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Items: 1 to 20 of 105

1.

Chemical kinetic analysis of thermal decay of rhodopsin reveals unusual energetics of thermal isomerization and hydrolysis of Schiff base.

Liu J, Liu MY, Fu L, Zhu GA, Yan EC.

J Biol Chem. 2011 Nov 4;286(44):38408-16. doi: 10.1074/jbc.M111.280602. Epub 2011 Sep 15.

2.

Thermal stability of rhodopsin and progression of retinitis pigmentosa: comparison of S186W and D190N rhodopsin mutants.

Liu MY, Liu J, Mehrotra D, Liu Y, Guo Y, Baldera-Aguayo PA, Mooney VL, Nour AM, Yan EC.

J Biol Chem. 2013 Jun 14;288(24):17698-712. doi: 10.1074/jbc.M112.397257. Epub 2013 Apr 26.

3.

Thermal decay of rhodopsin: role of hydrogen bonds in thermal isomerization of 11-cis retinal in the binding site and hydrolysis of protonated Schiff base.

Liu J, Liu MY, Nguyen JB, Bhagat A, Mooney V, Yan EC.

J Am Chem Soc. 2009 Jul 1;131(25):8750-1. doi: 10.1021/ja903154u.

4.

Role of the retinal hydrogen bond network in rhodopsin Schiff base stability and hydrolysis.

Janz JM, Farrens DL.

J Biol Chem. 2004 Dec 31;279(53):55886-94. Epub 2004 Oct 8.

5.

Kinetics of thermal activation of an ultraviolet cone pigment.

Mooney V, Sekharan S, Liu J, Guo Y, Batista VS, Yan EC.

J Am Chem Soc. 2015 Jan 14;137(1):307-13. doi: 10.1021/ja510553f. Epub 2014 Dec 26.

PMID:
25514632
6.

Thermal properties of rhodopsin: insight into the molecular mechanism of dim-light vision.

Liu J, Liu MY, Nguyen JB, Bhagat A, Mooney V, Yan EC.

J Biol Chem. 2011 Aug 5;286(31):27622-9. doi: 10.1074/jbc.M111.233312. Epub 2011 Jun 9.

7.

Transition of rhodopsin into the active metarhodopsin II state opens a new light-induced pathway linked to Schiff base isomerization.

Ritter E, Zimmermann K, Heck M, Hofmann KP, Bartl FJ.

J Biol Chem. 2004 Nov 12;279(46):48102-11. Epub 2004 Aug 20.

8.

Rapid release of retinal from a cone visual pigment following photoactivation.

Chen MH, Kuemmel C, Birge RR, Knox BE.

Biochemistry. 2012 May 22;51(20):4117-25. doi: 10.1021/bi201522h. Epub 2012 May 7.

9.
11.

Photoreactions of metarhodopsin III.

Vogel R, Lüdeke S, Radu I, Siebert F, Sheves M.

Biochemistry. 2004 Aug 10;43(31):10255-64.

PMID:
15287753
12.

Photoisomerization efficiency in UV-absorbing visual pigments: protein-directed isomerization of an unprotonated retinal Schiff base.

Tsutsui K, Imai H, Shichida Y.

Biochemistry. 2007 May 29;46(21):6437-45. Epub 2007 May 3.

PMID:
17474760
13.

Rhodopsin regeneration is accelerated via noncovalent 11-cis retinal-opsin complex--a role of retinal binding pocket of opsin.

Matsumoto H, Yoshizawa T.

Photochem Photobiol. 2008 Jul-Aug;84(4):985-9. doi: 10.1111/j.1751-1097.2008.00338.x. Epub 2008 Apr 9.

PMID:
18399914
14.

Protein fluctuations as the possible origin of the thermal activation of rod photoreceptors in the dark.

Lórenz-Fonfría VA, Furutani Y, Ota T, Ido K, Kandori H.

J Am Chem Soc. 2010 Apr 28;132(16):5693-703. doi: 10.1021/ja907756e.

PMID:
20356096
15.

Structural changes in the Schiff base region of squid rhodopsin upon photoisomerization studied by low-temperature FTIR spectroscopy.

Ota T, Furutani Y, Terakita A, Shichida Y, Kandori H.

Biochemistry. 2006 Mar 7;45(9):2845-51.

PMID:
16503639
16.

On the molecular origin of photoreceptor noise.

Barlow RB, Birge RR, Kaplan E, Tallent JR.

Nature. 1993 Nov 4;366(6450):64-6.

PMID:
8232538
17.

Photoregeneration of bovine rhodopsin from its signaling state.

Arnis S, Hofmann KP.

Biochemistry. 1995 Jul 25;34(29):9333-40.

PMID:
7626602
18.
19.

Molecular mechanisms of disease for mutations at Gly-90 in rhodopsin.

Toledo D, Ramon E, Aguilà M, Cordomí A, Pérez JJ, Mendes HF, Cheetham ME, Garriga P.

J Biol Chem. 2011 Nov 18;286(46):39993-40001. doi: 10.1074/jbc.M110.201517. Epub 2011 Sep 22.

20.

Solid-state NMR studies of the mechanism of the opsin shift in the visual pigment rhodopsin.

Smith SO, Palings I, Miley ME, Courtin J, de Groot H, Lugtenburg J, Mathies RA, Griffin RG.

Biochemistry. 1990 Sep 4;29(35):8158-64.

PMID:
2261469
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