Biology Reference
In-Depth Information
38. Kerfeld CA, Heinhorst S, Cannon GC. Bacterial microcompartments. Annu Rev Microbiol. 64:391
408.
39. Fan C, et al . Short N-terminal sequences package proteins into bacterial microcompartments. Proc Natl Acad Sci
USA. 107: 7509
7514.
40. Liu TG, Vora H, Khosla C. Quantitative analysis and engineering of fatty acid biosynthesis in E. coli . Metab Eng .
2010;12:378
386.
41. Pitera DJ, Paddon CJ, Newman JD, Keasling JD. Balancing a heterologous mevalonate pathway for improved
isoprenoid production in Escherichia coli . Metab Eng . 2007;9:193
207.
42. Stoebel DM, Dean AM, Dykhuizen DE. The cost of expression of Escherichia coli lac operon proteins is in the
process, not in the products. Genetics . 2008;178:1653
1660.
43. Scott M, Gunderson CW, Mateescu EM, Zhang Z, Hwa T. Interdependence of cell growth and gene expression:
origins and consequences. Science. 330: 1099
1102.
44. CornishBowden A, Hofmeyr JHS, Cardenas ML. Strategies for manipulating metabolic fluxes in biotechnology.
Bioorg Chem . 1995;23:439 449.
45. Maier T, Guell M, Serrano L. Correlation of mRNA and protein in complex biological samples. FEBS Lett .
2009;583:3966 3973.
46. Taniguchi Y, et al . Quantifying E. coli proteome and transcriptome with single-molecule sensitivity in single
cells. Science. 329: 533 538.
47. Anthony JR, et al. Optimization of the mevalonate-based isoprenoid biosynthetic pathway in Escherichia coli for
production of the anti-malarial drug precursor amorpha-4,11-diene. Metab Eng . 2009;11:13 19.
48. Sleight SC, Bartley BA, Lieviant JA, Sauro HM. Designing and engineering evolutionary robust genetic circuits.
J Biol Eng. 4:12.
49.
Jones KL, Kim SW, Keasling JD. Low-copy plasmids can perform as well as or better than high-copy plasmids
for metabolic engineering of bacteria. Metab Eng . 2000;2:328
338.
50. Tyo KEJ, Kocharin K, Nielsen J. Toward design-based engineering of industrial microbes. Curr Opin Microbiol .
2010;13:255
262.
51.
Jensen PR, Hammer K. The sequence of spacers between the consensus sequences modulates the strength of
prokaryotic promoters. Appl Environ Microbiol . 1998;64:82
87.
Jensen PR, Hammer K. Artificial promoters for metabolic optimization. Biotechnol Bioeng .
1998;58:191
52.
195.
53. Mijakovic I, Petranovic D, Jensen PR. Tunable promoters in systems biology. Curr Opin Biotechnol .
2005;16:329
222
335.
54. Farmer WR, Liao JC. Improving lycopene production in Escherichia coli by engineering metabolic control.
Nat Biotechnol . 2000;18:533
537.
54a. Zhang F, Carothers JM, Keasling JD. Design of a dynamic sensor-regulator system for production of chemicals
and fuels derived from fatty acids. Nature Biotech . 2012;30:354
359.
55. Reitzer LJ, Magasanik B. Expression of glnA in Escherichia coli is regulated at tandem promoters. Proc Natl Acad
Sci USA . 1985;82:1979 1983.
56. Liu J, Magasanik B. Activation of the dephosphorylation of nitrogen regulator I-phosphate of Escherichia coli .
J Bacteriol . 1995;177:926 931.
57. Ajikumar PK, et al . Isoprenoid pathway optimization for Taxol precursor overproduction in Escherichia coli .
Science. 330:70 74.
58. Laursen BS, Sorensen HP, Mortensen KK, Sperling-Petersen HU. Initiation of protein synthesis in bacteria.
Microbiol Mol Biol Rev . 2005;69:101 123.
59. Salis HM, Mirsky EA, Voigt CA. Automated design of synthetic ribosome binding sites to control protein
expression. Nat Biotechnol . 2009;27:946
950.
60. Redding-Johanson AM, et al. Targeted proteomics for metabolic pathway optimization: application to terpene
production. Metab Eng . 2011;13(2):194
203.
61. Pfleger BF, Pitera DJ, Smolke CD, Keasling JD. Combinatorial engineering of intergenic regions in operons
tunes expression of multiple genes. Nat Biotechnol . 2006;24:1027
-
1032.
62. Carothers JM, Goler JA, Juminaga A, Keasling JD. Design-driven approaches for engineering RNA-regulated
pathway controls. Abstr Pap Am Chem Soc . 2011:241.
63. Warner JR, Patnaik R, Gill RT. Genomics enabled approaches in strain engineering. Curr Opin Microbiol .
2009;12:223
230.
64. Atsumi S, et al. Metabolic engineering of Escherichia coli for 1-butanol production. Metab Eng .
2008;10:305
311.
65. Steen EJ, et al. Microbial production of fatty-acid-derived fuels and chemicals from plant biomass. Nature .
2009;463:559
562.
Search WWH ::




Custom Search