Eva-Mari Aro
Academician of Science
Molecular Plant Biology evaaro@utu.fi +358 29 450 4200 +358 50 430 4639 Tykistökatu 6 Turku Office: 6207 ORCID identifier: https://orcid.org/0000-0002-2922-1435 |
Photosynthesis, regulation of photosynthetic light reactions, photoprotection, evolution of photoprotection mechanisms, chloroplast signaling, cyanobacterial cell factories.
Our basic research focuses on
regulation of photosynthesis, which is intimately linked with plant
stress responses and signalling cascades to regulate nuclear gene
expression. Particular emphasis is also put on evolutionary aspects of
regulation of thylakoid light harvesting and energy conversion systems. A
diverse set of photoautotrophic oxygen evolving organisms, from
cyanobacteria, green algae Chlamydomonas reinhardtii and diatoms to a
moss Physcomitrella patens and ferns as well as to the model higher
plants Arabidopsis thaliana and spruce, are used in our research. We aim
at understanding (i) the mechanisms and dynamic regulation of the rapid
photophysical and photochemical processes of the light energy capture
and the photosynthetic electron transfer, (ii) how the structure and
organisation of the thylakoid protein complexes dynamically respond to
environmental changes, and (iii) how the signals originating from the
photosynthetic apparatus relay information to the nuclear genome for
regulation of gene expression and subsequent acclimation of the
photosynthetic organism to changing environmental conditions. Likewise
(iv) the evolution of thylakoid regulatory mechanisms, with special
emphasis on the replacement of the cyanobacterial flavodiiron proteins
with other regulatory mechanisms in higher plants, is investigated to
understand how it was possible for photosynthetic organisms to move from
oceans to the land.
Our applied research focuses on replacement
of fossil raw materials and aims at production of carbon-neutral
biosolarfuels and chemicals using cyanobacteria as a production chassis.
In the synthetic biology program, we aim at production of fuels and
chemicals with high photon conversion efficiency, significantly higher
compared to natural pathways. The main goal is economically viable
conversion of solar energy to a fuel using inexhaustible raw materials:
sunlight, water and CO2. Applied research is intimately integrated with
our basic research and comprises the designing, engineering and
optimisation of light harvesting, electron transfer and metabolic
pathways.
- Serine and threonine residues of plant STN7 kinase are differentially phosphorylated upon changing light conditions and specifically influence the activity and stability of the kinaseThe Flavodiiron Protein Flv3 Functions as a Homo-Oligomer During Stress Acclimation and is Distinct from the Flv1/Flv3 Hetero-Oligomer Specific to the O-2 Photoreduction Pathway (2016)
- Plant JournalPlant and Cell Physiology
(A1 Refereed original research article in a scientific journal) - Study of O-Phosphorylation Sites in Proteins Involved in Photosynthesis-Related Processes in Synechocystis sp Strain PCC 6803: Application of the SRM Approach (2016)
- Journal of Proteome Research
(A1 Refereed original research article in a scientific journal) - (2016)
Martin Hagemann, Eva-Mari Aro, Yagut Allahverdiyeva
(A1 Refereed original research article in a scientific journal) - The Low Molecular Weight Protein PsaI Stabilizes the Light-Harvesting Complex II Docking Site of Photosystem I-1 (2016)
- Plant PhysiologyEnergy and Environmental Science
(A1 Refereed original research article in a scientific journal) - The NDH-1L-PSI Supercomplex Is Important for Efficient Cyclic Electron Transport in CyanobacteriaChlamydomonas Flavodiiron Proteins Facilitate Acclimation to Anoxia During Sulfur Deprivation (2016)
- Plant PhysiologyPlant and Cell Physiology
(A1 Refereed original research article in a scientific journal) - Thylakoid-Bound FtsH Proteins Facilitate Proper Biosynthesis of Photosystem I (2016)
- Plant PhysiologyMolecular Plant
Dario Leister, and Eva-Mari Aro
(A1 Refereed original research article in a scientific journal) - Turning around the electron flow in an uptake hydrogenase. EPR spectroscopy and in vivo activity of a designed mutant in HupSL from Nostoc punctiforme (2016)
(A1 Refereed original research article in a scientific journal) - (2015)
(A1 Refereed original research article in a scientific journal) - Cyanobacterial flv4-2 operon-encoded proteins optimize light harvesting and charge separation in photosystem II (2015)
(A1 Refereed original research article in a scientific journal) - Cyanobacterial Light-Harvesting Phycobilisomes Uncouple From Photosystem I During Dark-To-Light Transitions (2015)
- Scientific Reports
(A1 Refereed original research article in a scientific journal)



