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Samuel Maiwald

@samuelmaiwald.bsky.social
163 followers 369 following 18 posts

BIF PhD student in Schulman lab @mpibiochem.bsky.social, interested in structural biology and ubiquitin system

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Reposted by Samuel Maiwald
Sara Šepić @sarasepic.bsky.social · 16/09/2026
Excited to share our latest work on understanding CTLH-MKLN1 substrate recruitment. Stay tuned for the paper 🤗
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Reposted by Samuel Maiwald
bioRxiv Biochemistry @biorxiv-biochem.bsky.social · 16/09/2026
Multimodal substrate recruitment enables CTLH-MKLN1 E3 ligase to target N-, C-, and internal degrons www.biorxiv.org/content/10.64898/20…
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Reposted by Samuel Maiwald
Max Planck Institute of Biochemistry @mpibiochem.bsky.social · 13/05/2026
New work from the Schulman Dept. shows mechanisms of metabolite-regulated E3 ligase activity. Read more about it: “Cysteine availability tunes ubiquitin signaling via inverse stability of LRRC58 E3 ligase and its substrate CDO1” in Nature Communications. www.nature.com/articles/s41...
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Reposted by Samuel Maiwald
cryoEM papers @cryoempapers.bsky.social · 08/05/2026
Cysteine availability tunes ubiquitin signaling via inverse stability of LRRC58 E3 ligase and its substrate CDO1 pubmed.ncbi.nlm.nih.gov/42098103/ #cryoEM
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Reposted by Samuel Maiwald
Jakob Farnung @jakobfarnung.bsky.social · 18/03/2026
The E3 ubiquitin ligase mechanism specifying target-directed microRNA degradation (TDMD) is now published! 🎉🍾 We, @bartellab.bsky.social and Schulman lab, describe how 2-RNA factors control protein degradation by recruiting an E3 ligase. @mpibiochem.bsky.social www.nature.com/articles/s41...
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Leo Kiss @leokiss.bsky.social · 05/03/2026
I am incredibly excited to share that I will start my independent lab at the @unidue-zmb.bsky.social at the @unidue.bsky.social as Junior Professor of Cellular Biochemistry. Research in my lab has the goal to decipher the ubiquitin code! There are multiple open positions! (1/3)
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Max Planck Institute of Biochemistry @mpibiochem.bsky.social · 28/01/2026
Formation & function of #MembranelessOrganelles! #CryoET structures of #proteasome storage granules inside cells! Read our paper @cp-cell.bsky.social! ❕Publication: doi.org/10.1016/j.ce... ❕Press Release: www.biochem.mpg.de/en/pressroom @uoftmedicine.bsky.social @erc.europa.eu #UPSmeetMet
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Wilfling Lab @wilflinglab.bsky.social · 20/01/2026
LLOMe has long been used to study lysosomal damage, yet how it works has remained a mystery. Using cryo-electron tomography, we show it forms amyloid structures inside lysosomes that mechanically rupture membranes – revealing a new paradigm for lysosomal failure. 🔗 doi.org/10.64898/202... #CryoET
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Alina Thielen @alinathielen.bsky.social · 13/01/2026
New year, new preprint! 🎊 We are excited to share our recent work on #E3 ligase regulation in #metabolism! www.biorxiv.org/content/10.6... #ubiquitin #targetedproteindegradation #chemicalbiology 1/6
biorxiv.org
A CK2-FBXW11 kinase-E3 ubiquitin ligase cascade is a metabolic sensor regulating Tryptophan 2,3-dioxygenase stability
Small molecules toggling the ubiquitin-proteasome system (UPS) are powerful regulators of protein degradation. Yet, mechanistic knowledge of how endogenous ligands gate UPS decisions remains rudimentary. Here, we define control of UPS access to Tryptophan-2,3-dioxygenase (TDO2), which converts the essential amino acid tryptophan (Trp) to N-formylkynurenine. When Trp concentrations are limiting, TDO2 is degraded to avert tryptophanemia. Using CRISPRi screening and biochemistry, we identify a CK2-FBXW11 kinase-E3 ligase cascade that generates and recognizes tandem TDO2 phosphodegrons when not protected by Trp. Trp binding to an exosite safeguards TDO2 from phosphorylation-dependent ubiquitylation. Effects of Trp analogs on CK2-FBXW11-dependent ubiquitylation indicated that the indole, amino, and carboxylate groups are necessary for substrate shielding. Cryo-EM reveals how these moieties order a region proximal to the phosphodegrons; without Trp, this segment is flexible, enabling phosphorylation-coupled ubiquitylation. Overall, our data uncovered an endogenous small molecule allosterically stabilizing its own metabolizing enzyme through protection from a phosphorylation-ubiquitylation cascade. ### Competing Interest Statement B.A.S. is a member of the scientific advisory boards of Proxygen and Lyterian. The other authors declare no competing interests. Max Planck Society, https://ror.org/01hhn8329 European Union, ERC AdvG, UPSmeetMet, 101098161 to BAS Boehringer Ingelheim Fonds, https://ror.org/00dkye506
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Jakob Farnung @jakobfarnung.bsky.social · 06/01/2026
When RNA Degradation 🤝 meets 🤝 Protein Degradation! tinyurl.com/E3TDMD In a collaboration of @bartellab.bsky.social and Schulman lab, we show that, in target-directed microRNA degradation (TDMD), 2-RNA-factors recruit an E3 ligase and induce the degradation of not only a protein but also RNA (1/5).
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Reposted by Samuel Maiwald
bioRxiv Biochemistry @biorxiv-biochem.bsky.social · 15/11/2025
Cysteine availability tunes ubiquitin signaling via inverse stability of LRRC58 E3 ligase and its substrate CDO1 www.biorxiv.org/content/10.1101/202…
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Reposted by Samuel Maiwald
Nature Chemical Biology @natchembio.nature.com · 18/08/2025
A new paper reports the structure of the E4 enzyme Ufd2, which mediates K48 branched ubiquitination on K29diUb and K29triUb, identifying Ufd2’s core region as a K29diUb binding domain and a dimeric conformation for distal ubiquitin stabilization www.nature.com/articles/s41...
nature.com
Structural basis for E4 enzyme Ufd2-catalyzed K48/K29 branched ubiquitin chains - Nature Chemical Biology
Tong et al. chemically trapped the structure of the E4 enzyme Ufd2, which mediates K48 branched ubiquitination on K29diUb and K29triUb, identifying Ufd2’s core region as a K29diUb binding domain and a...
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Reposted by Samuel Maiwald
Carolin Klose @carolinklose.bsky.social · 11/08/2025
Super excited to share our new #preprint on #BioRxiv ✨ We reveal the structural basis of a partnership between the ER membrane complex (EMC) and the P5A-ATPase Spf1 — an insertase–dislocase duo that coordinates membrane protein biogenesis and quality control. www.biorxiv.org/content/10.1...
biorxiv.org
Structural basis of an EMC:Spf1 insertase-dislocase complex in the eukaryotic endoplasmic reticulum
Most eukaryotic membrane proteins are inserted into the membrane at the endoplasmic reticulum (ER). This essential but error-prone process relies on molecular quality control machineries to prevent mi...
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Reposted by Samuel Maiwald
Carolin Klose @carolinklose.bsky.social · 05/08/2025
Excited to share our latest study in @natcomms.nature.com , where we characterize the chaperone function of the ER membrane protein complex (EMC)—supporting membrane protein biogenesis beyond insertion! 1/9 www.nature.com/articles/s41...
nature.com
The EMC acts as a chaperone for membrane proteins - Nature Communications
Membrane proteins are essential for any cell but difficult to fold. Here, the authors show that the EMC acts as a chaperone for membrane proteins. They dissect client recognition and provide a molecul...
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Leo Kiss @leokiss.bsky.social · 02/06/2025
Schulman lab is ready for the GRK2243 Symposium: Understanding ubiquitination: from molecular mechanisms to disease in würzburg #wUeBI2025 @grk2243.bsky.social @jakobfarnung.bsky.social @samuelmaiwald.bsky.social @hannahbkmpr.bsky.social
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Max Planck Institute of Biochemistry @mpibiochem.bsky.social · 26/05/2025
Check out our latest study @natsmb.nature.com‬: Establishing a consensus model for #ubiquitin chain assembly by HECT #E3 ligases: #cryoEM structures of #TRIP12 forming K29-linked and K29/K48-branched chains! ❕ www.nature.com/articles/s41... @samuelmaiwald.bsky.social @unileiden.bsky.social
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Reposted by Samuel Maiwald
Nature Structural & Molecular Biology @natsmb.nature.com · 26/05/2025
New online: TRIP12 structures reveal HECT E3 formation of K29 linkages and branched ubiquitin chains
go.nature.com
TRIP12 structures reveal HECT E3 formation of K29 linkages and branched ubiquitin chains
Nature Structural & Molecular Biology, Published online: 26 May 2025; doi:10.1038/s41594-025-01561-1Using biochemistry, chemical biology, and cryo-EM, Maiwald et al. elucidate how TRIP12 forms K29 linkages and K29/K48-linked branched ubiquitin chains, revealing a mechanism for polyubiquitylation shared by some HECT E3s.
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Samuel Maiwald @samuelmaiwald.bsky.social · 26/05/2025
Excited to share our latest study on how K29/K48-branched #ubiquitin chains are forged by the #E3 ligase TRIP12, and how this suggests a consensus mechanism for chain formation by HECT E3s! @natsmb.nature.com 1/7 www.nature.com/articles/s41...
nature.com
TRIP12 structures reveal HECT E3 formation of K29 linkages and branched ubiquitin chains - Nature Structural & Molecular Biology
Using biochemistry, chemical biology, and cryo-EM, Maiwald et al. elucidate how TRIP12 forms K29 linkages and K29/K48-linked branched ubiquitin chains, revealing a mechanism for polyubiquitylation sha...
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Reposted by Samuel Maiwald
Leo Kiss @leokiss.bsky.social · 24/03/2025
Super excited to share our latest work on deciphering the #Ubiquitin Code “𝗨𝗯𝗶𝗥𝗘𝗔𝗗 𝗱𝗲𝗰𝗶𝗽𝗵𝗲𝗿𝘀 𝗽𝗿𝗼𝘁𝗲𝗮𝘀𝗼𝗺𝗮𝗹 𝗱𝗲𝗴𝗿𝗮𝗱𝗮𝘁𝗶𝗼𝗻 𝗰𝗼𝗱𝗲 𝗼𝗳 𝗵𝗼𝗺𝗼𝘁𝘆𝗽𝗶𝗰 𝗮𝗻𝗱 𝗯𝗿𝗮𝗻𝗰𝗵𝗲𝗱 𝗞48 𝗮𝗻𝗱 𝗞63 𝘂𝗯𝗶𝗾𝘂𝗶𝘁𝗶𝗻 𝗰𝗵𝗮𝗶𝗻𝘀” @cp-molcell.bsky.social 1/8 www.cell.com/molecular-ce...
cell.com
UbiREAD deciphers proteasomal degradation code of homotypic and branched K48 and K63 ubiquitin chains
Ubiquitin chains determine the fates of their modified proteins, including proteasomal degradation. Kiss et al. present UbiREAD, a technology to monitor cellular degradation and deubiquitination at hi...
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