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Julian, E.

Publications and source records attributed to Julian, E..

2 recordsLinked to original sources

Monitoring the collective behavior of enzymatic nanomotors in vitro and in vivo by PET-CT

Enzyme powered nanomotors hold great potential for biomedical applications, as they show improved diffusion and navigation within biological environments using endogenous fuels. Yet, understanding their collective behavior and tracking them in vivo is paramount for their clinical translation. Here, we report on the in vitro and in vivo study of swarms of self-propelled enzyme-nanomotors and the effect of collective behavior on the nanomotors distribution within the bladder. For that purpose, mesoporous silica nanomotors were functionalized with urease enzymes and gold nanoparticles. Two radiolabeling strategies, i.e. absorption of 124I on gold nanoparticles and covalent attachment of an 18F-labeled prosthetic group to urease, were assayed. In vitro experiments using optical microscopy and positron emission tomography (PET) showed enhanced fluid mixing and collective migration of nanomotors in phantoms containing complex paths. Biodistribution studies after intravenous administration in mice confirmed the biocompatibility of the nanomotors at the administered dose, the suitability of PET to quantitatively track nanomotors in vivo, and the convenience of the 18F-labeling strategy. Furthermore, intravesical instillation of nanomotors within the bladder in the presence of urea resulted in a homogenous distribution after the entrance of fresh urine. Control experiments using BSA-coated nanoparticles or nanomotors in water resulted in sustained phase separation inside the bladder, demonstrating that the catalytic decomposition of urea can provide urease-nanomotors with active motion, convection and mixing capabilities in living reservoirs. This active collective dynamics, together with the medical imaging tracking, constitutes a key milestone and a step forward in the field of biomedical nanorobotics, paving the way towards their use in theranostic applications.Competing Interest StatementThe authors have declared no competing interest.View Full Text

bioengineering

Natural killer activation for bladder cancer elimination can be achieved in vitro by heat-killed BCG

Immunotherapy, via intravesical instillations of Bacillus Calmette-Guerin (BCG) is the therapy of choice for patients with high risk non-muscle invasive bladder cancer. The subsequent recruitment of lymphocytes and myeloid cells, as well as the release of cytokines and chemokines, induces a local immune response that contributes to eliminate these tumours. The history of BCG development resulted in a large number of genetically diverse BCG substrains which could stimulate the immune system in different ways. Here, while investigating the capacity of different BCG substrains to promote the activation of NK cells, we confirmed that all the evaluated substrains could activate a cytotoxic CD56bright NK cell population which efficiently degranulated against bladder cancer cells; Tice, Connaught and Moreau were the substrains having a stronger effect. Dead mycobacteria also stimulated PBMC cultures and we demonstrate that subcellular fractions of BCG-Tice could contribute to the induction of this NK cell response. Lipids from BCG-Tice, but not from Mycobacterium bovis, stimulated NK cell activation and degranulation, however the aqueous fraction of either bacteria did not activate lymphocytes. Delipidated BCG-Tice activated effector cells (CD3+CD56+ and NK). These data suggest that different immune subpopulations could be stimulated using different fractions of mycobacteria for cancer elimination.

immunology