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  1. 1.   Measurement of (1)H-(15)N and (1)H-(13)C residual dipolar couplings in nucleic acids from TROSY intensities
  2. Ying, J. F.; Wang, J. B.; Grishaev, A.; Yu, P.; Wang, Y. X.; Bax, A.
  3. Journal of Biomolecular Nmr. 2011, Sep; 51(1-2): 89-103.
  1. 2.   Efficient and precise measurement of H-alpha-C-alpha, C-alpha-C ', C-alpha-C-beta and H-N-N residual dipolar couplings from 2D H-N-N correlation spectra
  2. McFeeters, R.; Fowler, C.; Gaponenko, V.; Byrd, R.
  3. Journal of Biomolecular Nmr. 2005, JAN; 31(1): 35-47.
  1. 3.   In vivo modulation of ETS genes induced by electromagnetic fields
  2. Mucci, N.; Ianni, A.; Ursini, C. L.; Arzani, D.; Bhat, N. K.; Navarra, P.; Romano-Spica, V.
  3. In Vivo. 2001 15(6): 489-494.
  1. 4.   Ets1 oncogene induction by ELF-modulated 50 MHz radiofrequency electromagnetic field
  2. Romano-Spica, V.; Mucci, N.; Ursini, C. L.; Ianni, A.; Bhat, N. K.
  3. Bioelectromagnetics. 2000 21(1): 8-18.
  1. 5.   Magnetic fields and mammary cancer in rodents: A critical review and evaluation of published literature
  2. Boorman, G. A.; McCormick, D. L.; Ward, J. M.; Haseman, J. K.; Sills, R. C.
  3. Radiation Research. 2000 153(5 Part 2): 617-626.
  1. 6.   Leukemia and lymphoma incidence in rodents exposed to low-frequency magnetic fields
  2. Boorman, G. A.; Rafferty, C. N.; Ward, J. M.; Sills, R. C.
  3. Radiation Research. 2000 153(5 Part 2): 627-636.
  1. 7.   Power Frequency Magnetic Fields Do Not Contribute to Transformation of Jb6 Cells
  2. Saffer, J. D.; Chen, G.; Colburn, N. H.; Thurston, S. J.
  3. Carcinogenesis. 1997 18(7): 1365-1370.
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