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1.
Appl Microbiol Biotechnol ; 96(3): 647-62, 2012 Nov.
Article in English | MEDLINE | ID: mdl-22763845

ABSTRACT

Small quantity of energetic material coated on the inner wall of a polymer tube is proposed as a new method to generate micro-shock waves in the laboratory. These micro-shock waves have been harnessed to develop a novel method of delivering dry particle and liquid jet into the target. We have generated micro-shock waves with the help of reactive explosive compound [high melting explosive (octahydro-1,3,5,7-tetranitro-1,3,5,7-tetrazocine) and traces of aluminium] coated polymer tube, utilising ∼9 J of energy. The detonation process is initiated electrically from one end of the tube, while the micro-shock wave followed by the products of detonation escape from the open end of the polymer tube. The energy available at the open end of the polymer tube is used to accelerate tungsten micro-particles coated on the other side of the diaphragm or force a liquid jet out of a small cavity filled with the liquid. The micro-particles deposited on a thin metal diaphragm (typically 100-µm thick) were accelerated to high velocity using micro-shock waves to penetrate the target. Tungsten particles of 0.7 µm diameter have been successfully delivered into agarose gel targets of various strengths (0.6-1.0 %). The device has been tested by delivering micro-particles into potato tuber and Arachis hypogaea Linnaeus (ground nut) stem tissue. Along similar lines, liquid jets of diameter ∼200-250 µm (methylene blue, water and oils) have been successfully delivered into agarose gel targets of various strengths. Successful vaccination against murine salmonellosis was demonstrated as a biological application of this device. The penetration depths achieved in the experimental targets are very encouraging to develop a future device for biological and biomedical applications.


Subject(s)
Explosive Agents/chemistry , Injections, Jet/methods , Mechanical Phenomena , Particulate Matter/administration & dosage , Solutions/administration & dosage , Animals , Arachis , Mice , Solanum tuberosum , Vaccination/methods
2.
Clin Vaccine Immunol ; 18(4): 539-45, 2011 Apr.
Article in English | MEDLINE | ID: mdl-21307276

ABSTRACT

Shock waves are one of the most efficient mechanisms of energy dissipation observed in nature. In this study, utilizing the instantaneous mechanical impulse generated behind a micro-shock wave during a controlled explosion, a novel nonintrusive needleless vaccine delivery system has been developed. It is well-known that antigens in the epidermis are efficiently presented by resident Langerhans cells, eliciting the requisite immune response, making them a good target for vaccine delivery. Unfortunately, needle-free devices for epidermal delivery have inherent problems from the perspective of the safety and comfort of the patient. The penetration depth of less than 100 µm in the skin can elicit higher immune response without any pain. Here we show the efficient utilization of our needleless device (that uses micro-shock waves) for vaccination. The production of liquid jet was confirmed by high-speed microscopy, and the penetration in acrylamide gel and mouse skin was observed by confocal microscopy. Salmonella enterica serovar Typhimurium vaccine strain pmrG-HM-D (DV-STM-07) was delivered using our device in the murine salmonellosis model, and the effectiveness of the delivery system for vaccination was compared with other routes of vaccination. Vaccination using our device elicits better protection and an IgG response even at a lower vaccine dose (10-fold less) compared to other routes of vaccination. We anticipate that our novel method can be utilized for effective, cheap, and safe vaccination in the near future.


Subject(s)
Injections, Jet/methods , Salmonella Vaccines/administration & dosage , Salmonella Vaccines/immunology , Animal Structures/microbiology , Animals , Antibodies, Bacterial/blood , Bacterial Load , Disease Models, Animal , Humans , Immunoglobulin G/blood , Mice , Mice, Inbred BALB C , Microscopy, Confocal , Salmonella Infections, Animal/immunology , Salmonella Infections, Animal/prevention & control , Salmonella typhimurium/immunology , Skin/pathology , Survival Analysis , Vaccines, Attenuated/administration & dosage , Vaccines, Attenuated/immunology
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