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Author Spotlight: Establishing a New Fluorescence-Based Protocol for In Vivo Mitochondrial Morphology Analysis in Parkinson's Disease
Published on: June 23, 2023
Antibody conjugated targeted nanotherapy epigenetically inhibits calpain-mediated mitochondrial dysfunction to
Liku Biswal1, Vikas Kumar Sahu1, Mohammed Nadim Sardoiwala1
1Epigenetics Research Laboratory, Institute of Nano Science and Technology, Knowledge City, Sector 81, Mohali, Punjab 140306, India.
Abstract:
Many neurodegenerative and psychiatric malignancies like Parkinson' disease (PD) originate from an imbalance of 17β-Estradiol (E2) in the human brain. However, the peripheral side effects of the usage of E2 for PD therapy and less understanding of the molecular mechanism hinder establishing its neurotherapeutic potential. In the present work, systemic side effects were overcome by targeted delivery using Dopamine receptor D3 (DRD3) conjugated E2-loaded chitosan nanoparticles (Ab-ECSnps) that showed a promising delivery to the brain. E2 is a specific calpain inhibitor that fosters neurodegeneration by disrupting mitochondrial function, while B-cell-specific Moloney murine leukemia virus integration region 1 (BMI1), an epigenetic regulator, is crucial in preserving mitochondrial homeostasis. We showed the administration of Ab-ECSnps inhibits calpain's translocation into mitochondria while promoting the translocation of BMI1 to mitochondria, thereby conferring neurotherapeutic benefits by enhancing cell viability, increasing mitochondrial DNA copy number, and preserving mitochondrial membrane potential. Further, we showed a novel molecular mechanism of BMI1 regulation by calpain that might contribute to maintaining mitochondrial homeostasis for attenuating PD. Concomitantly, Ab-ECSnps showed neurotherapeutic potential in the in vivo PD model. We showed for the first time that our brain-specific targeted delivery might regulate calpain-mediated BMI1 expression, thereby preserving mitochondrial homeostasis to alleviate PD.
Insights
Targeted brain delivery of 17β-Estradiol (E2) using nanoparticles improved Parkinson's disease (PD) therapy by inhibiting calpain and promoting BMI1 in mitochondria. This approach enhances cell viability and mitochondrial function, offering neurotherapeutic benefits.
Area of Science:
- Neuroscience
- Biomedical Engineering
- Pharmacology
Background:
- Parkinson's disease (PD) is linked to 17β-Estradiol (E2) imbalance and mitochondrial dysfunction.
- Peripheral side effects and unclear mechanisms limit E2's neurotherapeutic use for PD.
Purpose of the Study:
- To develop a targeted brain delivery system for E2 to overcome limitations in PD therapy.
- To elucidate the molecular mechanism of E2's neuroprotective effects involving calpain and BMI1 in mitochondria.
Main Methods:
- Conjugation of E2-loaded chitosan nanoparticles with Dopamine receptor D3 (DRD3) for brain targeting (Ab-ECSnps).
- In vitro assessment of calpain and BMI1 translocation, cell viability, mitochondrial DNA copy number, and membrane potential.
- In vivo evaluation of Ab-ECSnps in a PD model.
Main Results:
- Ab-ECSnps demonstrated effective brain delivery and inhibited mitochondrial calpain translocation.
- Administration of Ab-ECSnps promoted BMI1 translocation to mitochondria, enhancing cell viability and mitochondrial function.
- A novel mechanism of calpain-mediated BMI1 regulation for mitochondrial homeostasis was identified, showing therapeutic potential in an in vivo PD model.
Conclusions:
- Targeted delivery of E2 via Ab-ECSnps offers a promising strategy for PD treatment by preserving mitochondrial homeostasis.
- The study reveals a novel molecular pathway involving calpain and BMI1 in mitigating PD pathology.
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