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Publications (7 of 7) Show all publications
Wang, W., Mahboubi, A., Zhu, S., Hanson, J., Mateus, A. & Niittylä, T. (2025). Ribosome biogenesis in plants requires the nuclear envelope and mitochondria localized OPENER complex. Nature Communications, 16(1), Article ID 7301.
Open this publication in new window or tab >>Ribosome biogenesis in plants requires the nuclear envelope and mitochondria localized OPENER complex
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2025 (English)In: Nature Communications, E-ISSN 2041-1723, Vol. 16, no 1, article id 7301Article in journal (Refereed) Published
Abstract [en]

Eukaryotic ribosome biogenesis proceeds from nucleolus to cytosol assisted by various assembly factors. The process is evolutionarily conserved across eukaryotes but differences between the kingdoms are emerging. Here, we describe how the OPENER (OPNR) protein complex is required for 60S ribosome assembly in the model plant Arabidopsis thaliana. The complex is observed on both nuclear envelope and mitochondria, and contains OPNR, OPENER ASSOCIATED PROTEIN 1 (OAP1), OAP2, Cell Division Cycle 48 D (CDC48D) and Calmodulin-interacting protein 111 (CIP111). Depletion of the OPNR complex components results in reproductive lethality and cytoplasmic retention of assembly factors on 60S ribosomes. Subsequent biochemical analyses and structural modelling suggest that OPNR, OAP1 and OAP2 form a claw-like trimer which grabs the ribosome assembly factor RIBOSOMAL PROTEIN L24C (RPL24C) on the pre-60S ribosome. Our results reveal previously unrecognised subcellular complexity of ribosome biogenesis in plants, and point to mitochondria association as a feature to ensure sufficient translational capacity.

Place, publisher, year, edition, pages
Springer Nature, 2025
National Category
Cell Biology Biochemistry Molecular Biology
Identifiers
urn:nbn:se:umu:diva-243422 (URN)10.1038/s41467-025-62652-7 (DOI)40775240 (PubMedID)2-s2.0-105012877473 (Scopus ID)
Funder
Swedish Research Council, 2019- 03717Bio4EnergyKnut and Alice Wallenberg Foundation, 2016.0352Knut and Alice Wallenberg Foundation, 2020.0240
Available from: 2025-08-21 Created: 2025-08-21 Last updated: 2025-08-21Bibliographically approved
Gran, P., Visscher, T. W., Bai, B., Nijveen, H., Mahboubi, A., Bakermans, L. L., . . . Bentsink, L. (2025). Unravelling the dynamics of seed-stored mRNAs during seed priming. New Phytologist, 247(5), 2196-2209
Open this publication in new window or tab >>Unravelling the dynamics of seed-stored mRNAs during seed priming
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2025 (English)In: New Phytologist, ISSN 0028-646X, E-ISSN 1469-8137, Vol. 247, no 5, p. 2196-2209Article in journal (Refereed) Published
Abstract [en]

Seed priming is a pre-sowing treatment that enables more efficient and uniform seed germination; however, it negatively affects seed longevity. In this work, the mRNA dynamics underlying a hydropriming treatment have been investigated. Polysome profiling was performed on seeds during different stages of hydropriming. Ribosome nascent chain complex sequencing (RNC-seq) elucidated transcriptomic and translatomic changes during the priming treatment. In contrast to mature dry seeds, hydroprimed seeds contain more mRNA-ribosome complexes, suggesting that the mRNAs that need to be translated during germination are already associated with ribosomes in the primed seeds, leading to a quicker restart of translation and thus faster germination upon re-imbibition. As a result of priming, seeds lose part of their stress-related transcriptome. This work highlights genes that might play a role in increasing the rate of germination after priming.

Place, publisher, year, edition, pages
John Wiley & Sons, 2025
Keywords
Arabidopsis thaliana, germination, hydropriming, longevity, mRNA dynamics, polysome profiling, RNC-seq, seeds
National Category
Botany
Identifiers
urn:nbn:se:umu:diva-238460 (URN)10.1111/nph.70098 (DOI)001455667800001 ()40152198 (PubMedID)2-s2.0-105001802851 (Scopus ID)
Available from: 2025-05-06 Created: 2025-05-06 Last updated: 2025-11-28Bibliographically approved
Hoffmann, G., López-González, S., Mahboubi, A., Hanson, J. & HafrCrossed D Sign©n, A. (2023). Cauliflower mosaic virus protein P6 is a multivalent node for RNA granule proteins and interferes with stress granule responses during plant infection. The Plant Cell, 35(9), 3363-3382
Open this publication in new window or tab >>Cauliflower mosaic virus protein P6 is a multivalent node for RNA granule proteins and interferes with stress granule responses during plant infection
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2023 (English)In: The Plant Cell, ISSN 1040-4651, E-ISSN 1532-298X, Vol. 35, no 9, p. 3363-3382Article in journal (Refereed) Published
Abstract [en]

Biomolecular condensation is a multipurpose cellular process that viruses use ubiquitously during their multiplication. Cauliflower mosaic virus replication complexes are condensates that differ from those of most viruses, as they are nonmembranous assemblies that consist of RNA and protein, mainly the viral protein P6. Although these viral factories (VFs) were described half a century ago, with many observations that followed since, functional details of the condensation process and the properties and relevance of VFs have remained enigmatic. Here, we studied these issues in Arabidopsis thaliana and Nicotiana benthamiana. We observed a large dynamic mobility range of host proteins within VFs, while the viral matrix protein P6 is immobile, as it represents the central node of these condensates. We identified the stress granule (SG) nucleating factors G3BP7 and UBP1 family members as components of VFs. Similarly, as SG components localize to VFs during infection, ectopic P6 localizes to SGs and reduces their assembly after stress. Intriguingly, it appears that soluble rather than condensed P6 suppresses SG formation and mediates other essential P6 functions, suggesting that the increased condensation over the infection time-course may accompany a progressive shift in selected P6 functions. Together, this study highlights VFs as dynamic condensates and P6 as a complex modulator of SG responses.

Place, publisher, year, edition, pages
Oxford University Press, 2023
National Category
Cell Biology Biochemistry Molecular Biology
Identifiers
urn:nbn:se:umu:diva-214982 (URN)10.1093/plcell/koad101 (DOI)000971386700001 ()37040611 (PubMedID)2-s2.0-85171990221 (Scopus ID)
Funder
Swedish Research Council, 2017-05036Carl Tryggers foundation , CTS 17:180Knut and Alice Wallenberg Foundation, 2019-0062Bio4Energy
Available from: 2023-10-13 Created: 2023-10-13 Last updated: 2025-08-21Bibliographically approved
Hoffmann, G., Mahboubi, A., Bente, H., Garcia, D., Hanson, J. & Hafrén, A. (2022). Arabidopsis RNA processing body components LSM1 and DCP5 aid in the evasion of translational repression during Cauliflower mosaic virus infection. The Plant Cell, 34(8), 3128-3147
Open this publication in new window or tab >>Arabidopsis RNA processing body components LSM1 and DCP5 aid in the evasion of translational repression during Cauliflower mosaic virus infection
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2022 (English)In: The Plant Cell, ISSN 1040-4651, E-ISSN 1532-298X, Vol. 34, no 8, p. 3128-3147Article in journal (Refereed) Published
Abstract [en]

Viral infections impose extraordinary RNA stress, triggering cellular RNA surveillance pathways such as RNA decapping, nonsense-mediated decay, and RNA silencing. Viruses need to maneuver among these pathways to establish infection and succeed in producing high amounts of viral proteins. Processing bodies (PBs) are integral to RNA triage in eukaryotic cells, with several distinct RNA quality control pathways converging for selective RNA regulation. In this study, we investigated the role of Arabidopsis thaliana PBs during Cauliflower mosaic virus (CaMV) infection. We found that several PB components are co-opted into viral factories that support virus multiplication. This pro-viral role was not associated with RNA decay pathways but instead, we established that PB components are helpers in viral RNA translation. While CaMV is normally resilient to RNA silencing, dysfunctions in PB components expose the virus to this pathway, which is similar to previous observations for transgenes. Transgenes, however, undergo RNA quality control-dependent RNA degradation and transcriptional silencing, whereas CaMV RNA remains stable but becomes translationally repressed through decreased ribosome association, revealing a unique dependence among PBs, RNA silencing, and translational repression. Together, our study shows that PB components are co-opted by the virus to maintain efficient translation, a mechanism not associated with canonical PB functions.

Place, publisher, year, edition, pages
Oxford University Press, 2022
National Category
Cell Biology Biochemistry Molecular Biology Botany
Identifiers
urn:nbn:se:umu:diva-198905 (URN)10.1093/plcell/koac132 (DOI)000796682800001 ()35511183 (PubMedID)2-s2.0-85136044335 (Scopus ID)
Funder
Swedish Research Council, 2017-05036Knut and Alice Wallenberg Foundation, 2019-0062Bio4EnergyScience for Life Laboratory, SciLifeLabSwedish National Infrastructure for Computing (SNIC)Vinnova
Available from: 2022-09-05 Created: 2022-09-05 Last updated: 2025-08-21Bibliographically approved
Mahboubi, A., Delhomme, N., Häggström, S. & Hanson, J. (2021). Small-scale sequencing enables quality assessment of Ribo-Seq data: an example from Arabidopsis cell culture. Plant Methods, 17(1), Article ID 92.
Open this publication in new window or tab >>Small-scale sequencing enables quality assessment of Ribo-Seq data: an example from Arabidopsis cell culture
2021 (English)In: Plant Methods, E-ISSN 1746-4811, Vol. 17, no 1, article id 92Article in journal (Refereed) Published
Abstract [en]

Background: Translation is a tightly regulated process, controlling the rate of protein synthesis in cells. Ribosome sequencing (Ribo-Seq) is a recently developed tool for studying actively translated mRNA and can thus directly address translational regulation. Ribo-Seq libraries need to be sequenced to a great depth due to high contamination by rRNA and other contaminating nucleic acid fragments. Deep sequencing is expensive, and it generates large volumes of data, making data analysis complicated and time consuming.

Methods and results: Here we developed a platform for Ribo-Seq library construction and data analysis to enable rapid quality assessment of Ribo-Seq libraries with the help of a small-scale sequencer. Our data show that several qualitative features of a Ribo-Seq library, such as read length distribution, P-site distribution, reading frame and triplet periodicity, can be effectively evaluated using only the data generated by a benchtop sequencer with a very limited number of reads.

Conclusion: Our pipeline enables rapid evaluation of Ribo-Seq libraries, opening up possibilities for optimization of Ribo-Seq library construction from difficult samples, and leading to better decision making prior to more costly deep sequencing.

Place, publisher, year, edition, pages
BioMed Central (BMC), 2021
Keywords
Evaluation of sequencing library quality, Ribo-Seq, Ribosomal profiling, Translation, Translational profiling
National Category
Biochemistry Molecular Biology Bioinformatics and Computational Biology
Identifiers
urn:nbn:se:umu:diva-187086 (URN)10.1186/s13007-021-00791-w (DOI)000687996100001 ()2-s2.0-85113340124 (Scopus ID)
Funder
Knut and Alice Wallenberg Foundation, KAW 2016-0341Knut and Alice Wallenberg Foundation, KAW 2016-0352Knut and Alice Wallenberg Foundation, KAW 2016-0025Vinnova, 2016-00504
Available from: 2021-09-03 Created: 2021-09-03 Last updated: 2025-08-21Bibliographically approved
Bünder, A., Sundman, O., Mahboubi, A., Persson, S., Mansfield, S. D., Rüggeberg, M. & Niittylä, T. (2020). CELLULOSE SYNTHASE INTERACTING 1 is required for wood mechanics and leaf morphology in aspen. The Plant Journal, 103(5), 1858-1868
Open this publication in new window or tab >>CELLULOSE SYNTHASE INTERACTING 1 is required for wood mechanics and leaf morphology in aspen
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2020 (English)In: The Plant Journal, ISSN 0960-7412, E-ISSN 1365-313X, Vol. 103, no 5, p. 1858-1868Article in journal (Refereed) Published
Abstract [en]

Cellulose microfibrils synthesized by CELLULOSE SYNTHASE COMPLEXES (CSCs) are the main load‐bearing polymers in wood. CELLULOSE SYNTHASE INTERACTING1 (CSI1) connects CSCs with cortical microtubules, which align with cellulose microfibrils. Mechanical properties of wood are dependent on cellulose microfibril alignment and structure in the cell walls, but the molecular mechanism(s) defining these features is unknown. Herein, we investigated the role of CSI1 in hybrid aspen (Populus tremula  × Populus tremuloides ) by characterizing transgenic lines with significantly reduced CSI1 transcript abundance. Reduction in leaves (50–80%) caused leaf twisting and misshaped pavement cells, while reduction (70–90%) in developing xylem led to impaired mechanical wood properties evident as a decrease in the elastic modulus and rupture. X‐ray diffraction measurements indicate that microfibril angle was not impacted by the altered CSI1 abundance in developing wood fibres. Instead, the augmented wood phenotype of the transgenic trees was associated with a reduced cellulose degree of polymerization. These findings establish a function for CSI1 in wood mechanics and in defining leaf cell shape. Furthermore, the results imply that the microfibril angle in wood is defined by CSI1 independent mechanism(s).

Place, publisher, year, edition, pages
John Wiley & Sons, 2020
Keywords
aspen, Populus, cell wall, wood mechanics, cellulose, transgenic trees, cellulose interacting 1, CSI1, pavement cell
National Category
Plant Biotechnology Wood Science Botany
Identifiers
urn:nbn:se:umu:diva-173684 (URN)10.1111/tpj.14873 (DOI)000546711100001 ()32526794 (PubMedID)2-s2.0-85087680114 (Scopus ID)
Funder
Bio4EnergyVinnovaSwedish Research Council Formas
Available from: 2020-07-23 Created: 2020-07-23 Last updated: 2025-08-21Bibliographically approved
Mahboubi, A. & Niittylä, T. (2018). Sucrose transport and carbon fluxes during wood formation. Physiologia Plantarum, 164(1), 67-81
Open this publication in new window or tab >>Sucrose transport and carbon fluxes during wood formation
2018 (English)In: Physiologia Plantarum, ISSN 0031-9317, E-ISSN 1399-3054, Vol. 164, no 1, p. 67-81Article in journal (Refereed) Published
Abstract [en]

Wood biosynthesis defines the chemical and structural properties of wood. The metabolic pathways that produce the precursors of wood cell wall polymers have a central role in defining wood properties. To make rational design of wood properties feasible, we need not only to understand the cell wall biosynthetic machinery, but also how sucrose transport and metabolism in developing wood connect to cell wall biosynthesis and how they respond to genetic and environmental cues. Here, we review the current understanding of the sucrose transport and primary metabolism pathways leading to the precursors of cell wall biosynthesis in woody plant tissues. We present both old, persistent questions and new emerging themes with a focus on wood formation in trees and draw upon evidence from the xylem tissues of herbaceous plants when it is relevant.

Place, publisher, year, edition, pages
Wiley-Blackwell, 2018
National Category
Botany
Identifiers
urn:nbn:se:umu:diva-151547 (URN)10.1111/ppl.12729 (DOI)000442349200007 ()29572842 (PubMedID)2-s2.0-85050856390 (Scopus ID)
Projects
Bio4Energy
Funder
VinnovaBio4Energy
Available from: 2018-09-11 Created: 2018-09-11 Last updated: 2025-08-21Bibliographically approved
Organisations
Identifiers
ORCID iD: ORCID iD iconorcid.org/0000-0002-0660-0555

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