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Construction of Cyclic Cell-Penetrating Peptides for Enhanced Penetration of Biological Barriers
Published on: September 19, 2022
Cyclic peptides nanospheres: A '2-in-1' self-assembled delivery system for targeting nucleus and cytoplasm
Bijayananda Panigrahi1, Rohit Kumar Singh2, Uday Suryakant2
1School of Biotechnology, Kalinga Institute of Industrial Technology Deemed to be University, Campus 11, Patia, Bhubaneswar 751024, Odisha, India; Biopioneer Private Limited, Patia, Bhubaneswar, Odisha, India.
Abstract:
Vascular endothelial growth factor (VEGF) is considered as one of the vital growth factors for angiogenesis, which is primarily responsible for the progress and maintenance of new vascular network in tumor. Numerous studies report that inhibition of VEGF-induced angiogenesis is a potent technique for cancer suppression. Recently, RNA interference, especially small interfering RNA (siRNA) signified a promising approach to suppress the gene expression. However, the clinical implementation of biological macromolecules such as siRNA is significantly limited because of stability and bioavailability issues. Herein, self-assembled peptide nanospheres have been generated from L,L-cyclic peptides using hydrophobic (Trp), positively charged (Arg) and cysteine (Cys) amino acid residues and demonstrated as vehicles for intracellular delivery of VEGF siRNA and VEGF antisense oligonucleotide. Formation of peptide nanostructures is confirmed by HR-TEM, AFM, SEM and DLS analysis. Possible mechanism of self-assembly of the cyclic peptides and their binding with macromolecules are demonstrated by in-silico analysis. Gel electrophoresis reveals that the newly generated peptide based organic materials exhibit strong binding affinity toward siRNAs / antisense oligonucleotides (ASOs) at optimum concentration. Flow cytometry and confocal microscopy results confirm the efficiency of the new biomaterials toward the intracellular delivery of fluorescent labeled siRNA / ASOs. Furthermore, VEGF expression evaluated by western blot and RT-PCR upon the delivery of functional VEGF siRNA/ASOs suggests that very low concentrations of VEGF siRNA/ASOs cause significant gene knockdown at protein and mRNA levels, respectively.
Insights
Novel peptide nanospheres effectively deliver vascular endothelial growth factor (VEGF) small interfering RNA (siRNA) to cancer cells, significantly reducing tumor growth factor expression. This breakthrough addresses siRNA delivery challenges for cancer therapy.
Area of Science:
- Biotechnology
- Nanomedicine
- Cancer Research
Background:
- Vascular endothelial growth factor (VEGF) drives tumor angiogenesis, making its inhibition a key cancer therapy strategy.
- Small interfering RNA (siRNA) offers gene silencing potential but faces stability and delivery limitations.
- Effective delivery vehicles are crucial for translating siRNA therapeutics into clinical practice.
Purpose of the Study:
- To develop and characterize self-assembled peptide nanospheres for intracellular delivery of VEGF siRNA.
- To evaluate the efficacy of these nanospheres in delivering VEGF siRNA and achieving gene knockdown.
Main Methods:
- Self-assembly of L,L-cyclic peptides (Trp, Arg, Cys) into nanospheres.
- Characterization of nanostructures using HR-TEM, AFM, SEM, and DLS.
- Assessment of binding affinity with siRNA/ASOs via gel electrophoresis.
- Evaluation of intracellular delivery efficiency using flow cytometry and confocal microscopy.
- Quantification of VEGF gene and protein knockdown via RT-PCR and western blot.
Main Results:
- Peptide nanospheres were successfully synthesized and characterized.
- Strong binding affinity between peptide nanospheres and siRNA/ASOs was confirmed.
- Efficient intracellular delivery of fluorescently labeled siRNA/ASOs was demonstrated.
- Significant knockdown of VEGF at both mRNA and protein levels was achieved using low concentrations of delivered siRNA/ASOs.
Conclusions:
- Self-assembled peptide nanospheres are effective vehicles for intracellular delivery of VEGF siRNA.
- This approach shows promise for overcoming siRNA delivery challenges in cancer therapy.
- The developed nanobiomaterials offer a potential strategy for targeted gene silencing in cancer treatment.
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