Characterization of DNA degradation using direct current conductivity and dynamic dielectric relaxation techniques

被引:0
|
作者
Sheu, Jonathan I. [1 ]
Sheu, Eric Y. [1 ]
机构
[1] Acalanes High Sch, Lafayette, CA 94549 USA
来源
AAPS PHARMSCITECH | 2006年 / 7卷 / 02期
关键词
conductivity; dielectric relaxation; DNA; degradation;
D O I
暂无
中图分类号
R9 [药学];
学科分类号
1007 ;
摘要
The purpose of this study was to evaluate DNA degradation upon thermal heating using dielectric relaxation and direct current ( DC) conductivity methods. Herring sperm DNA, human growth hormone ( HgH) plasmid DNA, and secreted alkaline phosphatase ( SEAP) plasmid DNA were used as the examples. DNA was heated at 80 C for 1 hour. The dielectric relaxation spectra as a function of the applied field frequency were measured for HgH DNA at 0.5 hours and at 1 hour. The frequency range covered was from 10 kHz to 100 kHz. The DC conductivity measurements were made for all 3 kinds of DNA at 4 time points: 0 hours, 0.5 hours, 0.75 hours, and 1 hour. At each time point the DC conductivity was measured for each sample as a function of concentration via water dilution. The results show that the dielectric relaxation method is less sensitive in characterizing heat-driven DNA degradation. Conversely, DC conductivity is very sensitive. The semiquantitative dependence of the conductivity upon heating suggests that DNA degradation involves more than plasmid DNA nicking. Double strand and single strand breaks may also occur. In addition, herring sperm DNA, HgH DNA, and SEAP DNA, though similar in their DC conductivity functional forms upon dilution, exhibit significant differences in their responses to sustained heating.
引用
收藏
页数:7
相关论文
共 50 条
  • [21] Analysis of Dynamic Behavior of Direct Current Motor with Electrical Braking Techniques
    Serteller, Necibe Fusun Oyman
    Ustundag, Dursun
    2017 CHILEAN CONFERENCE ON ELECTRICAL, ELECTRONICS ENGINEERING, INFORMATION AND COMMUNICATION TECHNOLOGIES (CHILECON), 2017,
  • [22] On the dynamic characterization of joints using uncoupling techniques
    Maia, NMM
    Silva, JMM
    Ribeiro, AMR
    Silva, PLCGC
    IMAC - PROCEEDINGS OF THE 16TH INTERNATIONAL MODAL ANALYSIS CONFERENCE, VOLS 1 AND 2, 1998, 3243 : 1132 - 1138
  • [23] STRUCTURAL ASPECTS OF MICROEMULSIONS USING DIELECTRIC-RELAXATION AND SPIN LABEL TECHNIQUES
    VANSAL, VK
    CHINASWAMY, K
    RAMACHANDRAN, C
    SHAH, DO
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 1979, (APR): : 3 - &
  • [24] DETERMINATION OF BULK TRAP PARAMETERS USING THERMAL DIELECTRIC-RELAXATION TECHNIQUES
    MAR, HA
    SIMMONS, JG
    SOLID-STATE ELECTRONICS, 1974, 17 (11) : 1181 - 1185
  • [25] STRUCTURAL ASPECTS OF MICROEMULSIONS USING DIELECTRIC-RELAXATION AND SPIN LABEL TECHNIQUES
    BANSAL, VK
    CHINNASWAMY, K
    RAMACHANDRAN, C
    SHAH, DO
    JOURNAL OF COLLOID AND INTERFACE SCIENCE, 1979, 72 (03) : 524 - 537
  • [26] Dielectric relaxation and alternating current conductivity of lanthanum, gadolinium, and erbium-polyvinyl alcohol doped films
    Hanafy, Taha A.
    JOURNAL OF APPLIED PHYSICS, 2012, 112 (03)
  • [27] DYNAMIC NEGATIVE CONDUCTIVITY DUE TO NONLINEARITY OF CURRENT VOLTAGE CHARACTERISTIC AND TO FINITE ELECTRIC-CONDUCTIVITY RELAXATION-TIME
    ZHDANOVA, NG
    ZILBERMA.PE
    KAGAN, MS
    KALASHNIKOV, SG
    JETP LETTERS-USSR, 1972, 16 (05): : 196 - +
  • [28] Investigation of MWS polarization and dc conductivity in polyamide 610 using dielectric relaxation spectroscopy
    Xu, Pei
    Zhang, Xingyuan
    EUROPEAN POLYMER JOURNAL, 2011, 47 (05) : 1031 - 1038
  • [29] Temperature Dependence of Direct Current Conductivity in TiO2/Epoxy Polymer Dielectric Nanocomposites
    Rabenok, E. V.
    Novikov, G. F.
    Bogdanova, L. M.
    Bukichev, Yu. S.
    Dzhardimalieva, G. I.
    RUSSIAN JOURNAL OF PHYSICAL CHEMISTRY A, 2023, 97 (01) : 186 - 192
  • [30] Temperature Dependence of Direct Current Conductivity in TiO2/Epoxy Polymer Dielectric Nanocomposites
    E. V. Rabenok
    G. F. Novikov
    L. M. Bogdanova
    Yu. S. Bukichev
    G. I. Dzhardimalieva
    Russian Journal of Physical Chemistry A, 2023, 97 : 186 - 192