14 Oscillations, Rhythms and Synchronized Time Bases …
241
78. G. Lancaster, Y.F. Suprunenco, K. Jenkins, A. Stefanovska, Modelling chronotaxicity of
cellular energy metabolism to facilitate the identification of altered metabolic states. Sci.
Rep. 6, 29584 (2016)
79. J.G. Lazer, J. Ross, Changes in mean concentration, phase shifts, and dissipation in a forced
oscillatory reaction. Science 247, 189–192 (1990)
80. K.M. Lemar, C.T. Müller, S. Plummer, D. Lloyd, Cell death mechanisms in the human
opportunistic pathogen, Candida albicans. J. Eukaryot. Microbiol. 50(Suppl.). 685–686
(2003)
81. K.M. Lemar, M.A. Aon, S. Cortassa, B. O’Rourke, C.T. Müller, D. Lloyd, Diallyl disulphide
depletes glutathione in Candida albicans: oxidative-stress mediated cell death studied by
two-photon microscopy. Yeast 24, 695–706 (2007)
82. C.M. Li, R.R. Klevecz, A rapid genome-scale response to the transcriptional oscillator to
perturbation reveals a period-doubling path to phenotypic change. Proc. Nat. Acad. Sci. USA
103, 16254–16259 (2006)
83. A.L. Lloyd, D. Lloyd, Hypothesis: the central oscillator of the circadian clock is a controlled
chaotic attractor. Biosystems 29, 77–85 (1993)
84. A.L. Lloyd, D. Lloyd, Chaos: its significance and detection in biology. Biol. Rhythm Res.
26(2), 233–252 (1994)
85. D. Lloyd, Intracellular time keeping: epigenetic oscillations reveal the functions of an ultradian
clock, 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. 5–
22
86. D. Lloyd, Saccharomyces cerevisiae: oscillatory orchestration of growth, in Advancing Frontiers in Mycology and Mycotechnology, ed. by T. Satyanarayana et al. (Springer Nature,
Singapore, 2019), pp. 181–214
87. D. Lloyd, F. Kippert, A temperature-compensated ultradian clock explains temperaturedependent quantal cell cycle times. Symp. Soc. Exp. Biol. XXXXI, 135–155. Cambridge
University Press, Cambridge (1987)
88. D. Lloyd, M. Stupfel, The occurrence and functions of ultradian rhythms. Biol. Rev. 66,
275–299 (1991)
89. D. Lloyd, F. Kippert, Intracellular coordination by the ultradian clock. Cell Biol. Int. 17,
1047–1052 (1993)
90. D. Lloyd, F. Kippert, A temperature-compensated ultradian clock ticks in Schizosaccharomyces cerevisiae. Microbiology 141, 883–890 (1995)
91. D. Lloyd, D.A. Gilbert, Temporal organization of the cell division cycle in eukaryotic microorganisms, in Microbial Responses to Light and Time, ed. by M.X. Caddick, S. Baumberg,
D.A. Hodgson, K. Phillips-Jones (University Press, Cambridge, 1998), pp 237–278. Soc Gen
Microbiol. Symp 56
92. D. Lloyd, D.B. Murray, Redox cycling of intracellular thiols: state variables for ultradian, cell
division and circadian cycles, in Redox Behaviour of Circadian Systems, ed. by T. Van den
Driessche, J.L. Guisset, G.P. DeVries (Kluwer, Amsterdam, 2000), pp. 85–94
93. D. Lloyd, B. Kristensen, H. Degn, Oxidative detoxification of hydrogen sulphide detected
by mass spectrometry in the soil amoeba, Acanthamoeba castellanii. Microbiology 126(1),
166–170 (1981)
94. D. Lloyd, R.K. Poole, S.W. Edwards, in The Cell Division Cycle: Temporal Organization and
Control of Cellular Growth and Reproduction (Academic Press: London, 1982), pp. xii +
513
95. D. Lloyd, S.W. Edwards, J.C. Fry, Temperature compensated oscillations in respiration and
cellular protein content in synchronous cultures of Acanthamoeba castellanii. Proc. Nat. Sci.
USA 79, 3785–3788 (1982)
96. D. Lloyd, S. Bohátka, J. Szilágyi, Quadrupole mass spectrometry in the monitoring and control
of fermentations. Biosensors 1, 179–212 (1985)
97. D. Lloyd, D.B. Murray, R.R. Klevecz, J. Wolf, H. Kuriyama, The ultradian clock (~40 min) in
yeast, in Ultradian Rhythms from Molecules to Mind: A New Vision of Life, ed. by D. Lloyd,
E.L. Rossi (Springer Science + Business Media BV, London, 2008), pp. 11–42
241
78. G. Lancaster, Y.F. Suprunenco, K. Jenkins, A. Stefanovska, Modelling chronotaxicity of
cellular energy metabolism to facilitate the identification of altered metabolic states. Sci.
Rep. 6, 29584 (2016)
79. J.G. Lazer, J. Ross, Changes in mean concentration, phase shifts, and dissipation in a forced
oscillatory reaction. Science 247, 189–192 (1990)
80. K.M. Lemar, C.T. Müller, S. Plummer, D. Lloyd, Cell death mechanisms in the human
opportunistic pathogen, Candida albicans. J. Eukaryot. Microbiol. 50(Suppl.). 685–686
(2003)
81. K.M. Lemar, M.A. Aon, S. Cortassa, B. O’Rourke, C.T. Müller, D. Lloyd, Diallyl disulphide
depletes glutathione in Candida albicans: oxidative-stress mediated cell death studied by
two-photon microscopy. Yeast 24, 695–706 (2007)
82. C.M. Li, R.R. Klevecz, A rapid genome-scale response to the transcriptional oscillator to
perturbation reveals a period-doubling path to phenotypic change. Proc. Nat. Acad. Sci. USA
103, 16254–16259 (2006)
83. A.L. Lloyd, D. Lloyd, Hypothesis: the central oscillator of the circadian clock is a controlled
chaotic attractor. Biosystems 29, 77–85 (1993)
84. A.L. Lloyd, D. Lloyd, Chaos: its significance and detection in biology. Biol. Rhythm Res.
26(2), 233–252 (1994)
85. D. Lloyd, Intracellular time keeping: epigenetic oscillations reveal the functions of an ultradian
clock, 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. 5–
22
86. D. Lloyd, Saccharomyces cerevisiae: oscillatory orchestration of growth, in Advancing Frontiers in Mycology and Mycotechnology, ed. by T. Satyanarayana et al. (Springer Nature,
Singapore, 2019), pp. 181–214
87. D. Lloyd, F. Kippert, A temperature-compensated ultradian clock explains temperaturedependent quantal cell cycle times. Symp. Soc. Exp. Biol. XXXXI, 135–155. Cambridge
University Press, Cambridge (1987)
88. D. Lloyd, M. Stupfel, The occurrence and functions of ultradian rhythms. Biol. Rev. 66,
275–299 (1991)
89. D. Lloyd, F. Kippert, Intracellular coordination by the ultradian clock. Cell Biol. Int. 17,
1047–1052 (1993)
90. D. Lloyd, F. Kippert, A temperature-compensated ultradian clock ticks in Schizosaccharomyces cerevisiae. Microbiology 141, 883–890 (1995)
91. D. Lloyd, D.A. Gilbert, Temporal organization of the cell division cycle in eukaryotic microorganisms, in Microbial Responses to Light and Time, ed. by M.X. Caddick, S. Baumberg,
D.A. Hodgson, K. Phillips-Jones (University Press, Cambridge, 1998), pp 237–278. Soc Gen
Microbiol. Symp 56
92. D. Lloyd, D.B. Murray, Redox cycling of intracellular thiols: state variables for ultradian, cell
division and circadian cycles, in Redox Behaviour of Circadian Systems, ed. by T. Van den
Driessche, J.L. Guisset, G.P. DeVries (Kluwer, Amsterdam, 2000), pp. 85–94
93. D. Lloyd, B. Kristensen, H. Degn, Oxidative detoxification of hydrogen sulphide detected
by mass spectrometry in the soil amoeba, Acanthamoeba castellanii. Microbiology 126(1),
166–170 (1981)
94. D. Lloyd, R.K. Poole, S.W. Edwards, in The Cell Division Cycle: Temporal Organization and
Control of Cellular Growth and Reproduction (Academic Press: London, 1982), pp. xii +
513
95. D. Lloyd, S.W. Edwards, J.C. Fry, Temperature compensated oscillations in respiration and
cellular protein content in synchronous cultures of Acanthamoeba castellanii. Proc. Nat. Sci.
USA 79, 3785–3788 (1982)
96. D. Lloyd, S. Bohátka, J. Szilágyi, Quadrupole mass spectrometry in the monitoring and control
of fermentations. Biosensors 1, 179–212 (1985)
97. D. Lloyd, D.B. Murray, R.R. Klevecz, J. Wolf, H. Kuriyama, The ultradian clock (~40 min) in
yeast, in Ultradian Rhythms from Molecules to Mind: A New Vision of Life, ed. by D. Lloyd,
E.L. Rossi (Springer Science + Business Media BV, London, 2008), pp. 11–42
