Water safety screening via multiplex LAMP-Au-nanoprobe integrated approach,
Oliveira, {Beatriz B. }, Veigas Bruno, Carlos {Fábio Ferreira}, Sánchez-Melsió Alexandre, Balcázar {José Luís}, Borrego {Carles M. }, and Baptista {Pedro Viana}
, Science of the Total Environment, nov, Volume 741, (2020)
AbstractContaminated water resources remain a major global concern regarding public health. The majority of water safety protocols include indicators of microbial contamination to evaluate the potential risk to public health and are key elements of quality guidelines. Among these, markers for total coliforms and fecal coliforms are strong indicators of co-contamination with other pathogens. Traditional methods, recurring to slow and cumbersome culture-based approaches, have been gradually replaced by molecular methods, capable of faster and more specific screening. These are usually PCR-based methods that may allow for multiple pathogen detection but require dedicated laboratory equipment, hindering the rapid on-site assessment. Here, we used a multiplex Loop-Mediated Isothermal Amplification (mLAMP) strategy for the amplification of two markers associated with the contamination by total and fecal coliforms (e.g. Escherichia coli) — lacZ and uidA genes, respectively — thus allowing for single tube multiplex detection. The mLAMP products were then subject to an Au-nanoprobe colorimetric detection assay for precise discrimination of targets. This approach was validated in 22 water samples that were also screened for the presence of lacZ and uidA using standard and quantitative PCR, with the capability for discriminating the contamination level, e.g. a semi-quantitative evaluation of water quality.
Fast prototyping microfluidics: Integrating droplet digital lamp for absolute quantification of cancer biomarkers,
Oliveira, Beatriz, Veigas Bruno, Fernandes {Alexandra R. }, Águas Hugo, Martins Rodrigo, Fortunato Elvira, and Baptista {Pedro Viana}
, Sensors, mar, Volume 20, Number 6, (2020)
AbstractMicrofluidic (MF) advancements have been leveraged toward the development of state-of-the-art platforms for molecular diagnostics, where isothermal amplification schemes allow for further simplification of DNA detection and quantification protocols. The MF integration with loop-mediated isothermal amplification (LAMP) is today the focus of a new generation of chip-based devices for molecular detection, aiming at fast and automated nucleic acid analysis. Here, we combined MF with droplet digital LAMP (ddLAMP) on an all-in-one device that allows for droplet generation, target amplification, and absolute quantification. This multilayer 3D chip was developed in less than 30 minutes by using a low-cost and extremely adaptable production process that exploits direct laser writing technology in “Shrinky-dinks” polystyrene sheets. ddLAMP and target quantification were performed directly on-chip, showing a high correlation between target concentration and positive droplet score. We validated this integrated chip via the amplification of targets ranging from five to 500,000 copies/reaction. Furthermore, on-chip amplification was performed in a 10 µL volume, attaining a limit of detection of five copies/µL under 60 min. This technology was applied to quantify a cancer biomarker, c-MYC, but it can be further extended to any other disease biomarker.
Nanotheranostics in Gene Therapy,
Oliveira, {Beatriz B. }, Fernandes {Alexandra R. }, and Baptista {Pedro V. }
, Advances in Cancer Nanotheranostics for Experimental and Personalized Medicine, jan, United Kingdom, p.82–115, (2020)
AbstractThe continuous advances in molecular genetics have prompt for a wealth of tools capable to modulate genome and the corresponding gene expression. These innovative technologies have broadened the range of possibilities for gene therapy, either to decrease expression of malignant genes and mutations or edition of genomes for correction of errors. These strategies rely on the delivery of therapeutic nucleic acids to cells and tissues that must overcome several biological barriers. Indeed, a key element for the success of any gene therapy formulation is the carrier agent capable to deliver the therapeutic nucleic acid moieties to a specific target and promote efficient cellular uptake, while preventing deleterious off-target effects and degradation by endogenous nucleases. The initial vectorization strategies proved to be rather immunogenic, limited in the amount of genetic material that can be packed and raised severe toxicity concerns. Nowadays, a new generation of nanotechnology-based gene delivery systems are making an impact on the way we use therapeutic nucleic acids. These nanovectorization platforms have been developed so as to show low immunogenicity, low toxicity, ease of assembly and scale-up with higher loading capacity. Some of these nanoscale systems have also allowed for controlled release system and for the simultaneous capability of monitorization of effect - nanotheranostics. Herein, we provide a review on the variety of gene delivery vectors and platforms at the nanoscale.