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Items: 1 to 20 of 379

1.

Analysis of carboxysomes from Synechococcus PCC7942 reveals multiple Rubisco complexes with carboxysomal proteins CcmM and CcaA.

Long BM, Badger MR, Whitney SM, Price GD.

J Biol Chem. 2007 Oct 5;282(40):29323-35. Epub 2007 Aug 3.

2.

Over-expression of the β-carboxysomal CcmM protein in Synechococcus PCC7942 reveals a tight co-regulation of carboxysomal carbonic anhydrase (CcaA) and M58 content.

Long BM, Rae BD, Badger MR, Price GD.

Photosynth Res. 2011 Sep;109(1-3):33-45. doi: 10.1007/s11120-011-9659-8. Epub 2011 May 20.

PMID:
21597987
3.

Functional cyanobacterial beta-carboxysomes have an absolute requirement for both long and short forms of the CcmM protein.

Long BM, Tucker L, Badger MR, Price GD.

Plant Physiol. 2010 May;153(1):285-93. doi: 10.1104/pp.110.154948. Epub 2010 Mar 19.

4.
5.

Carboxysomal carbonic anhydrases.

Kimber MS.

Subcell Biochem. 2014;75:89-103. doi: 10.1007/978-94-007-7359-2_6. Review.

PMID:
24146376
6.

RbcX can function as a rubisco chaperonin, but is non-essential in Synechococcus PCC7942.

Emlyn-Jones D, Woodger FJ, Price GD, Whitney SM.

Plant Cell Physiol. 2006 Dec;47(12):1630-40. Epub 2006 Oct 27.

PMID:
17071623
7.

Structural basis of the oxidative activation of the carboxysomal gamma-carbonic anhydrase, CcmM.

Peña KL, Castel SE, de Araujo C, Espie GS, Kimber MS.

Proc Natl Acad Sci U S A. 2010 Feb 9;107(6):2455-60. doi: 10.1073/pnas.0910866107. Epub 2010 Jan 25.

8.

A multiprotein bicarbonate dehydration complex essential to carboxysome function in cyanobacteria.

Cot SS, So AK, Espie GS.

J Bacteriol. 2008 Feb;190(3):936-45. Epub 2007 Nov 9.

9.

CO2 fixation kinetics of Halothiobacillus neapolitanus mutant carboxysomes lacking carbonic anhydrase suggest the shell acts as a diffusional barrier for CO2.

Dou Z, Heinhorst S, Williams EB, Murin CD, Shively JM, Cannon GC.

J Biol Chem. 2008 Apr 18;283(16):10377-84. doi: 10.1074/jbc.M709285200. Epub 2008 Feb 7.

10.

Comparing the in vivo function of α-carboxysomes and β-carboxysomes in two model cyanobacteria.

Whitehead L, Long BM, Price GD, Badger MR.

Plant Physiol. 2014 May;165(1):398-411. doi: 10.1104/pp.114.237941. Epub 2014 Mar 18.

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13.

In vitro and in vivo analyses of the role of the carboxysomal β-type carbonic anhydrase of the cyanobacterium Synechococcus elongatus in carboxylation of ribulose-1,5-bisphosphate.

Nishimura T, Yamaguchi O, Takatani N, Maeda S, Omata T.

Photosynth Res. 2014 Sep;121(2-3):151-7. doi: 10.1007/s11120-014-9986-7. Epub 2014 Mar 2.

PMID:
24585024
14.

Identification and characterization of a carboxysomal γ-carbonic anhydrase from the cyanobacterium Nostoc sp. PCC 7120.

de Araujo C, Arefeen D, Tadesse Y, Long BM, Price GD, Rowlett RS, Kimber MS, Espie GS.

Photosynth Res. 2014 Sep;121(2-3):135-50. doi: 10.1007/s11120-014-0018-4. Epub 2014 Jun 8.

PMID:
24907906
15.

Linked Rubisco subunits can assemble into functional oligomers without impeding catalytic performance.

Whitney SM, Sharwood RE.

J Biol Chem. 2007 Feb 9;282(6):3809-18. Epub 2006 Dec 6.

16.

A novel evolutionary lineage of carbonic anhydrase (epsilon class) is a component of the carboxysome shell.

So AK, Espie GS, Williams EB, Shively JM, Heinhorst S, Cannon GC.

J Bacteriol. 2004 Feb;186(3):623-30.

17.

Regulation of the expression of ribulose-1,5-bisphosphate carboxylase/oxygenase (EC 4.1.1.39) in a cyanobacterium, Synechococcus PCC7942.

Harano K, Ishida H, Kittaka R, Kojima K, Inoue N, Tsukamoto M, Satoh R, Himeno M, Iwaki T, Wadano A.

Photosynth Res. 2003;78(1):59-65.

PMID:
16245064
18.

A faster Rubisco with potential to increase photosynthesis in crops.

Lin MT, Occhialini A, Andralojc PJ, Parry MA, Hanson MR.

Nature. 2014 Sep 25;513(7519):547-50. doi: 10.1038/nature13776. Epub 2014 Sep 17.

20.

Elucidating essential role of conserved carboxysomal protein CcmN reveals common feature of bacterial microcompartment assembly.

Kinney JN, Salmeen A, Cai F, Kerfeld CA.

J Biol Chem. 2012 May 18;287(21):17729-36. doi: 10.1074/jbc.M112.355305. Epub 2012 Mar 29.

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