Raman spectroscopic measurements in self-pressurized aqueous solutions above 100°C: The melting of poly(G) and poly(G) · poly(C)
We have studied by Raman spectroscopy the thermal behavior of associated polyguanylic acid [poly(G)] and polyguanylic–polycytidylic acid [poly(G) · poly(C)] in self‐pressurized aqueous solutions contained in sealed capillary tubes. The associated polynucleotides were found to be very resistant to he...
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Published in | Biopolymers Vol. 49; no. 1; pp. 21 - 28 |
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Main Authors | , , , |
Format | Journal Article |
Language | English |
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New York
John Wiley & Sons, Inc
01.01.1999
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Abstract | We have studied by Raman spectroscopy the thermal behavior of associated polyguanylic acid [poly(G)] and polyguanylic–polycytidylic acid [poly(G) · poly(C)] in self‐pressurized aqueous solutions contained in sealed capillary tubes. The associated polynucleotides were found to be very resistant to heat, but evidence of thermal degradation was observed after melting of the helical structures. The cooperative melting transition of the four‐stranded complex of poly(G) was located at 141°C in 0.5M KCl, 135°C in 0.5M NaCl, 129°C in 0.5M LiCl, 123°C in 0.1M tetramethylammonium perchlorate, and 105°C in 0.1M tetraethylammonium bromide solutions. The transition was observed at 130°C in poly(G) · poly(C) (in 0.5M NaCl). The results in this case show that a four‐stranded poly(G) complex is formed following the melting of the double helix. © 1999 John Wiley & Sons, Inc. Biopoly 49: 21–28, 1999 |
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AbstractList | We have studied by Raman spectroscopy the thermal behavior of associated polyguanylic acid [poly(G)] and polyguanylic–polycytidylic acid [poly(G) · poly(C)] in self‐pressurized aqueous solutions contained in sealed capillary tubes. The associated polynucleotides were found to be very resistant to heat, but evidence of thermal degradation was observed after melting of the helical structures. The cooperative melting transition of the four‐stranded complex of poly(G) was located at 141°C in 0.5M KCl, 135°C in 0.5M NaCl, 129°C in 0.5M LiCl, 123°C in 0.1M tetramethylammonium perchlorate, and 105°C in 0.1M tetraethylammonium bromide solutions. The transition was observed at 130°C in poly(G) · poly(C) (in 0.5M NaCl). The results in this case show that a four‐stranded poly(G) complex is formed following the melting of the double helix. © 1999 John Wiley & Sons, Inc. Biopoly 49: 21–28, 1999 |
Author | Carrier, Virginie Mercier, Pascal Roy, Simon Savoie, Rodrigue |
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Cites_doi | 10.1366/0003702824638610 10.1093/nar/21.10.2343 10.1366/0003702971938830 10.1002/bip.1977.360160407 10.1021/bi00191a012 10.1021/bi9620565 10.1366/0003702824638737 10.1002/bip.360230206 10.1246/bcsj.58.638 10.1007/s0089460020327 10.1063/1.1137245 10.1002/bip.1975.360140614 10.1139/v75-550 10.1002/bip.360340110 10.1002/(SICI)1097-0282(199603)38:3<329::AID-BIP6>3.0.CO;2-W 10.1016/0022-2836(75)90222-3 10.1073/pnas.69.4.938 10.1002/bip.1972.360110907 10.1002/bip.1972.360110607 10.1042/bj1410537 10.1021/bi00269a019 10.1002/jrs.1250250711 10.1021/bi00029a042 |
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SubjectTerms | aqueous solution melting polyguanylic acid polyguanylic-polycytidylic acid Raman spectra self-association |
Title | Raman spectroscopic measurements in self-pressurized aqueous solutions above 100°C: The melting of poly(G) and poly(G) · poly(C) |
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