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A statistical light scattering approach to separating fast and slow dynamics

Application to a model system

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Abstract

Light scattering is a powerful technique to study the structural and dynamical properties of biomolecular systems or other soft materials such as polymeric solutions and blends or gels. An important application of this technique is the study of the kinetics of formation of supramolecular structures. However, in such cases, the system under study is rapidly changing, and consequently the integration time for each measurement is limited. In order to overcome this difficulty, a statistical approach has been developed based on the analysis of the scattered light intensity distribution (Manno et al. 2006, 2004). Indeed the intensity distribution depends upon the ratio between the integration time of each measurement and the coherence time of scattered radiation. This method has been applied to protein aggregation (Manno et al. 2006) and to sol-gel transition (Manno et al. 2004), to obtain information on the heterogeneity of morphological and dynamical features during such processes. In the present work, we accurately test the validity of this approach by analyzing the statistical properties of the light scattered by a model system: a solution of polystyrene spherical macromolecules of different sizes. Each molecular size is related to a given diffusion coefficient and to a given coherence time of the scattered intensity. The effect of changing the experimental integration time is systematically investigated. A mixture of particles of two different sizes is also analyzed to test the validity and robustness of the model based on the convolution of a gaussian with an exponential distribution.

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Abbreviations

DLS:

Dynamic light scattering

LALS:

Large angle light scattering

PLS:

Polystyrene sphere

References

  • Berne BJ, Pecora R (1976) Dynamic light scattering. Wiley Interscience, New York

    Google Scholar 

  • Brown W (1993) Dynamic light scattering: the method and some applications. Clarendon Press, Oxford

    Google Scholar 

  • Goodman JW (2000) Statistical optics. Wiley, New York

    Google Scholar 

  • Joosten JGH, Geladé ETF, Pusey PN (1990) Dynamic light scattering by nonergodic media: Brownian particles trapped in polyacrylamide gels. Phys Rev A 42:2161–2175

    Article  ADS  Google Scholar 

  • Lomakin A, Benedek GB, Teplow DB (1999) Kinetic analysis of amyloid fibril formation. Methods Enzymol 309:429–459

    Article  Google Scholar 

  • Magatti D, Ferri F (2002) 25 ns software correlator for photon and fluorescence correlation spectroscopy. Rev Sci Instr 74:1135–1144

    Article  ADS  Google Scholar 

  • Manno M, Bulone D, Martorana V, San Biagio PL (2004) Ergodic to non-ergodic transition monitored by scattered light intensity statistics. Physica A 341:40–54

    Article  ADS  Google Scholar 

  • Manno M, Craparo EF, Bulone D, Martorana V, San Biagio PL (2006) Kinetics of insulin aggregation: disentanglement of amyloid fibrillation from large-size cluster formation. Biophys J 90:4585–4591

    Article  Google Scholar 

  • Manno M, Craparo EF, Podestà A, Bulone D, Carrotta R, Martorana V, Tiana G, San Biagio PL (2007) Kinetics of different processes in human insulin amyloid formation. J Mol Biol 366:258–274

    Article  Google Scholar 

  • Pusey PN (1977) Statistical properties of scattered radiation. In: Cummings HZ, Pike ER (eds) Photon correlation spectroscopy and velocimetry. Plenum Press, New York

  • Pusey PN, van Megen W (1989) Dynamic light scattering by non-ergodic media. Physica A 157:705–741

    Article  ADS  Google Scholar 

  • Schätzel K (1993) Single-photon correlation techniques. In: Brown W (ed) Dynamic light scattering: the method and some applications. Clarendon Press, Oxford

  • Slepian D (1958) Fluctuations of random noise power. Bell Syst Tech J 37:163–184

    MathSciNet  Google Scholar 

  • Štěpánek P (1993) Data analysis in dynamic light scattering. In: Brown W (ed) Dynamic light scattering: the method and some applications. Clarendon Press, Oxford, pp 177–240

  • Van Kampen NG (1992) Stochastic processes in physics and chemistry. North-Holland, Amsterdam

    Google Scholar 

Download references

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Correspondence to Vincenzo Martorana.

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Proceedings of the XVIII Congress of the Italian Society of Pure and Applied Biophysics (SIBPA), Palermo, Sicily, September 2006.

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Barthès, J., Bulone, D., Manno, M. et al. A statistical light scattering approach to separating fast and slow dynamics. Eur Biophys J 36, 743–752 (2007). https://doi.org/10.1007/s00249-007-0163-1

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  • DOI: https://doi.org/10.1007/s00249-007-0163-1

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