Biomedical Engineering Reference
In-Depth Information
36. Schuler M, Sivaprakasam S, Freeland B, Hama A, Hughes K, Marison I Investigation of the
potential of biocalorimetry as a process analytical technology (PAT) tool for monitoring and
control of Crabtree-negative yeast cultures. Appl Microbiol Biotechnol :1-10
37. Biener R, Steinkämper A, Hofmann J (2010) Calorimetric control for high cell density
cultivation of a recombinant Escherichia coli strain. J Biotechnol 146:45-53
38. Biener R, Steinkämper A, Horn T (2012) Calorimetric control of the specific growth rate
during fed-batch cultures of Saccharomyces cerevisiae. J Biotechnol 160:195-201
39. van Kleeff BHA, Kuenen JG, Honderd G, Heijnen JJ (1998) Using heat-flow measurements
for
the
feed
control
of
a
fed
batch
fermentation
of
Saccharomyces
cerevisiae.
Thermochimica Acta 309:175-180
40. Kirkpatrick DS, McGinness JE, Moorhead WD, Corry PM, Proctor PH (1978) High-
frequency
dielectric
spectroscopy
of
concentrated
membrane
suspensions.
Biophys
J
24:243-245
41. Justice C, Brix A, Freimark D, Kraume M, Pfromm P, Eichenmueller B, Czermak P (2011)
Process control in cell culture technology using dielectric spectroscopy. Biotechnol Adv
29:391-401
42. FDA (2004) Guidance for industry PAT—a framework for innovative pharmaceutical
development, Manufacturing and Quality Assurance
43. Soley A, Lecina M, Gamez X, Cairo JJ, Riu P, Rosell X, Bragos R, Godia F (2005) On-line
monitoring of yeast cell growth by impedance spectroscopy. J Biotechnol 118:398-405
44. Nicholson DJ, Kell DB, Davey CL (1996) Deconvolution of the dielectric spectra of
microbial cell suspensions using multivariate calibration and artificial neural networks.
Bioelectrochem Bioenerget 39:185-193
45. Davey HM, Davey CL, Woodward AM, Edmonds AN, Lee AW, Kell DB (1996)
Oscillatory, stochastic and chaotic growth rate fluctuations in permittistatically controlled
yeast cultures. BioSystems 39:43-61
46. Claes JE, Van Impe JF (1999) On-line estimation of the specific growth rate based on viable
biomass measurements: experimental validation. Bioprocess Biosystems Eng 21:389-395
47. Davey CL, Kell DB (1998) The influence of electrode polarisation on dielectric spectra,
with special reference to capacitive biomass measurements: (II) Reduction in the
contribution of electrode polarisation to dielectric spectra using a two-frequency method.
Bioelectrochem Bioenerg 46:105-114
48. Davey CL, Kell DB (1998) The influence of electrode polarisation on dielectric spectra,
with special reference to capacitive biomass measurements—I. Quantifying the effects on
electrode polarisation of factors likely to occur during fermentations. Bioelectrochem
Bioenerg 46:91-103
49. Davey CL (1993) The theory of the b-dielectric dispersion and its use in the estimation of
cellular biomass. Aber instruments handbook pp. 38
50. Davey CL, Davey HM, Kell DB, Todd RW (1993) Introduction to the dielectric estimation
of cellular biomass in real-time, with special emphasis on measurements at high-volume
fractions. Anal Chim Acta 279:155-161
51. Davey CL, GH Markx, Kell DB (1993) On the dielectric method of monitoring cellular
viability. Pure Appl Chem 65:1921-1926
52. November EJ, Van Impe JF (2000) Evaluation of on-line viable biomass measurements
during fermentations of Candida utilis. Bioprocess Biosystems Eng 23:473-477
53. Maskow T, Olomolaiye D, Breuer U, Kemp R (2004) Flow calorimetry and dielectric
spectroscopy
to
control
the
bacterial
conversion
of
toxic
substrates
into
polyhydroxyalcanoates. Biotechnol Bioeng 85:547-552
54. Neves AA, Pereira DA, Vieira LM, Menezes JC (2000) Real time monitoring biomass
concentration in Streptomyces clavuligerus cultivations with industrial media using a
capacitance probe. J Biotechnol 84:45-52
55. Ferreira AP, Vieira LM, Cardoso JP, Menezes JC (2005) Evaluation of a new annular
capacitance
probe
for
biomass
monitoring
in
industrial
pilot-scale
fermentations.
J Biotechnol 116:403-409
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