Remote ischemic conditioning improves outcome independent of anesthetic effects following shockwave-induced traumatic brain injury.
Authors: Park E, McCutcheon V, Telliyan T, Liu E, Eisen R, Kinio A, Tavakkoli J, Baker AJ
Traumatic brain injury due to primary blast exposure is a major cause of ongoing neurological and psychological impairment in soldiers and civilians. Animal and human evidence suggests that low-level blast exposure is capable of inducing white matter injury and behavioural deficits. There are currently no effective therapies to treat the underlying suspected pathophysiology of low-level primary blast or concussion. Remote ischemic conditioning (RIC) has been shown to have cardiac, renal and neuro-protective effects in response to brief cycles of ischemia. Here we examined the effects of RIC in two models of blast injury. We used a model of low-level primary blast in rats to evaluate the effects of RIC neurofilament expression. We subsequently used a model of traumatic brain injury in adult zebrafish using pulsed high intensity focused ultrasound (pHIFU) to evaluate the effects of RIC on behavioural outcome and apoptosis in a post-traumatic setting. In blast exposed rats, RIC pretreatment modulated NF200 expression suggesting an innate biological buffering effect. In zebrafish, behavioural deficits and apoptosis due to pHIFU-induced brain injury were reduced following administration of serum derived from RIC rats. The results in the zebrafish model demonstrate the humoral effects of RIC independent of anesthetic effects that were observed in the rat model of injury. Our results indicate that RIC is effective in improving outcome following modeled brain trauma in pre- and post-injury paradigms. The results suggest a potential role for innate biological systems in the protection against pathophysiological processes associated with impairment following shockwave induced trauma.
Introduction
Purpose
BBB opening without drug delivery
Study Objective
To test whether remote ischemic conditioning (RIC) provides neuroprotection against blast-induced brain injury by modulating neurofilament expression, behavioral outcomes, and apoptosis in rat and zebrafish models.
Animal model / Human subject
Rat (Rattus norvegicus, Sprague Dawley, adult ~250 g, male); Zebrafish (Danio rerio, wild-type AB shortfin phenotype, adult, male and female)
Disease model
Traumatic brain injury (blast-induced/concussion)
Targeted brain region(s)
Telencephalon And Mesencephalon
Cargo name and characteristics
Serum from remote ischemic conditioned (RIC) rats — biological serum containing humoral factors (proteins/peptides and small molecules); administered retro-orbitally (4 μl) to zebrafish
Route of administration
Retro-orbital injection (into circulation)
Outcomes and Safety
Summary of Outcomes
Remote ischemic conditioning (RIC) increased NF200 expression after primary blast and, via transferrable serum, improved locomotor behavior and reduced apoptosis in pHIFU‑injured zebrafish (no multiple pHIFU parameter variations were reported).
Duration of biological effect
48 h
Safety-related matter
Authors describe remote ischemic conditioning (RIC) as an easy-to-apply and safe procedure with potential prophylactic use; no adverse effects of RIC were reported. They also note prolonged isoflurane anesthesia alters neurofilament expression and behavioral outcomes (a potential confounder), can destabilize dendritic spines and may increase anxiety in zebrafish.
Brain Region
Ultrasound Parameters
Ultrasound instrument
Advanced 1–3 piezo-composite high-power ultrasound transducer technology (Imasonic SAS, Voray sur l'Ognon, France); focal zone (-6 dB) axial 7.5 mm, lateral 1.2 mm; maximum pulsed pressure ≈9 MPa; transducer aperture/diameter: None
FUS Pressure
0.0115 MPa, 0.028 MPa, 0.035 MPa, 9 MPa
FUS Mode
pulsed
Pulse duration
50 ms
Duration of a single FUS session
50 ms
Focal Characteristics
Focal depth: 7.5 mm; Focal length: None; Aperture size: None
Treatment frequency
Single session
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