Cerebrospinal fluid dynamics disorders after subarachnoid haemorrhage in an experiment.
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Havryliv T.S. Cerebrospinal fluid dynamics disorders after subarachnoid
haemorrhage in an experiment. – Qualifying scientific work in manuscript form.
Dissertation for the degree of Doctor of Philosophy in the specialty 222 "Medicine"
(22 – Health Care). – State University "Uzhhorod National University", Ministry of
Education and Science of Ukraine, Uzhhorod, 2026.
According to the latest complete global data from the World Health Organization
(2021), stroke ranked as the third leading cause of death worldwide, following ischemic
heart disease and COVID-19. Subarachnoid hemorrhage (SAH), a subtype of
hemorrhagic stroke, leads to the development of communicating post-hemorrhagic
hydrocephalus (CPHH) in approximately one-third of patients. Up to 45% of these
patients require permanent cerebrospinal fluid diversion, while nearly half of them
experience shunt dysfunction within the first year of follow-up.
One key mechanism underlying CPHH development is the accumulation of
hemoglobin degradation products, which induce subarachnoid fibrosis and impair
cerebrospinal fluid resorption. Iron plays a crucial role in these processes, as its excess
contributes to neuroinflammation and secondary damage to brain structures. In this
context, the use of iron-chelating agents is considered a promising approach to
mitigating iron-induced injury following SAH.
This dissertation aimed to test the hypothesis that iron-chelating therapy reduces the
development of communicating post-hemorrhagic hydrocephalus in an experimental
model of SAH.
The study was conducted using Wistar rats weighing 250-500 g. Animals were
divided into four groups. The control group underwent no surgical procedures. In the
sham group, 0.15 mL of isotonic saline was injected into the cisterna magna, followed
by a second injection 48 hours later. In the third group (blood group minus
minocycline, BGMM), 0.15 mL of autologous blood was injected into the cisterna
magna, with a repeated injection administered after 48 hours. The fourth group (blood
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group plus minocycline, BGPM) underwent the same hemorrhagic protocol and
received the iron-chelating agent minocycline.
Transcranial ultrasonography was performed in all groups at predefined time points.
In the control group, examinations were conducted according to the same schedule
without surgical intervention, whereas in the experimental groups, ultrasonography
was performed at baseline and during postoperative follow-up. Ventricular size was
assessed using the Levene index (LI). CPHH was defined as a ventricular index
exceeding the 97th percentile of the pre-intervention LI (1.297). Morphological
features of SAH, including subarachnoid blood accumulation and ventricular wall
damage, were evaluated histologically.
During the study, а total of 97 experimental interventions were performed in 50 rats.
The overall mortality rate was 12%, while mortality was higher in the hemorrhagic
groups, reaching 15%. According to ultrasonographic assessment, hydrocephalus
developed in 56% of experimental animals in the hemorrhagic group that did not
receive the iron-chelating agent. In animals of this group, histological examination
revealed subarachnoid and intraventricular hemorrhage, accompanied by disruption of
the ependymal lining, findings consistent with ultrasonographic evaluation.
Administration of minocycline in the BGPM group prevented ventricular
enlargement following autologous blood injection, as evidenced by comparable
preoperative and postoperative Levene index values (1.079 ± 0.096 and 1.034 ± 0.058,
respectively). The difference between the BGMM and BGPM groups was highly
significant (mean difference 0.179 ± 0.029, t(41) = 6.12, p < 0.00001).
The results indicate that minocycline significantly reduces the risk of post-
hemorrhagic ventriculomegaly in experimental animals. These findings suggest that
iron-chelating agents represent a promising therapeutic approach for the prevention
and treatment of post-hemorrhagic hydrocephalus in clinical practice.
The scientific novelty of the obtained results.
1. This study substantiates the effectiveness of an improved double-hemorrhage
experimental model of subarachnoid hemorrhage, incorporating interval-based
administration of autologous blood into the cisterna magna, for reproducing
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communicating posthemorrhagic hydrocephalus under conditions of low
postoperative mortality.
2. The study expands current knowledge on the patterns of cerebrospinal fluid
dynamic disturbances in experimental repeated subarachnoid
hemorrhage, reproducing the key features of the clinical course of
posthemorrhagic hydrocephalus in humans.
3. The study clarifies the pathogenetic significance of morphological brain changes
following subarachnoid hemorrhage, particularly damage to the ependymal
lining of the ventricles and intraventricular blood accumulation, in the
4. development of impaired cerebrospinal fluid resorption.
The diagnostic value of transcranial ultrasonography is evaluated as a dynamic,
quantitative method for assessing ventriculomegaly in small laboratory animals,
based on comparison with morphological findings.
5. The study experimentally demonstrates the preventive effect of the iron-
chelating drug minocycline on the development of posthemorrhagic
ventriculomegaly, with a statistically significant reduction in its incidence in
experimental animals.
Practical significance of the obtained results.
1. 2. 3. Prophylactic use of iron-chelating agents may potentially reduce the risk of post-
hemorrhagic hydrocephalus in patients with subarachnoid hemorrhage, thereby
decreasing the need for additional neurosurgical interventions, including
ventriculoperitoneal shunting and endoscopic third ventriculostomy.
The applied double-hemorrhage experimental model, involving interval
injection of autologous blood into the cisterna magna, is a reliable and effective
method for reproducing severe cerebrovascular pathology with clinically
relevant analogues in humans and may be used in further preclinical studies.
Non-invasive ultrasonographic examination of the brain is a valid and
informative method for diagnosing ventriculomegaly in small laboratory
animals, allowing real-time dynamic assessment and making it suitable for serial
experimental studies.
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Experimental research was conducted at the Lithuanian University of Health
Sciences using equipment located at the Biological Research Center in Kaunas,
Lithuania. All experimental procedures involving animals were performed in
accordance with the Republic of Lithuania Law on the care, keeping, and use of
experimental vertebrate animals and Directive 2010/63/EU of the European
Parliament. The study was approved by the State Food and Veterinary Service of
Lithuania (No. G2-126, October 29, 2019). The author holds a certificate from the
Federation of European Laboratory Animal Science Associations (FELASA) and the
Society for Laboratory Animal Science (SOLAS), category B, issued by Humboldt
University of Berlin / Berlin Mouse Clinic for Neurology and Psychiatry. Compliance
with international and national standards for biomedical research was approved by the
Bioethics Commission of Uzhhorod National University (Protocol No. 2/16, dated
October 4, 2022).
The results of the dissertation research have been introduced into the scientific and
methodological work of the Department of Neurology, Psychiatry and Neurosurgery
at Uzhhorod National University.
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subarachnoid hemorrhage, hemorrhagic stroke, communicating posthemorrhagic hydrocephalus, minocycline, experimental rats, ultrasound of the brain, experimental study.