Metastable secondary structures in ribosomal RNA molecular hysteresis in the acid-base titration of Escherichia coli ribosomal RNA

Revzin A, Neumann E, Katchalsky A (1973)
Journal of Molecular Biology 79(1): 95-114.

Zeitschriftenaufsatz | Veröffentlicht | Englisch
 
Download
OA
Autor*in
Revzin, Arnold; Neumann, EberhardUniBi; Katchalsky, Aharon
Abstract / Bemerkung
The metastable conformational states which underlie the hysteresis displayed by Escherichia coli ribosomal RNA in its pH titration in the acid range have been analyzed in terms of acid-stable RNA secondary structures. Sedimentation measurements show that the phenomenon is intramolecular, so that analysis of the hysteresis loops can, in principle, reveal details of molecular architecture. Hysteresis cycles obtained spectrophotometrically and potentiometrically were compared for RNA in solutions of different ionic strengths and ionic compositions. The effect is much smaller at lower ionic strength and disappears in the absence of magnesium ions. The curve followed upon addition of acid appears to reflect the equilibrium state of the system at each pH value. On the base branch of the loop, a slow absorbance change (complete in hours) was observed after the pH was raised by addition of a portion of base. This slow process is attributed to the annealing of mismatched multihelical regions of the ribosomal RNA. Certain regions, however, remain in metastable configurations for days and it is these long-lived non-equilibrium structures that underlie the hysteresis. Titration at 35 °C gave hysteresis loops of the same size and shape as at 20 °C; indeed, we found that the metastabilities are not removed even at 80 °C. Ultraviolet light absorbance difference spectra at 80 °C between solutions at the same pH, but on different branches of the cycle, give insight into the nature of the metastable conformation(s). Our experimental observations lead us to propose that the hysteresis is due to the formation at acidic pH of double-helical structures involving protonated guanine and adenine base pairs. The G.G pairs seem especially important to account for the very high thermal stability, as well as for the fact that the structures formed at a given pH value as acid is added dissociate only at higher pH values when the solution is titrated with base. Titrations of transfer RNA, along with literature data on 16 S rRNA primary structure, imply that the metastable regions in rRNA may consist of perhaps 10 to 15 base pairs.
Erscheinungsjahr
1973
Zeitschriftentitel
Journal of Molecular Biology
Band
79
Ausgabe
1
Seite(n)
95-114
ISSN
0022-2836
Page URI
https://pub.uni-bielefeld.de/record/1774394

Zitieren

Revzin A, Neumann E, Katchalsky A. Metastable secondary structures in ribosomal RNA molecular hysteresis in the acid-base titration of Escherichia coli ribosomal RNA. Journal of Molecular Biology. 1973;79(1):95-114.
Revzin, A., Neumann, E., & Katchalsky, A. (1973). Metastable secondary structures in ribosomal RNA molecular hysteresis in the acid-base titration of Escherichia coli ribosomal RNA. Journal of Molecular Biology, 79(1), 95-114. https://doi.org/10.1016/0022-2836(73)90272-6
Revzin, Arnold, Neumann, Eberhard, and Katchalsky, Aharon. 1973. “Metastable secondary structures in ribosomal RNA molecular hysteresis in the acid-base titration of Escherichia coli ribosomal RNA”. Journal of Molecular Biology 79 (1): 95-114.
Revzin, A., Neumann, E., and Katchalsky, A. (1973). Metastable secondary structures in ribosomal RNA molecular hysteresis in the acid-base titration of Escherichia coli ribosomal RNA. Journal of Molecular Biology 79, 95-114.
Revzin, A., Neumann, E., & Katchalsky, A., 1973. Metastable secondary structures in ribosomal RNA molecular hysteresis in the acid-base titration of Escherichia coli ribosomal RNA. Journal of Molecular Biology, 79(1), p 95-114.
A. Revzin, E. Neumann, and A. Katchalsky, “Metastable secondary structures in ribosomal RNA molecular hysteresis in the acid-base titration of Escherichia coli ribosomal RNA”, Journal of Molecular Biology, vol. 79, 1973, pp. 95-114.
Revzin, A., Neumann, E., Katchalsky, A.: Metastable secondary structures in ribosomal RNA molecular hysteresis in the acid-base titration of Escherichia coli ribosomal RNA. Journal of Molecular Biology. 79, 95-114 (1973).
Revzin, Arnold, Neumann, Eberhard, and Katchalsky, Aharon. “Metastable secondary structures in ribosomal RNA molecular hysteresis in the acid-base titration of Escherichia coli ribosomal RNA”. Journal of Molecular Biology 79.1 (1973): 95-114.
Alle Dateien verfügbar unter der/den folgenden Lizenz(en):
Copyright Statement:
Dieses Objekt ist durch das Urheberrecht und/oder verwandte Schutzrechte geschützt. [...]
Volltext(e)
Access Level
OA Open Access
Zuletzt Hochgeladen
2019-09-06T08:48:11Z
MD5 Prüfsumme
a51ee21b502bc61220de76bbe4fba5e4


11 Zitationen in Europe PMC

Daten bereitgestellt von Europe PubMed Central.

Mg2+-induced proton release from Escherichia coli ribosome and ribosomal RNA.
Hagihara H, Horie K, Wada A, Fukutome H., Biophys Chem 19(2), 1984
PMID: 6202336
Protonated polynucleotides structures - 23. The acid-base hysteresis of poly(dG).poly(dC).
Thiele D, Marck C, Schneider C, Guschlbauer W., Nucleic Acids Res 5(6), 1978
PMID: 27762
The identification of new RNA-binding proteins in the Escherichia coli ribosome.
Littlechild J, Dijk J, Garrett RA., FEBS Lett 74(2), 1977
PMID: 321250
RNA structure.
Kallenbach NR, Berman HM., Q Rev Biophys 10(2), 1977
PMID: 333501
Oxidative titrations of Rhus vernicifera laccase and its specific interaction with hydrogen peroxide.
Farver O, Goldberg M, Lancet D, Pecht I., Biochem Biophys Res Commun 73(2), 1976
PMID: 136969
Polynucleotide fragments from the 28S ribosomal RNA of insects.
Ishikawa H., Nucleic Acids Res 2(1), 1975
PMID: 1129145
Conformation changes in rRNA induced by electric impulses.
Revzin A, Neumann E., Biophys Chem 2(2), 1974
PMID: 4611518

37 References

Daten bereitgestellt von Europe PubMed Central.


Lindahl, 1966
Ribonucleic acid from Escherichia coli; preparation, characterization and physical properties.
LITTAUER UZ, EISENBERG H., Biochim. Biophys. Acta 32(), 1959
PMID: 14417532

Michelson, Progr. Nucl. Acid Res. Mol. Biol 6(), 1967

Pochon, 1965
Helix formation by dAT oligomers. I. Hairpin and straight-chain helices.
Scheffler IE, Elson EL, Baldwin RL., J. Mol. Biol. 36(3), 1968
PMID: 5760542

Spirin, 1969

Steinhardt, 1964

Tanford, Advan. Protein Chem 17(), 1962
Transfer ribonucleic acids.
Zachau HG., Angew. Chem. Int. Ed. Engl. 8(10), 1969
PMID: 4982498
Export

Markieren/ Markierung löschen
Markierte Publikationen

Open Data PUB

Web of Science

Dieser Datensatz im Web of Science®
Quellen

PMID: 4200930
PubMed | Europe PMC

Suchen in

Google Scholar