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martaig.bsky.social

@martaig.bsky.social
76 followers 131 following 6 posts
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Mireya Plass @mireyaplass.bsky.social · 27/08/2026
🚨 Job Alert We are looking for a Research Technician to join my lab a IDIBELL/UB The successful candidate will support experimental work in the lab. Tasks include the culture and differentiation of iPSC cell lines, characterization 2D human nervous system models
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Kristina Stapornwongkul @kstapornwongkul.bsky.social · 06/08/2026
First published teamwork of the lab 🎉! We wrote a review about emerging concepts of how metabolism promotes, regulates and changes during gastrulation. We hope it will be useful for anyone interested in the emerging field of developmental metabolism. www.sciencedirect.com/science/arti...
sciencedirect.com
A metabolic view of gastrulation: Coordinating signalling, epigenetics and morphogenesis
Gastrulation is the morphogenetic process by which the single-layered pluripotent epiblast is reorganised into the three germ layers and the basic bod…
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Alex Eve @amjeve.uk · 24/06/2026
Noticeable underrepresentation of women as corresponding authors in the 1%. Almost as if AI has been trained on years of discriminatory behaviours and is perpetuating that bias.
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cnidofest.bsky.social @cnidofest.bsky.social · 18/06/2026
Hi Cnidarian Enthusiasts! Friendly reminder that Cnidofest 2026 will take place at the Marine Biological Laboratory in Woods Hole, MA, September 23-27. The abstract submission deadline is July 1 and the registration deadline is September 2. Submit and find full details at www.cnidofest.org
cnidofest.org
Cnidofest
Cnidofest is a biennial meeting of scientists interested in developing and using cnidarians as model systems to study molecular and cellular biology, developmental biology, neurobiology, and comparati...
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martaig.bsky.social @martaig.bsky.social · 18/06/2026
Many thanks to James Hombria, @monteirolab.bsky.social and the @biologists.bsky.social for such a wonderful workshop! Excellent organization, a fantastic venue, and engaging scientific discussions made it a truly rewarding experience. It was a pleasure to connect with so many inspiring colleagues
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Vengamanaidu Modepalli @venky-vnm.bsky.social · 20/04/2026
Interested in miRNAs, early animal evolution, and RNA biology? We’re recruiting a BBSRC-funded Postdoctoral Research Associate @bristolbiosci.bsky.social #Postdoc #microRNA #RNAbiology Apply by 14 May 2026. 👉 www.bristol.ac.uk/jobs/find-in...
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Manuel Irimia @mirimiam.bsky.social · 20/04/2026
Thrilled to present our comparative study on the evolution of zygotic genome activation (ZGA)!! 🥚🧬 Amazing PhD work of @campobes.bsky.social together with @fedemantica.bsky.social and many collaborators! @melisupf.bsky.social @crg.eu. Thread below 1/15 www.biorxiv.org/content/10.6...
biorxiv.org
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The Company of Biologists @biologists.bsky.social · 02/04/2026
Apply for a funded early-career researcher place at our Workshop on Rethinking Cell Differentiation and Development: A Unicellular Perspective, organised by Elena Casacuberta & James Gahan @jgahan.bsky.social. Find out more www.biologists.com/workshops/de... #BiologistsWorkshops
Rethinking Cell Differentiation and Development: A Unicellular Perspective
Date: 6-9 December 2026

Location: Buxted Park, East Sussex, UK

Organisers: Elena Casacuberta and James Gahan

Early-career researchers apply for a funded place
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Phillip Cleves @pcleves.bsky.social · 02/03/2026
To increase the use of gene editing in corals, we have made a comprehensive methods paper describing the protocol. We hope this helps the field of functional genetics in corals. www.nature.com/articles/s41...
nature.com
Efficient genome editing using CRISPR–Cas9 in reef-building corals - Nature Protocols
In this protocol, the authors present straightforward and efficient methods to genetically modify corals and study gene function throughout various life-history stages using CRISPR–Cas9-based mutagene...
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Cnidarian developmental mechanisms group @clytia-vlfr.bsky.social · 18/02/2026
Introducing a Clytia planula cell atlas, and demonstrating broad-level relations with medusa cells via another updated atlas. By @annaferraioli.bsky.social with @juliarmateu.bsky.social and collaborators in a project led by @rcply.bsky.social @biodev-vlfr.bsky.social www.biorxiv.org/content/10.6...
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Kristina Stapornwongkul @kstapornwongkul.bsky.social · 17/02/2026
We‘re looking for a motivated Master student to join our team! Do you want to optogenetically control metabolic activity to see how metabolism affects patterning and morphogenesis? 💡🧫🧬🔬 Then please apply! #optogenetics #metabolism #devbio #hESCs Please RT. Thank you!🙏
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Mari Sepp @marisepp.bsky.social · 12/02/2026
How have concerted and mosaic evolutionary mechanisms shaped the expansion of the human cerebellum? Our review with @tyamadat.bsky.social and @ioansarr.bsky.social available free till March 29: authors.elsevier.com/a/1ma2wFzn7a...
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Lena Kutscher @lenakutscher.bsky.social · 10/02/2026
Excited to share our preprint on our new multi-omic atlas of human hindbrain development. Led by postdoc Piyush Joshi, in collaboration with @kaessmannlab.bsky.social and Pfister labs, our atlas represents the first comprehensive view of human hindbrain development. www.biorxiv.org/content/10.6...
Brain with puzzle overlay to show that our study provides missing pieces of the puzzle of human brain development by delivering the most comprehensive picture of hindbrain development to date. We have strived to go beyond just another multi-omics atlas to gain deep insights by:
1. Meticulously annotating cell clusters
2. Extracting regulatory programs in terms of coordinated gene sets and accessible regulatory elements
3. Using deep learning to identify regulatory syntax
4. Resolving context-specific TF activity
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martaig.bsky.social @martaig.bsky.social · 22/12/2025
@arnausebe.bsky.social has put together a fantastic thread explaining the work—check it out here 👇 bsky.app/profile/arna...
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martaig.bsky.social @martaig.bsky.social · 22/12/2025
A particularly exciting finding is that, while effector gene usage groups functionally similar cell types, regulatory similarities beautifully reflect known ontogenetic relationships!
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martaig.bsky.social @martaig.bsky.social · 22/12/2025
We dissect the regulatory logic underlying cell identity in the cnidarian Nematostella, laying a foundation for comparative regulatory genomics.
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martaig.bsky.social @martaig.bsky.social · 22/12/2025
And to @xgrau.bsky.social, @zolotarg.bsky.social, @lukasmahieu.bsky.social, @steinaerts.bsky.social, plus Didac Cañas and the Genomics, FACS & ALMU teams at @crg.eu for amazing support
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martaig.bsky.social @martaig.bsky.social · 22/12/2025
Lovely Xmas gift 🎄—our paper is out today in @natecoevo.nature.com www.nature.com/articles/s41...! Huge thanks to everyone who made it possible, especially @aelek.bsky.social and @arnausebe.bsky.social
nature.com
Decoding cnidarian cell type gene regulation - Nature Ecology & Evolution
This study reconstructs the gene regulatory networks that define cell types in the sea anemone Nematostella vectensis, providing a valuable resource for comparative regulatory genomics and the evoluti...
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Rottinger Lab @rottingerlab.bsky.social · 17/12/2025
Stoked that this paper, summarizing a vast series of experiments from past and present members of the team is out. A great way to end this year. www.nature.com/articles/s41...
nature.com
Whole body regeneration deploys a rewired embryonic gene regulatory network logic - Nature Communications
To what extent regeneration recapitulates embryonic development is a longstanding question. Here, they show that embryonic gene modules are re-used, rewired, and interconnected to specific injury-indu...
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Gaspar Jekely @jekely.biologists.social.ap.brid.gy · 16/12/2025
Our dispatch: www.sciencedirect.com/science/artic… on the recent Hydra volume EM paper by Zhang, Rafa Yuste and colleagues: #connectomics, without synapses www.sciencedirect.com/science/artic… #neuroscience
Two nerve nets are formed in Hydra vulgaris: the endodermal (cyan) and the ectodermal (purple) net. (B) Intraepithelial neurons are randomly scattered between the epithelial cells of the two germ layers. (C) Two types of connections have been found between Hydra’s neurons. (D) Endodermal neurons are in physical touch with each other by forming neural handshakes by digiform endings, which get intertwined. (E) In other places, clusters of vesicles of different types can be released to mediate volume transmission between neurons and between neurons and other cells.
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Fabian Rentzsch @fabianrentzsch.bsky.social · 18/11/2025
Our paper on the role of neurons in Nematostella head regeneration is now out at @currentbiology.bsky.social Big thank you to all collaborators, it was a pleasure! Ectopic head regeneration after nervous system ablation in a sea anemone: Current Biology www.cell.com/current-biol...
cell.com
Ectopic head regeneration after nervous system ablation in a sea anemone
Via genetic ablation of neurons, Mazloumi Gavgani et al. show that the nervous system is essential for defining axial polarity during whole-body regeneration in the sea anemone Nematostella vectensis.
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Cnidarian developmental mechanisms group @clytia-vlfr.bsky.social · 19/11/2025
Drawing together findings from several projects over many years, we make a case that neural cell types in the Clytia larva have two embryological origins: i-cells and ectodermal. bioRxiv 2025.11.17.688882; doi: doi.org/10.1101/2025...
Separation of the Early gastrula into oral and aboral halves shows that some neural cell tupes derive from aboral ectoderm, and others from i-cells
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SEBD @sebioldev.bsky.social · 14/11/2025
We are pleased to announce our next #SEBD2026 meeting! The meeting will take place in El Rompido, Huelva, from the 28th to the 30th of October 2026 #savethedate @cabd-upo-csic.bsky.social @isdb.bsky.social @gfeev.bsky.social @ijdb.bsky.social @devbiol.bsky.social @devdynamics.bsky.social
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Mireya Plass @mireyaplass.bsky.social · 02/10/2025
🚨New preprint from the lab! This work led by @akshayjg.bsky.social & @smfernandezmoya.bsky.social shows how the RNA binding protein STAU2 regulates the timing of neurogenesis in iPSC-derived human cells www.biorxiv.org/content/10.1...
biorxiv.org
Staufen2 modulates the temporal dynamics of human neurogenesis in vitro
RNA-binding proteins (RBPs) play a central role in post-transcriptional regulation during brain development, yet their specific functions in coordinating human neural lineage decisions remain poorly u...
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Mireya Plass @mireyaplass.bsky.social · 14/07/2025
I’m really happy to present #SCALPEL, a new #Nextflow tool to quantify transcript isoforms at the single-cell level using conventional 3’ scRNA-seq data #scRNA-seq #single-cell #tools #isoforms www.nature.com/articles/s41...
nature.com
Quantification of transcript isoforms at the single-cell level using SCALPEL - Nature Communications
Single-cell RNA-seq facilitates the study of transcriptome diversity in individual cells. Here, authors introduce a tool for isoform quantification at the single-cell level using 3’ scRNA-seq data, co...
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Anamaria Elek @aelek.bsky.social · 06/07/2025
I am very happy to have posted my first bioRxiv preprint. A long time in the making - and still adding a few final touches to it - but we're excited to finally have it out there in the wild: www.biorxiv.org/content/10.1... Read below for a few highlights...
biorxiv.org
Decoding cnidarian cell type gene regulation
Animal cell types are defined by differential access to genomic information, a process orchestrated by the combinatorial activity of transcription factors that bind to cis -regulatory elements (CREs) to control gene expression. However, the regulatory logic and specific gene networks that define cell identities remain poorly resolved across the animal tree of life. As early-branching metazoans, cnidarians can offer insights into the early evolution of cell type-specific genome regulation. Here, we profiled chromatin accessibility in 60,000 cells from whole adults and gastrula-stage embryos of the sea anemone Nematostella vectensis. We identified 112,728 CREs and quantified their activity across cell types, revealing pervasive combinatorial enhancer usage and distinct promoter architectures. To decode the underlying regulatory grammar, we trained sequence-based models predicting CRE accessibility and used these models to infer ontogenetic relationships among cell types. By integrating sequence motifs, transcription factor expression, and CRE accessibility, we systematically reconstructed the gene regulatory networks that define cnidarian cell types. Our results reveal the regulatory complexity underlying cell differentiation in a morphologically simple animal and highlight conserved principles in animal gene regulation. This work provides a foundation for comparative regulatory genomics to understand the evolutionary emergence of animal cell type diversity. ### Competing Interest Statement The authors have declared no competing interest. European Research Council, https://ror.org/0472cxd90, ERC-StG 851647 Ministerio de Ciencia e Innovación, https://ror.org/05r0vyz12, PID2021-124757NB-I00, FPI Severo Ochoa PhD fellowship European Union, https://ror.org/019w4f821, Marie Skłodowska-Curie INTREPiD co-fund agreement 75442, Marie Skłodowska-Curie grant agreement 101031767
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