240
D. Lloyd
55. K.D. Hammond, N. Savage, M. Littlewood, Rhythmic patterns in the expression of the ras
oncogene in proliferating and differentiating erythroleukaemia cells. Cell Biol. Int. 24(8),
549–557 (2000)
56. K.D. Hammond, L. Caravotas, D.A. Gilbert, Dynamic cells: temporal organisation and control
of signal transducing pathways. Trends Comp. Biochem. Physiol. 7, 47–57 (2000)
57. J.W. Hastings, B.M. Sweeney, On the mechanism of temperature independence in a biological
clock. Proc. Nat. Acad. Sci. USA 49(3), 804–811 (1957)
58. M.J.B. Hauser, U. Kummer, A.Z. Larsen, L.F. Olsen, Oscillatory dynamics protect enzymes
and possibly cells against toxic substances. Faraday Disc. 120, 215–227 (2001)
59. D.M. Heffernan, P. Jenkins, M. Daly, B.J. Hawdon, J. O’Gorman, Characterization of chaos.
Int. J. Theor. Phys. 31, 1345–1362 (1992)
60. T. Heimburg, Linear nonequilibrium thermodynamics of reversible periodic processes and
chemical oscillations. Phys. Chem. Chem. Phys. 19, 17331–17341 (2017)
61. G. Hildebrandt, Rhythmic functional order and man’s emancipation from the time factor, in
A New Image of Man in Medicine, Vol II: Basis of an Individual Physiology, ed. by K.E.
Schaefer, G. Hildebrandt, N. Macbeth (Futura, Mount Kisco, New York, 1979), pp. 275–295
62. G. Hildebrandt, M. Moser, M. Lehofer, Chronobiology and chronomedicine (in German)
(Hippokrates, Stuttgart, 1999)
63. M. Jules, J. François, J.L. Parrou, Autonomous oscillations in Saccharomyces cerevisiae
during cultures on trehalose. FEBS J 272, 1490–1500 (2005)
64. J. Kader, D. Lloyd, Respiratory oscillations and heat evolution in synchronous cultures of
Candida utilis. J. Gen. Microbiol. 114, 455–461 (1979)
65. J.M. Kembro, S. Cortassa, M.A. Aon, Complex oscillatory redox dynamics with signaling
potential at the edge between normal and pathological mitochondrial function. Front. Physiol.
5, 257 (2014)
66. J.M. Kembro, S. Cortassa, D. Lloyd, S.J. Sollott, M.A. Aon, Mitochondrial chaotic dynamics:
redox-energetic behavior at the edge of stability. Sci. Rep. 8, 15422 (2018)
67. M. Keulers, A.D. Satroutdinov, H. Kuriyama, Oscillations in ethanol grown Saccharomyces
cerevisiae. FEBS Microbiol. Lett. 142, 253–258 (1996)
68. M. Keulers, A.D. Satroutdinov, T. Suzuki, H. Kuriyama, Synchronization affector of
autonomous short-period-sustained oscillation of Saccharomyces cerevisiae. Yeast 12, 673–
682 (1996)
69. R.R. Klevecz, Quantized generation times in mammalian cells as an expression of the cellular
clock. Proc. Nat. Acad. Sci. USA 73, 4012–4016 (1976)
70. R.R. Klevecz, A precise circadian clock from chaotic cell cycle oscillations, in Ultradian
Rhythms in Life Processes. An Inquiry into Fundamental Principles of Chronobiology and
Psychology, ed. by D. Lloyd, E.L. Rossi (Springer, London, 1992), pp. 41–69
71. R.R. Klevecz, H.B. Dowse, Tuning in the transcriptome: basins of attraction in the yeast cell
cycle. Cell Prolif. 33(4), 209–218 (2000)
72. R.R. Klevecz, D.B. Murray, Genome wide oscillations: wavelet analysis of time series analysis
in yeast expression arrays uncovers the dynamic architecture of phenotype. Mol. Biol. Rep.
28, 73–82 (2001)
73. R.R. Klevecz, C.M. Li, Evolution of the clock from yeast to man by period-doubling folds.
Cold Spring Harbor Symp. Quant. Biol. 72, 421–429 (2007)
74. R.R. Klevecz, J. Bolen, G. Forest, D.B. Murray, A genome-wide oscillation in transcription
gates DNA replication and the cell cycle. Proc. Nat. Acad. Sci. USA 101, 1200–1205 (2004)
75. R.R. Klevecz, C.M. Li, I. Marcus, P.H. Frankel, Collective behavior in gene regulation: the
cell is an oscillator, the cell cycle a developmental process. FEBS J. 275, 2372–2384 (2008)
76. F.T. Kurz, M.A. Aon, B. O’Rourke, A.A. Armoundas, Functional implications of cardiac
mitochondrial clustering. Adv. Exp. Med. Biol. 982, 1–24 (2017)
77. F.T. Kurz, J.M. Kembro, A.G. Flesia, A.A. Armoundas, S. Cortassa, M.A. Aon, D. Lloyd,
Network dynamics: quantitative analysis of complex behavior in metabolism, organelles, and
cells, from experiments to models and back. Wiley Interdiscip. Rev. Syst. Biol. Med. 9(1)
(2017). https://doi.org/10.1002/wsbm.1352
D. Lloyd
55. K.D. Hammond, N. Savage, M. Littlewood, Rhythmic patterns in the expression of the ras
oncogene in proliferating and differentiating erythroleukaemia cells. Cell Biol. Int. 24(8),
549–557 (2000)
56. K.D. Hammond, L. Caravotas, D.A. Gilbert, Dynamic cells: temporal organisation and control
of signal transducing pathways. Trends Comp. Biochem. Physiol. 7, 47–57 (2000)
57. J.W. Hastings, B.M. Sweeney, On the mechanism of temperature independence in a biological
clock. Proc. Nat. Acad. Sci. USA 49(3), 804–811 (1957)
58. M.J.B. Hauser, U. Kummer, A.Z. Larsen, L.F. Olsen, Oscillatory dynamics protect enzymes
and possibly cells against toxic substances. Faraday Disc. 120, 215–227 (2001)
59. D.M. Heffernan, P. Jenkins, M. Daly, B.J. Hawdon, J. O’Gorman, Characterization of chaos.
Int. J. Theor. Phys. 31, 1345–1362 (1992)
60. T. Heimburg, Linear nonequilibrium thermodynamics of reversible periodic processes and
chemical oscillations. Phys. Chem. Chem. Phys. 19, 17331–17341 (2017)
61. G. Hildebrandt, Rhythmic functional order and man’s emancipation from the time factor, in
A New Image of Man in Medicine, Vol II: Basis of an Individual Physiology, ed. by K.E.
Schaefer, G. Hildebrandt, N. Macbeth (Futura, Mount Kisco, New York, 1979), pp. 275–295
62. G. Hildebrandt, M. Moser, M. Lehofer, Chronobiology and chronomedicine (in German)
(Hippokrates, Stuttgart, 1999)
63. M. Jules, J. François, J.L. Parrou, Autonomous oscillations in Saccharomyces cerevisiae
during cultures on trehalose. FEBS J 272, 1490–1500 (2005)
64. J. Kader, D. Lloyd, Respiratory oscillations and heat evolution in synchronous cultures of
Candida utilis. J. Gen. Microbiol. 114, 455–461 (1979)
65. J.M. Kembro, S. Cortassa, M.A. Aon, Complex oscillatory redox dynamics with signaling
potential at the edge between normal and pathological mitochondrial function. Front. Physiol.
5, 257 (2014)
66. J.M. Kembro, S. Cortassa, D. Lloyd, S.J. Sollott, M.A. Aon, Mitochondrial chaotic dynamics:
redox-energetic behavior at the edge of stability. Sci. Rep. 8, 15422 (2018)
67. M. Keulers, A.D. Satroutdinov, H. Kuriyama, Oscillations in ethanol grown Saccharomyces
cerevisiae. FEBS Microbiol. Lett. 142, 253–258 (1996)
68. M. Keulers, A.D. Satroutdinov, T. Suzuki, H. Kuriyama, Synchronization affector of
autonomous short-period-sustained oscillation of Saccharomyces cerevisiae. Yeast 12, 673–
682 (1996)
69. R.R. Klevecz, Quantized generation times in mammalian cells as an expression of the cellular
clock. Proc. Nat. Acad. Sci. USA 73, 4012–4016 (1976)
70. R.R. Klevecz, A precise circadian clock from chaotic cell cycle oscillations, in Ultradian
Rhythms in Life Processes. An Inquiry into Fundamental Principles of Chronobiology and
Psychology, ed. by D. Lloyd, E.L. Rossi (Springer, London, 1992), pp. 41–69
71. R.R. Klevecz, H.B. Dowse, Tuning in the transcriptome: basins of attraction in the yeast cell
cycle. Cell Prolif. 33(4), 209–218 (2000)
72. R.R. Klevecz, D.B. Murray, Genome wide oscillations: wavelet analysis of time series analysis
in yeast expression arrays uncovers the dynamic architecture of phenotype. Mol. Biol. Rep.
28, 73–82 (2001)
73. R.R. Klevecz, C.M. Li, Evolution of the clock from yeast to man by period-doubling folds.
Cold Spring Harbor Symp. Quant. Biol. 72, 421–429 (2007)
74. R.R. Klevecz, J. Bolen, G. Forest, D.B. Murray, A genome-wide oscillation in transcription
gates DNA replication and the cell cycle. Proc. Nat. Acad. Sci. USA 101, 1200–1205 (2004)
75. R.R. Klevecz, C.M. Li, I. Marcus, P.H. Frankel, Collective behavior in gene regulation: the
cell is an oscillator, the cell cycle a developmental process. FEBS J. 275, 2372–2384 (2008)
76. F.T. Kurz, M.A. Aon, B. O’Rourke, A.A. Armoundas, Functional implications of cardiac
mitochondrial clustering. Adv. Exp. Med. Biol. 982, 1–24 (2017)
77. F.T. Kurz, J.M. Kembro, A.G. Flesia, A.A. Armoundas, S. Cortassa, M.A. Aon, D. Lloyd,
Network dynamics: quantitative analysis of complex behavior in metabolism, organelles, and
cells, from experiments to models and back. Wiley Interdiscip. Rev. Syst. Biol. Med. 9(1)
(2017). https://doi.org/10.1002/wsbm.1352
