Tuesday, January 05, 2021

Treating brain disorders with new nanoparticle drug delivery system

A new nanoparticle drug-delivery system could help scientists overcome the long-standing problem of delivering therapeutics across the blood-brain barrier and into the brain.

Progress has been made over the past few decades in identifying biological pathways that lead to neurodegenerative diseases, which has led to the development of promising molecular agents to target them. However, the translation of these findings into clinically approved treatments has been slow due to the challenges of delivering therapeutics across the blood-brain barrier.

To help solve this issue, a team of bioengineers, physicians, and collaborators at Brigham and Women’s Hospital and Boston Children’s Hospital have now created a nanoparticle platform which can facilitate the effective delivery of encapsulated agents in mice with a physically breached or intact blood-brain barrier.

The findings have been published in Science Advances.

Breaching the blood-brain barrier

The team used a mouse model of a traumatic brain injury (TBI) and observed that the delivery system showed three times more accumulation in the brain than conventional methods of delivery and was therapeutically effective. This new technology could now enable physicians to treat secondary injuries associated with TBIs that can lead to Alzheimer’s, Parkinson’s, and other neurodegenerative diseases, which can develop during ensuing months and years once the barrier has healed.

Corresponding author Nitin Joshi, an associate bioengineer at the Center for Nanomedicine in the Brigham’s Department of Anesthesiology, Perioperative and Pain Medicine, said: “It’s very difficult to get both small and large molecule therapeutic agents delivered across the blood-brain barrier. Our solution was to encapsulate therapeutic agents into biocompatible nanoparticles with precisely engineered surface properties that would enable their therapeutically effective transport into the brain, independent of the state of the BBB.”

Central nervous system promise

The blood-brain barrier also inhibits the delivery of therapeutic agents to the central nervous system for a wide range of acute and chronic diseases. For the study, the team used a small interfering RNA (siRNA) molecule designed to inhibit the expression of the tau protein, which is believed to play a key role in neurodegeneration. Poly(lactic-co-glycolic acid) was used as the base material for nanoparticles and the researchers systematically engineered and studied the surface properties of the nanoparticles to maximise their penetration, leading to the identification of a unique nanoparticle design that maximized the transport of the encapsulated siRNA.

The team saw a 50% reduction in the expression of tau, irrespective of the formulation being infused within or outside the temporary window of breached blood-brain barrier. In contrast, tau was not affected in mice that received the siRNA through a conventional delivery system.

Rebekah Mannix, Division of Emergency Medicine at Boston Children’s Hospital and a co-senior author on the study, said: “The technology developed for this publication could allow for the delivery of large number of diverse drugs, including antibiotics, antineoplastic agents, and neuropeptides. This could be a game changer for many diseases that manifest in the central nervous system.”

“In addition to demonstrating the utility of this novel platform for drug delivery into the brain, this report establishes for the first time that systematic modulation of surface chemistry and coating density can be leveraged to tune the penetration of nanoparticles across biological barriers with tight junction,” said first author Wen Li, PhD, of the Department of Anesthesiology, Perioperative and Pain Medicine.

In addition to targeting tau, the researchers have studies underway to attack alternative targets using the novel delivery platform.

Co-senior author Jeff Karp, PhD, of the Brigham’s Department of Anesthesiology, Perioperative and Pain Medicine, said: “For clinical translation, we want to look beyond tau to validate that our system is amenable to other targets. We used the TBI model to explore and develop this technology, but essentially anyone studying a neurological disorder might find this work of benefit. We certainly have our work cut out, but I think this provides significant momentum for us to advance towards multiple therapeutic targets and be in the position to move ahead to human testing.”

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Monday, May 20, 2019

Smart, traceable drug delivery can make cancer therapy more effective

In today’s era, an easy way to track any location is to navigate through GPS. Similarly, smart and trackable drug delivery systems can improve efficiency of cancer treatment. Imaging techniques can help visualize the drug carrier and monitor its delivery to the target tissues. However, a single visualization technique is usually not enough to track the drug with precision. Indian scientists have now designed multifunctional, smart and trackable drug delivery systems.

Researchers have developed multifunctional gold nano-structure that can be used in cancer imaging and therapy.

Nano-systems can simultaneously transfer drug and allow imaging of tumor. However, it is very critical to differentiate the drug carrier system from surrounding tissues and the targeted area.

Although imaging-guided local drug administration has been used widely to treat cancer but it is still very difficult to achieve accurate drug delivery if single imaging technique is used. Designing nano-structures with multi-imaging functionality wherein one imaging system can complement another allows better visualization, assistance and delivery of drug.

“We have designed a Nano-IRIS consisting of gold nano-rattles surrounded by layer of solid silica and mesoporous silica. The nanostructure looks similar to that of an iris of the human eye,” explained the leader of the research team.

Gold nano-rattles are similar to a toy rattle, consisting of a solid gold core encapsulated within thin gold shell. ‘Raman reporters’ were loaded into these porous gold nano-rattles, which allow tissue imaging through Surface- enhanced Raman Spectroscopy (SERS).

In order to load doxorubicin - a fluorescent anti-cancer drug - the gold nano-rattle was coated with mesoporous silica layer. “Since gold reduces the fluorescence of the drug when placed in its proximity, the gold nano-rattle was first coated with solid silica followed by mesoporous silica, onto which the drug is loaded. This increases the distance between gold and the drug and thereby, retains the fluorescence of the drug,” said the researcher.

Raman and fluorescence imaging confirmed the uptake and landing of the drug in breast cancer cells. The uptake and chemotherapeutic potential of the Nano-IRIS was corroborated by the cell death in breast cancer cells. “The challenging part of the study was synthesis of such a complicated system,” he said. The group is now planning further studies and exploring chemotherapy combined with photo-thermal therapy for enhancing the therapeutic efficacy.

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Monday, June 18, 2018

Novel gold nanocomplex for cancer drug delivery

Anti-tumour drugs could target the diseased cell

Using gold nanoparticles coated with a simple organic molecule (porphyrin), researchers have designed an efficient drug nanocarrier. The nanocarrier was found to effectively deliver doxorubicin (anti-tumour drug) to the nucleus of the diseased cell and bring about programmed cell death.
Porphyrin was armoured on the gold nanosurface via continuous stirring method. “Porphyrin is a simple organic compound and it gives the necessary protection and stability to the nanosurface. Porphyrins are essential co-factors in many human proteins such as hemoglobin and so it can escape from the macrophages in our body,” explains the Senior Scientist  and one of the corresponding authors of the paper published recently.

The porphyrin molecule was found to be uniformly distributed on gold nanoparticles and the porphyrin–gold complex was stable.

The anti-tumour drug doxorubicin was then successfully loaded on the porphyrin–gold nanosurface. “Doxorubicin is selectively released when it reaches the low-pH environment seen in cancerous cells,” explains a research scholar at the institute and one of the first authors of the paper.

Activity of the complex

Its activity was then tested on brain and lung cancer cells and normal healthy cells. The porphyrin–gold complex without the drug showed no toxicity to healthy and cancerous cells. The nanoparticles coated with the drug showed very low toxicity to normal cells and caused programmed cell death both in brain and lung cancer cells.

Multidrug resistance is one of the major barriers in cancer cells, where the drug is quickly ejected out, reducing the effective drug concentrations within the cells and thus decreases its sensitivity. 

“We found that the drug-coated nanoparticles were retained well inside the cells thus showing higher activity,” says another research scholar at the institute and one of the first authors of this paper.

“There are several pathways by which the drug can damage the DNA. Currently we are studying the pathways, and trying to design a system that can release the drug more efficiently. We are also studying how the system works in real scenario of tumour model,” says one of the corresponding authors of the paper.

THIS IS ONLY FOR INFORMATION, ALWAYS CONSULT YOU PHYSICIAN BEFORE HAVING ANY PARTICULAR FOOD/ MEDICATION/EXERCISE/OTHER REMEDIES.                                                                                                                                                                                                        PS- THOSE INTERESTED IN RECIPES ARE FREE TO  VIEW MY BLOG-                                                                                           https://gseasyrecipes.blogspot.com/  

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