Literature DB >> 28393369

Why we need to know the structure of phosphorylated chloroplast light-harvesting complex II.

John F Allen1.   

Abstract

In oxygenic photosynthesis there are two 'light states' - adaptations of the photosynthetic apparatus to spectral composition that otherwise favours either photosystem I or photosystem II. In chloroplasts of green plants the transition to light state 2 depends on phosphorylation of apoproteins of a membrane-intrinsic antenna, the chlorophyll-a/b-binding, light-harvesting complex II (LHC II), and on the resulting redistribution of absorbed excitation energy from photosystem II to photosystem I. The transition to light state 1 reverses these events and requires a phospho-LHC II phosphatase. Current structures of LHC II reveal little about possible steric effects of phosphorylation. The surface-exposed N-terminal domain of an LHC II polypeptide contains its phosphorylation site and is disordered in its unphosphorylated form. A molecular recognition hypothesis proposes that state transitions are a consequence of movement of LHC II between binding sites on photosystems I and II. In state 1, LHC II forms part of the antenna of photosystem II. In state 2, a unique but as yet unidentified 3-D structure of phospho-LHC II may attach it instead to photosystem I. One possibility is that the LHC II N-terminus becomes ordered upon phosphorylation, adopting a local alpha-helical secondary structure that initiates changes in LHC II tertiary and quaternary structure that sever contact with photosystem II while securing contact with photosystem I. In order to understand redistribution of absorbed excitation energy in photosynthesis we need to know the structure of LHC II in its phosphorylated form, and in its complex with photosystem I.
© 2017 The Authors. Physiologia Plantarum published by John Wiley & Sons Ltd on behalf of Scandinavian Plant Physiology Society.

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Year:  2017        PMID: 28393369     DOI: 10.1111/ppl.12577

Source DB:  PubMed          Journal:  Physiol Plant        ISSN: 0031-9317            Impact factor:   4.500


  5 in total

1.  Spruce versus Arabidopsis: different strategies of photosynthetic acclimation to light intensity change.

Authors:  Michal Štroch; Petr Ilík; Václav Karlický; Iva Ilíková; Monika Opatíková; Lukáš Nosek; Pavel Pospíšil; Marika Svrčková; Marek Rác; Pavel Roudnický; Zbyněk Zdráhal; Vladimír Špunda; Roman Kouřil
Journal:  Photosynth Res       Date:  2022-08-18       Impact factor: 3.429

2.  Light-harvesting complex II is an antenna of photosystem I in dark-adapted plants.

Authors:  Volha U Chukhutsina; Xin Liu; Pengqi Xu; Roberta Croce
Journal:  Nat Plants       Date:  2020-06-22       Impact factor: 15.793

3.  Conformational Dynamics of Light-Harvesting Complex II in a Native Membrane Environment.

Authors:  Fatemeh Azadi-Chegeni; Meaghan E Ward; Giorgio Perin; Diana Simionato; Tomas Morosinotto; Marc Baldus; Anjali Pandit
Journal:  Biophys J       Date:  2020-12-05       Impact factor: 4.033

4.  A kaleidoscope of photosynthetic antenna proteins and their emerging roles.

Authors:  Rameez Arshad; Francesco Saccon; Pushan Bag; Avratanu Biswas; Claudio Calvaruso; Ahmad Farhan Bhatti; Steffen Grebe; Vincenzo Mascoli; Moontaha Mahbub; Fernando Muzzopappa; Alexandros Polyzois; Christo Schiphorst; Mirella Sorrentino; Simona Streckaité; Herbert van Amerongen; Eva-Mari Aro; Roberto Bassi; Egbert J Boekema; Roberta Croce; Jan Dekker; Rienk van Grondelle; Stefan Jansson; Diana Kirilovsky; Roman Kouřil; Sylvie Michel; Conrad W Mullineaux; Klára Panzarová; Bruno Robert; Alexander V Ruban; Ivo van Stokkum; Emilie Wientjes; Claudia Büchel
Journal:  Plant Physiol       Date:  2022-06-27       Impact factor: 8.005

5.  Overexpression of thioredoxin m in tobacco chloroplasts inhibits the protein kinase STN7 and alters photosynthetic performance.

Authors:  María Ancín; Alicia Fernández-San Millán; Luis Larraya; Fermín Morales; Jon Veramendi; Iker Aranjuelo; Inmaculada Farran
Journal:  J Exp Bot       Date:  2019-02-05       Impact factor: 6.992

  5 in total

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