Chemical Biophysics: Quantitative Analysis of Cellular Systems

[1] B. Alberts, A. Johnson, J. Lewis, M. Raff, K. Roberts, and P. Walter. Molecular Biology of the Cell. Garland Publishing, Inc., New York, NY, fourth edition, 2002.
[2] R. A. Alberty. Equilibrium compositions of solutions of biochemical species and heats of biochemical reactions. Proc. Natl. Acad. Sci. USA, 88:3268 3271, 1991.
[3] R. A. Alberty. Standard transformed formation properties of carbon dioxide in aqueous solutions at specified pH. J. Phys. Chem., 99:11028 11034, 1995.
[4] R. A. Alberty. Thermodynamics of Biochemical Reactions. Wiley-Interscience, Hoboken, NJ, 2003.
[5] R. A. Alberty. Thermodynamic properties of weak acids involved in enzyme-catalyzed reactions. J. Phys. Chem. B, 110:5012 5016, 2006.
[6] H. C. Anderson. Molecular dynamics simulations at constant pressure and/or temperature. J. Phys. Chem., 72:2384 2393, 1980.
[7] J. S. Bader, A. Chaudhuri, J. M. Rothberg, and J. Chant. Gaining confidence in high-throughput protein interaction networks. Nat. Biotechnol., 22:78 85, 2004.
[8] J. E. Bailey. Toward a science of metabolic engineering. Science, 252:1668 1675, 1991.
[9] D. Baker, G. Church, J. Collins et al. Engineering life: building a FAB for biology. Scientific American, 294:44 51, June 2006.
[10] F. G. Ball and J. A. Rice. Stochastic models for ion channels: introduction and bibliography. Math. Biosci., 112:189 206, 1992.
[11] J. B. Bassingthwaighte and C. A. Goresky. Modeling in the analysis of solute and water exchange in the microvasculature. In E. M. Renkin and C. C. Michel, editors, Handbook of Physiology. Section 2, The Cardiovascular System, Volume IV, The Microcirculation