Conformational dynamics regulate SHANK3 actin and Rap1 binding
Salomaa, S. I.; Miihkinen, M.; Kremneva, E.; Paatero, I.; Lilja, J.; Jacquemet, G.; Vuorio, J.; Antenucci, L.; Hassani-Nia, F.; Hollos, P.; Isomursu, A.; Vattulainen, I.; Coffey, E. T.; Kreienkamp, H.-J.; Lappalainen, P.; Ivaska, J.
Show abstract
Actin-rich cellular protrusions direct versatile biological processes from cancer cell invasion to dendritic spine development. The stability, morphology and specific biological function of these protrusions are regulated by crosstalk between three main signaling axes: integrins, actin regulators and small GTPases. SHANK3 is a multifunctional scaffold protein, interacting with several actin-binding proteins, and a well-established autism risk gene. Recently, SHANK3 was demonstrated to sequester integrin-activating small GTPases Rap1 and R-Ras to inhibit integrin activity via its N-terminal SPN domain. Here, we demonstrate that SHANK3 interacts directly with actin using its SPN domain. Actin binding can be inhibited by an intramolecular closed conformation of SHANK3, where the adjacent ARR domain covers the actin-binding interface of the SPN domain. Actin and Rap1 compete with each other for binding to SHANK3 and loss of SHANK3-actin binding augments inhibition of Rap1-mediated integrin activity. This dynamic crosstalk has functional implications for filopodia formation in cancer cells, dendritic spine morphology in neurons and autism-linked phenotypes in vivo.
Matching journals
The top 4 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Phosphorylation triggers presynaptic phase separation of Liprin-α3 to control active zone structure 98%
- Depletion of nuclear pore protein NUP210 suppresses metastasis through heterochromatin-mediated disruption of tumor cell mechanical response 98%
- A neuron type-specific microexon in Ank3/ankyrin-G modulates calcium activity and neuronal excitability 98%
Similar papers in this journal
- Transcriptional Control Of Calmodulin By CAMTA Regulates Neural Excitability 97%
- linc-mipep and linc-wrb encode micropeptides that regulate chromatin accessibility in vertebrate-specific neural cells 97%
- Interaction mapping of endoplasmic reticulum ubiquitin ligases identifies modulators of innate immune signalling 97%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.