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Originally published as Biophys J. BioFAST on May 18, 2007.
doi:10.1529/biophysj.106.098731
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Biophysical Journal 93:1993-1998 (2007)
© 2007 The Biophysical Society

The Chloroplast Tat Pathway Utilizes the Transmembrane Electric Potential as an Energy Source

Nikolai A. Braun, Andrew W. Davis and Steven M. Theg

Department of Plant Biology, University of California, Davis, California 95616

Correspondence: Address reprint requests to Steven M. Theg, Dept. of Plant Biology, University of California, Davis, CA 95616. Tel.: 530-752-0624; E-mail: smtheg{at}ucdavis.edu.

The thylakoid membrane, located inside the chloroplast, requires proteins transported across it for plastid biogenesis and functional photosynthetic electron transport. The chloroplast Tat translocator found on thylakoids transports proteins from the plastid stroma to the thylakoid lumen. Previous studies have shown that the chloroplast Tat pathway is independent of NTP hydrolysis as an energy source and instead depends on the thylakoid transmembrane proton gradient to power protein translocation. Because of its localization on the same membrane as the proton motive force–dependent F0F1 ATPase, we believed that the chloroplast Tat pathway also made use of the thylakoid electric potential for transporting substrates. By adjusting the rate of photosynthetic proton pumping and by utilizing ionophores, we show that the chloroplast Tat pathway can also utilize the transmembrane electric potential for protein transport. Our findings indicate that the chloroplast Tat pathway is likely dependent on the total protonmotive force (PMF) as an energy source. As a protonmotive-dependent device, certain predictions can be made about structural features expected to be found in the Tat translocon, specifically, the presence of a proton well, a device in the membrane that converts electrical potential into chemical potential.




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S. Frielingsdorf, M. Jakob, and R. B. Klosgen
A Stromal Pool of TatA Promotes Tat-dependent Protein Transport across the Thylakoid Membrane
J. Biol. Chem., December 5, 2008; 283(49): 33838 - 33845.
[Abstract] [Full Text] [PDF]


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J. Biol. Chem.Home page
N. A. Braun and S. M. Theg
The Chloroplast Tat Pathway Transports Substrates in the Dark
J. Biol. Chem., April 4, 2008; 283(14): 8822 - 8828.
[Abstract] [Full Text] [PDF]




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