參考文獻 |
Achbergerová, L., & Nahálka, J. (2011). Polyphosphate-an ancient energy source and active metabolic regulator. Microbial cell factories, 10, 1-14.
Adenosine 5′-triphosphat - ATP. http://www.biosite.dk/leksikon/atp.htm
Ahn, K., & Kornberg, A. (1990). Polyphosphate kinase from Escherichia coli. Purification and demonstration of a phosphoenzyme intermediate. Journal of Biological Chemistry, 265(20), 11734-11739.
Akiyama, M., Crooke, E., & Kornberg, A. (1993). An exopolyphosphatase of Escherichia coli. The enzyme and its ppx gene in a polyphosphate operon. Journal of Biological Chemistry, 268(1), 633-639.
Ault-Riché, D., Fraley, C. D., Tzeng, C.-M., & Kornberg, A. (1998). Novel assay reveals multiple pathways regulating stress-induced accumulations of inorganic polyphosphate in Escherichia coli. Journal of bacteriology, 180(7), 1841-1847.
Aziz, M., & Ng, W. (1992). Feasibility of wastewater treatment using the activated-algae process. Bioresource technology, 40(3), 205-208.
Bolesch, D. G., & Keasling, J. D. (2000). Polyphosphate Binding and Chain Length Recognition ofEscherichia coli Exopolyphosphatase. Journal of Biological Chemistry, 275(43), 33814-33819.
Brancaccio, P., Maffulli, N., & Limongelli, F. M. (2007). Creatine kinase monitoring in sport medicine. British medical bulletin, 81(1), 209-230.
Brown, L. R. (2014). Many Countries Reaching Diminishing Returns in Fertilizer Use. Earth Policy Institute.
Cabaniss, C. D. (1990). Creatine kinase. Clinical Methods: The History, Physical, and Laboratory Examinations. 3rd edition.
Cade‐Menun, B., Liu, C., Nunlist, R., & McColl, J. (2002). Soil and litter phosphorus‐31 nuclear magnetic resonance spectroscopy: Extractants, metals, and phosphorus relaxation times. Journal of Environmental Quality, 31(2), 457-465.
Chhetri, G., Kalita, P., & Tripathi, T. (2015). An efficient protocol to enhance recombinant protein expression using ethanol in Escherichia coli. MethodsX, 2, 385-391.
Childers, D. L., Corman, J., Edwards, M., & Elser, J. J. (2011). Sustainability challenges of phosphorus and food: solutions from closing the human phosphorus cycle. Bioscience, 61(2), 117-124.
Chu, W., Shi, Y., & Zhang, L. (2022). Recovery of phosphorus in wastewater in the form of polyphosphates: A review. Processes, 10(1), 144.
Dinarvand, P., Hassanian, S. M., Qureshi, S. H., Manithody, C., Eissenberg, J. C., Yang, L., & Rezaie, A. R. (2014). Polyphosphate amplifies proinflammatory responses of nuclear proteins through interaction with receptor for advanced glycation end products and P2Y1 purinergic receptor. Blood, The Journal of the American Society of Hematology, 123(6), 935-945.
Dunwiddie, T. V., & Masino, S. A. (2001). The role and regulation of adenosine in the central nervous system. Annual review of neuroscience, 24(1), 31-55.
Eixler, S., Selig, U., & Karsten, U. (2005). Extraction and detection methods for polyphosphate storage in autotrophic planktonic organisms. Hydrobiologia, 533(1), 135-143.
Fallowfield, H., & Garrett, M. (1985). The photosynthetic treatment of pig slurry in temperate climatic conditions: a pilot-plant study. Agricultural wastes, 12(2), 111-136.
Fayiga, A. O., & Nwoke, O. (2016). Phosphate rock: origin, importance, environmental impacts, and future roles. Environmental Reviews, 24(4), 403-415.
Ferrucci, V., Kong, D.-Y., Asadzadeh, F., Marrone, L., Boccia, A., Siciliano, R., Criscuolo, G., Anastasio, C., Quarantelli, F., & Comegna, M. (2021). Long-chain polyphosphates impair SARS-CoV-2 infection and replication. Science Signaling, 14(690), eabe5040.
Fuhrman, B. P., & Zimmerman, J. J. (2006). Pediatric critical care. Mosby-Elsevier Philadelphia^ ePA PA.
Gerasimaitė, R., Sharma, S., Desfougeres, Y., Schmidt, A., & Mayer, A. (2014). Coupled synthesis and translocation restrains polyphosphate to acidocalcisome-like vacuoles and prevents its toxicity. Journal of cell science, 127(23), 5093-5104.
Gray, M. J., Wholey, W.-Y., Wagner, N. O., Cremers, C. M., Mueller-Schickert, A., Hock, N. T., Krieger, A. G., Smith, E. M., Bender, R. A., & Bardwell, J. C. (2014). Polyphosphate is a primordial chaperone. Molecular cell, 53(5), 689-699.
Hildenbrand, J. C., Reinhardt, S., & Jendrossek, D. (2019). Formation of an Organic–Inorganic Biopolymer: Polyhydroxybutyrate–Polyphosphate. Biomacromolecules, 20(9), 3253-3260.
Hildenbrand, J. C., Teleki, A., & Jendrossek, D. (2020). A universal polyphosphate kinase: PPK2c of Ralstonia eutropha accepts purine and pyrimidine nucleotides including uridine diphosphate. Applied microbiology and biotechnology, 104(15), 6659-6667.
Hortobagyi, T., & Denahan, T. (1989). Variability in creatine kinase: methodological,exercise, and clinically related factors. International journal of sports medicine, 10(02), 69-80.
Itoh, H., & Shiba, T. (2004). Polyphosphate synthetic activity of polyphosphate: AMP phosphotransferase in Acinetobacter johnsonii 210A. Journal of bacteriology, 186(15), 5178-5181.
Jiang, S., Wang, J., Qiao, S., & Zhou, J. (2021). Phosphate recovery from aqueous solution through adsorption by magnesium modified multi-walled carbon nanotubes. Science of the Total Environment, 796, 148907.
Jing, S., Benefield, L., & Hill, W. (1992). Observations relating to enhanced phosphorus removal in biological systems. Water research, 26(2), 213-223.
Kashani, K., Rosner, M. H., & Ostermann, M. (2020). Creatinine: From physiology to clinical application. European journal of internal medicine, 72, 9-14.
Keech, R., & Bowers Jr, G. (1976). Determination of the molar absorptivity of NADH. Clinical Chemistry, 22(2), 141-150.
Kornberg, A., Rao, N. N., & Ault-Riche, D. (1999). Inorganic polyphosphate: a molecule of many functions. Annual review of biochemistry, 68(1), 89-125.
Krishnamoorthy, N., Dey, B., Unpaprom, Y., Ramaraj, R., Maniam, G. P., Govindan, N., Jayaraman, S., Arunachalam, T., & Paramasivan, B. (2021). Engineering principles and process designs for phosphorus recovery as struvite: A comprehensive review. Journal of Environmental Chemical Engineering, 9(5), 105579.
Kuroda, A., Takiguchi, N., Gotanda, T., Nomura, K., Kato, J., Ikeda, T., & Ohtake, H. (2002). A simple method to release polyphosphate from activated sludge for phosphorus reuse and recycling. Biotechnology and Bioengineering, 78(3), 333-338.
Landoni, G., Zangrillo, A., Lomivorotov, V. V., Likhvantsev, V., Ma, J., De Simone, F., & Fominskiy, E. (2016). Cardiac protection with phosphocreatine: a meta-analysis. Interactive Cardiovascular and Thoracic Surgery, 23(4), 637-646.
Lavrinovičs, A., Mežule, L., & Juhna, T. (2020). Microalgae starvation for enhanced phosphorus uptake from municipal wastewater. Algal Research, 52, 102090.
Li, B., Huang, H. M., Boiarkina, I., Yu, W., Huang, Y. F., Wang, G. Q., & Young, B. R. (2019). Phosphorus recovery through struvite crystallisation: Recent developments in the understanding of operational factors. Journal of environmental management, 248, 109254.
Müller, W. E., Tolba, E., Schröder, H. C., & Wang, X. (2015). Polyphosphate: a morphogenetically active implant material serving as metabolic fuel for bone regeneration. Macromolecular Bioscience, 15(9), 1182-1197.
Müller, W. E., Schepler, H., Neufurth, M., Wang, S., Ferrucci, V., Zollo, M., Tan, R.,Schröder, H. C., & Wang, X. (2023). The physiological polyphosphate as a healing biomaterial for chronic wounds: crucial roles of its antibacterial and unique metabolic energy supplying properties. Journal of Materials Science & Technology, 135, 170-185.
McGriff Jr, E. C., & McKinney, R. E. (1972). The removal of nutrients and organics by activated algae. Water research, 6(10), 1155-1164.
Momeni, A., & Filiaggi, M. J. (2013). Synthesis and characterization of different chain length sodium polyphosphates. Journal of non-crystalline solids, 382, 11-17.
Morrissey, J. H., Choi, S. H., & Smith, S. A. (2012). Polyphosphate: an ancient molecule that links platelets, coagulation, and inflammation. Blood, The Journal of the American Society of Hematology, 119(25), 5972-5979.
Motomura, K., Hirota, R., Okada, M., Ikeda, T., Ishida, T., & Kuroda, A. (2014). A new subfamily of polyphosphate kinase 2 (class III PPK2) catalyzes both nucleoside monophosphate phosphorylation and nucleoside diphosphate phosphorylation. Applied and environmental microbiology, 80(8), 2602-2608.
Mukherjee, C., & Ray, K. (2015). An improved method for extraction and quantification of polyphosphate granules from microbial cells. Protoc. Exch, 10.
Nakagaki, M., Inoue, H., Fujie, T., & Ohashi, S. (1963). The polymerization reaction of sodium phosphate. Bulletin of the Chemical Society of Japan, 36(5), 595-599.
Neville, N., Roberge, N., & Jia, Z. (2022). Polyphosphate kinase 2 (PPK2) enzymes: structure, function, and roles in bacterial physiology and virulence. International Journal of Molecular Sciences, 23(2), 670.
Nocek, B. P., Khusnutdinova, A. N., Ruszkowski, M., Flick, R., Burda, M., Batyrova, K., Brown, G., Mucha, A., Joachimiak, A., Berlicki, Ł., & Yakunin, A. F. (2018). Structural Insights into Substrate Selectivity and Activity of Bacterial Polyphosphate Kinases. ACS Catalysis, 8(11), 10746-10760. https://doi.org/10.1021/acscatal.8b03151
Ohtomo, R., Sekiguchi, Y., Mimura, T., Saito, M., & Ezawa, T. (2004). Quantification of polyphosphate: different sensitivities to short-chain polyphosphate using enzymatic and colorimetric methods as revealed by ion chromatography. Analytical biochemistry, 328(2), 139-146.
Ong, S.-Y., Wu, J., Moochhala, S. M., Tan, M.-H., & Lu, J. (2008). Development of a chitosan-based wound dressing with improved hemostatic and antimicrobial properties. Biomaterials, 29(32), 4323-4332.
Park, J., & Gupta, R. (2008). Adenosine kinase and ribokinase–the RK family of proteins. Cellular and molecular life sciences, 65, 2875-2896.
Parnell, A. E., Mordhorst, S., Kemper, F., Giurrandino, M., Prince, J. P., Schwarzer, N. J., Hofer, A., Wohlwend, D., Jessen, H. J., Gerhardt, S., Einsle, O., Oyston, P. C. F., Andexer, J. N., & Roach, P. L. (2018). Substrate recognition and mechanism revealed by ligand-bound polyphosphate kinase 2 structures. Proceedings of the National Academy of Sciences, 115(13), 3350-3355. https://doi.org/10.1073/pnas.1710741115
Rao, N. N., Gómez-García, M. R., & Kornberg, A. (2009). Inorganic polyphosphate: essential for growth and survival. Annual review of biochemistry, 78, 605-647.
Rittmann, B. E., & McCarty, P. L. (2001). Environmental biotechnology: principles and applications. McGraw-Hill Education.
Roy, R. N., Finck, A., Blair, G., & Tandon, H. (2006). Plant nutrition for food security. A guide for integrated nutrient management. FAO Fertilizer and Plant Nutrition Bulletin, 16, 368.
Schepler, H., Neufurth, M., Wang, S., She, Z., Schröder, H. C., Wang, X., & Müller, W. E. (2022). Acceleration of chronic wound healing by bio-inorganic polyphosphate: In vitro studies and first clinical applications. Theranostics, 12(1), 18.
Shum, K. T., Lui, E. L. H., Wong, S. C. K., Yeung, P., Sam, L., Wang, Y., Watt, R. M., & Tanner, J. A. (2011). Aptamer-mediated inhibition of Mycobacterium tuberculosis polyphosphate kinase 2. Biochemistry, 50(15), 3261-3271.
Sikk, P., Käämbre, T., Vija, H., Tepp, K., Tiivel, T., Nutt, A., & Saks, V. (2009). Ultra performance liquid chromatography analysis of adenine nucleotides and creatine derivatives for kinetic studies. Proceedings of the Estonian Academy of Sciences, 58(2).
Song, H., Dharmasena, M. N., Wang, C., Shaw, G. X., Cherry, S., Tropea, J. E., Jin, D. J., & Ji, X. (2020). Structure and activity of PPX/GppA homologs from Escherichia coli and Helicobacter pylori. The FEBS journal, 287(9), 1865-1885.
Strumia, E., Pelliccia, F., & D’Ambrosio, G. (2012). Creatine phosphate: pharmacological and clinical perspectives. Advances in therapy, 29(2), 99-123.
Sun, C., Li, Z., Ning, X., Xu, W., & Li, Z. (2021). In vitro biosynthesis of ATP from adenosine and polyphosphate. Bioresources and Bioprocessing, 8(1), 1-10.
Sureka, K., Dey, S., Datta, P., Singh, A. K., Dasgupta, A., Rodrigue, S., Basu, J., & Kundu, M. (2007). Polyphosphate kinase is involved in stress‐induced mprAB‐sigE‐rel signalling in mycobacteria. Molecular microbiology, 65(2), 261-276.
Tam, N., & Wong, Y. (1989). Wastewater nutrient removal by Chlorella pyrenoidosa and Scenedesmus sp. Environmental Pollution, 58(1), 19-34.
Tao, G.-J., Long, X.-Y., Tang, R., Wang, J.-Y., Fang, Z.-D., Xie, C.-X., Wang, T., & Peng, X.-H. (2020). Comparison and optimization of extraction protocol for intracellular phosphorus and its polyphosphate in enhanced biological phosphorus removal (EBPR) sludge. Science of the Total Environment, 699, 134389.
Taussig, L. M., & Landau, L. I. (2008). Pediatric Respiratory Medicine E-Book. Elsevier Health Sciences.
Tumlirsch, T., Sznajder, A., & Jendrossek, D. (2015). Formation of polyphosphate by polyphosphate kinases and its relationship to poly (3-hydroxybutyrate) accumulation in Ralstonia eutropha strain H16. Applied and environmental microbiology, 81(24), 8277-8293.
UN SDGs. (2015). https://sdgs.un.org/goals#goals
Wang, D., Li, Y., Cope, H. A., Li, X., He, P., Liu, C., Li, G., Rahman, S. M., Tooker, N. B., & Bott, C. B. (2021). Intracellular polyphosphate length characterization in polyphosphate accumulating microorganisms (PAOs): Implications in PAO phenotypic diversity and enhanced biological phosphorus removal performance. Water research, 206, 117726.
Wang, F., Wei, J., Zou, X., Fu, R., Li, J., Wu, D., Lv, H., Zhu, G., Wu, X., & Chen, H. (2019). Enhanced electrochemical phosphate recovery from livestock wastewater by adjusting pH with plant ash. Journal of environmental management, 250, 109473.
Wang, L., Min, M., Li, Y., Chen, P., Chen, Y., Liu, Y., Wang, Y., & Ruan, R. (2010). Cultivation of green algae Chlorella sp. in different wastewaters from municipal wastewater treatment plant. Applied biochemistry and biotechnology, 162, 1174-1186.
Wang, P.-H., Fujishima, K., Berhanu, S., Kuruma, Y., Jia, T. Z., Khusnutdinova, A. N., Yakunin, A. F., & McGlynn, S. E. (2019). A bifunctional polyphosphate kinase driving the regeneration of nucleoside triphosphate and reconstituted cell-free protein synthesis. ACS Synthetic Biology, 9(1), 36-42.
Wyss, M., & Kaddurah-Daouk, R. (2000). Creatine and Creatinine Metabolism. PHYSIOLOGICAL REVIEWS, 80(3).
Zhang, H.-L., Fang, W., Wang, Y.-P., Sheng, G.-P., Zeng, R. J., Li, W.-W., & Yu, H.-Q. (2013). Phosphorus removal in an enhanced biological phosphorus removal process: roles of extracellular polymeric substances. Environmental science & technology, 47(20), 11482-11489.
Zhang, L., Yang, H., Feng, A., & Tan, X. (2017). Study on general situation and analysis of supply and demand of global phosphate resources. Conservation and Utilization of Mineral Resources(5), 105-112.
Zhang, M. Y., Hao, A. M., & Kuba, T. (2013). Extraction of poly-phosphate from the activated sludge with thermal treatment for phosphorus recovery. Advanced Materials Research,
田中智久. (2021). Suppression of Demineralization by Inorganic Polyphosphates with Optimum Chain Length for Stain Removal and Prevention of Stain Deposition 昭和大学].
能量生物學. https://smallcollation.blogspot.com/2013/07/bioenergetics.html#gsc.tab=0
張基隆, 胡祐甄, 黃姿菁, 鄭筱翎, & 謝寶萱 (2020). 生物化學. In: 華杏出版機構.
循環經濟推動方案. (2019). https://www.ey.gov.tw/Page/5A8A0CB5B41DA11E/18ef26a4-5d05-4fb3-963e-6b228e713576
歐陽嶠暉. (2016). 下水道學. |