Zedler Lab

@synbiojazz.bsky.social

Synthetic Biology of Photosynthetic Organisms Group at FSU Jena with a passion for #cyanobacteria #synbio #proteintargeting #greenbiotech #sustainability 🧪🧬. This account is run by Julie. Website: https://www.bio.uni-jena.de/en/11275/synthetic-biology

Please share 🙏 We invite master’s students, PhD candidates, and early-career researchers working on cyanobacteria, to join us in České Budějovice, Czech Republic, 6–9 September 2026. 🦠 Participation is free of charge! 🗓 Registration deadline: 15 July 2026 Links in the thread down below 👇

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Postdoc position available to join my team in Turku, Finland to explore light-activated extracellular electron uptake in microorganisms. Application open until end of June, position starts August-when suitable for best candidate. Please share/apply ats.talentadore.com/apply/tutkij...

Post-doctoral researcher, Molecular Plant Biology, at Turku, Finland

We are seeking a Postdoctoral Researcher to investigate extracellular electron uptake in photosynthetic bacteria (cyanobacteria), focusing on underlying molecular mechanisms and regulation, and with c...

ats.talentadore.com

Cyanobacteria are an ancient clade of phototrophic prokaryotes. But out of all the cyanobacteria available, why did Synechocystis sp. PCC 6803 become the default laboratory model? This #JBacteriology review offers insights: asm.social/2TD

Overview of key research directions using Synechocystis sp. PCC 6803 as a model cyanobacterium. Summary of the main structural, physiological, genetic, and behavioral characteristics that have established Synechocystis sp. PCC 6803 as a leading model organism for cyanobacterial research. Core cellular functions include oxygenic photosynthesis, carbon, and nitrogen metabolism. Emerging research directions focus on primary metabolism and regulatory and adaptive processes, such as stress responses, circadian clock, behavior, and biotechnological applications.

Looking forward to @kedrov-lab.bsky.social visiting us here in Jena. He will also give a talk on January 27th (see details below). Everybody is welcome to join us for some great science and a chat with Alexej!

Balance of the Microverse@microverse.bsky.social · 7mo ago

🔬 Guest Lecture at Matthias Schleiden Institute Alexej Kedrov (@hhu.de) will speak on “At the roots of biofilm: structure & dynamics of the exopolysaccharide secretion machinery from Pseudomonas aeruginosa” 📅 27 Jan 2025 | 🕓 4:00 pm (c.t.) 📍 Planetarium 1, Jena 🔗 www.bio.uni-jena.de/11484/instit...

Are you an experienced PhD student or postdoc in plant science looking to connect, present your work, and discuss career paths? Join us at the 3rd Early Career Plant Researchers Network Meeting, Halle (Saale), 20–21 April 2026 Deadline: 23 January 2026 plant-ecr-networking.eu

Poster announcing the 3rd Early Career Plant Researchers Network Meeting, held 20–21 April 2026 in Halle (Saale), Germany. The event targets experienced PhD students and postdoctoral researchers in plant science and features scientific talks, career development and grant-writing workshops, and networking. Travel and accommodation are covered, and participants are registered for the 11th Leibniz Plant Biochemistry Symposium (22–24 April 2026). Application deadline: 23 January 2026. Website: plant-ecr-networking.eu.

Our work on betaxanthin biosynthesis led by my PhD student Sayali with analytics by @bluegreendr.bsky.social and in collab. with @sibume.bsky.social is now out in Metabolic Engineering 🎉 We convinced cyanos to produce 🟡 water soluble 🫜 pigments - quite different from the classic 🔴🟠🟡carotenoid route!

David A. Russo@bluegreendr.bsky.social · 7mo ago

Happy to share the most recent collaboration with @synbiojazz.bsky.social to produce plant pigments in cyanobacteria. This time our cyanos were quite talented at transforming aromatic amino acids into colorful beetroot compounds! 🫜🦠

Last week the second AG Zedler PhD defended her thesis. Sayali, we are proud of you and happy to keep you for the time being, congratulations! 🎓🎉 Also - so much of the yellow pigment theme! 🟨💚🫜

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Our annual pumpkin carving has meanwhile turned into a cute little lab tradition. This year with extra support from genetics, plant physiology and 🍕. Already looking forward to the next one. Happy Halloween! 🎃

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In case you were wondering what we have been up to on the proteomicside of cyanos. Here we go! Very happy this is out and hopefully useful to other labs!

David A. Russo@bluegreendr.bsky.social · 11mo ago

Very proud to share the latest development on our (w/ @synbiojazz.bsky.social) mission to bring fast and accessible methods to cyanobacterial proteomics. Major highlight: 85% Synechococcus proteome coverage in a single shotgun experiment. Out now in Plant Physiology! doi.org/10.1093/plph...

One more week to apply for a postdoc in the Patron lab, Cambridge. This is a 3-year position to investigate regulatory sequences and engineer gene expression in plants with the aim of optimising yields from metabolic pathways. Read more & apply: tinyurl.com/yvk6dhr9 #PlantSciJobs #PlantScience 🧪

NicolaJPatron@nicolabiologist.bsky.social · last yr.

One more week to apply for a postdoc in our group (patronlab.org) @Department of Plant Sciences, Cambridge. This is a 3-year position to investigate regulatory sequences and engineer gene expression in plants with the aim of optimising yields from metabolic pathways. www.jobs.cam.ac.uk/job/49769/

Very special feelings to announce this one... A project that started like 10 years ago is reaching the finish line, ready to shine. In a dream-team with @beckmannlab.bsky.social we solved the long-chased structure of the active membrane protein insertase SecYEG-YidC www.biorxiv.org/content/10.1...

Substrate-induced assembly and functional mechanism of the bacterial membrane protein insertase SecYEG-YidC

The universally conserved Sec translocon and the YidC/Oxa1-type insertases mediate biogenesis of alpha-helical membrane proteins, but the molecular basis of their cooperation has remained disputed over decades. A recent discovery of a multi-subunit insertase in eukaryotes has raised the question about the architecture of the putative bacterial ortholog SecYEG-YidC and its functional mechanism. Here, we combine cryogenic electron microscopy with cell-free protein synthesis in nanodiscs to visualize biogenesis of the polytopic membrane protein NuoK, the subunit K of NADH-quinone oxidoreductase, that requires both SecYEG and YidC for insertion. We demonstrate that YidC is recruited to the back of the translocon at the late stage of the substrate insertion, in resemblance to the eukaryotic system, and in vivo experiments indicate that the complex assembly is vital for the cells. The nascent chain does not utilize the lateral gate of SecYEG, but enters the lipid membrane at the SecYE-YidC interface, with YidC being the primary insertase. SecYEG-YidC complex promotes folding of the nascent helices at the interface prior their insertion, so the examined cellular pathway follows the fundamental thermodynamic principles of membrane protein folding. Our data provide the first detailed insight on the elusive insertase machinery in the physiologically relevant environment, highlight the importance of the nascent chain for its assembly, and prove the evolutionary conservation of the gate-independent insertion route. ### Competing Interest Statement The authors have declared no competing interest. Deutsche Forschungsgemeinschaft, https://ror.org/018mejw64, Ke1879/3, 267205415 (CRC 1208) European Research Council, https://ror.org/0472cxd90, CRYOTRANSLATION

biorxiv.org

Priya is a PhD student with our friends and colleagues in Plant Physiology – amazing that she managed to win the Biology Category of the Dance your PhD competition 2025! Congratulations Priya, very well deserved! 🤩 P.S. *hint hint* Priya is looking for her next career step at the moment.

Universität Jena@uni-jena.de · last yr.

The dance video ‘Plant Vaccination’ by PhD student Priya Reddy at #UniJena won the prize in the biology category of the international ‘Dance Your PhD’ competition. The choreography creatively shows how plants activate their immune system. Congratulations! 🥳 ➡️ www.uni-jena.de/en/314061/au...

📢We are hiring : Are you skilled in microfluidics and fluorescence microscopy in biological contexts? We're seeking a postdoctoral researcher to delve into the spatio-temporal dynamics of carboxysomes . Join us in advancing the frontiers of microbial biology through innovative research!

Postdoc in microfluidics

Happy to join BlueSky with new work on improving heterologous P450s in Synechocystis. Efficient thylakoid targeting makes a big difference: higher protein amounts and up to 18x more product using a fusion protein engineering approach. #lightdrivencatalysis #teamgreen pubs.acs.org/doi/10.1021/...

Thylakoid Targeting Improves Stability of a Cytochrome P450 in the Cyanobacterium Synechocystis sp. PCC 6803

Plants produce a large array of natural products of biotechnological interest. In many cases, these compounds are naturally produced at low titers and involve complex biosynthetic pathways, which often include cytochrome P450 enzymes. P450s are known to be difficult to express in traditional heterotrophic chassis. However, cyanobacteria have shown promise as a sustainable alternative for the heterologous expression of P450s and light-driven product biosynthesis. In this study, we explore strategies for improving plant P450 stability and membrane insertion in cyanobacteria. The widely used model cyanobacterium Synechocystis sp. PCC 6803 was chosen as the host, and the well-studied P450 CYP79A1 from the dhurrin pathway of Sorghum bicolor was chosen as the model enzyme. Combinations of the P450 fused with individual elements (e.g., signal peptide, transmembrane domain) or the full length cyanobacterial, thylakoid-localized, protein PetC1 were designed. All generated CYP79A1 variants led to oxime production. Our data show that strains producing CYP79A1 variants with elements of PetC1 improved thylakoid targeting. In addition, chlorophyll-normalized oxime levels increased, on average, up to 18 times compared to the unmodified CYP79A1. These findings offer promising strategies to improve heterologous P450 expression in cyanobacteria and can ultimately contribute to advancing light-driven biocatalysis in cyanobacterial chassis.

pubs.acs.org