10038-004-0131-x. PMID 14997363.
PatentanmeldungDE102008001811A1:Kosmetische Zubereitungen zur Verminderung von Schweißgeruch mit ABCC-Modulatoren.Angemeldetam15.Mai 2008,veröffentlichtam19.November 2009,Anmelder:Beiersdorf AG,Erfinder:A. Martin, M. Saathoff, L. Terstegen.
Es gibt auch Studienergebnisse, die zu dem Ergebnis kommen, dass die funktionslose ABCC11-Variante Gly180Arg dennoch an der Zellmembran exprimiert wird (siehe Annette Martin, Matthias Saathoff, Fabian Kuhn, Heiner Max, Lara Terstegen, Andreas Natsch:A functional ABCC11 allele is essential in the biochemical formation of human axillary odor. In: Journal of Investigative Dermatology. Band130, Nr.2, 2010, S.529–540, doi:10.1038/jid.2009.254, PMID 19710689.).
H. Yabuuchi, H. Shimizu u.a.: Multiple splicing variants of two new human ATP-binding cassette transporters, ABCC11 and ABCC12. In: Biochemical and biophysical research communications. Band 288, Nummer 4, November 2001, ISSN0006-291X, S.933–939, doi:10.1006/bbrc.2001.5865, PMID 11688999.
J. Tammur, C. Prades u.a.: Two new genes from the human ATP-binding cassette transporter superfamily, ABCC11 and ABCC12, tandemly duplicated on chromosome 16q12. In: Gene. Band 273, Nummer 1, Juli 2001, ISSN0378-1119, S.89–96, PMID 11483364.
T. K. Bera, S. Lee u.a.: MRP8, a new member of ABC transporter superfamily, identified by EST database mining and gene prediction program, is highly expressed in breast cancer. In: Molecular medicine. Band 7, Nummer 8, August 2001, ISSN1076-1551, S.509–516, PMID 11591886, PMC1950066(freier Volltext).
H. Shimizu, H. Taniguchi u.a.: Characterization of the mouse Abcc12 gene and its transcript encoding an ATP-binding cassette transporter, an orthologue of human ABCC12. In: Gene. Band 310, Mai 2003, ISSN0378-1119, S.17–28, PMID 12801629.
N. Ono, I. Van der Heijden u.a.: Multidrug resistance-associated protein 9 (ABCC12) is present in mouse and boar sperm. In: The Biochemical journal. Band 406, Nummer 1, August 2007, ISSN1470-8728, S.31–40, doi:10.1042/BJ20070292, PMID 17472575, PMC1948986(freier Volltext).
T. Kitano, I. Yuasa u.a.: Allele frequencies of a SNP and a 27-bp deletion that are the determinant of earwax type in the ABCC11 gene. In: Legal medicine. Band 10, Nummer 2, März 2008, S.113–114, ISSN1344-6223. doi:10.1016/j.legalmed.2007.08.003. PMID 18037328.
M. Honorat, R. Terreux u.a.: Localization of putative binding sites for cyclic guanosine monophosphate and the anti-cancer drug 5-fluoro-2'-deoxyuridine-5'-monophosphate on ABCC11 in silico models. In: BMC structural biology. Band 13, 2013, S.7, ISSN1472-6807. doi:10.1186/1472-6807-13-7. PMID 23641929. PMC3668285(freier Volltext). (Open Access)
Z. S. Chen, Y. Guo u.a.: Transport of bile acids, sulfated steroids, estradiol 17-beta-D-glucuronide, and leukotriene C4 by human multidrug resistance protein 8 (ABCC11). In: Molecular pharmacology. Band 67, Nummer 2, Februar 2005, ISSN0026-895X, S.545–557, doi:10.1124/mol.104.007138, PMID 15537867.
M. Bortfeld, M. Rius u.a.: Human multidrug resistance protein 8 (MRP8/ABCC11), an apical efflux pump for steroid sulfates, is an axonal protein of the CNS and peripheral nervous system. In: Neuroscience. Band 137, Nummer 4, 2006, ISSN0306-4522, S.1247–1257, doi:10.1016/j.neuroscience.2005.10.025, PMID 16359813.
A. Martin, M. Saathoff u.a.: A functional ABCC11 allele is essential in the biochemical formation of human axillary odor. In: The Journal of investigative dermatology. Band 130, Nummer 2, Februar 2010, ISSN1523-1747, S.529–540, doi:10.1038/jid.2009.254, PMID 19710689.
T. Magdy, R. Arlanov u.a.: ABCC11/MRP8 polymorphisms affect 5-fluorouracil-induced severe toxicity and hepatic expression. In: Pharmacogenomics. Band 14, Nummer 12, September 2013, ISSN1744-8042, S.1433–1448, doi:10.2217/pgs.13.139, PMID 24024896.
I. Bièche, I. Girault u.a.: Relationship between intratumoral expression of genes coding for xenobiotic-metabolizing enzymes and benefit from adjuvant tamoxifen in estrogen receptor alpha-positive postmenopausal breast carcinoma. In: Breast cancer research. Band 6, Nummer 3, 2004, S.R252–R263, ISSN1465-542X, doi:10.1186/bcr784, PMID 15084249, PMC400681(freier Volltext).
M. Honorat, A. Mesnier u.a.: ABCC11 expression is regulated by estrogen in MCF7 cells, correlated with estrogen receptor alpha expression in postmenopausal breast tumors and overexpressed in tamoxifen-resistant breast cancer cells. In: Endocrine-related cancer. Band 15, Nummer 1, März 2008, ISSN1351-0088, S.125–138, doi:10.1677/ERC-07-0189, PMID 18310281.
H. Nakagawa, Y. Toyoda u.a.: Ubiquitin-mediated proteasomal degradation of ABC transporters: a new aspect of genetic polymorphisms and clinical impacts. In: Journal of pharmaceutical sciences. Band 100, Nummer 9, September 2011, S.3602–3619, ISSN1520-6017. doi:10.1002/jps.22615. PMID 21567408. (Review).
Y. Toyoda, A. Sakurai u.a.: Earwax, osmidrosis, and breast cancer: why does one SNP (538G>A) in the human ABC transporter ABCC11 gene determine earwax type? In: FASEB journal. Band 23, Nummer 6, Juni 2009, ISSN1530-6860, S.2001–2013, doi:10.1096/fj.09-129098, PMID 19383836.
K. Yoshiura, A. Kinoshita u.a.: A SNP in the ABCC11 gene is the determinant of human earwax type. In: Nature genetics. Band 38, Nummer 3, März 2006, ISSN1061-4036, S.324–330, doi:10.1038/ng1733, PMID 16444273.
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R. Emter, A. Natsch: The sequential action of a dipeptidase and a beta-lyase is required for the release of the human body odorant 3-methyl-3-sulfanylhexan-1-ol from a secreted Cys-Gly-(S) conjugate by Corynebacteria. In: The Journal of biological chemistry. Band 283, Nummer 30, Juli 2008, ISSN0021-9258, S.20645–20652, doi:10.1074/jbc.M800730200, PMID 18515361, PMC3258934(freier Volltext).
C. Starkenmann, Y. Niclass u.a.: Identification of the precursor of (S)-3-methyl-3-sulfanylhexan-1-ol, the sulfury malodour of human axilla sweat. In: Chemistry & biodiversity. Band 2, Nummer 6, Juni 2005, ISSN1612-1880, S.705–716, doi:10.1002/cbdv.200590048, PMID 17192014.
R. A. Decréau, C. M. Marson u.a.: Production of malodorous steroids from androsta-5,16-dienes and androsta-4,16-dienes by Corynebacteria and other human axillary bacteria. In: The Journal of steroid biochemistry and molecular biology. Band 87, Nummer 4–5, Dezember 2003, ISSN0960-0760, S.327–336, PMID 14698214.
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A. Natsch, S. Derrer u.a.: A broad diversity of volatile carboxylic acids, released by a bacterial aminoacylase from axilla secretions, as candidate molecules for the determination of human-body odor type. In: Chemistry & biodiversity. Band 3, Nummer 1, Januar 2006, ISSN1612-1880, S.1–20, doi:10.1002/cbdv.200690015, PMID 17193210.
S. Rodriguez, C. D. Steer u.a.: Dependence of deodorant usage on ABCC11 genotype: scope for personalized genetics in personal hygiene. In: The Journal of investigative dermatology. Band 133, Nummer 7, Juli 2013, S.1760–1767, ISSN1523-1747. doi:10.1038/jid.2012.480. PMID 23325016. PMC3674910(freier Volltext).
L. Marlier, B. Schaal: Human newborns prefer human milk: conspecific milk odor is attractive without postnatal exposure. In: Child development. Band 76, Nummer 1, 2005 Jan-Feb, S.155–168, ISSN0009-3920. doi:10.1111/j.1467-8624.2005.00836.x. PMID 15693764.
K. Miura, K. Yoshiura u.a.: A strong association between human earwax-type and apocrine colostrum secretion from the mammary gland. In: Human genetics. Band 121, Nummer 5, Juni 2007, S.631–633, ISSN0340-6717. doi:10.1007/s00439-007-0356-9. PMID 17394018.
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D. H. Temple, B. M. Auerbach u.a.: Variation in limb proportions between Jomon foragers and Yayoi agriculturalists from prehistoric Japan. In: American journal of physical anthropology. Band 137, Nummer 2, Oktober 2008, S.164–174, ISSN1096-8644. doi:10.1002/ajpa.20853. PMID 18484628.
D. H. Temple: Patterns of systemic stress during the agricultural transition in prehistoric Japan. In: American journal of physical anthropology. Band 142, Nummer 1, Mai 2010, S.112–124, ISSN1096-8644. doi:10.1002/ajpa.21208. PMID 19953616.
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H. Yabuuchi, H. Shimizu u.a.: Multiple splicing variants of two new human ATP-binding cassette transporters, ABCC11 and ABCC12. In: Biochemical and biophysical research communications. Band 288, Nummer 4, November 2001, ISSN0006-291X, S.933–939, doi:10.1006/bbrc.2001.5865, PMID 11688999.
J. Tammur, C. Prades u.a.: Two new genes from the human ATP-binding cassette transporter superfamily, ABCC11 and ABCC12, tandemly duplicated on chromosome 16q12. In: Gene. Band 273, Nummer 1, Juli 2001, ISSN0378-1119, S.89–96, PMID 11483364.
T. K. Bera, S. Lee u.a.: MRP8, a new member of ABC transporter superfamily, identified by EST database mining and gene prediction program, is highly expressed in breast cancer. In: Molecular medicine. Band 7, Nummer 8, August 2001, ISSN1076-1551, S.509–516, PMID 11591886, PMC1950066(freier Volltext).
H. Shimizu, H. Taniguchi u.a.: Characterization of the mouse Abcc12 gene and its transcript encoding an ATP-binding cassette transporter, an orthologue of human ABCC12. In: Gene. Band 310, Mai 2003, ISSN0378-1119, S.17–28, PMID 12801629.
N. Ono, I. Van der Heijden u.a.: Multidrug resistance-associated protein 9 (ABCC12) is present in mouse and boar sperm. In: The Biochemical journal. Band 406, Nummer 1, August 2007, ISSN1470-8728, S.31–40, doi:10.1042/BJ20070292, PMID 17472575, PMC1948986(freier Volltext).
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