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Anja Krieger-liszkay - One of the best experts on this subject based on the ideXlab platform.
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Evolutive differentiation between alga- and plant-type plastid terminal oxidase: study of plastid terminal oxidase PTOX isoforms in Marchantia polymorpha
Biochimica biophysica acta (BBA) - Bioenergetics, 2020Co-Authors: Marine Messant, Ginga Shimakawa, François Perreau, Chikahiro Miyake, Anja Krieger-liszkayAbstract:The liverwort Marchantia polymorpha contains two isoforms of the plastid terminal oxidase (PTOX), an enzyme that catalyzes the reduction of oxygen to water using plastoquinol as substrate. Phylogenetic analyses showed that one isoform, here called MpPTOXa, is closely related to isoforms occurring in plants and some algae, while the other isoform, here called MpPTOXb, is closely related to the two isoforms occurring in Chlamydomonas reinhardtii. Mutants of each isoform were created in Marchantia polymorpha using CRISPR/Cas9 technology. While no obvious phenotype was found for these mutants, chlorophyll fluorescence analyses demonstrated that the plastoquinone pool was in a higher reduction state in both mutants. This was visible at the level of fluorescence measured in dark-adapted material and by post illumination fluorescence rise. These results suggest that both isoforms have a redundant function. However, when P700 oxidation and re-reduction was studied, differences between these two isoforms were observed. Furthermore, the mutant affected in MpPTOXb showed a slight alteration in the pigment composition, a higher non-photochemical quenching and a slightly lower electron transport rate through photosystem II. These differences may be explained either by differences in the enzymatic activities or by different activities attributed to preferential involvement of the two PTOX isoforms to either linear or cyclic electron flow.
Roberto Solano - One of the best experts on this subject based on the ideXlab platform.
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an evolutionarily ancient fatty acid desaturase is required for the synthesis of hexadecatrienoic acid which is the main source of the bioactive jasmonate in Marchantia polymorpha
New Phytologist, 2021Co-Authors: Jose Manuel Francozorrilla, Angel M Zamarreno, Jose Maria Garciamina, Gonzalo Soriano, Sophie Kneeshaw, Guillermo Hugo Jimenezaleman, Ma Fernanda Reystolle, Coral Barbas, Roberto SolanoAbstract:Jasmonates are fatty acid-derived hormones that regulate multiple aspects of plant development, growth and stress responses. Bioactive jasmonates, defined as the ligands of the conserved COI1 receptor, differ between vascular plants and bryophytes (jasmonoyl-l-isoleucine (JA-Ile) and dinor-12-oxo-10,15(Z)-phytodienoic acid (dn-OPDA), respectively). The biosynthetic pathways of JA-Ile in the model vascular plant Arabidopsis thaliana have been elucidated. However, the details of dn-OPDA biosynthesis in bryophytes are still unclear. Here, we identify an orthologue of Arabidopsis fatty-acid-desaturase 5 (AtFAD5) in the model liverwort Marchantia polymorpha and show that FAD5 function is ancient and conserved between species separated by more than 450 million years (Myr) of independent evolution. Similar to AtFAD5, MpFAD5 is required for the synthesis of 7Z-hexadecenoic acid. Consequently, in Mpfad5 mutants, the hexadecanoid pathway is blocked, dn-OPDA concentrations are almost completely depleted and normal chloroplast development is impaired. Our results demonstrate that the main source of wounding-induced dn-OPDA in Marchantia is the hexadecanoid pathway and the contribution of the octadecanoid pathway (i.e. from OPDA) is minimal. Remarkably, despite extremely low concentrations of dn-OPDA, MpCOI1-mediated responses to wounding and insect feeding can still be activated in Mpfad5, suggesting that dn-OPDA may not be the only bioactive jasmonate and COI1 ligand in Marchantia.
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an evolutionarily ancient fatty acid desaturase is required for the synthesis of hexadecatrienoic acid which is the main source of the bioactive jasmonate in Marchantia polymorpha
bioRxiv, 2021Co-Authors: Gonzalo Soriano, Jose Manuel Francozorrilla, Angel M Zamarreno, Jose Maria Garciamina, Sophie Kneeshaw, Guillermo Hugo Jimenezaleman, Ma Fernanda Reystolle, Coral Barbas, Roberto SolanoAbstract:Jasmonates are fatty acid derived hormones that regulate multiple aspects of plant development, growth and stress responses. Bioactive jasmonates, defined as the ligands of the conserved COI1 receptor, differ between vascular plants and bryophytes (using jasmonoyl-L-isoleucine; JA-Ile and dinor-12-oxo-10,15(Z)-phytodienoic acid; dn-OPDA, respectively). Whilst the biosynthetic pathways of JA-Ile in the model vascular plant Arabidopsis thaliana have been elucidated, the details of dn-OPDA biosynthesis in bryophytes are still unclear. Here, we identify an ortholog of Arabidopsis Fatty Acid Desaturase 5 (AtFAD5) in the model liverwort Marchantia polymorpha and show that FAD5 function is ancient and conserved between species separated by more than 450 million years of independent evolution. Similar to AtFAD5, MpFAD5 is required for the synthesis of 7Z-hexadecenoic acid. Consequently, in Mpfad5 mutants the hexadecanoid pathway is blocked, dn-OPDA levels almost completely depleted and normal chloroplast development is impaired. Our results demonstrate that the main source of dn-OPDA in Marchantia is the hexadecanoid pathway and the contribution of the octadecanoid pathway, i.e. from OPDA, is minimal. Remarkably, despite extremely low levels of dn-OPDA, MpCOI1-mediated responses to wounding and insect feeding can still be activated in Mpfad5, suggesting that dn-OPDA is not the only bioactive jasmonate and COI1 ligand in Marchantia.
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isolation of natural fungal pathogens from Marchantia polymorpha reveals antagonism between salicylic acid and jasmonate during liverwort fungus interactions
Plant and Cell Physiology, 2020Co-Authors: Hidenori Matsui, Ryuichi Nishihama, Isabel Monte, Roberto Solano, Hidekazu Iwakawa, Gang Su Hyon, Izumi Yotsui, Shinpei Katou, Rainer Franzen, Hirofumi NakagamiAbstract:The evolution of adaptive interactions with beneficial, neutral and detrimental microbes was one of the key features enabling plant terrestrialization. Extensive studies have revealed conserved and unique molecular mechanisms underlying plant-microbe interactions across different plant species; however, most insights gleaned to date have been limited to seed plants. The liverwort Marchantia polymorpha, a descendant of early diverging land plants, is gaining in popularity as an advantageous model system to understand land plant evolution. However, studying evolutionary molecular plant-microbe interactions in this model is hampered by the small number of pathogens known to infect M. polymorpha. Here, we describe four pathogenic fungal strains, Irpex lacteus Marchantia-infectious (MI)1, Phaeophlebiopsis peniophoroides MI2, Bjerkandera adusta MI3 and B. adusta MI4, isolated from diseased M. polymorpha. We demonstrate that salicylic acid (SA) treatment of M. polymorpha promotes infection of the I. lacteus MI1 that is likely to adopt a necrotrophic lifestyle, while this effect is suppressed by co-treatment with the bioactive jasmonate in M. polymorpha, dinor-cis-12-oxo-phytodienoic acid (dn-OPDA), suggesting that antagonistic interactions between SA and oxylipin pathways during plant-fungus interactions are ancient and were established already in liverworts.
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a single jaz repressor controls the jasmonate pathway in Marchantia polymorpha
Molecular Plant, 2019Co-Authors: Isabel Monte, Takayuki Kohchi, Ryuichi Nishihama, Jose Manuel Francozorrilla, Gloria Garciacasado, Angel M Zamarreno, Jose Maria Garciamina, Roberto SolanoAbstract:Abstract JAZ proteins are negative regulators of jasmonate responses, acting both as repressors of transcription factors and as co-receptors of JA-Ile. The high redundancy of JAZ genes in angiosperms has hindered the characterization of a complete depletion of JAZ function. Moreover, the recent discovery that dn-OPDA is the jasmonate ligand in Marchantia polymorpha demonstrates that JA-Ile is not the sole COI1/JAZ ligand in land plants and highlights the importance of studying JAZ co-receptors in bryophytes. Here, we have exploited the low gene redundancy of the liverwort M. polymorpha to characterize the single MpJAZ in this early diverging plant lineage. We clarify the phylogenetic history of the TIFY family, demonstrate that MpJAZ is the ortholog of AtJAZ with a conserved function, and characterize its repressor activity of dn-OPDA responses. Our results show that, consistent with previous findings in Arabidopsis, MpJAZ represses jasmonates biosynthesis, senescence, and plant defenses, and promotes cell growth and reproductive fitness, highlighting the power of studies in Marchantia.
Gonzalo Soriano - One of the best experts on this subject based on the ideXlab platform.
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an evolutionarily ancient fatty acid desaturase is required for the synthesis of hexadecatrienoic acid which is the main source of the bioactive jasmonate in Marchantia polymorpha
New Phytologist, 2021Co-Authors: Jose Manuel Francozorrilla, Angel M Zamarreno, Jose Maria Garciamina, Gonzalo Soriano, Sophie Kneeshaw, Guillermo Hugo Jimenezaleman, Ma Fernanda Reystolle, Coral Barbas, Roberto SolanoAbstract:Jasmonates are fatty acid-derived hormones that regulate multiple aspects of plant development, growth and stress responses. Bioactive jasmonates, defined as the ligands of the conserved COI1 receptor, differ between vascular plants and bryophytes (jasmonoyl-l-isoleucine (JA-Ile) and dinor-12-oxo-10,15(Z)-phytodienoic acid (dn-OPDA), respectively). The biosynthetic pathways of JA-Ile in the model vascular plant Arabidopsis thaliana have been elucidated. However, the details of dn-OPDA biosynthesis in bryophytes are still unclear. Here, we identify an orthologue of Arabidopsis fatty-acid-desaturase 5 (AtFAD5) in the model liverwort Marchantia polymorpha and show that FAD5 function is ancient and conserved between species separated by more than 450 million years (Myr) of independent evolution. Similar to AtFAD5, MpFAD5 is required for the synthesis of 7Z-hexadecenoic acid. Consequently, in Mpfad5 mutants, the hexadecanoid pathway is blocked, dn-OPDA concentrations are almost completely depleted and normal chloroplast development is impaired. Our results demonstrate that the main source of wounding-induced dn-OPDA in Marchantia is the hexadecanoid pathway and the contribution of the octadecanoid pathway (i.e. from OPDA) is minimal. Remarkably, despite extremely low concentrations of dn-OPDA, MpCOI1-mediated responses to wounding and insect feeding can still be activated in Mpfad5, suggesting that dn-OPDA may not be the only bioactive jasmonate and COI1 ligand in Marchantia.
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an evolutionarily ancient fatty acid desaturase is required for the synthesis of hexadecatrienoic acid which is the main source of the bioactive jasmonate in Marchantia polymorpha
bioRxiv, 2021Co-Authors: Gonzalo Soriano, Jose Manuel Francozorrilla, Angel M Zamarreno, Jose Maria Garciamina, Sophie Kneeshaw, Guillermo Hugo Jimenezaleman, Ma Fernanda Reystolle, Coral Barbas, Roberto SolanoAbstract:Jasmonates are fatty acid derived hormones that regulate multiple aspects of plant development, growth and stress responses. Bioactive jasmonates, defined as the ligands of the conserved COI1 receptor, differ between vascular plants and bryophytes (using jasmonoyl-L-isoleucine; JA-Ile and dinor-12-oxo-10,15(Z)-phytodienoic acid; dn-OPDA, respectively). Whilst the biosynthetic pathways of JA-Ile in the model vascular plant Arabidopsis thaliana have been elucidated, the details of dn-OPDA biosynthesis in bryophytes are still unclear. Here, we identify an ortholog of Arabidopsis Fatty Acid Desaturase 5 (AtFAD5) in the model liverwort Marchantia polymorpha and show that FAD5 function is ancient and conserved between species separated by more than 450 million years of independent evolution. Similar to AtFAD5, MpFAD5 is required for the synthesis of 7Z-hexadecenoic acid. Consequently, in Mpfad5 mutants the hexadecanoid pathway is blocked, dn-OPDA levels almost completely depleted and normal chloroplast development is impaired. Our results demonstrate that the main source of dn-OPDA in Marchantia is the hexadecanoid pathway and the contribution of the octadecanoid pathway, i.e. from OPDA, is minimal. Remarkably, despite extremely low levels of dn-OPDA, MpCOI1-mediated responses to wounding and insect feeding can still be activated in Mpfad5, suggesting that dn-OPDA is not the only bioactive jasmonate and COI1 ligand in Marchantia.
Marine Messant - One of the best experts on this subject based on the ideXlab platform.
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Evolutive differentiation between alga- and plant-type plastid terminal oxidase: study of plastid terminal oxidase PTOX isoforms in Marchantia polymorpha
Biochimica biophysica acta (BBA) - Bioenergetics, 2020Co-Authors: Marine Messant, Ginga Shimakawa, François Perreau, Chikahiro Miyake, Anja Krieger-liszkayAbstract:The liverwort Marchantia polymorpha contains two isoforms of the plastid terminal oxidase (PTOX), an enzyme that catalyzes the reduction of oxygen to water using plastoquinol as substrate. Phylogenetic analyses showed that one isoform, here called MpPTOXa, is closely related to isoforms occurring in plants and some algae, while the other isoform, here called MpPTOXb, is closely related to the two isoforms occurring in Chlamydomonas reinhardtii. Mutants of each isoform were created in Marchantia polymorpha using CRISPR/Cas9 technology. While no obvious phenotype was found for these mutants, chlorophyll fluorescence analyses demonstrated that the plastoquinone pool was in a higher reduction state in both mutants. This was visible at the level of fluorescence measured in dark-adapted material and by post illumination fluorescence rise. These results suggest that both isoforms have a redundant function. However, when P700 oxidation and re-reduction was studied, differences between these two isoforms were observed. Furthermore, the mutant affected in MpPTOXb showed a slight alteration in the pigment composition, a higher non-photochemical quenching and a slightly lower electron transport rate through photosystem II. These differences may be explained either by differences in the enzymatic activities or by different activities attributed to preferential involvement of the two PTOX isoforms to either linear or cyclic electron flow.
Aneta Sabovljevic - One of the best experts on this subject based on the ideXlab platform.
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production of the macrocyclic bis bibenzyls in axenically farmed and wild liverwort Marchantia polymorpha l subsp ruderalis bischl et boisselier
Plant Biosystems, 2017Co-Authors: Marko Sabovljevic, Milorad Vujicic, Xiaoning Wang, H M Garraffo, Carole A Bewley, Aneta SabovljevicAbstract:AbstractOver 60 macrocyclic bis-bibenzyls have been isolated from hepatics. They possess various biological activities such as antimicrobial, antifungal, muscle relaxant and antitumor activities, as well as inhibitory activity against DNA polymerase β and HIV. To explore the feasibility of obtaining novel bis-bibenzyls through laboratory culture, in this study, we compare the qualitative and quantitative contents of axenically farmed and field-collected specimens of Marchantia polymorpha subsp. ruderalis (Mpr). We analyzed methanol extracts of Mpr by LC–MS, and confirmed the identity of isolable compounds by NMR. We found that extracts from natural populations of Mpr contained the known bis-bibenzyl marchantin A as a major component, while the minor components do not correspond to other known bis-bibenzyls. In contrast, the chromatograms of axenically farmed Mpr extracts were highly complex, containing numerous UV active compounds. The only similarity between natural and farmed populations of Mpr was the ...