PresseKat - Photosynthesis in 3D

Photosynthesis in 3D

ID: 1160695

otosynthesis in 3D


So far, researchers who wanted to observe tiny structures inside of cells had to use traditional electron microscopy. However, this method requires several preparation steps that damage cellular structures and limit the resolution and accuracy of the images. By using cryo-electron tomography, Wolfgang Baumeister and his team are able to avoid these steps by rapidly freezing the cells. Moreover, this allows them to visualize the internal architecture of cells in a close-to-living state. Using this technique, the scientists investigated the three dimensional structures of chloroplasts in the alga Chlamydomonas, shedding new light on their assembly and function.

Two spatially separated reactions take place during photosynthesis: while energy is harvested from sunlight in compartments called the thylakoids, carbon dioxide is fixed to form sugar molecules in a compartment called the pyrenoid. It was not understood how these processes could be coordinated. The new 3D images revealed the detailed structures of tubules that connect the pyrenoid with the thylakoids, providing conduits for the diffusion of energy molecules and sugars between these two separated parts of the chloroplast (see figure).

Besides the fact that there are connections between the two reaction compartments, the scientists were also able to show how the thylakoids receive new proteins and how the photosynthesis enzymes are organized: "In the pyrenoid, there are many units of the photosynthesis enzyme RuBisCO", explains Benjamin Engel, scientist at the MPI of Biochemistry. "Our results show for the first time that these units are packed in a hexagonal arrangement." In the future, the authors aim to elucidate how this RuBisCO organization is formed and whether more proteins are involved. [HS]

Original publication:
Engel B, Schaffer M, Kuhn Cuellar L, Villa E, Plitzko JM and Baumeister W: Native Architecture of the Chlamydomonas Chloroplast Revealed by In Situ Cryo-Electron Tomography. eLife, January 13, 2015.
DOI: 10.7554/eLife.04889


Contact:

Prof. Dr. Wolfgang Baumeister
Molecular Structural Biology
Max Planck Institute of Biochemistry
Am Klopferspitz 18
82152 Martinsried
Germany

E-Mail: baumeist@biochem.mpg.de
www.biochem.mpg.de/baumeister

Anja Konschak
Public Relations
Max Planck Institute of Biochemistry
Am Klopferspitz 18
82152 Martinsried
Germany

Phone: +49 89 8578-2824

E-Mail: konschak@biochem.mpg.de
www.biochem.mpg.de

(pressrelations) - 3D


So far, researchers who wanted to observe tiny structures inside of cells had to use traditional electron microscopy. However, this method requires several preparation steps that damage cellular structures and limit the resolution and accuracy of the images. By using cryo-electron tomography, Wolfgang Baumeister and his team are able to avoid these steps by rapidly freezing the cells. Moreover, this allows them to visualize the internal architecture of cells in a close-to-living state. Using this technique, the scientists investigated the three dimensional structures of chloroplasts in the alga Chlamydomonas, shedding new light on their assembly and function.

Two spatially separated reactions take place during photosynthesis: while energy is harvested from sunlight in compartments called the thylakoids, carbon dioxide is fixed to form sugar molecules in a compartment called the pyrenoid. It was not understood how these processes could be coordinated. The new 3D images revealed the detailed structures of tubules that connect the pyrenoid with the thylakoids, providing conduits for the diffusion of energy molecules and sugars between these two separated parts of the chloroplast (see figure).

Besides the fact that there are connections between the two reaction compartments, the scientists were also able to show how the thylakoids receive new proteins and how the photosynthesis enzymes are organized: "In the pyrenoid, there are many units of the photosynthesis enzyme RuBisCO", explains Benjamin Engel, scientist at the MPI of Biochemistry. "Our results show for the first time that these units are packed in a hexagonal arrangement." In the future, the authors aim to elucidate how this RuBisCO organization is formed and whether more proteins are involved. [HS]

Original publication:
Engel B, Schaffer M, Kuhn Cuellar L, Villa E, Plitzko JM and Baumeister W: Native Architecture of the Chlamydomonas Chloroplast Revealed by In Situ Cryo-Electron Tomography. eLife, January 13, 2015.




DOI: 10.7554/eLife.04889


Contact:

Prof. Dr. Wolfgang Baumeister
Molecular Structural Biology
Max Planck Institute of Biochemistry
Am Klopferspitz 18
82152 Martinsried
Germany

E-Mail: baumeist(at)biochem.mpg.de
www.biochem.mpg.de/baumeister

Anja Konschak
Public Relations
Max Planck Institute of Biochemistry
Am Klopferspitz 18
82152 Martinsried
Germany

Phone: +49 89 8578-2824

E-Mail: konschak(at)biochem.mpg.de
www.biochem.mpg.de

Unternehmensinformation / Kurzprofil:
PresseKontakt / Agentur:

Prof. Dr. Wolfgang Baumeister
Molecular Structural Biology
Max Planck Institute of Biochemistry
Am Klopferspitz 18
82152 Martinsried
Germany

E-Mail: baumeist(at)biochem.mpg.de
www.biochem.mpg.de/baumeister

Anja Konschak
Public Relations
Max Planck Institute of Biochemistry
Am Klopferspitz 18
82152 Martinsried
Germany

Phone: +49 89 8578-2824

E-Mail: konschak(at)biochem.mpg.de
www.biochem.mpg.de



drucken  als PDF  an Freund senden  Das Erste / Bremer Politikwissenschaftler erhält ERC Starting Grant über 1,1 Millionen EURO
Bereitgestellt von Benutzer: pressrelations
Datum: 15.01.2015 - 15:15 Uhr
Sprache: Deutsch
News-ID 1160695
Anzahl Zeichen: 5988

pressrelations.de – ihr Partner für die Veröffentlichung von Pressemitteilungen und Presseterminen, Medienbeobachtung und Medienresonanzanalysen


Diese Pressemitteilung wurde bisher 0 mal aufgerufen.


Die Pressemitteilung mit dem Titel:
"Photosynthesis in 3D"
steht unter der journalistisch-redaktionellen Verantwortung von

Max-Planck-Institut für Biochemie (Nachricht senden)

Beachten Sie bitte die weiteren Informationen zum Haftungsauschluß (gemäß TMG - TeleMedianGesetz) und dem Datenschutz (gemäß der DSGVO).

Building muscle ? one splice at a time ...

one splice at a time Every muscle is built by hundreds of contractile units, called sarcomeres. Different types of muscles use different protein variants to build these sarcomeres, resulting in muscles running faster or slower or applying stronger ...

Alle Meldungen von Max-Planck-Institut für Biochemie