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  1. NTU Theses and Dissertations Repository
  2. 生命科學院
  3. 漁業科學研究所
請用此 Handle URI 來引用此文件: http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/59376
完整後設資料紀錄
DC 欄位值語言
dc.contributor.advisor黃鵬鵬(Pung-Pung Hwang)
dc.contributor.authorShao-Wei Luen
dc.contributor.author呂紹葳zh_TW
dc.date.accessioned2021-06-16T09:21:55Z-
dc.date.available2022-07-07
dc.date.copyright2017-07-07
dc.date.issued2017
dc.date.submitted2017-06-27
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Bookout, A.L., Jeong, Y., Downes, M., Yu, R.T., Evans, R.M., Mangelsdorf, D.J., 2006. Anatomical profiling of nuclear receptor expression reveals a hierarchical transcriptional network. Cell 126, 789-799.
Cartoni, R., Leger, B., Hock, M.B., Praz, M., Crettenand, A., Pich, S., Ziltener, J.L., Luthi, F., Deriaz, O., Zorzano, A., Gobelet, C., Kralli, A., Russell, A.P., 2005. Mitofusins 1/2 and erralpha expression are increased in human skeletal muscle after physical exercise. J Physiol 567, 349-358.
Chou, M.Y., Hung, J.C., Wu, L.C., Hwang, S.P., Hwang, P.P., 2011. Isotocin controls ion regulation through regulating ionocyte progenitor differentiation and proliferation. Cell Mol Life Sci 68, 2797-2809.
Claiborne, J.B., Edwards, S.L., Morrison-Shetlar, A.I., 2002. Acid-base regulation in fishes: Cellular and molecular mechanisms. J Exp Zool 293, 302-319.
Deblois, G., Giguere, V., 2013. Oestrogen-related receptors in breast cancer: Control of cellular metabolism and beyond. Nat Rev Cancer 13, 27-36.
Evans, D.H., Piermarini, P.M., Choe, K.P., 2005. The multifunctional fish gill: Dominant site of gas exchange, osmoregulation, acid-base regulation, and excretion of nitrogenous waste. Physiol Rev 85, 97-177.
Furukawa, F., Watanabe, S., Inokuchi, M., Kaneko, T., 2011. Responses of gill mitochondria-rich cells in mozambique tilapia exposed to acidic environments (ph 4.0) in combination with different salinities. Comp Biochem Physiol A Mol Integr Physiol 158, 468-476.
Giguere, V., 2008. Transcriptional control of energy homeostasis by the estrogen-related receptors. Endocr Rev 29, 677-696.
Giguere, V., Yang, N., Segui, P., Evans, R.M., 1988. Identification of a new class of steroid hormone receptors. Nature 331, 91-94.
Guh, Y.J., Hwang, P.P., 2016. Insights into molecular and cellular mechanisms of hormonal actions on fish ion regulation derived from the zebrafish model. Gen Comp Endocrinol. (In press)
Guh, Y.J., Tseng, Y.C., Yang, C.Y., Hwang, P.P., 2014. Endothelin-1 regulates H+-atpase-dependent transepithelial H+ secretion in zebrafish. Endocrinology 155, 1728-1737.
Guh, Y.J., Yang, C.Y., Liu, S.T., Huang, C.J., Hwang, P.P., 2016. Oestrogen-related receptor alpha is required for transepithelial H+ secretion in zebrafish. Proc Biol Sci 283, 20152582.
Hirata, T., Kaneko, T., Ono, T., Nakazato, T., Furukawa, N., Hasegawa, S., Wakabayashi, S., Shigekawa, M., Chang, M.-H., Romero, M.F., Hirose, S., 2003. Mechanism of acid adaptation of a fish living in a ph 3.5 lake. Am J Physiol Regul Integr Comp Physiol 284, 1199-1212.
Hong, H., Yang, L., Stallcap, M.R., 1999. Hormone-independent transcriptional activation and coactivator binding by novel orphan nuclear receptor err3. J Biol Chem 274, 22618–22626.
Horng, J.L., Lin, L.Y., Hwang, P.P., 2009. Functional regulation of H+-atpase-rich cells in zebrafish embryos acclimated to an acidic environment. Am J Physiol Cell Physiol 296, C682-692.
Hsu, H.H., Lin, L.Y., Tseng, Y.C., Horng, J.L., Hwang, P.P., 2014. A new model of fish ion regulation: Identificaion of ionocytes of freshwater- and seawater-acclimated medaka (Oryzias latipes). Cell Tissue Res 357, 225-243.
Huss, J.M., Kopp, R.P., Kelly, D.P., 2002. Peroxisome proliferator-activated receptor coactivator-1alpha (pgc-1alpha) coactivates the cardiac-enriched nuclear receptors estrogen-related receptor-alpha and -gamma. Identification of novel leucine-rich interaction motif within pgc-1alpha. J Biol Chem 277, 40265-40274.
Hyndman, K.A., Evans, D.H., 2007. Endothelin and endothelin converting enzyme-1 in the fish gill: Evolutionary and physiological perspectives. J Exp Biol 210, 4286-4297.
Ichida, M., Nemoto, S., Finkel, T., 2002. Identification of a specific molecular repressor of the peroxisome proliferator-activated receptor gamma coactivator-1 alpha (pgc-1alpha). J Biol Chem 277, 50991-50995.
Kim, D.K., Jeong, J.H., Lee, J.M., Kim, K.S., Park, S.H., Kim, Y.D., Koh, M., Shin, M., Jung, Y.S., Kim, H.S., Lee, T.H., Oh, B.C., Kim, J.I., Park, H.T., Jeong, W.I., Lee, C.H., Park, S.B., Min, J.J., Jung, S.I., Choi, S.Y., Choy, H.E., Choi, H.S., 2014. Inverse agonist of estrogen-related receptor gamma controls salmonella typhimurium infection by modulating host iron homeostasis. Nat Med 20, 419-424.
Lin, C.C., Lin, L.Y., Hsu, H.H., Thermes, V., Prunet, P., Horng, J.L., Hwang, P.P., 2012. Acid secretion by mitochondrion-rich cells of medaka (Oryzias latipes) acclimated to acidic freshwater. Am J Physiol Regul Integr Comp Physiol 302, R283-291.
Lin, C.H., Shih, T.H., Liu, S.T., Hsu, H.H., Hwang, P.P., 2015. Cortisol regulates acid secretion of H+-atpase-rich ionocytes in zebrafish (Danio rerio) embryos. Front Physiol 6, 328.
Liu, D., Zhang, Z., Teng, C.T., 2005. Estrogen-related receptor-gamma and peroxisome proliferator-activated receptor-gamma coactivator-1alpha regulate estrogen-related receptor-alpha gene expression via a conserved multi-hormone response element. J Mol Endocrinol 34, 473-487.
Paillard, M., Bichara, M., 1989. Peptide hormone effects on urinary acidification and acid-base balance: PTH, ADH, and glucagon. Am. J. Physiol. 256, F973-985.
Pei, L., Mu, Y., Leblanc, M., Alaynick, W., Barish, G.D., Pankratz, M., Tseng, T.W., Kaufman, S., Liddle, C., Yu, R.T., Downes, M., Pfaff, S.L., Auwerx, J., Gage, F.H., Evans, R.M., 2015. Dependence of hippocampal function on errgamma-regulated mitochondrial metabolism. Cell Metab 21, 628-636.
Tiraby, C., Hazen, B.C., Gantner, M.L., Kralli, A., 2011. Estrogen-related receptor gamma promotes mesenchymal-to-epithelial transition and suppresses breast tumor growth. Cancer Res 71, 2518-2528.
Tremblay, A.M., Dufour, C.R., Ghahremani, M., Reudelhuber, T.L., GiguèRe, V., 2010. Physiological genomics identifies estrogen-related receptor α as a regulator of renal sodium and potassium homeostasis and the renin-angiotensin pathway. Mol Endocrinol 24, 22-32.
Tseng, Y.C., Chen, R.D., Lee, J.R., Liu, S.T., Lee, S.J., Hwang, P.P., 2009. Specific expression and regulation of glucose transporters in zebrafish ionocytes. Am J Physiol Regul Integr Comp Physiol 297, R275-290.
Tseng, Y.C., Huang, C.J., Chang, J.C., Teng, W.Y., Baba, O., Fann, M.J., Hwang, P.P., 2007. Glycogen phosphorylase in glycogen-rich cells is involved in the energy supply for ion regulation in fish gill epithelia. Am J Physiol Regul Integr Comp Physiol 293, R482-491.
Tseng, Y.C., Hwang, P.P., 2008. Some insights into energy metabolism for osmoregulation in fish. Comp Biochem Physiol C Toxicol Pharmacol 148, 419-429.
Villena, J.A., Hock, M.B., Chang, W.Y., Barcas, J.E., Re, V.G., Kralli, A., 2007. Orphan nuclear receptor estrogen-related receptor α is essential for adaptive thermogenesis. Proc Natl Sci U S A 104, 1418–1423.
Wu, S.C., Horng, J.L., Liu, S.T., Hwang, P.P., Wen, Z.H., Lin, C.S., Lin, L.Y., 2010. Ammonium-dependent sodium uptake in mitochondrion-rich cells of medaka (Oryzias latipes) larvae. Am J Physiol Cell Physiol 298, C237-250.
dc.identifier.urihttp://tdr.lib.ntu.edu.tw/jspui/handle/123456789/59376-
dc.description.abstract魚類面臨環境酸化壓力時,體內的血液滲透壓及pH值隨之下降,需大量耗能以恢復體內離子及酸鹼恆定。隨著工業發展,環境污染及氣候變遷造成全球水域的酸化,使魚類生存受到了壓迫,因此,了解魚類酸鹼調節機制是極為重要的課題。神經內分泌系統是生物連結外在環境的重要橋樑,生物遭遇逆境時賀爾蒙將會進行調控,以達最適生存的狀態。Estrogen-related receptors (ERRs) 是孤兒細胞核受體,在生物面臨壓力或刺激時,會參與回應環境適應,已知ERRs在哺乳類會影響Na+、K+的調節,在斑馬魚(Denio rerio)會參與排除H+。斑馬魚主要是由離子細胞上的H+-ATPase (HA)進行排酸,但日本稻田魚、吳郭魚(Oreochromis mossambica)等大多數淡水魚卻主要是以Na+/H+ exchanger 3 (NHE3)進行排酸。因此在本研究中以日本稻田魚作為模式生物探討ERRs對於其離子調控所扮演的角色。在本文發現,日本稻田魚受酸刺激後,其體內及鰓上的errγ2基因表現量有顯著上升。在抑制ERRα以及ERRγ2兩型受體蛋白的實驗中,發現α型不藉由影響離子細胞的數目而直接影響NHE3的表現量進而參與排酸機制;另一方面,結果也顯示,α與γ2型可能也會經由其他途徑間接參與日本稻田魚的排酸機制。此外,螢光原位雜合與免疫螢光染色的結果也支持了前述的假設。但ERRs作用在日本稻田魚的機制仍不明確,有待繼續研究探討。zh_TW
dc.description.abstractWhen fish are encountering an acidic stress, they have to consume extra energy to restore the disturbed internal ionic and acid-base homeostasis. Following the development of industry, environmental pollution and climate change cause acidification in global water and have been threatening the survival of fish. Therefore, studying acid-base regulation mechanisms in fish is extremely important to understand how fish cope with environmental acidification. While fish face a tension, the role of neuroendocrine system is a link between physiological responses and environmental changes. When under stress, estrogen-related receptors (ERRs), steroid hormone receptors, contribute to adapt environment in organisms. In a previous study, ERRs was found to affect V-type H+-ATPase (HA), the major proton secretion related transporter, to regulate proton secretion in zebrafish (Denio rerio). Most of freshwater fishes, such as medaka (Oryzias latipes) and tilapia (Oreochromis mossambicus), use Na+/H+ exchanger 3 (NHE3) as the major proton secretion transporter. Therefore, the present study used medaka as the model animal to investigate the role of ERRs in regulation of proton secretion. Under acidic stress, errγ2 mRNA expression of embryos and adult gills were upregulated. ERRα or ERRγ2 knockdown experiments revealed that ERRα may enhance the expression of NHE3 rather than affecting differentiation of ionocytes to directly regulate H+secretion. The results also suggested that ERRα and ERRγ2 may indirectly affect acid secretion function via other pathways to regulate the function of ionocytes to achieve body fluid acid-base homeostasis; however, the detailed mechanisms are needed to be clarified in future studies.en
dc.description.provenanceMade available in DSpace on 2021-06-16T09:21:55Z (GMT). No. of bitstreams: 1
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Previous issue date: 2017
en
dc.description.tableofcontents論文口試委員審定書 2
致謝 3
中文摘要 4
Abstract 5
Introduction 9
Acid-base regulation in fish 9
Estrogen-related receptors (ERRs) 11
Medaka as a model to study ion homeostasis mechanism 12
Aim of studies 14
Material and Method 15
Experimental animals 15
Acid acclimation 15
Preparation of total RNA 16
Reverse-transcription polymerase chain reaction (RT-PCR) 16
Real-time quantitative PCR (Q-PCR) 16
Microinjection of antisense morpholino oligonucleotides (MOs) 17
H+-selective electrode technique 18
Measurement of surface pH of medaka embryos 19
Cryosectioning 19
Fluorescence in situ hybridization 20
Immunocytochemistry and immunohistochemistry 21
Western blot analysis 22
Statistical analysis 23
Results 24
Effects of environmental pH on mRNA expression of errα, errβ1, errβ2, errγ1 and errγ2 in medaka embryo and adult gill 24
Effects of ERRα and ERRγ2 knockdown on H+ fluxes 24
Effects of ERRα and ERRγ2 knockdown on mRNA expression of transporters 25
Effect of ERRα and ERRγ2 knockdown on cell number of ionocytes in the yolk sac 26
Localizations of errα and errγ2 mRNA in ionocytes of embryo and epithelium of adult gill 26
Effects of ERRγ2 knockdown on proton secretion related hormone mRNA expression 27
Effects of ERRα knockdown on endotheliin 1 mRNA expression 27
Discussion 29
ERRα and ERRγ2 may regulate proton secretion in medaka 29
ERRα is a conserved regulator of proton secretion in medaka 29
ERRγ2 is involved in control of proton secretion 31
ERRs may indirectly regulate proton secretion via other pathways 32
The role of ERRα and ERRγ2 in teleosts 33
Conclusion 35
References 36
Tables and figures 44
dc.language.isoen
dc.subject排酸機制zh_TW
dc.subject類雌激素受體zh_TW
dc.subject日本稻田魚zh_TW
dc.subject離子調控zh_TW
dc.subjectacid secretion mechanismen
dc.subjectestrogen-related receptorsen
dc.subjectmedaka (Oryzias latipes)en
dc.subjectionoregulationen
dc.title類雌激素受體在日本稻田魚表皮排酸功能調控之角色zh_TW
dc.titleThe role of estrogen-related receptors in regulation of proton secretion in medaka (Oryzias latipes)en
dc.typeThesis
dc.date.schoolyear105-2
dc.description.degree碩士
dc.contributor.coadvisor廖文亮(Wen-Liang Liao)
dc.contributor.oralexamcommittee曾庸哲(Yung-Che Tseng),林豊益(Li-Yih Lin),吳貫中(Guan-Chung Wu)
dc.subject.keyword類雌激素受體,日本稻田魚,離子調控,排酸機制,zh_TW
dc.subject.keywordestrogen-related receptors,medaka (Oryzias latipes),ionoregulation,acid secretion mechanism,en
dc.relation.page61
dc.identifier.doi10.6342/NTU201701158
dc.rights.note有償授權
dc.date.accepted2017-06-28
dc.contributor.author-college生命科學院zh_TW
dc.contributor.author-dept漁業科學研究所zh_TW
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