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Published on: November 10, 2021
Kidney Selective Bcl2 Inhibitor Delivery Improves Fibrosis Treatment
Humayra Afrin1,2, Sayantani Chakraborty3, Md Nafiujjaman4
1Department of Pharmaceutical Sciences, School of Pharmacy, University of Texas at El Paso, El Paso, Texas 79902, United States.
Abstract:
Kidney fibrosis is one of the deadliest diseases. Kidney fibrosis often goes undiagnosed due to the absence of symptoms until the disease progresses to advanced stages, at which point dialysis or kidney transplant becomes the only viable options. Despite the significant morbidity and mortality associated with kidney fibrosis, there is currently no treatment available that efficiently and effectively addresses the condition. This study aims to develop a nanoparticle-mediated therapeutic modality targeting kidney fibrosis, anticipating improved therapeutic outcomes. We have modified a poly(lactic-co-glycolic acid) (PLGA) nanoparticle to link with angiotensin 2 targeting peptide (AT2 peptide) that targets and bind with angiotensin targeting 2 receptor (AT2R) and loaded with the Bcl-2 inhibitor (Navitoclax/Navi), to carry the payload to the site of action efficiently and specifically. Navi induces apoptosis by inhibiting the anti-apoptotic protein Bcl2. The therapeutic efficacy of various Navi formulations was investigated by both in vitro and in vivo models and compared to a group treated with Fasudil, a Rho-kinase inhibitor. A significant reduction of the Bcl2 expression and an upregulation of apoptosis were observed in the group of mice treated with targeted nanoparticle (TNP/Navi) when compared to free Navi or nontargeted formulation (NP/Navi), using immunohistochemistry and molecular biology techniques. A significant reduction in α-SMA and CTGF was observed in the TNP/Navi group for both in vitro and in vivo models that demonstrates an obvious indication of therapeutic potential of the developed formulation. Conservation of normal kidney morphology and less collagen deposition in the kidney treated with TNP/Navi further consolidates that AT2R targeted nanoparticle-mediated apoptosis upregulation has the potential to reverse the pathology of kidney fibrosis.
Insights
Researchers developed a targeted nanoparticle therapy for kidney fibrosis. This novel treatment effectively reduced fibrosis markers and promoted kidney cell death, showing potential to reverse disease pathology.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Renal Medicine
Background:
- Kidney fibrosis is a severe, often asymptomatic disease with limited treatment options.
- Current treatments for advanced kidney fibrosis include dialysis or transplantation.
- There is an urgent need for effective therapies to combat kidney fibrosis.
Purpose of the Study:
- To develop a nanoparticle-mediated therapeutic strategy for kidney fibrosis.
- To target kidney fibrosis using nanoparticles loaded with a Bcl-2 inhibitor (Navitoclax) and linked to an AT2 receptor-targeting peptide.
- To evaluate the therapeutic efficacy of this targeted nanoparticle formulation.
Main Methods:
- Modification of poly(lactic-co-glycolic acid) (PLGA) nanoparticles with an AT2 peptide and loading with Navitoclax.
- In vitro and in vivo studies to assess the efficacy of targeted nanoparticles (TNP/Navi) compared to free Navitoclax or non-targeted nanoparticles (NP/Navi).
- Assessment of Bcl-2 expression, apoptosis, alpha-smooth muscle actin (α-SMA), connective tissue growth factor (CTGF), kidney morphology, and collagen deposition.
Main Results:
- Targeted nanoparticles (TNP/Navi) significantly reduced Bcl-2 expression and increased apoptosis compared to other groups.
- A notable decrease in α-SMA and CTGF was observed in vitro and in vivo with TNP/Navi treatment.
- Treated kidneys showed preserved normal morphology and reduced collagen deposition, indicating fibrosis reversal.
Conclusions:
- AT2 receptor-targeted nanoparticles loaded with Navitoclax demonstrate significant therapeutic potential for kidney fibrosis.
- This nanoparticle-mediated apoptosis upregulation can reverse kidney fibrosis pathology.
- The developed formulation offers a promising new avenue for treating kidney fibrosis.
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