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請用此 Handle URI 來引用此文件: http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/77276
完整後設資料紀錄
DC 欄位值語言
dc.contributor.advisor李士傑zh_TW
dc.contributor.advisorShyh-Jye Leeen
dc.contributor.author黃續曇zh_TW
dc.contributor.authorXutan Huangen
dc.date.accessioned2021-07-10T21:53:49Z-
dc.date.available2024-08-15-
dc.date.copyright2019-08-23-
dc.date.issued2019-
dc.date.submitted2002-01-01-
dc.identifier.citationA. Hu, C.-A., 2014. Mammalian P5CR and P5CDH: Protein Structure and Disease Association. SOJ Biochemistry 1.
Cai, F., Miao, Y., Liu, C., Wu, T., Shen, S., Su, X., Shi, Y., 2018. Pyrroline-5-carboxylate reductase 1 promotes proliferation and inhibits apoptosis in non-small cell lung cancer. Oncol Lett 15, 731-740.
De Ingeniis, J., Ratnikov, B., Richardson, A.D., Scott, D.A., Aza-Blanc, P., De, S.K., Kazanov, M., Pellecchia, M., Ronai, Z., Osterman, A.L., Smith, J.W., 2012. Functional specialization in proline biosynthesis of melanoma. PLoS One 7, e45190.
Dimopoulou, A., Fischer, B., Gardeitchik, T., Schroter, P., Kayserili, H., Schlack, C., Li, Y., Brum, J.M., Barisic, I., Castori, M., Spaich, C., Fletcher, E., Mahayri, Z., Bhat, M., Girisha, K.M., Lachlan, K., Johnson, D., Phadke, S., Gupta, N., Simandlova, M., Kabra, M., David, A., Nijtmans, L., Chitayat, D., Tuysuz, B., Brancati, F., Mundlos, S., Van Maldergem, L., Morava, E., Wollnik, B., Kornak, U., 2013. Genotype-phenotype spectrum of PYCR1-related autosomal recessive cutis laxa. Mol Genet Metab 110, 352-361.
Ding, J., Kuo, M.L., Su, L., Xue, L., Luh, F., Zhang, H., Wang, J., Lin, T.G., Zhang, K., Chu, P., Zheng, S., Liu, X., Yen, Y., 2017. Human mitochondrial pyrroline-5-carboxylate reductase 1 promotes invasiveness and impacts survival in breast cancers. Carcinogenesis 38, 519-531.
Gerhard, G.S., Kauffman, E.J., Wang, X., Stewart, R., Moore, J.L., Kasales, C.J., Demidenko, E., Cheng, K.C., 2002. Life spans and senescent phenotypes in two strains of Zebrafish (Danio rerio). Exp Gerontol 37, 1055-1068.
Julien Prudent, N.P., Benjamin Bonneau & Germain Gillet Germain GILLET’s laboratory, Université Lyon I, 2015. zebrafish embryos and mitochondrial calcium uptake application.pdf. PROTOCOL EXCHANGE.
Kivuva, E.C., Parker, M.J., Cohen, M.C., Wagner, B.E., Sobey, G., 2008. De Barsy syndrome: a review of the phenotype. Clin Dysmorphol 17, 99-107.
Liang, S.T., Audira, G., Juniardi, S., Chen, J.R., Lai, Y.H., Du, Z.C., Lin, D.S., Hsiao, C.D., 2019. Zebrafish Carrying pycr1 Gene Deficiency Display Aging and Multiple Behavioral Abnormalities. Cells 8.
Nakayama, T., Al-Maawali, A., El-Quessny, M., Rajab, A., Khalil, S., Stoler, J.M., Tan, W.H., Nasir, R., Schmitz-Abe, K., Hill, R.S., Partlow, J.N., Al-Saffar, M., Servattalab, S., LaCoursiere, C.M., Tambunan, D.E., Coulter, M.E., Elhosary, P.C., Gorski, G., Barkovich, A.J., Markianos, K., Poduri, A., Mochida, G.H., 2015. Mutations in PYCR2, Encoding Pyrroline-5-Carboxylate Reductase 2, Cause Microcephaly and Hypomyelination. Am J Hum Genet 96, 709-719.
Ou, R., Zhang, X., Cai, J., Shao, X., Lv, M., Qiu, W., Xuan, X., Liu, J., Li, Z., Xu, Y., 2016. Downregulation of pyrroline-5-carboxylate reductase-2 induces the autophagy of melanoma cells via AMPK/mTOR pathway. Tumour Biol 37, 6485-6491.
Ratnikov, B.I., Scott, D.A., Osterman, A.L., Smith, J.W., Ronai, Z.A., 2017. Metabolic rewiring in melanoma. Oncogene 36, 147-157.
Reversade, B., Escande-Beillard, N., Dimopoulou, A., Fischer, B., Chng, S.C., Li, Y., Shboul, M., Tham, P.Y., Kayserili, H., Al-Gazali, L., Shahwan, M., Brancati, F., Lee, H., O'Connor, B.D., Schmidt-von Kegler, M., Merriman, B., Nelson, S.F., Masri, A., Alkazaleh, F., Guerra, D., Ferrari, P., Nanda, A., Rajab, A., Markie, D., Gray, M., Nelson, J., Grix, A., Sommer, A., Savarirayan, R., Janecke, A.R., Steichen, E., Sillence, D., Hausser, I., Budde, B., Nurnberg, G., Nurnberg, P., Seemann, P., Kunkel, D., Zambruno, G., Dallapiccola, B., Schuelke, M., Robertson, S., Hamamy, H., Wollnik, B., Van Maldergem, L., Mundlos, S., Kornak, U., 2009. Mutations in PYCR1 cause cutis laxa with progeroid features. Nat Genet 41, 1016-1021.
Scherrer, D.Z., Baptista, M.B., Matos, A.H., Maurer-Morelli, C.V., Steiner, C.E., 2013. Mutations in PYCR1 gene in three families with autosomal recessive cutis laxa, type 2. Eur J Med Genet 56, 336-339.
Wingfield, P., 2001. Protein precipitation using ammonium sulfate. Curr Protoc Protein Sci Appendix 3, Appendix 3F.
Zaki, M.S., Bhat, G., Sultan, T., Issa, M., Jung, H.J., Dikoglu, E., Selim, L., I, G.M., Abdel-Hamid, M.S., Abdel-Salam, G., Marin-Valencia, I., Gleeson, J.G., 2016. PYCR2 Mutations cause a lethal syndrome of microcephaly and failure to thrive. Ann Neurol 80, 59-70.
Zeng, T., Zhu, L., Liao, M., Zhuo, W., Yang, S., Wu, W., Wang, D., 2017. Knockdown of PYCR1 inhibits cell proliferation and colony formation via cell cycle arrest and apoptosis in prostate cancer. Med Oncol 34, 27.
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dc.identifier.urihttp://tdr.lib.ntu.edu.tw/jspui/handle/123456789/77276-
dc.description.abstract早衰症是一種罕見的遺傳性疾病,基因缺陷造成提早老化的表徵。前人研究顯示,人類吡咯啉-5-羧酸鹽還原酶1(pycr1)基因的突變引起皮膚皺紋等與衰老相關的表徵。PYCR基因有三種,包括Pycr1,2和3。PYCR作用於催化合成脯氨酸的最後步驟,脯氨酸是膠原蛋白中最豐富的氨基酸。因此,研究PYCR基因可能有助了解早衰機制和原因。先前研究集中在Pycr1和Pycr2上,Pycr3的研究很少。我以斑馬魚為實驗模型動物研究pycr3的表達和功能分析。使用RT-PCR及原位雜交,發現pycr3在不同胚胎階段和成魚組織均有表達。此外,使用斑馬魚Pycr3蛋白的N端那一半作為免疫原,製作Pycr3抗體。將含Pycr3重組蛋白的SDS凝膠切片注射到兔子三次,取血清樣品進行滴度活性測試,並在第三次加強注射時犧牲採血。測試抗血清,發現其在表達pycr3的細菌裂解蛋白質中呈現對Pycr3的顯著特異性,但卻無法在斑馬魚胚中偵測到內源性的Pycr3。其可能由於內源性Pycr3過低所導,於是使用硫酸銨沈澱和濃縮離心管來濃縮Pycr3蛋白,但仍無法偵測到斑馬魚的蛋白。目前的結論是該抗體無法辨識斑馬魚胚內源性Pycr3,但此一結論能需進行更多優化試驗始能確定。zh_TW
dc.description.abstractProgeria is a rare genetic disease with premature aging phenotypes. Previous studies have found that the mutation of human pycr1 gene can cause aging-related characterization of skin wrinkles. There are three PYCR genes, including Pycr1, 2 and 3. Those PYCRs act on the final step of the catalytic synthesis of proline, which is the most abundant amino acid in collagens. Therefore, studying the PYCR genes may help understand the mechanisms and causes of PYCR-related progeria. Among them, most studies focus on Pycr1 and Pycr2, and little research has been done on Pycr3. In this research, zebrafish was used as a model animal to study the expression and functional analysis of pycr3. By using RT-PCR and whole-mount in situ hybridization, I found pycr3 express in different embryonic stages and adult tissues. Furthermore, I generated a Pycr3 antibody using the N-terminal half of zebrafish Pycr3 GST fusion protein as immunogen. The SDS gel slices containing Pycr3 recombinant protein was injected into a rabbit for three times and serum samples were taken for titer testing and sacrificed at the third boost. I characterized the antisera and found significant specificity to Pycr3 in the pycr3-expressing bacterial lysate proteins. However, the Pycr3 antisera failed to detect the endogenous Pycr3 in zebrafish embryos. It might be due to the lower amount of Pycr3 present in zebrafish embryos. I tried to concentrate the endogenous Pycr3 by ammonium sulfate and concentrated centrifuge tube, but still could not detect the zebrafish protein. The current conclusion is the Pycr3 antibody generated cannot recognize zebrafish endogenous Pycr3, however, more rigorous optimizations are needed to draw a firm conclusion.en
dc.description.provenanceMade available in DSpace on 2021-07-10T21:53:49Z (GMT). No. of bitstreams: 1
ntu-108-R06b21027-1.pdf: 3019879 bytes, checksum: 214f658be13848faffc1ce4515447840 (MD5)
Previous issue date: 2019
en
dc.description.tableofcontentsCONTENTS
CONTENTS…………………………………………………………………………Ⅰ
LIST OF TABLE AND FIGURES…………………………………………………Ⅱ
中文摘要…………………………………………………………………………..…Ⅲ
ABSTRACT…………………………………………………………………………Ⅳ
INTRODUCTION……………………………………………………………………9
Progeroid syndromes……………………………………………………………......9
Isoenzymes of PYCR genes…………………………………...…………………..10
Zebrafish as a model organism for pycr gene research…………..........…………..11
MATERIALS AND METHODS…………………………………………….…..…14
Zebrafish maintenance…………………………………………………………….14
Polymerase Chain Reaction (PCR)………………………………………………..14
Gel Extraction……………………………………………………………………..15
Restriction digestion and ligation…………………………………………………15
Transformation………………………………………………………………….…16
Colony PCR…………………………………………………………………..……17
Sequencing………………………………………………………………………...17
RT PCR……………………………….………………………………………...….17
Whole mount in situ hybridization………………………………………………...18
Manufacture Pycr3 antibody………………………………………………………20
Extraction of zebrafish protein…………………………………………………….22
Immunoblot………………………………………………………………………..24
Concentration endogenous Pycr3 protein…………………………………………25
Statistics…………………………………………………………………………...27
RESULTS…………………………………………………………………………....28
Sequence alignment and phylogenetic analyses of Pycr1, Pycr2 and Pycr3…28
Expression of pycr3 in the Early Embryos and the Adult Tissues……………28
Whole-mount in situ hybridization analysis of the expression of pycr3 during development…………………………………………………………………...29
Cloning of GST-Pycr3………………….……………………………………...29
Induction of GST-Pycr3 recombinant protein…………………………………30
Attempts to obtain Pycr3 cytosol protein……………………………………...30
Making GST-Pycr3_N antibody……………………………………………….31
Anti-Pycr3 serum titer………………………………………………………....31
Concentration of zebrafish proteins…………………………………………...33
DISCUSSION…………………………………………………………………....35
REFERENCE…………………………………………………………………....40
TABLE…………………………………………………………………………...42
FIGURES………………………………………………………………………...43
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dc.language.isoen-
dc.subjectProlinezh_TW
dc.subject?咯?-5-羧酸鹽還原?3zh_TW
dc.subject斑馬魚zh_TW
dc.subject脯氨酸en
dc.subjectzebrafishen
dc.subjectpycr3en
dc.title吡咯啉-5-羧酸鹽還原酶3之表達與功能性分析zh_TW
dc.titleExpression and functional analysis of Pyrroline-5-carboxylate reductase 3en
dc.typeThesis-
dc.date.schoolyear107-2-
dc.description.degree碩士-
dc.contributor.oralexamcommittee蔡素宜;郭典翰zh_TW
dc.contributor.oralexamcommitteeSu-Yi Tsai;Dian-Han Kuoen
dc.subject.keyword斑馬魚,?咯?-5-羧酸鹽還原?3,Proline,zh_TW
dc.subject.keywordzebrafish,pycr3,脯氨酸,en
dc.relation.page65-
dc.identifier.doi10.6342/NTU201902823-
dc.rights.note未授權-
dc.date.accepted2019-08-12-
dc.contributor.author-college生命科學院-
dc.contributor.author-dept生命科學系-
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