Search bioRxivSearch

Biology subjects

Dickenson, A. H.

Publications and source records attributed to Dickenson, A. H..

2 recordsLinked to original sources

Novel mechanisms of bone cancer pain revealed with in vivo GCaMP6s imaging

Skeletal metastases are frequently accompanied by chronic pain that is mechanoceptive in nature and not easily managed by available therapies. The peripheral sensory profile of primary afferents responsible for transmitting the pain-related messages from cancerous bone to central sites is investigated here. We imaged thousands of primary sensory dorsal root ganglion neurons in vivo in healthy (sham-operated) and cancer-induced bone pain (CIBP) rats in order to analyse and compare their function. Utilising Markov Cluster Analysis we identified distinct clusters of primary afferent responses to limb compression and position. In CIBP rats, three times as many sensory afferents responded to knee compression in the leg ipsilateral to the tumour compared to sham-operated rats. We present evidence that the observed increase in sensory afferent response was not due to increased individual afferent activity but rather represents activation of silent nociceptors, whose origin we propose is largely from outside of the bone.

neuroscience

Brain neurosteroids are natural anxiolytics targeting α2 subunit γ-aminobutyric acid type-A receptors

Neurosteroids are naturally-occurring molecules in the brain that modulate neurotransmission. They are physiologically important since disrupting their biosynthesis precipitates neurological disorders, such as anxiety and depression. The endogenous neurosteroids, allopregnanolone and tetrahydro-deoxycorticosterone are derived from sex and stress hormones respectively, and exhibit therapeutically-useful anxiolytic, analgesic, sedative, anticonvulsant and antidepressant properties. Their main target is the {gamma}-aminobutyric acid type-A inhibitory neurotransmitter receptor (GABAAR), whose activation they potentiate. However, whether specific GABAAR isoforms and neural circuits differentially mediate endogenous neurosteroid effects is unknown. By creating a knock-in mouse that removes neurosteroid potentiation from 2-GABAAR subunits, we reveal that this isoform is a key target for neurosteroid modulation of phasic and tonic inhibition, and is essential for the anxiolytic role of endogenous neurosteroids, but not for their anti-depressant or analgesic properties. Overall, 2-GABAAR targeting neurosteroids may act as selective anxiolytics for the treatment of anxiety disorders, providing new therapeutic opportunities for drug development.

neuroscience