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Paloma Durán

@paduba.bsky.social
1.6K followers 402 following 47 posts

Junior Group Leader (CR CNRS) @ECOGEN team, LIPME, Toulouse Former PostDoc @ECOGEN team, LIPME, Toulouse; PostDoc and PhD @MPIPZ, Cologne

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Reposted by Paloma Durán
Milena Malisic @milenamalisic.bsky.social · 13h
🌱🦠 Excited to share part of my PhD work @mpipz.bsky.social with @hotvegetables.bsky.social as co-first, in collab with @leibnizipk.bsky.social and @ceplas.bsky.social. We found that Arabidopsis and its microbiota work together to adapt iron acquisition to soil pH. www.cell.com/cell/fulltex... 🧵
cell.com
Arabidopsis uses distinct coumarins and bacterial pathways for pH-adaptive iron acquisition
Arabidopsis coordinates Fe acquisition with its root microbiota by releasing distinct coumarin chemotypes in response to environmental pH. These root-exuded specialized metabolites interact with root-...
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Baptiste Castel @baptistebio.bsky.social · 07/10/2026
Happy to share that I’ve joined @inrae-france.bsky.social as a permanent researcher, studying fungal diseases of crops 🌿 I’m part of the Leptosphaeria team at @inrae-bioger.bsky.social, based on the new @agroparistech.fr campus in @parissaclay.bsky.social Open to collaborations and applications!
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Fantin Mesny @mesny.bsky.social · 01/10/2026
5 years ago, @hacquardst.bsky.social and I became very interested in 𝑃𝑙𝑒𝑐𝑡𝑜𝑠𝑝ℎ𝑎𝑒𝑟𝑒𝑙𝑙𝑎 𝑐𝑢𝑐𝑢𝑚𝑒𝑟𝑖𝑛𝑎, an emerging fungal pathogen that colonizes the roots of many plants 🌱 🍅 🌾 🆕📝 Final result of a huge team effort to uncover the bases of its multi-host compatibility👇 www.nature.com/articles/s41...
nature.com
Carbohydrate-active enzymes from a core root mycobiota member enable infection of multiple plant hosts - Nature Microbiology
Host-induced fungal CAZymes act as disease determinants and drive multihost compatibility.
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Marie Monniaux @mariemonniaux.bsky.social · 24/09/2026
We have written a review on MADS-box genes expression in developing floral organs, which has been under-explored as compared to their early role to specify floral organ identity. Congrats to Emma Désert for her first review article as a PhD student! #proudPI @rdplab.bsky.social
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bioRxiv Microbiology @biorxiv-microbiol.bsky.social · 20/09/2026
Experimental evolution of root-associated microbial communities www.biorxiv.org/content/10.64898/20…
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Nature Microbiology @natmicrobiol.nature.com · 17/09/2026
Out Now! Functional capacities drive recruitment of bacteria into plant root microbiota #MicroSky
go.nature.com
Functional capacities drive recruitment of bacteria into plant root microbiota
Nature Microbiology, Published online: 17 September 2026; doi:10.1038/s41564-026-02493-2Functional versatility plays a key role in shaping root microbiota.
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Paloma Durán @paduba.bsky.social · 16/09/2026
thank you, Camille! :)
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Paloma Durán @paduba.bsky.social · 14/09/2026
More details in the preprint! A little bonus for algae-lovers 😉, as we describe a bit more algal populations in natural sites. (10/10)
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Paloma Durán @paduba.bsky.social · 14/09/2026
Our work shows that ASV-balancing across environments allows a stable core microbiota at high taxonomic levels, which probably retain their functionality across environments. Future work will focus on exploring these functions, so stay tuned! (9/10)
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Paloma Durán @paduba.bsky.social · 14/09/2026
And is this the same across environments? No! Actually, despite stability of core communities, the environment also determines the core community network structure.(8/10)
Euclidean distances between network matrices formed by microbiota belonging to the three environmental clusters. Each dot is a bootstrapped network and is color-coded by environmental clusters.
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Paloma Durán @paduba.bsky.social · 14/09/2026
But, how does the core microbiota structure as a community? Network analysis showed that core groups are more connected among themselves and that negative interactions between fungal and bacterial kingdoms are more prevalent in core nodes.(6/10)
) Network of interactions across natural sites belonging to environmental cluster 1 (EC2 and 3 are shown in Supplementary Figure 7a). Colors in nodes indicate whether a given node belongs to a core order (colored), or any other group (grey). Negative correlations are depicted with blue edges, and positive correlations are depicted with orange edges. Only significant correlations are included here (Spearman correlation, P < 0.01). b) Percentage of edges in each environmental cluster network that have either a negative or positive correlation (only significant correlations are shown, Spearman correlation, P < 0.01). Edges are separated between intra- and inter-kingdom interactions, and by core vs non-core interactions.
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Paloma Durán @paduba.bsky.social · 14/09/2026
...when using our algal survey to look at deeper taxonomic levels, we saw that not a single ASV is found everywhere. So, what drives this variability? Of course, environmental factors! (climatic conditions, soil properties and surrounding plant communities). (5/10)
Correlation between environmental factors and the number of ASVs found in a given site (top panel), as well as with the total relative abundance of each core order (bottom panel). Only significant correlations are shown here (Spearman’s correlation, P < 0.05, FDR-corrected), color-coded based on the strength of the correlation.
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Paloma Durán @paduba.bsky.social · 14/09/2026
We found that 7 bacterial and 5 fungal orders are found in every dataset and they have significant impacts on community structure. But…. (4/10)
Abundance-occupancy plots for bacterial (a) and fungal (b) orders. Those orders which are abundantly present in all samples and impact microbial community structure (elbow method, dashed red line) are considered as core orders and are highlighted here.
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Paloma Durán @paduba.bsky.social · 14/09/2026
We performed a survey of natural algal populations and their associated microbiota across 141 natural sites in southwest France and put it together with published datasets of land plants and algal microbiota, spanning in total 47 photosynthetic host species and 195 natural habitats (3/10)
Map of the 141 sites used in this study, across the southwest of France. Colors indicate to which of the three environmental clusters they belong to, if all environmental information was available (if not, they are marked in grey).
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Paloma Durán @paduba.bsky.social · 14/09/2026
Time and again the research community has seen microbial communities shared among photosynthetic organisms, from land plants to terrestrial microalgae. The definition of a global core microbiota is limited by environmental diversity or surveys and statistical thresholds (check tinyurl.com/2hy6d9ek).
tinyurl.com
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Paloma Durán @paduba.bsky.social · 14/09/2026
Happy to share our latest work digging a bit more into what makes the the core microbiota of photosynthetic organisms convergent (or not!). Work performed @lipme-toulouse.bsky.social @cnrs.fr, in collaboration with @guan06rui.bsky.social @quadraminstitute.bsky.social tinyurl.com/3e958dt6 (1/10)
tinyurl.com
Environmental factors and microbe-microbe interactions drive the structure of the core microbiota of terrestrial microalgae
Plants and other photosynthetic organisms interact with their environment and surrounding microbiota through specialized associations. A global core microbiota has been proposed at high taxonomic levels, such as the order level. However, it remains unclear which environmental factors and how microbe-microbe interactions drive variation of this core microbiota at lower taxonomic resolution. Here, we leveraged the environmental diversity of 141 sites across the southwest of France to characterize algal populations, and their associated bacterial and fungal microbiota. We then performed a meta-analysis, combining these data with published datasets to formally identify the global core microbiota of terrestrial photosynthetic organisms, which comprises seven bacterial and five fungal orders. We next investigated diversity within this core microbiota and the environmental drivers shaping site-specific community composition. While environmental factors have a low impact on the total relative abundance of core orders, the core microbiota at the ASV-level is impacted by climatic factors, edaphic factors, and plant community descriptors. Using interaction network analysis, we finally explored how microbe-microbe interactions contribute to the assembly of stable core communities. Our results show that core ASVs occupy central positions in algal-associated microbial networks and that distinct core orders drive site-specific variation in core microbiota structure. Together, these findings highlight the importance of both environmental context and microbial interactions in shaping the composition and stability of the core microbiota associated with photosynthetic organisms. ### Competing Interest Statement The authors have declared no competing interest. European Research Council, 951444 – PATHOCOM, erc-stg-948219, EPYC Agence Nationale de la Recherche, ANR-10-LABX-41 Biotechnology and Biological Sciences Research Council, https://ror.org/00cwqg982, BB/ X011054/1, BBS/E/F/000PR13631
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Mariana Romeiro Motta @mromeiromotta.bsky.social · 08/09/2026
PhD position available (start 2027) in my group at TUM! We study how mechanical stress controls cell cycle progression and cytoskeletal dynamics in plants, combining cell biology, biochemistry and biophysics. CV + cover letter to mariana.romeiro-motta@tum.de. RTs welcome! #PlantSciJobs
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Mariana Schuster @marischuster.bsky.social · 07/09/2026
I'm excited to share that my newly funded #ERCStG FRONTERA is recruiting two postdoctoral researchers at @ipbhalle.bsky.social 🌱🔬 If you are passionate about plant immunity, proteolysis, membrane proteins, or proteomics, I'd love to hear from you. 🧵 Please RT/share!
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Tatsuya Nobori @tatsuyanobori.bsky.social · 07/09/2026
📣 Please share! We’re recruiting to build predictive models of gene regulation in plants. We’d love to hear from anyone with strong foundations in regulatory genomics or ML and fluency with coding agents. Any career stage; no plant background needed. noborilab.org 1/5
noborilab.org
Nobori Lab | The Sainsbury Laboratory
Decoding the molecular and cellular basis of plant-microbe interactions. Single-cell and spatial omics of plant immunity. Led by Tatsuya Nobori at TSL, Norwich, UK.
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Paloma Durán @paduba.bsky.social · 03/09/2026
Enhorabuena, Juan Carlos!! :)
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Paloma Durán @paduba.bsky.social · 03/09/2026
Congratulations, Tatsuya!! :)
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Tatsuya Nobori @tatsuyanobori.bsky.social · 03/09/2026
Excited to launch our ERC project ImmuneCellState 🚀 We’ll investigate how individual plant cells respond to pathogens and explore new dimensions of plant immunity research by integrating single-cell/spatial omics, deep learning and genome editing. @thesainsburylab.bsky.social @erc.europa.eu
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Alan Pacheco @pachecolab.bsky.social · 01/09/2026
Hello from the Pacheco Lab! It's about time for a first post, and what better time than on the lab's first birthday! We study the metabolic ecology of microbial communities, using computation and experiments to understand and engineer interactions and community assembly -> more at pachecolab.com!
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Max-Planck-Gesellschaft @maxplanck.de · 01/09/2026
Apply to our #postdoc program! 🤓🧑‍🔬 Applications are now open until October 13th, 2026 - don’t miss your chance to take your research to the next level with expert mentorship, workshops, coaching and more. www.mpg.de/en/max-planc...
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Andreas P.M. Weber 🌾🌱🧬 @apmweber.bsky.social · 31/08/2026
📣 Metabolomics expert position at @ceplas.bsky.social part part of the CEPLAS Academic Expert Career Programme (tenure-track). karriere.hhu.de/index.php?ac...
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Xavier Picó @xavierpico.bsky.social · 31/08/2026
Oferta de contrato predoctoral en #genética y #genómica comparativa en #tricomas de #plantas. Muy buena oportunidad para formarse en un gran equipo de investigación para una tesis multidisciplinar. Contacto: Carlos Alonso-Blanco (CNB-CSIC @cnb-csic.bsky.social ) calonso@cnb.csic.es
Oferta de contrato predoctoral
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Ka Wai Ma @kawaima.bsky.social · 26/08/2026
First paper from the Ma Lab@ IPMB published in ISMEJ. We identified a microbial imbalance mutant mimb-1 with an upregulated JA signaling output. (1/n) academic.oup.com/ismej/articl...
academic.oup.com
Upregulated jasmonate signaling shifts Arabidopsis microbiota interactions and stress adaptations through a positive feedback loop
Abstract. The model plant Arabidopsis thaliana hosts diverse microbial communities collectively known as the microbiota. The plant microbiota is generally
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PM Delaux @pierremarcdelaux.bsky.social · 25/08/2026
"Your proposal was submitted on: 25 August 2026 10:09:46" Now, you guys keep your fingers crossed for me!
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PM Delaux @pierremarcdelaux.bsky.social · 18/08/2026
[⚠️JOB ALERT⚠️] We are looking for a Research assistant (IE for those familiar with the French system) in molecular biology to run DAPseq in the lab. 18 months contract (to start) Start date: October 1st. Exprience in library prep., in vitro transcription/translation system or DAPseq is a must.
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Mélanie Rich 🌱🍄 @melaniekrich.bsky.social · 18/08/2026
New preprint alert! www.biorxiv.org/content/10.6... The conclusion of a long-lasting obsession about lipids, plant terrestrialization and the origin of plant symbioses 1/7 🧵 @pierremarcdelaux.bsky.social @katharinamel1.bsky.social @tatiana-vernie.bsky.social @kellerjeanphd.bsky.social
doi.org
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Max Planck Institute for Plant Breeding Research @mpipz.bsky.social · 18/08/2026
🔬Big news🥳 We’re excited to welcome Prof. Dr. Rosa Lozano-Durán as new Director and head of the Department of Plant Virology @mpipz.bsky.social Her research focuses on how plant viruses interact with their hosts. 🎉Welcome to MPIPZ, Rosa 🌿🌱 www.mpipz.mpg.de/5842514/loza...
mpipz.mpg.de
The Max Planck Institute for Plant Breeding Research welcomes Prof. Dr. Rosa Lozano-Durán as new director
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Giannis Stringlis @gstringlis.bsky.social · 14/08/2026
Happy to have this out @maxstassen.bsky.social @shuhuah.bsky.social @cornepieterse.bsky.social @utrechtpmi.bsky.social #coumarins #beneficial_microbes #induced_resistance
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Sandra Jämtgård @rootsofthenorth.bsky.social · 23/06/2026
🌱 We have a PhD position available on characterization of boreal soil proteins. The candidate will work with me, Maja Sundquist & Jonatan Klaminder in collab with #UmeåProteomicsPlatform #SwedishUniversityofAgriculturalSciences Come work with us in the north! Please share! Apply: lnkd.in/gvR_4idJ
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PlantEvolution 🌱🌾 @plantevolution.bsky.social · 12/08/2026
Our science & scientists also becoming victims of climate change. A/C systems not designed to deal with consecutive heatwaves & continuing to fail. Nearly 50°C in the room with our plant growth cabinets (which couldn't cope) today. 3 rounds of failed experiments. #plantscience #climatecatastrophe
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Tatsuya Nobori @tatsuyanobori.bsky.social · 11/08/2026
We're hiring 🔬🌱🦠 We're looking for someone with confocal microscopy expertise to join our work on plant–microbe interactions @thesainsburylab.bsky.social . A whole new suite of genetically encoded reporters + 3D spatial gene expression tools like PHYTOMap and more. Please share!
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Juan Carlos De la Concepcion @delaconcepcionjc.bsky.social · 05/08/2026
PLEASE SHARE! New job openings in my lab @zmbp-tuebingen.bsky.social. We have a broad interest into the mechanistic basis of how molecular complexes are rewired during cellular development in plants and during invasion by pathogens. 🌱🍄🔬 See details below 👇 #PlantSciJobs
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Yasin Dagdas @plantophagy.bsky.social · 29/07/2026
@oeaw.bsky.social is searching for the next #director of @gmivienna.bsky.social ‼️It’s a huge opportunity to shape the future of #plantscience oeawnr.onlyfy.jobs/de/job/u3g5t...
oeawnr.onlyfy.jobs
Scientific Director (f/m/x)
OeAW - Discovering the futureThe Gregor Mendel Institute of Molecular Plant Biology (GMI), part of the Austrian Academy of Sciences (OeAW), is seeking to appoint a visionary Scientific Director to lea
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GreenRobust @greenrobust.de · 29/07/2026
New GreenRobust publication by the group of Eric Kemen on using machine learning to identify beneficial microbiota: www.nature.com/articles/s41...
nature.com
Machine learning reveals biocontrol agents shaping disease outcome in natural Arabidopsis populations - Nature Communications
Plants can recruit beneficial microbes to suppress pathogens, offering a route to rational biocontrol beyond empirical screening. Here, the authors use machine learning to identify disease-associated ...
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Team Thomma @teamthomma.bsky.social · 28/07/2026
📣 New preprint! 🧵 Fantastic work led by @antonkraege.bsky.social Fact: Cerato-platanins are everywhere in fungi. Found across the fungal kingdom, implicated in everything from development to virulence to immune activation. But what do they *actually* do? We finally found the answer 👇
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Ryohei Thomas Nakano (Hokudai) @luckystrike1984.bsky.social · 28/07/2026
So excited to share our new study about nicotine-mediated tobacco root-microbiota interactions, spearheaded by Tomohisa! Nicotine is a neurotoxin for insects, but for Arthrobacter, it works as a nutritional source that provides a competitive advantage. doi.org/10.1186/s401...
doi.org
Horizontal acquisition of nicotine catabolism gene cluster enhances Arthrobacter fitness within tobacco root microbiota - Microbiome
Background Plant roots are hotspots for interactions with soil microbes, where a characteristic bacterial community structure is formed. Plant specialized metabolites often play pivotal roles in this assembly process. However, the molecular basis underlying root microbiota responses to these bioactive compounds, and how such metabolic interactions shape the assembly of host-specific root microbiota, remain largely unknown. Nicotine is a toxic alkaloid predominantly produced by the genus Nicotiana, and the genus Arthrobacter is known as one of the nicotine-degrading bacteria in the tobacco root microbiota. In this study, we used the tobacco–Arthrobacter interaction system as a model and integrated comparative genomics and experimental genetic manipulation assays to uncover the role of bacterial catabolism capacity for host specialized metabolites in shaping host-specific root microbiota. Results Nicotine catabolism genes are uniquely found in the Arthrobacter strains derived from nicotine-containing environments, and this restricted gene distribution is driven by a plasmid-mediated horizontal gene transfer. To assess the ecological consequences of this genomic adaptation in Arthrobacter fitness in tobacco roots, we characterized the nicotine utilization ability of Arthrobacter and conducted adaptation assays under in planta conditions using genetically manipulated Arthrobacter strains and tobacco mutants impaired in nicotine catabolism and biosynthesis, respectively. Nicotine improves Arthrobacter colonization of tobacco roots through a catabolism-dependent mechanism. Bacterial community analysis using a synthetic community approach further demonstrated that this metabolic adaptation enhances Arthrobacter fitness within tobacco root microbiota. Conclusions Our findings illustrated that bacterial catabolic capacity toward host-derived plant specialized metabolites is key for successful root colonization. This metabolic adaptation is driven by plasmid-mediated horizontal gene transfer and ultimately shapes the structure of the root microbiota community. Video Abstract
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ANR - Agence nationale de la recherche @agencerecherche.bsky.social · 28/07/2026
📢 Appel à projets générique #AAPG 2026 : l’ANR publie la liste des projets sélectionnés pour financement (JCJC, PRME, PRC et PRCE) dans le cadre de l’ensemble des comités d’évaluation scientifique. ➡ anr.fr/fr/detail/ca...
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Paloma Durán @paduba.bsky.social · 22/07/2026
Together with Mathieu Hanemian, we're searching for an undergrand student (Master or Erasmus internship, final-year engineering student) to explore the effect of intercropping on the soil microbiota. If this sounds interesting to you, please reach our with your CV and a motivation letter!
Internship objectives 
The main objective of the internship will be to determine how intercropping modifies the composition and 
functions of the rhizosphere microbiome associated with each cultivated species, in comparison with sole 
crops. The intern will also seek to identify common microbial signatures across different intercropping 
systems in order to highlight potential general mechanisms associated with plant diversification. Particular 
attention will be paid to the functions potentially associated with the observed changes, based on the 
identification of microbial taxa and targeted qPCR analyses. 
The intern will participate in the entire analytical workflow, from molecular biology procedures (DNA 
extraction, PCR, preparation of sequencing libraries) to bioinformatic data processing, statistical analyses 
using R, and biological interpretation of the results. The results will contribute to identifying the microbial 
mechanisms that may explain the agronomic benefits of intercropping and may help guide the development 
of new agroecological practices.
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Paloma Durán @paduba.bsky.social · 22/07/2026
@lipme-toulouse.bsky.social
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Paloma Durán @paduba.bsky.social · 22/07/2026
Together with Mathieu Hanemian, we're searching for an undergrand student (Master or Erasmus internship, final-year engineering student) to explore the effect of intercropping on the soil microbiota. If this sounds interesting to you, please reach our with your CV and a motivation letter!
Internship objectives 
The main objective of the internship will be to determine how intercropping modifies the composition and 
functions of the rhizosphere microbiome associated with each cultivated species, in comparison with sole 
crops. The intern will also seek to identify common microbial signatures across different intercropping 
systems in order to highlight potential general mechanisms associated with plant diversification. Particular 
attention will be paid to the functions potentially associated with the observed changes, based on the 
identification of microbial taxa and targeted qPCR analyses. 
The intern will participate in the entire analytical workflow, from molecular biology procedures (DNA 
extraction, PCR, preparation of sequencing libraries) to bioinformatic data processing, statistical analyses 
using R, and biological interpretation of the results. The results will contribute to identifying the microbial 
mechanisms that may explain the agronomic benefits of intercropping and may help guide the development 
of new agroecological practices.
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Sarah Guiziou @sarah-guiziou.bsky.social · 15/04/2025
🚨 PhD project alert: Engineering a soil bacteria to sense and record soil health. 🦠 🪴 🥼 🧑‍💻 🌍 Fully funded PhD studenship in my group, open for international students. @earlhaminst.bsky.social Please share widely! Deadline: 14th of May www.earlham.ac.uk/studentship/...
earlham.ac.uk
Sentinel bacteria: engineering a soil bacteria to sense and record soil health
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Oliver Bossdorf @bossdorf.bsky.social · 07/07/2026
JOB ALERT! 3-year postdoc position to work on plant robustness in an interdisciplinary project. Great for somebody with experience who can take a central role, coordinate experiments and co-supervise students, and contribute conceptually. @greenrobust.de @unituebingen.bsky.social Please re-post.
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Pedro Beltrao @pedrobeltrao.bsky.social · 06/07/2026
My department @eth-dbiol.bsky.social at ETH Zurich is hiring for a tenured professor in mol cell bio and biochemistry (associate/full). The position is within the Institute of Biochemistry (www.bc.biol.ethz.ch) and it is fairly open within their scope of research. www.nature.com/naturecareer...
nature.com
Professor of Molecular Cell Biology and Biochemistry - Zurich, Switzerland job with ETH Zurich | 12861386
The Department of Biology at ETH Zurich invites applications for the above-mentioned tenured professorship at the Institute of Biochemistry
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Alvaro Sanchez @asanchezlab.bsky.social · 01/07/2026
New preprint from our lab Statistical learning of bacterial growth in combinatorially constructed environments, led by brilliant PhD student Andrea Arrabal. www.biorxiv.org/content/10.6... We systematically study nutrient-nutrient interactions in bacterial growth under carbon-limiting conditions.
biorxiv.org
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ENSA - Enabling Nutrient Symbioses in Agriculture @ensa-research.bsky.social · 30/06/2026
ENSA is hiring a postdoc in maize–microbe interactions. 🌽🦠 If you have expertise in maize molecular biology, physiology, or cell biology, apply to join Simona Radutoiu's lab at Aarhus University, Denmark. Deadline: 31 July 2026. international.au.dk/about/profil...
Some members of Simona Radutoiu's lab group photographed in the forest while on an away-day hike.
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John Innes Centre @johninnescentre.bsky.social · 18/06/2026
VACANCY - Group Leader in Fundamental Biology of Legumes Closing date: 1 September 2026 Salary: competitive Contract: six-year tenure track or direct appointment, depending on experience Apply now: www.jic.ac.uk/vacancies/gr...
We're hiring for a Group Leader in Fundamental Biology of Legumes
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