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Published on: November 10, 2021
Basic fibroblast growth factor reduces functional and structural damage in chronic kidney disease
Sandra Villanueva1, Felipe Contreras, Andrés Tapia
1Laboratorio de Fisiología Integrativa y Molecular, Universidad de los Andes, San Carlos de Apoquindo 2200, Santiago, Chile. svillanueva@uandes.cl.
Abstract:
Chronic kidney disease (CKD) is characterized by loss of renal function. The pathological processes involved in the progression of this condition are already known, but the molecular mechanisms have not been completely explained. Recent reports have shown the intrinsic capacity of the kidney to undergo repair after acute injury through the reexpression of repairing proteins (Villanueva S, Cespedes C, Vio CP. Am J Physiol Regul Integr Comp Physiol 290: R861-R870, 2006). Stimulation with basic fibroblast growth factor (bFGF) could accelerate this process. However, it is not known whether bFGF can induce this phenomenon in kidney cells affected by CKD. Our aim was to study the evolution of renal damage in animals with CKD treated with bFGF and to relate the amount of repairing proteins with renal damage progression. Male Sprague-Dawley rats were subjected to 5/6 nephrectomy (NPX) and treated with bFGF (30 μg/kg, NPX+bFGF); a control NPX group was treated with saline (NPX+S). Animals were euthanized 35 days after bFGF administration. Functional effects were assessed based on serum creatinine levels; morphological damage was assessed by the presence of macrophages (ED-1), interstitial α-smooth muscle actin (α-SMA), and interstitial collagen through Sirius red staining. The angiogenic factors VEGF and Tie-2 and the epithelial/tubular factors Ncam, bFGF, Pax-2, bone morphogenic protein-7, Noggin, Lim-1, Wnt-4, and Smads were analyzed. Renal stem cells were evaluated by Oct-4. We observed a significant reduction in serum creatinine levels, ED-1, α-SMA, and Sirius red as well as an important induction of Oct-4, angiogenic factors, and repairing proteins in NPX+bFGF animals compared with NPX+S animals. These results open new perspectives toward reducing damage progression in CKD.
Insights
Basic fibroblast growth factor (bFGF) treatment reduced kidney damage and improved renal function in chronic kidney disease (CKD) rats. This suggests bFGF may promote kidney repair and offers new therapeutic avenues for CKD.
Area of Science:
- Nephrology
- Regenerative Medicine
- Molecular Biology
Background:
- Chronic kidney disease (CKD) involves progressive renal function loss.
- Kidney repair mechanisms exist but are not fully understood in CKD.
- Basic fibroblast growth factor (bFGF) may enhance kidney repair.
Purpose of the Study:
- To investigate bFGF's effect on renal damage progression in a rat CKD model.
- To correlate repairing protein levels with renal damage in CKD.
- To explore bFGF's potential in promoting kidney regeneration.
Main Methods:
- 5/6 nephrectomy (NPX) model in Sprague-Dawley rats.
- Treatment groups: NPX with bFGF (NPX+bFGF) and NPX with saline (NPX+S).
- Assessment of renal function (serum creatinine), damage markers (ED-1, α-SMA, Sirius red), and molecular factors (VEGF, Tie-2, Oct-4, etc.).
Main Results:
- NPX+bFGF group showed reduced serum creatinine, ED-1, α-SMA, and collagen levels.
- Significant induction of renal stem cell marker (Oct-4), angiogenic factors, and repairing proteins in NPX+bFGF group.
- bFGF treatment mitigated morphological and functional renal damage.
Conclusions:
- bFGF treatment significantly reduces renal damage and improves function in a rat model of CKD.
- bFGF promotes the expression of regenerative and angiogenic factors, indicating enhanced kidney repair.
- These findings highlight bFGF as a potential therapeutic agent for mitigating CKD progression.
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