Structure and charge distribution in DNA and poly(styrenesulfonate) aqueous solutions

被引:91
作者
Kassapidou, K
Jesse, W
Kuil, ME
Lapp, A
Egelhaaf, S
vanderMaarel, JRC
机构
[1] LEIDEN UNIV,GORLAEUS LABS,LEIDEN INST CHEM,NL-2300 RA LEIDEN,NETHERLANDS
[2] CENS,LAB LEON BRILLOUIN,F-91191 GIF SUR YVETTE,FRANCE
[3] INST MAX VON LAUE PAUL LANGEVIN,F-38042 GRENOBLE,FRANCE
关键词
D O I
10.1021/ma9617126
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
DNA and synthetic poly(styrenesulfonate) (PSS) solutions without excess simple salt were investigated with small-angle neutron scattering. For both polyelectrolytes, the transition from the rod to the coil regime was covered by an appropriate choice of molecular weights. The polymer, polymer-counterion, and counterion partial structure functions were obtained using contrast variation. For PSS, the single-chain scattering (form function) was observed from samples with zero-average polyion scattering length density contrast. The PSS polymer structure can be described by a locally rodlike configuration, but the projected monomer repeat distance 0.17 nm is smaller than the value expected for a fully stretched (trans) conformation. The PSS persistence length is of order 10 nm and does not agree with any theoretical analysis based on either the bending rigidity of a wormlike chain or modern variational results. The interpolymer structure was derived and compared with results based on the random-phase approximation. Poor agreement was observed, due to the high linear polyion charge density and, hence, strong electrostatic coupling. For highly charged linear polyelectrolytes, it was shown that from the full set of partial structure functions information on the radial counterion profile can be obtained without resorting to a model describing chain correlations. For PSS and DNA, the data agree with the counterion distribution obtained from the classical Poisson-Boltzmann theory and the cylindrical cell model, if the momentum transfer is far greater than the inverse persistence length.
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页码:2671 / 2684
页数:14
相关论文
共 59 条
[21]  
GROSBERG AY, 1994, STAT PHYSICS MACROMO
[22]   ELECTROSTATIC PERSISTENCE LENGTH OF A POLYELECTROLYTE CHAIN [J].
HA, BY ;
THIRUMALAI, D .
MACROMOLECULES, 1995, 28 (02) :577-581
[23]  
HAO L, 1995, MACROMOLECULES, V28, P5921
[24]  
Higgins J.S., 1994, POLYM NEUTRON SCATTE
[25]   STUDY OF BIOLOGICAL STRUCTURES BY NEUTRON-SCATTERING FROM SOLUTION [J].
JACROT, B .
REPORTS ON PROGRESS IN PHYSICS, 1976, 39 (10) :911-953
[26]   THE CHARGE STRUCTURE-FUNCTION IN ELECTROLYTES AND POLYELECTROLYTES [J].
JANNINK, G ;
VANDERMAAREL, JRC .
BIOPHYSICAL CHEMISTRY, 1991, 41 (01) :15-22
[27]   PHASE-DIAGRAM OF POLY-ELECTROLYTE SOLUTIONS [J].
KAJI, K ;
URAKAWA, H ;
KANAYA, T ;
KITAMARU, R .
JOURNAL DE PHYSIQUE, 1988, 49 (06) :993-1000
[28]  
Katchalsky A., 1971, PURE APPL CHEM, V26, P327, DOI [DOI 10.1351/PAC197126030327, 10.1351/pac197126030327]
[29]   ON THE THEORY OF WEAKLY CHARGED POLY-ELECTROLYTES [J].
KHOKHLOV, AR ;
KHACHATURIAN, KA .
POLYMER, 1982, 23 (12) :1742-1750
[30]  
LEBRET M, 1982, J CHEM PHYS, V76, P6243, DOI 10.1063/1.443027