What we have done
Explore our peer-reviewed publications spanning synaptic biology, homeostatic plasticity, and neural resilience mechanisms.
MicroRNA-138-5p suppresses excitatory synaptic strength at the cerebellar input layer
Delvendahl I, Daswani R, Winterer J, Germain P-L, Uhr NM, Schratt G, and Müller M
Differences in neuronal ciliation rate and ciliary content revealed by systematic imaging-based analysis of hiPSC-derived models across protocols
Haenseler W, Eschment M, Evans B, Brasili M, Figueiro-Silva J, Roethlisberger F, Abidi A, Jackson D, Müller M, Cowley SA, Bachmann-Gagescu R
Presynaptic quantal size enhancement counteracts post-tetanic release depression
Nair AG, Bollmohr N, Schökle L, Keim J, Melero JMM, and Müller M
A model of human neural networks reveals NPTX2 pathology in ALS and FTLD
Hruska-Plochan M, Betz KM, Ronchi S, Wiersma VI, Maniecka Z, Hock E-M, Laferriere F, Sahadevan S, Hoop V, Delvendahl I, Panatta M, van der Bourg A, Bohaciakova D, Frontzek K, Aguzzi A, Lashley T, Robinson MD, Karayannis T, Müller M, Hierlemann A, and Polymenidou M
A deep learning framework for automated and generalized synaptic event analysis
O'Neill PS, Baccino-Calace M, Rupprecht P, Friedrich RW, Müller M, and Delvendahl I
Efficient sampling-based Bayesian Active Learning for synaptic characterization
Gontier C, Surace SC, Delvendahl I, Müller M, and Pfister JP
Pathogenic SCN2A variants cause early-stage dysfunction in patient-derived neurons
Asadollahi R, Delvendahl I, Muff R, Tan G, Rodríguez DG, Turan S, Russo M, Oneda B, Joset P, Boonsawat P, Masood R, Mocera M, Ivanovski I, Baumer A, Bachmann-Gagescu R, Schlapbach R, Rehrauer H, Steindl K, Begemann A, Reis A, Winkler J, Winner B, Müller M*, and Rauch A*
Rapid homeostatic modulation of transsynaptic nanocolumn rings
Muttathukunnel P, Frei P, Perry S, Dickman DK, and Müller M
The E3 ligase Thin controls homeostatic plasticity through neurotransmitter release repression
Baccino-Calace M, Schmidt K and Müller M
The human cognition-enhancing CORD7 mutation increases active zone number and synaptic release
Paul MM, Dannhäuser S, Morris L, Mrestani A, Hübsch M, Gehring J, Hatzopoulos GN, Pauli M, Auger GM, Bornschein G, Scholz N, Ljaschenko D, Müller M, Sauer M, Schmidt H, Kittel RJ, DiAntonio A, Vakonakis I, Heckmann M, Langenhan T
Distinct molecular pathways govern presynaptic homeostatic plasticity
Nair AG, Muttathukunnel P, and Müller M
The RNA-binding protein Musashi controls axon compartment-specific synaptic connectivity through ptp69D mRNA poly(A)-tailing
Landínez-Macías M, Qi W, Bratus-Neuenschwander A, Müller M, and Urwyler O
Linking protons to homeostatic plasticity
Müller M, and Heckmann M
GluA4 facilitates cerebellar expansion coding and enables associative memory formation
Kita K, Albergaria C, Machado AS, Carey MR, Müller M, and Delvendahl I
Rapid and sustained homeostatic control of presynaptic exocytosis at a central synapse
Delvendahl I, Kita K, and Müller M
Homeostatic control of Drosophila neuromuscular junction function
Frank CA, James TD, and Müller M
Homeostatic plasticity—a presynaptic perspective
Delvendahl I and Müller M
RIM-Binding Protein Links Synaptic Homeostasis to the Stabilization and Replenishment of High Release Probability Vesicles
Müller M, Genç Õ, and Davis GW
Homeostatic Control of Presynaptic Neurotransmitter Release
Davis GW and Müller M
RIM controls homeostatic plasticity through modulation of the readily-releasable vesicle pool
Müller M, Liu KSY, Sigrist SJ, and Davis GW
Transsynaptic control of presynaptic Ca2+ influx achieves homeostatic potentiation of neurotransmitter release
Müller M, and Davis GW
Rim binding protein, a central part of the active zone, is essential for neurotransmitter release
Liu KSY*, Siebert M*, Mertel S*, Knoche E*, Wegener S*, Wichmann C, Matkovic T, Muhammad K, Depner H, Mettke C, Bückers J, Hell SW, Müller M, Davis GW, Schmitz D, and Sigrist SJ
Glia-derived prodegenerative signaling at the Drosophila neuromuscular system
Keller LC, Cheng L, Locke CJ, Fetter RD, Müller M, and Davis GW
Rab3-GAP controls the progression of synaptic homeostasis at a late stage of vesicle release
Müller M, Pym EC, Tong A, and Davis GW
Parvalbumin is a mobile presynaptic Ca2+ buffer in the calyx of Held that accelerates the decay of Ca2+ and short-term facilitation
Müller M, Felmy F, Schwaller B, and Schneggenburger R
Temporal Generalization under time pressure in humans
Klapproth F, and Müller M