Team:ESBS-Strasbourg/Project/Reference
From 2010.igem.org
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- | [1] | + | [1] Bae, G., G. Choi </span> |
- | <span>(2009). | + | <span>(2009)."Decoding of light signals by plant phytochromes and their interacting proteins." <u>Annu Rev Plant Biol </u><b>59</b>:281-311.</span></p></li> |
- | " | + | |
- | + | ||
<li><p ALIGN="LEFT"> | <li><p ALIGN="LEFT"> | ||
[2] Baker, T. A., R. T. Sauer, et al. </span> | [2] Baker, T. A., R. T. Sauer, et al. </span> | ||
+ | <span>(2009)."Engineering synthetic adaptors and substrates for controlled ClpXP | ||
+ | degradation." <u>J Biol Chem </u><b>284</b>(33): 21848-55.</span></p></li> | ||
+ | <li><p ALIGN="LEFT"> | ||
+ | [3] Baker, T. A., R. T. Sauer, et al. </span> | ||
<span>(2009). | <span>(2009). | ||
"Structures of asymmetric ClpX hexamers reveal nucleotide-dependent motions in a | "Structures of asymmetric ClpX hexamers reveal nucleotide-dependent motions in a | ||
AAA+ protein-unfolding machine." <u>Cell</u> <b>139</b>(4): 744-56.</span></p></li> | AAA+ protein-unfolding machine." <u>Cell</u> <b>139</b>(4): 744-56.</span></p></li> | ||
<li><p ALIGN="LEFT"> | <li><p ALIGN="LEFT"> | ||
- | [ | + | [4] Baker, T. A., R. T. Sauer, et al. </span> |
<span>(2010). | <span>(2010). | ||
"Control of substrate gating and translocation into ClpP by channel residues and | "Control of substrate gating and translocation into ClpP by channel residues and | ||
ClpX binding." <u>J Mol Biol</u> <b>399</b>(5): 707-18.</span></p></li> | ClpX binding." <u>J Mol Biol</u> <b>399</b>(5): 707-18.</span></p></li> | ||
- | + | <li><p ALIGN="LEFT">[5] Baker, | |
- | <li><p ALIGN="LEFT">[ | + | |
T. A., R. T. Sauer, et al. (2005). "Versatile modes of peptide recognition by | T. A., R. T. Sauer, et al. (2005). "Versatile modes of peptide recognition by | ||
the AAA+ adaptor protein SspB." <u>Nat Struct Mol Biol</u> <b>12</b>(6): 520-5.</span></p></li> | the AAA+ adaptor protein SspB." <u>Nat Struct Mol Biol</u> <b>12</b>(6): 520-5.</span></p></li> | ||
- | + | <li><p ALIGN="LEFT">[6] Baker, | |
- | <li><p ALIGN="LEFT">[ | + | |
T. A., R. T. Sauer, et al. (2005). "Rebuilt AAA + motors reveal operating | T. A., R. T. Sauer, et al. (2005). "Rebuilt AAA + motors reveal operating | ||
principles for ATP-fuelled machines." </span><u> | principles for ATP-fuelled machines." </span><u> | ||
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<b>437</b>(7062): 1115-20.</span></p></li> | <b>437</b>(7062): 1115-20.</span></p></li> | ||
<li><p ALIGN="LEFT"> | <li><p ALIGN="LEFT"> | ||
- | [ | + | [7] Baker, T. A., R. T. Sauer, et al. </span> |
<span>(2006). | <span>(2006). | ||
"Engineering controllable protein degradation." <u>Mol Cell</u> <b>22</b>(5): | "Engineering controllable protein degradation." <u>Mol Cell</u> <b>22</b>(5): | ||
701-7.</span></p></li> | 701-7.</span></p></li> | ||
<li><p ALIGN="LEFT"> | <li><p ALIGN="LEFT"> | ||
- | [ | + | [8] Baker, T. A., R. T. Sauer, et al. </span> |
<span>(2007). | <span>(2007). | ||
"Altered tethering of the SspB adaptor to the ClpXP protease causes changes in | "Altered tethering of the SspB adaptor to the ClpXP protease causes changes in | ||
substrate delivery." <u>J Biol Chem</u> <b>282</b>(15): 11465-73.</span></p></li> | substrate delivery." <u>J Biol Chem</u> <b>282</b>(15): 11465-73.</span></p></li> | ||
<li><p ALIGN="LEFT"> | <li><p ALIGN="LEFT"> | ||
- | [ | + | [9] Deisseroth, K., F. Zhang, et al. </span> |
<span>(2006). | <span>(2006). | ||
"Channelrhodopsin-2 and optical control of excitable cells." <u>Nat Methods</u> | "Channelrhodopsin-2 and optical control of excitable cells." <u>Nat Methods</u> | ||
<b>3</b>(10): 785-92.</span></p></li> | <b>3</b>(10): 785-92.</span></p></li> | ||
- | + | <li><p ALIGN="LEFT">[10] | |
- | <li><p ALIGN="LEFT">[ | + | |
Fussenegger, M., M. Tigges, et al. (2009). "A tunable synthetic mammalian | Fussenegger, M., M. Tigges, et al. (2009). "A tunable synthetic mammalian | ||
oscillator." <u>Nature</u> <b>457</b>(7227): 309-12.</span></p></li> | oscillator." <u>Nature</u> <b>457</b>(7227): 309-12.</span></p></li> | ||
- | + | <li><p ALIGN="LEFT">[11] | |
- | <li><p ALIGN="LEFT">[ | + | |
Goldberg, A. L. (2003). "Protein degradation and protection against misfolded or | Goldberg, A. L. (2003). "Protein degradation and protection against misfolded or | ||
damaged proteins." </span><u> | damaged proteins." </span><u> | ||
Line 549: | Line 547: | ||
Nature</span></u><span> | Nature</span></u><span> | ||
<b>426</b>(6968): 895-9.</span></p></li> | <b>426</b>(6968): 895-9.</span></p></li> | ||
- | + | <span>[12] Gregersen, N., C. B. | |
- | <span>[ | + | |
Pedersen, et al. </span> | Pedersen, et al. </span> | ||
<span>(2003). | <span>(2003). | ||
Line 556: | Line 553: | ||
pathogenesis of short chain acyl-CoA dehydrogenase (SCAD) deficiency." <u>J Biol | pathogenesis of short chain acyl-CoA dehydrogenase (SCAD) deficiency." <u>J Biol | ||
Chem</u> <b>278</b>(48): 47449-58.</span></p></li> | Chem</u> <b>278</b>(48): 47449-58.</span></p></li> | ||
- | + | <li><p ALIGN="LEFT">[13] | |
- | <li><p ALIGN="LEFT">[ | + | |
Grossman, A. D. and K. L. Griffith (2008). "Inducible protein degradation in | Grossman, A. D. and K. L. Griffith (2008). "Inducible protein degradation in | ||
Bacillus subtilis using heterologous peptide tags and adaptor proteins to target | Bacillus subtilis using heterologous peptide tags and adaptor proteins to target | ||
substrates to the protease ClpXP." <u>Mol Microbiol</u> <b>70</b>(4): 1012-25.</span></p></li> | substrates to the protease ClpXP." <u>Mol Microbiol</u> <b>70</b>(4): 1012-25.</span></p></li> | ||
- | + | <li><p ALIGN="LEFT">[14] | |
- | <li><p ALIGN="LEFT">[ | + | |
Houry, W. A., U. A. Wojtyra, et al. (2003). "The N-terminal zinc binding domain | Houry, W. A., U. A. Wojtyra, et al. (2003). "The N-terminal zinc binding domain | ||
of ClpX is a dimerization domain that modulates the chaperone function." <u>J | of ClpX is a dimerization domain that modulates the chaperone function." <u>J | ||
Biol Chem</u> <b>278</b>(49): 48981-90.</span></p></li> | Biol Chem</u> <b>278</b>(49): 48981-90.</span></p></li> | ||
<li><p ALIGN="LEFT"> | <li><p ALIGN="LEFT"> | ||
- | [ | + | [15] Hughes, J., F. T. Landgraf, et al. </span> |
<span>(2001). | <span>(2001). | ||
"Recombinant holophytochrome in Escherichia coli." <u>FEBS Lett</u> <b>508</b>(3): | "Recombinant holophytochrome in Escherichia coli." <u>FEBS Lett</u> <b>508</b>(3): | ||
459-62.</span></p></li> | 459-62.</span></p></li> | ||
- | + | <li><p ALIGN="LEFT">[16] | |
- | <li><p ALIGN="LEFT">[ | + | |
Isacoff, E. Y. and P. Gorostiza (2008). "Optical switches for remote and | Isacoff, E. Y. and P. Gorostiza (2008). "Optical switches for remote and | ||
noninvasive control of cell signaling." <u>Science</u> <b>322</b>(5900): 395-9.</span></p></li> | noninvasive control of cell signaling." <u>Science</u> <b>322</b>(5900): 395-9.</span></p></li> | ||
<li><p ALIGN="LEFT"> | <li><p ALIGN="LEFT"> | ||
- | [ | + | [17] Kohchi, T., K. Mukougawa, et al. </span> |
<span>(2006). | <span>(2006). | ||
"Metabolic engineering to produce phytochromes with phytochromobilin, | "Metabolic engineering to produce phytochromes with phytochromobilin, | ||
phycocyanobilin, or phycoerythrobilin chromophore in Escherichia coli." <u>FEBS | phycocyanobilin, or phycoerythrobilin chromophore in Escherichia coli." <u>FEBS | ||
Lett</u> <b>580</b>(5): 1333-8.</span></p></li> | Lett</u> <b>580</b>(5): 1333-8.</span></p></li> | ||
- | + | <li><p ALIGN="LEFT">[18] | |
- | <li><p ALIGN="LEFT">[ | + | |
Kohchi, T., K. Mukougawa, et al. (2006). "Metabolic engineering to produce | Kohchi, T., K. Mukougawa, et al. (2006). "Metabolic engineering to produce | ||
phytochromes with phytochromobilin, phycocyanobilin, or phycoerythrobilin | phytochromes with phytochromobilin, phycocyanobilin, or phycoerythrobilin | ||
chromophore in Escherichia coli." <u>FEBS Lett</u> <b>580</b>(5): 1333-8.</span></p></li> | chromophore in Escherichia coli." <u>FEBS Lett</u> <b>580</b>(5): 1333-8.</span></p></li> | ||
- | + | <li><p ALIGN="LEFT">[19] | |
- | <li><p ALIGN="LEFT">[ | + | |
Lagarias, J. C. and G. A. Gambetta (2001). "Genetic engineering of phytochrome | Lagarias, J. C. and G. A. Gambetta (2001). "Genetic engineering of phytochrome | ||
biosynthesis in bacteria." <u>Proc Natl Acad Sci U S A</u> <b>98</b>(19): | biosynthesis in bacteria." <u>Proc Natl Acad Sci U S A</u> <b>98</b>(19): | ||
10566-71.</span></p></li> | 10566-71.</span></p></li> | ||
- | + | <li><p ALIGN="LEFT">[20] | |
- | <li><p ALIGN="LEFT">[ | + | |
Lagarias, J. C., N. C. Rockwell, et al. (2006). "Phytochrome structure and | Lagarias, J. C., N. C. Rockwell, et al. (2006). "Phytochrome structure and | ||
signaling mechanisms." </span><u> | signaling mechanisms." </span><u> | ||
Line 598: | Line 589: | ||
Annu Rev Plant Biol</span></u><span> | Annu Rev Plant Biol</span></u><span> | ||
<b>57</b>: 837-58.</span></p></li> | <b>57</b>: 837-58.</span></p></li> | ||
- | + | <li><p ALIGN="LEFT">[21] | |
- | <li><p ALIGN="LEFT">[ | + | |
Lagarias, J.C., M.T. McDowell (2002). "Analysis and reconstitution of | Lagarias, J.C., M.T. McDowell (2002). "Analysis and reconstitution of | ||
phytochromes." <u>Heme, Chlorophyll, and Bilins: Methods and Protocols</u>, | phytochromes." <u>Heme, Chlorophyll, and Bilins: Methods and Protocols</u>, | ||
293-309</span></p></li> | 293-309</span></p></li> | ||
- | + | <li><p ALIGN="LEFT">[22] | |
- | <li><p ALIGN="LEFT">[ | + | |
Maurizi, M. R., R. Grimaud, et al. (1998). "Enzymatic and structural | Maurizi, M. R., R. Grimaud, et al. (1998). "Enzymatic and structural | ||
similarities between the Escherichia coli ATP-dependent proteases, ClpXP and | similarities between the Escherichia coli ATP-dependent proteases, ClpXP and | ||
ClpAP." <u>J Biol Chem</u> <b>273</b>(20): 12476-81.</span></p></li> | ClpAP." <u>J Biol Chem</u> <b>273</b>(20): 12476-81.</span></p></li> | ||
- | + | <li><p ALIGN="LEFT">[23] | |
- | <li><p ALIGN="LEFT">[ | + | |
Millar, A. J., O. Sorokina, et al. (2009). "A switchable light-input, | Millar, A. J., O. Sorokina, et al. (2009). "A switchable light-input, | ||
light-output system modelled and constructed in yeast." <u>J Biol Eng</u> <b>3</b>: | light-output system modelled and constructed in yeast." <u>J Biol Eng</u> <b>3</b>: | ||
15.</span></p></li> | 15.</span></p></li> | ||
- | + | <li><p ALIGN="LEFT">[24] | |
- | <li><p ALIGN="LEFT">[ | + | |
Moffat, K. and A. Moglich (2010). "Engineered photoreceptors as novel | Moffat, K. and A. Moglich (2010). "Engineered photoreceptors as novel | ||
optogenetic tools." <u>Photochem Photobiol Sci</u> <b>9</b>(10): 1286-300.</span></p></li> | optogenetic tools." <u>Photochem Photobiol Sci</u> <b>9</b>(10): 1286-300.</span></p></li> | ||
- | + | <span>[25] Moffat, K., A. Moglich, et | |
- | <span>[ | + | |
al. </span> | al. </span> | ||
<span>(2010). | <span>(2010). | ||
"Structure and function of plant photoreceptors." <u>Annu Rev Plant Biol</u> <b> | "Structure and function of plant photoreceptors." <u>Annu Rev Plant Biol</u> <b> | ||
61</b>: 21-47.</span></p></li> | 61</b>: 21-47.</span></p></li> | ||
- | + | <li><p ALIGN="LEFT">[26] | |
- | <li><p ALIGN="LEFT">[ | + | |
Moroder, L. and C. Renner (2006). "Azobenzene as conformational switch in model | Moroder, L. and C. Renner (2006). "Azobenzene as conformational switch in model | ||
peptides." <u>Chembiochem</u> <b>7</b>(6): 868-78.</span></p></li> | peptides." <u>Chembiochem</u> <b>7</b>(6): 868-78.</span></p></li> | ||
- | + | <li><p ALIGN="LEFT">[27] | |
- | <li><p ALIGN="LEFT">[ | + | |
Morrison, D. A. and S. Ahlawat (2009). "ClpXP degrades SsrA-tagged proteins in | Morrison, D. A. and S. Ahlawat (2009). "ClpXP degrades SsrA-tagged proteins in | ||
Streptococcus pneumoniae." </span><u> | Streptococcus pneumoniae." </span><u> | ||
Line 634: | Line 618: | ||
J Bacteriol</span></u><span> | J Bacteriol</span></u><span> | ||
<b>191</b>(8): 2894-8.</span></p></li> | <b>191</b>(8): 2894-8.</span></p></li> | ||
- | + | <li><p ALIGN="LEFT">[28] Muir, | |
- | <li><p ALIGN="LEFT">[ | + | |
T. W. and A. B. Tyszkiewicz (2008). "Activation of protein splicing with light | T. W. and A. B. Tyszkiewicz (2008). "Activation of protein splicing with light | ||
in yeast." <u>Nat Methods</u> <b>5</b>(4): 303-5.</span></p></li> | in yeast." <u>Nat Methods</u> <b>5</b>(4): 303-5.</span></p></li> | ||
- | + | <li><p ALIGN="LEFT">[29] | |
- | <li><p ALIGN="LEFT">[ | + | |
Quail, P. H. (2002). "Phytochrome photosensory signalling networks." <u>Nat Rev | Quail, P. H. (2002). "Phytochrome photosensory signalling networks." <u>Nat Rev | ||
Mol Cell Biol</u> <b>3</b>(2): 85-93.</span></p></li> | Mol Cell Biol</u> <b>3</b>(2): 85-93.</span></p></li> | ||
<li><p ALIGN="LEFT"> | <li><p ALIGN="LEFT"> | ||
- | [ | + | [30] Quail, P. H., R. Khanna, et al. </span> |
<span>(2004). "A | <span>(2004). "A | ||
novel molecular recognition motif necessary for targeting photoactivated | novel molecular recognition motif necessary for targeting photoactivated | ||
Line 649: | Line 631: | ||
<u>Plant Cell</u> <b>16</b>(11): 3033-44.</span></p></li> | <u>Plant Cell</u> <b>16</b>(11): 3033-44.</span></p></li> | ||
<li><p ALIGN="LEFT"> | <li><p ALIGN="LEFT"> | ||
- | [ | + | [31] Quail, P. H., E. Schafer, et al. </span> |
<span>(2006). "Photoactivated | <span>(2006). "Photoactivated | ||
phytochrome induces rapid PIF3 phosphorylation prior to proteasome-mediated | phytochrome induces rapid PIF3 phosphorylation prior to proteasome-mediated | ||
Line 657: | Line 639: | ||
<b>23</b>(3): 439-46.</span></p></li> | <b>23</b>(3): 439-46.</span></p></li> | ||
<li><p ALIGN="LEFT"> | <li><p ALIGN="LEFT"> | ||
- | [ | + | [32] Quail, P. H., S. Shimizu-Sato, et al. </span> |
<span>(2002). "A | <span>(2002). "A | ||
light-switchable gene promoter system." <u>Nat Biotechnol</u> <b>20</b>(10): | light-switchable gene promoter system." <u>Nat Biotechnol</u> <b>20</b>(10): | ||
1041-4.</span></p></li> | 1041-4.</span></p></li> | ||
- | <p> | + | <li><p ALIGN="LEFT"> |
- | <li><p ALIGN="LEFT">[ | + | [33] Quail PH., D. Wagner et al. (1996) "Two small spatially distinct regions of phytochrome B are required for efficient signaling rates." <u>Plant Cell</u> <b>8</b>:859–71.</span></p></li> |
+ | <li><p ALIGN="LEFT"> | ||
+ | [34] Park Y., H. Song (2008) "A degradation signal recognition in prokaryotes." <u>J. Synchrotron Rad</u><b>15</b>:246–249.</span></p></li> | ||
+ | <li><p ALIGN="LEFT">[35] | ||
Rosen, M. K., D. W. Leung, et al. (2008). "Genetically encoded photoswitching of | Rosen, M. K., D. W. Leung, et al. (2008). "Genetically encoded photoswitching of | ||
actin assembly through the Cdc42-WASP-Arp2/3 complex pathway." <u>Proc Natl Acad | actin assembly through the Cdc42-WASP-Arp2/3 complex pathway." <u>Proc Natl Acad | ||
Sci U S A</u> <b>105</b>(35): 12797-802.</span></p></li> | Sci U S A</u> <b>105</b>(35): 12797-802.</span></p></li> | ||
- | + | <li><p ALIGN="LEFT"><span>[36] Schafer, E., T. Kunkel, et | |
- | <li><p ALIGN="LEFT"><span>[ | + | |
al. </span> | al. </span> | ||
<span>(1993). | <span>(1993). | ||
"In vitro formation of a photoreversible adduct of phycocyanobilin and tobacco | "In vitro formation of a photoreversible adduct of phycocyanobilin and tobacco | ||
apophytochrome B." <u>Eur J Biochem</u> <b>215</b>(3): 587-94.</span></p></li> | apophytochrome B." <u>Eur J Biochem</u> <b>215</b>(3): 587-94.</span></p></li> | ||
- | + | <li><p ALIGN="LEFT"><span>[37] Schaffner, K., C. Hill, et | |
- | <li><p ALIGN="LEFT"><span>[ | + | |
al. </span> | al. </span> | ||
<span>(1994). | <span>(1994). | ||
Line 679: | Line 662: | ||
formation of photoactive chromoproteins by assembly with phycocyanobilin." <u> | formation of photoactive chromoproteins by assembly with phycocyanobilin." <u> | ||
Eur J Biochem</u> <b>223</b>(1): 69-77.</span></p></li> | Eur J Biochem</u> <b>223</b>(1): 69-77.</span></p></li> | ||
- | + | <li><p ALIGN="LEFT">[38] | |
- | <li><p ALIGN="LEFT">[ | + | |
Sejnowski, T. J. and M. U. Gillette (2005). "Physiology. Biological clocks | Sejnowski, T. J. and M. U. Gillette (2005). "Physiology. Biological clocks | ||
coordinately keep life on time." </span><u> | coordinately keep life on time." </span><u> | ||
Line 686: | Line 668: | ||
Science</span></u><span> | Science</span></u><span> | ||
<b>309</b>(5738): 1196-8.</span></p></li> | <b>309</b>(5738): 1196-8.</span></p></li> | ||
- | + | <li><p ALIGN="LEFT">[39] | |
- | <li><p ALIGN="LEFT">[ | + | |
Sharrock, R. A. (2008). "The phytochrome red/far-red photoreceptor superfamily." | Sharrock, R. A. (2008). "The phytochrome red/far-red photoreceptor superfamily." | ||
<u>Genome Biol</u> <b>9</b>(8): 230.</span></p></li> | <u>Genome Biol</u> <b>9</b>(8): 230.</span></p></li> | ||
- | + | <li><p ALIGN="LEFT">[40] Su, | |
- | <li><p ALIGN="LEFT">[ | + | |
Z., H. Li, et al. (2010). "A protease-based strategy for the controlled release | Z., H. Li, et al. (2010). "A protease-based strategy for the controlled release | ||
of therapeutic peptides." <u>Angew Chem Int Ed Engl</u> <b>49</b>(29): 4930-3.</span></p></li> | of therapeutic peptides." <u>Angew Chem Int Ed Engl</u> <b>49</b>(29): 4930-3.</span></p></li> | ||
- | + | <li><p ALIGN="LEFT">[41] | |
- | <li><p ALIGN="LEFT">[ | + | |
Voigt, C. A., A. Levskaya, et al. (2005). "Synthetic biology: engineering | Voigt, C. A., A. Levskaya, et al. (2005). "Synthetic biology: engineering | ||
Escherichia coli to see light." </span><u> | Escherichia coli to see light." </span><u> | ||
Line 702: | Line 681: | ||
<b>438</b>(7067): 441-2.</span></p></li> | <b>438</b>(7067): 441-2.</span></p></li> | ||
<li><p ALIGN="LEFT"> | <li><p ALIGN="LEFT"> | ||
- | [ | + | [42] Voigt, C. A., A. Levskaya, et al. </span> |
<span>(2009). | <span>(2009). | ||
"Spatiotemporal control of cell signaling using a light-switchable protein | "Spatiotemporal control of cell signaling using a light-switchable protein | ||
interaction." <u>Nature</u> <b>461</b>(7266): 997-1001.</span></p></li> | interaction." <u>Nature</u> <b>461</b>(7266): 997-1001.</span></p></li> | ||
- | + | <li><p ALIGN="LEFT">[43] | |
- | <li><p ALIGN="LEFT">[ | + | |
Weaver, D. R. and S. M. Reppert (1997). "Forward genetic approach strikes gold: | Weaver, D. R. and S. M. Reppert (1997). "Forward genetic approach strikes gold: | ||
cloning of a mammalian clock gene." </span><u> | cloning of a mammalian clock gene." </span><u> | ||
Line 713: | Line 691: | ||
Cell</span></u><span> | Cell</span></u><span> | ||
<b>89</b>(4): 487-90.</span></p></li> | <b>89</b>(4): 487-90.</span></p></li> | ||
- | + | <li><p ALIGN="LEFT">[44] | |
- | <li><p ALIGN="LEFT">[ | + | |
</span> | </span> | ||
<span>Weitz, C. J., K. F. | <span>Weitz, C. J., K. F. | ||
Line 721: | Line 698: | ||
"Extensive and divergent circadian gene expression in liver and heart." <u> | "Extensive and divergent circadian gene expression in liver and heart." <u> | ||
Nature</u> <b>417</b>(6884): 78-83.</span></p></li> | Nature</u> <b>417</b>(6884): 78-83.</span></p></li> | ||
- | <p> | + | <li><p ALIGN="LEFT"> |
- | <li><p ALIGN="LEFT">[ | + | [45] Wu SH., JC. Lagarias JC. (2000) "Defining the bilin lyase domain: lessons from the extended phytochrome superfamily." <u>Biochemistry</u><b>39</b>:13487–95.</span></p></li> |
+ | <li><p ALIGN="LEFT">[46] | ||
</span> | </span> | ||
<span>Zuber, P. and Y. | <span>Zuber, P. and Y. |
Revision as of 21:32, 27 October 2010
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