期刊论文详细信息
BMC Complementary and Alternative Medicine
Pharmacological modulation of histone demethylase activity by a small molecule isolated from subcritical water extracts of Sasa senanensis leaves prolongs the lifespan of Drosophila melanogaster
Toshiro Aigaki1  Takaaki Hara2  Yukiko Muramatsu2  Tsuyoshi Sakaki3  Shin-ichi Nakatsuka4  Emi Matsumoto4  Yukiko Sato1  Yuzo Nakagawa-Yagi2 
[1] Department of Biological Sciences, Tokyo Metropolitan University, 1-1 Minami-osawa, Hachioji, Tokyo, 192-0397, Japan;Hakuju Institute for Health Science Co. Ltd, 37-5, Tomigaya 1-chome, Shibuya-ku, Tokyo, 151-0063, Japan;National Institute of Advanced Industrial Science and Technology (AIST) Kyushu, 807-1 Shuku-machi, Tosu, Saga, 841-0052, Japan;Nagara Science Co. Ltd, 479-15 Nagase, Oritate, Gifu, 501-1132, Japan
关键词: Traditional Japanese medicine;    Lifespan extension;    Histone demethylase;    Drosophila;   
Others  :  1232114
DOI  :  10.1186/1472-6882-12-101
 received in 2011-12-20, accepted in 2012-07-08,  发布年份 2012
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【 摘 要 】

Background

Extracts of Sasa senanensis Rehder are used in traditional Japanese medicine; however, little is known about the underlying mechanisms of their potential health benefits.

Methods

S. senanensis leaves were extracted with subcritical water. An active small-molecule was isolated using reversed-phase high-performance liquid chromatography (HPLC), and identified as 3,4-dihydroxybenzaldehyde (protocatechuic aldehyde or PA). The effects of PA on the activity of histone demethylase, the Drosophila melanogaster lifespan and gene expression in Drosophila S2 cells were investigated.

Results

PA inhibited the activity of Jumonji domain-containing protein 2A (JMJD2A) histone demethylase in a dose-dependent manner with a half-maximal inhibitory concentration (IC50) of 11.6 μM. However, there was no effect on lysine-specific demethylase 1 (LSD1), histone deacetylase 1 (HDAC1) or HDAC8. PA significantly extended the lifespan of female, but not male, Drosophila. In Drosophila S2 cells, the eukaryotic translation initiation factor 4E binding protein (4E-BP) was up-regulated by PA exposure.

Conclusions

Our findings provide insight into the possible relationship between the pharmacological modulation of histone demethylation and lifespan extension by PA; they might also be important in the development of alternative therapies for age-related disorders.

【 授权许可】

   
2012 Nakagawa-Yagi et al.;

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【 参考文献 】
  • [1]Han X, Shen T, Lou H: Dietary polyphenols and their biological significance. Int J Mol Sci 2007, 8:950-988.
  • [2]Pandey KB, Rizvi SI: Plant polyphenols as dietary antioxidants in human health and disease. Oxid Med Cell Longev 2009, 2:270-278.
  • [3]Nakagawa-Yagi Y, Koikeda T, Saitou Y, Sakaki T, Hara T: Effect of Metaherbline™ soft capsule on visceral fat accumulation in human: an open clinical trial. Food Function 2008, 4:2-7. in Japaneses
  • [4]Hara T, Ozawa S, Sensui N, Nakagawa-Yagi Y: Anti-allergic activity of extract powder from leaf of Sasa senanensis (SanSTAGE™). Food Function 2011, 8:24-29. in Japaneses
  • [5]Hara T, Inoue S, Tsuruta S, Sato Y, Yukawa M, Nakagawa-Yagi Y: Anti-invasion activity and gene expression of extract from leaf of Sasa senanensis (SanSTAGE™). Food Function 2012, 9:24-31. in Japaneses
  • [6]Nakajima Y, Yun YS, Kunugi A: Six new flavonolignans from Sasa veitchii (Carr.) rehder. Tetrahedron 2003, 59:8011-8015.
  • [7]Park HS, Lim JH, Kim HJ, Choi HJ, Lee IS: Antioxidant flavone glycosides from the leaves of Sasa borealis. Arch Pharm Res 2007, 30:161-166.
  • [8]Hasegawa T, Tanaka A, Hosoda A, Takano F, Ohta T: Antioxidant C-glycosyl flavones from the leaves of Sasa kurilensis var. gigantea. Phytochem 2008, 69:1419-1424.
  • [9]Jafari M: Drosophila melanogaster as a model system for the evaluation of anti-aging compounds. Fly 2010, 4:253-257.
  • [10]Wood JG, Rogina B, Lavu S, Howitz K, Helfand SL, Tatar M, Sinclair D: Sirtuin activators mimic caloric restriction and delay ageing in metazoans. Nature 2004, 430:686-689.
  • [11]Ando H, Sakaki T, Kokusho T, Shibata M, Uemura Y, Hatate Y: Decomposition behaviour of plant biomass in hot-compressed water. Ind Eng Chem Res 2000, 39:3688-3693.
  • [12]Mitsuta K, Mizuta Y, Kohno M, Hiramatsu M, Mori A: The application of ESR spin-trapping technique to the evaluation of SOD-like activity of biological substances. Bull Chem Soc Jpn 1990, 63:187-191.
  • [13]Aigaki T, Seong KH, Matsuo T: Longevity determination genes in Drosophila melanogaster. Mech Ageing Dev 2002, 123:1531-1541.
  • [14]Arakaki N, Kita T, Shibata H, Higuti T: Cell-surface H+-ATP synthase as a potential molecular target for anti-obesity drugs. FEBS Lett 2007, 581:3405-3409.
  • [15]Rose NR, McDonough MA, King ONF, Kawamura A, Schofield CJ: Inhibition of 2-oxoglutarate dependent oxygenases. Chem Soc Rev 2011, 40:4364-4397.
  • [16]Musri MM, Carmona MC, Hanzu FA, Kaliman P, Gomis R, Parrizas M: Histone demethylase LSD1 regulates adipogenesis. J Biol Chem 2010, 285:30034-30041.
  • [17]Okumura M, Inagaki T, Tanaka T, Sakai J: Role of histone methylation and demethylation in adipogenesis and obesity. Organogenesis 2010, 6:24-32.
  • [18]Ng SS, Kavanagh KL, McDonough MA, Butler D, Pilka ES, Lienard BMR, Bray JE, Savitsky P, Gileadi O, von Delft F, Rose NR, Offer J, Scheinost JC, Browski T, Sundstrom M, Schofield CJ, Oppermann U: Crystal structures of histone demethylase JMJD2A reveal basis for substrate specificity. Nature 2007, 448:87-91.
  • [19]Jin C, Lin J, Green CD, Yu X, Tang X, Han D, Xian B, Wang D, Hung X, Cao X, Yan Z, Hou L, Liu J, Shukeir N, Khaitovich P, Chen CD, Zhang H, Jenuwein T, Han JDJ: Histone demethylase UTX-1 regulates C. elegans life span by targeting the insulin/IGF-1 signaling pathway. Cell Metab 2011, 14:161-172.
  • [20]Li L, Greer C, Eisenman RN, Secombe J: Essential functions of the histone demethylase Lid. PLoS Genet 2010, 6:e1001221.
  • [21]Kang HS, Choi JH, Cho WK, Park JC, Choi JS: A sphingolipid and tyrosinase inhibitors from the fruiting body of Phellinus linteus. Arch Pharm Res 2004, 27:742-750.
  • [22]Lee S, Shim SH, Kim JS, Shin KH, Kang SS: Aldose reductase inhibitors from the fruiting bodies of Ganoderma applanatum. Biol Pharm Bull 2005, 28:1103-1105.
  • [23]Li H, Zhou C, Pan Y, Gao X, Wu X, Bai H, Zhou L, Chen Z, Zhang S, Shi S, Lou J, Xu J, Chen L, X Z, Zhao Y: Evaluation of antiviral activity of compounds isolated from Ranunculus sieboldii and Ranunculus sceleratus. Planta Med 2005, 71:1128-1133.
  • [24]Ye G, Wang CS, Li YY, Ren H, Guo DA: Stimultaneous determination and pharmacokinetic studies on (3,4-dihydroxyphenyl)-lactic acid and protocatechuic aldehyde in rat serum after oral administration of radix Salviae miltiorrhizae extract. J Chromatogr Sci 2003, 41:327-330.
  • [25]Weber B, Hoesch L, Rast DM: Protocatechualdehyde and other phenols as cell wall components of grapevine leaves. Phytochem 1995, 40:433-437.
  • [26]Murga R, Sanz MT, Beltran S, Cabezas JL: Solubility of some phenolic compounds contained in grape seeds, in supercritical carbon dioxide. J Supercrit Fluids 2002, 23:113-121.
  • [27]Jeong JB, Hong SC, Jeong HJ: 3,4-Dihydroxybenzaldehyde purified from the barley seeds (Hordeum vulgare) inhibits oxidative DNA damage and apoptosis via its antioxidant activity. Phytomed 2009, 16:85-94.
  • [28]No JK, Kim MS, Kim YJ, Bae SJ, Choi JS, Chung HY: Inhibition of tyrosinase by protocatechuic aldehyde. Am J Chin Med 2004, 32:97-103.
  • [29]Zhou Z, Liu Y, Miao AD, Wang SQ: Protocatechuic aldehyde suppresses TNF-α-induced ICAM-1 and VCAM-1 expression in human umbilical vein endothelial cells. Eur J Pharmacol 2005, 513:1-8.
  • [30]Nishioka H, Imoto M, Sawa T, Hamada M, Nakagawa H, Takeuchi T, Umezawa K: Screening of phosphatidylinositol kinase inhibitors from Streptomyces. J Antibiot 1989, 42:823-825.
  • [31]Kim YS, Kim NH, Lee SW, Lee YM, Jang DS, Kim JS: Effect of protocatechualdehyde on receptor for advanced glycation end products and TGF-β1 expression in human lens epithelial cells cultured under diabetic conditions and on lens opacity in streptozotocin-diabetic rats. Eur J Pharmacol 2007, 569:171-179.
  • [32]Majamaa K, Gunzler V, Hanauske-Abel HM, Myllyla R, Kivirikko KI: Partial identity of the 2-oxoglutarate and ascorbate binding sites of prolyl 4-hydroxylase. J Biol Chem 1986, 261:7819-7823.
  • [33]Thalhammer A, Mecinovic J, Loenarz C, Tumber A, Rose NR, Heightman TD, Schofield CJ: Inhibition of the histone demetylase JMJD2E by 3-substituted pyridine 2,4-dicarboxylates. Org Biomol Chem 2011, 9:127-135.
  • [34]Loenarz C, Schofield CJ: Expanding chemical biology of 2-oxoglutarate oxygenases. Nature Chem Biol 2008, 4:152-156.
  • [35]Lorbeck MT, Singh N, Zervos A, Dhatta M, Lapchenko M, Yang C, Elefant F: The histone demethylase Dmel/Kdm4A controls genes required for life span and male-specific sex determination in Drosophila. Gene 2010, 450:8-17.
  • [36]Clancy DJ, Gems D, Harshman LG, Oldham S, Stocker H, Hafen E, Leevers SJ, Partridge L: Extension of life-span by loss of CHICO, a Drosophila insulin receptor substrate protein. Science 2001, 292:104-106.
  • [37]Bauer JH, Poon PC, Glatt-Deeley H, Abrams JM, Helfand SL: Neuronal expression of p53 dominant-negative proteins in adult Drosophila melanogaster extends life span. Curr Biol 2005, 15:2063-2068.
  • [38]Sykiotis GP, Bohmann D: Keap1/Nrf2 signaling regulates oxidative stress tolerance and lifespan in Drosophila. Dev Cell 2008, 14:76-85.
  • [39]Wang MC, Bohmann D, Jasper H: JNK signaling confers tolerance to oxidative stress and extends lifespan in Drosophila. Dev Cell 2003, 5:811-816.
  • [40]Zid BM, Rogers AN, Katewa SD, Vargas MA, Kolipinski MC, Lu TA, Benzer S, Kapahi P: 4E-BP extends lifespan upon dietary restriction by enhancing mitochondrial activity in Drosophila. Cell 2009, 139:149-160.
  • [41]Demontis F, Perrimon N: FOXO/4E-BP signalling in Drosophila muscles regulates organism-wide proteostasis during aging. Cell 2010, 143:813-825.
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