The tyrosine phosphatase STEP is a developmental suppressor of synaptogenesis
成果类型:
Article
署名作者:
Pires, Joel P.; Tome, Diogo; Mele, Miranda; Caulino-Rocha, Ana; Corti, Elisa; Milosevic, Ira; Baltazar, Graca F.; Almeida, Ramiro D.
署名单位:
Universidade de Coimbra; Universidade de Coimbra; Universidade da Beira Interior; Universidade da Beira Interior; Universidade de Aveiro; Universidade de Coimbra; Universidade de Coimbra; Universidade de Coimbra; Universidade de Coimbra; University of Oxford; Wellcome Centre for Human Genetics
刊物名称:
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA
ISSN/ISSBN:
0027-8424; 1091-6490
DOI:
10.1073/pnas.2424788123
发表日期:
2026-06-16
页码:
e2424788123
关键词:
presynaptic differentiation
synapse formation
STEP phosphatase
fragile X syndrome
circuit-on-a-chip
receptor endocytosis
alzheimers-disease
synapses
hippocampus
activation
knockout
dephosphorylation
phosphorylation
abnormalities
TRAFFICKING
摘要:
Striatal-Enriched Protein Tyrosine Phosphatase (STEP) constrains synaptic potentiation by dephosphorylating postsynaptic substrates, but its presynaptic role has remained unclear. Here, we identify a previously unrecognized function of STEP in regulating axonal differentiation and synapse assembly. Genetic and pharmacological manipulation of STEP in vivo and in vitro show that STEP limits presynaptic maturation by restricting synaptic vesicle protein clustering along developing hippocampal axons. Using a reconstituted circuit-on-a-chip we show that loss of presynaptic STEP is sufficient to significantly increase the number of axodendritic synapses. Functional imaging further revealed that the increased synaptic puncta observed in STEP KO neurons actively undergo depolarization-evoked vesicle exocytosis, representing bona fide functional synapses. Multielectrode array recordings reveal that STEP deletion increases neuronal excitability, and network synchrony, hallmarks of enhanced presynaptic efficacy. Mechanistically, these effects reflect sustained phosphorylation of STEP promoting presynaptic assembly and release competence. Importantly, inhibiting STEP also rescues presynaptic differentiation defects in Fmr1 KO neurons, implicating aberrant STEP signaling in Fragile X-associated synaptic pathology. Thus, STEP serves as a phosphatase gatekeeper that restrains presynaptic differentiation and neurotransmission, and its inhibition may offer a therapeutic strategy to correct synaptic deficits in Fragile X Syndrome.
来源URL: