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Items: 1 to 20 of 383

1.

Molecular structure of a barley alpha-amylase-inhibitor complex: implications for starch binding and catalysis.

Kadziola A, Søgaard M, Svensson B, Haser R.

J Mol Biol. 1998 Apr 24;278(1):205-17.

PMID:
9571044
2.

Crystal and molecular structure of barley alpha-amylase.

Kadziola A, Abe J, Svensson B, Haser R.

J Mol Biol. 1994 May 27;239(1):104-21.

PMID:
8196040
3.
4.

Two secondary carbohydrate binding sites on the surface of barley alpha-amylase 1 have distinct functions and display synergy in hydrolysis of starch granules.

Nielsen MM, Bozonnet S, Seo ES, Mótyán JA, Andersen JM, Dilokpimol A, Abou Hachem M, Gyémánt G, Naested H, Kandra L, Sigurskjold BW, Svensson B.

Biochemistry. 2009 Aug 18;48(32):7686-97. doi: 10.1021/bi900795a.

PMID:
19606835
5.

Crystal structure of a catalytic-site mutant alpha-amylase from Bacillus subtilis complexed with maltopentaose.

Fujimoto Z, Takase K, Doui N, Momma M, Matsumoto T, Mizuno H.

J Mol Biol. 1998 Mar 27;277(2):393-407.

PMID:
9514750
6.

Oligosaccharide binding to barley alpha-amylase 1.

Robert X, Haser R, Mori H, Svensson B, Aghajari N.

J Biol Chem. 2005 Sep 23;280(38):32968-78. Epub 2005 Jul 19.

7.

Structural analysis of a chimeric bacterial alpha-amylase. High-resolution analysis of native and ligand complexes.

Brzozowski AM, Lawson DM, Turkenburg JP, Bisgaard-Frantzen H, Svendsen A, Borchert TV, Dauter Z, Wilson KS, Davies GJ.

Biochemistry. 2000 Aug 8;39(31):9099-107.

PMID:
10924103
8.

Subsite mapping of the human pancreatic alpha-amylase active site through structural, kinetic, and mutagenesis techniques.

Brayer GD, Sidhu G, Maurus R, Rydberg EH, Braun C, Wang Y, Nguyen NT, Overall CM, Withers SG.

Biochemistry. 2000 Apr 25;39(16):4778-91.

PMID:
10769135
9.
10.

Crystal structure of Thermotoga maritima 4-alpha-glucanotransferase and its acarbose complex: implications for substrate specificity and catalysis.

Roujeinikova A, Raasch C, Sedelnikova S, Liebl W, Rice DW.

J Mol Biol. 2002 Aug 2;321(1):149-62.

PMID:
12139940
11.

The 'pair of sugar tongs' site on the non-catalytic domain C of barley alpha-amylase participates in substrate binding and activity.

Bozonnet S, Jensen MT, Nielsen MM, Aghajari N, Jensen MH, Kramhøft B, Willemoës M, Tranier S, Haser R, Svensson B.

FEBS J. 2007 Oct;274(19):5055-67. Epub 2007 Sep 4.

12.

X-ray structure of Novamyl, the five-domain "maltogenic" alpha-amylase from Bacillus stearothermophilus: maltose and acarbose complexes at 1.7A resolution.

Dauter Z, Dauter M, Brzozowski AM, Christensen S, Borchert TV, Beier L, Wilson KS, Davies GJ.

Biochemistry. 1999 Jun 29;38(26):8385-92.

PMID:
10387084
13.

Probing the role of a mobile loop in substrate binding and enzyme activity of human salivary amylase.

Ramasubbu N, Ragunath C, Mishra PJ.

J Mol Biol. 2003 Jan 31;325(5):1061-76.

PMID:
12527308
15.

Specific inhibition of insect alpha-amylases: yellow meal worm alpha-amylase in complex with the amaranth alpha-amylase inhibitor at 2.0 A resolution.

Pereira PJ, Lozanov V, Patthy A, Huber R, Bode W, Pongor S, Strobl S.

Structure. 1999 Sep 15;7(9):1079-88.

16.

Substrate mimicry in the active center of a mammalian alpha-amylase: structural analysis of an enzyme-inhibitor complex.

Bompard-Gilles C, Rousseau P, Rougé P, Payan F.

Structure. 1996 Dec 15;4(12):1441-52.

17.
18.

The structure of barley alpha-amylase isozyme 1 reveals a novel role of domain C in substrate recognition and binding: a pair of sugar tongs.

Robert X, Haser R, Gottschalk TE, Ratajczak F, Driguez H, Svensson B, Aghajari N.

Structure. 2003 Aug;11(8):973-84.

19.

Refined molecular structure of pig pancreatic alpha-amylase at 2.1 A resolution.

Larson SB, Greenwood A, Cascio D, Day J, McPherson A.

J Mol Biol. 1994 Feb 4;235(5):1560-84.

20.

In situ extension as an approach for identifying novel alpha-amylase inhibitors.

Numao S, Damager I, Li C, Wrodnigg TM, Begum A, Overall CM, Brayer GD, Withers SG.

J Biol Chem. 2004 Nov 12;279(46):48282-91. Epub 2004 Aug 10.

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