bioRxiv Science⌕ Search

Biology subjects

Bath, P.

Publications and source records attributed to Bath, P..

2 recordsLinked to original sources

Dual MMP-9/12 Inhibition with AZD1236 Confers Neurovascular Protection and Reduces Post-Stroke Pain in Experimental Stroke Models.

Background: Stroke remains a leading cause of death and disability worldwide. Matrix metalloproteinases (MMPs), particularly MMP-9 and MMP-12, contribute to early blood-brain barrier (BBB) disruption, neuroinflammation, haemorrhagic transformation, and intracerebral haemorrhage (ICH). Intravenous thrombolysis is the only widely used pharmacological therapy for acute ischaemic stroke, but its utility is limited by narrow eligibility criteria and haemorrhagic risk. Inhibition of MMPs in the acute phase may offer a complementary neurovascular protective strategy. Methods: AZD1236, a selective dual MMP-9/-12 inhibitor, was evaluated in transient and permanent middle cerebral artery occlusion models and in a collagenase-induced ICH model in young, aged, obese, and female mice. Drug or vehicle was administered 2-6 hours after stroke onset. Outcomes included infarct or haematoma volume, BBB integrity, neurological function, and pain-related behaviours. Results: AZD1236 given within 2-4 hours after ischaemic or haemorrhagic insult significantly reduced infarct and haematoma volumes, improved short- and long-term neurological scores, and preserved BBB integrity, whereas treatment at 6 hours was largely ineffective. AZD1236 also attenuated the development of post-stroke mechanical allodynia and thermal hyperalgesia. Mechanistically, treatment reduced MMP-9 and MMP-12 activity, increased tight junction protein expression, and dampened inflammatory responses. Conclusions: Dual inhibition of MMP-9/-12 with AZD1236 confers robust neurovascular protection and mitigates post-stroke pain across clinically relevant models of ischaemic and haemorrhagic stroke. These findings provide a strong preclinical rationale for clinical evaluation of dual MMP-9/12 inhibition as an adjunctive neuroprotective strategy for acute stroke.

neuroscience↗

ULTRAFAST STRUCTURAL CHANGES DIRECT THE FIRST MOLECULAR EVENTS OF VISION

Vision is initiated by the rhodopsin family of light-sensitive G protein-coupled receptors (GPCRs). A photon is absorbed by the 11-cis retinal chromophore of rhodopsin which isomerises within 200 femtoseconds to the all-trans conformation, thereby initiating the cellular signal transduction processes that ultimately lead to vision. However, the intramolecular mechanism by which the photoactivated retinal induces the activation events inside rhodopsin remains elusive. In this work, we use ultrafast time-resolved crystallography at room temperature to determine how an isomerised twisted all-trans retinal stores the photon energy required to initiate protein conformational changes associated with the formation of the G protein-binding signalling state. The distorted retinal at 1 ps time-delay of photoactivation has pulled away from half of its numerous interactions with its binding pocket, and the excess of the photon energy is released through an anisotropic protein breathing motion in the direction of the extracellular space. Strikingly, the very early structural motions in the protein side chains of rhodopsin appear in regions involved in later stages of the conserved Class A GPCR activation mechanism. Our work sheds light on the earliest stages of vision in vertebrates and points to fundamental aspects of the molecular mechanisms of agonist-mediated GPCR activation.

biochemistry↗