Investigating the Role of Neuregulin-1 in Mitigating Haemolysis Mediated Kidney Injury in Humanized Sickle Cell Mice.
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University of Ghana
Abstract
Background: Chronic kidney disease (CKD), defined as the persistent and gradual decline in
kidney function, is a common and severe complication of sickle cell disease (SCD). CKD in SCD
is reported in childhood and worsens with age. More than half of adults with SCD over the age of
forty (40) develop CKD, leading to end-stage renal disease. This contributes significantly to 16
18% of SCD global deaths each year. Acute kidney injury (AKI), the sudden loss of kidney
function, is a major risk factor for developing chronic kidney disease (CKD). In sickle cell disease,
the incidence of AKI is three times higher than in non-sickle cell patients, affecting over 30% of
hospitalized individuals. Again, AKI is a leading cause of early death in critically ill SCD patients.
Despite its significant role in kidney disease, treatment options for AKI in SCD remain limited and
uncertain, posing a significant challenge in its clinical management.
A major driver of kidney injury in SCD is intravascular haemolysis, which releases excess protein
free heme into circulation, triggering kidney injury through vascular inflammation, endothelial
dysfunction, oxidative stress, and cytotoxicity. Hydroxyurea (HU), the approved SCD‑modifying
therapy, partly improves renal function, but its impact on heme‑driven kidney injury remains
uncertain and underexplored. There is an urgent need for targeted interventions against heme
driven kidney injury in SCD. Neuregulin‑1 (NRG‑1), an endothelium‑derived peptide with
anti‑inflammatory, antioxidant, and cytoprotective properties, holds therapeutic potential in SCD.
It is hypothesized that Neuregulin-1 reduces kidney injury in sickle cell mice by modulating
haemolysis, inflammation and inducing anti-heme cytoprotective factors. This PhD work assessed
the effects of NRG‑1 and HU on haemolysis, inflammation, kidney injury, and renal
histopathologic changes in a humanized sickle cell mouse model that mimics clinical features of
SCD. Methods: The HbSS-Townes mouse model, developed by Dr. Tim Townes’ laboratory (University
of Alabama, Birmingham), which carries human haemoglobin knock-in genes and develops kidney
injury resembling human disease, was used. Control mice (HbAA), which do not develop the
disease, were also included. Cohorts of twelve‑week‑old Townes sickle cell (HbSS) and non‑sickle
(HbAA) mice (n = 8 per group, sex-matched) were intraperitoneally administered with
recombinant human neuregulin-1 (NRG-1) at doses of 5 µg/kg/day and 25 µg/kg/day; 50 mg/kg
of hydroxyurea (HU) or sterile phosphate-buffered saline (vehicle) for two weeks. Following
treatment with NRG-1, HU or vehicle, blood and urine samples were collected for analysis of
complete blood count, haemolysis markers, and kidney injury biomarkers. Kidney tissue sections
were examined for histopathologic renal changes, and immunohistochemistry was used to assess
the effect of neuregulin-1 on the expression and tissue distribution of heme oxygenase-1, a heme
degrading enzyme.
Results: HbSS mice exhibited anaemia, leucocytosis, elevated haemolysis (total plasma heme,
lactate dehydrogenase [LDH]), increased urinary kidney injury biomarkers (neutrophil gelatinase
associated lipocalin [NGAL] and cystatin C), and reduced renal repair biomarkers (clusterin,
epidermal growth factor [EGF]) prior treatment. Urinary levels of NGAL and Cystatin C positively
correlated with total plasma heme (ρ = 0.98, p < 0.05) and LDH (ρ = 0.97, p < 0.05) respectively.
Both NRG-1 and HU significantly reduced white blood cell counts, total plasma heme, lactate
dehydrogenase, and pro-inflammatory kidney injury mediators (NRG-1: FN-γ, IL-6, CXCL10,
VEGF-A, CCL19, MCP-5; HU: CXCL10, VEGF-A, IFN-γ) in HbSS mice. Notably, NRG-1 (25
µg/kg/day), like HU, significantly increased circulating fetal haemoglobin containing red blood
cells (F-cells). HU reduced urinary cystatin C and NGAL levels more than NRG‑1, whereas
NRG‑1 significantly increased urinary clusterin and EGF. HU significantly reduced medullary congestion, while NRG‑1 markedly reduced iron deposition in cortical tubular epithelial cells.
Both treatments reduced glomerular congestion, Bowman’s membrane thickening, tubular brush
border loss, and glomerulosclerosis. NRG‑1 enhanced HO‑1 expression in HbSS kidneys, whereas
HU had no significant effect on HO-1 expression. ErbB4 was highly expressed in HbSS kidneys
compared to HbAA, suggesting its involvement in kidney protection pathways.
Conclusion: This work provides new insight supporting the exploration of NRG‑1 as a targeted
therapeutic agent for kidney injury in SCD. The complementary renoprotective effects observed
with NRG‑1 and hydroxyurea support further evaluation of their combined use to improve kidney
outcomes in SCD.
Description
PhD. Molecular Cell Biology of Infectious Disease
