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Duffy, R. T.

Publications and source records attributed to Duffy, R. T..

2 recordsLinked to original sources

Discovery of a sulfotyrosine-motif in the human TrkB extracellular domain required for agonist activation

The brain-derived neurotrophic factor (BDNF)-tropomyosin receptor kinase B (TrkB) signalling axis is a key effector of synaptic plasticity and neuroprotection. While TrkB activation is a major objective towards preventing dysfunction of the nervous system, it cannot be reached with exogenous BDNF administration given the unfavourable physiochemical properties of BDNF. In addition, BDNF also activates a tumour necrosis factor pathway by binding to the neurotrophin receptor p75. The TrkB agonist ZEB85 provides an alternative route to the selective activation of TrkB. We report here the structural basis for the interaction between human TrkB, and both ZEB85 and BDNF, and reveal that a sulfated tyrosine modification is indispensable for ZEB85 activation of TrkB signalling. Using structure-guided BDNF- and ZEB85-binding deficient TrkB mutants, we assessed their ability to sequester ligands from full-length TrkB in cultured human neurons. We found that the BDNF binding site extends into the extracellular juxtamembrane domain of TrkB but does not require the sulfotyrosine at residue 400 to activate TrkB. Together with biophysical analysis and AlphaFold modelling these results also explain how BDNF can displace ZEB85 from TrkB through an overlapping epitope. Our findings reveal unique features of TrkB, not present in the related neurotrophin receptors TrkA and TrkC, and suggest new directions to explore the role of sulfotyrosine in TrkB signalling and identify new TrkB-specific protein ligands. One Sentence SummaryInvestigation of the mechanism of action of TrkB agonist ZEB85 extends molecular understanding of TrkB activation.

biochemistry↗

TrkC has distinct spatiotemporal dynamics compared to TrkA and TrkB

Neurotrophins are critical regulators of neuronal development and have been implicated as therapeutic targets in a range of neurodegenerative and psychiatric disorders. Nerve growth factor (NGF), brain-derived neurotrophic factor (BDNF), neurotrophin-3 (NT-3), and neurotrophin-4 (NT-4) signal through the receptor tyrosine kinase family of tropomyosin receptor kinase (Trk) receptors. These include TrkA responding to canonical ligand NGF, TrkB responding to BDNF or NT-4, and TrkC responding to NT-3. While TrkA and TrkB have been comparatively well studied, the fundamental pharmacological properties of TrkC remain largely unexplored. Here, we developed and utilised real-time bioluminescence- or fluorescence-based resonance energy transfer (BRET or FRET) biosensors to study the real-time spatial and temporal dynamics at 37{degrees}C to profile Trk receptor dimerisation, trafficking and nuclear ERK signalling in response to neurotrophin stimulation. TrkA and TrkB displayed consistent concentration-dependent dimerisation, trafficking, and signalling. TrkC, on the other hand, exhibited considerable dimerisation but reduced trafficking and ERK signalling relative to TrkA or TrkB. There was also evidence for comparable activation by both canonical and some non-canonical ligands across the Trk family in response to NGF, BDNF, NT-3, or NT-4 across signalling and trafficking assays. The divergence between robust receptor oligomerisation and minimal trafficking suggests TrkC is subject to unique molecular mechanisms distinct from TrkA or TrkB.

pharmacology and toxicology↗